#include <sys/cdefs.h>
__KERNEL_RCSID(0, "$NetBSD: if_wm.c,v 1.802 2026/05/20 22:56:58 gutteridge Exp $");
#ifdef _KERNEL_OPT
#include "opt_if_wm.h"
#endif
#include <sys/param.h>
#include <sys/atomic.h>
#include <sys/callout.h>
#include <sys/cpu.h>
#include <sys/device.h>
#include <sys/errno.h>
#include <sys/interrupt.h>
#include <sys/ioctl.h>
#include <sys/kernel.h>
#include <sys/kmem.h>
#include <sys/mbuf.h>
#include <sys/pcq.h>
#include <sys/queue.h>
#include <sys/rndsource.h>
#include <sys/socket.h>
#include <sys/sysctl.h>
#include <sys/syslog.h>
#include <sys/systm.h>
#include <sys/workqueue.h>
#include <net/if.h>
#include <net/if_dl.h>
#include <net/if_media.h>
#include <net/if_ether.h>
#include <net/bpf.h>
#include <net/rss_config.h>
#include <netinet/in.h>
#include <netinet/in_systm.h>
#include <netinet/ip.h>
#include <netinet/ip6.h>
#include <netinet/tcp.h>
#include <sys/bus.h>
#include <sys/intr.h>
#include <machine/endian.h>
#include <dev/mii/mii.h>
#include <dev/mii/mdio.h>
#include <dev/mii/miivar.h>
#include <dev/mii/miidevs.h>
#include <dev/mii/mii_bitbang.h>
#include <dev/mii/ikphyreg.h>
#include <dev/mii/igphyreg.h>
#include <dev/mii/igphyvar.h>
#include <dev/mii/inbmphyreg.h>
#include <dev/mii/ihphyreg.h>
#include <dev/mii/makphyreg.h>
#include <dev/pci/pcireg.h>
#include <dev/pci/pcivar.h>
#include <dev/pci/pcidevs.h>
#include <dev/pci/if_wmreg.h>
#include <dev/pci/if_wmvar.h>
#ifdef WM_DEBUG
#define WM_DEBUG_LINK __BIT(0)
#define WM_DEBUG_TX __BIT(1)
#define WM_DEBUG_RX __BIT(2)
#define WM_DEBUG_GMII __BIT(3)
#define WM_DEBUG_MANAGE __BIT(4)
#define WM_DEBUG_NVM __BIT(5)
#define WM_DEBUG_INIT __BIT(6)
#define WM_DEBUG_LOCK __BIT(7)
#if 0
#define WM_DEBUG_DEFAULT WM_DEBUG_TX | WM_DEBUG_RX | WM_DEBUG_LINK | \
WM_DEBUG_GMII | WM_DEBUG_MANAGE | WM_DEBUG_NVM | WM_DEBUG_INIT | \
WM_DEBUG_LOCK
#endif
#define DPRINTF(sc, x, y) \
do { \
if ((sc)->sc_debug & (x)) \
printf y; \
} while (0)
#else
#define DPRINTF(sc, x, y) __nothing
#endif
#define WM_WORKQUEUE_PRI PRI_SOFTNET
#define WM_MAX_NQUEUEINTR 16
#define WM_MAX_NINTR (WM_MAX_NQUEUEINTR + 1)
#ifndef WM_DISABLE_MSI
#define WM_DISABLE_MSI 0
#endif
#ifndef WM_DISABLE_MSIX
#define WM_DISABLE_MSIX 0
#endif
int wm_disable_msi = WM_DISABLE_MSI;
int wm_disable_msix = WM_DISABLE_MSIX;
#ifndef WM_WATCHDOG_TIMEOUT
#define WM_WATCHDOG_TIMEOUT 5
#endif
static int wm_watchdog_timeout = WM_WATCHDOG_TIMEOUT;
#define WM_NTXSEGS 64
#define WM_IFQUEUELEN 256
#define WM_TXQUEUELEN_MAX 64
#define WM_TXQUEUELEN_MAX_82547 16
#define WM_TXQUEUELEN(txq) ((txq)->txq_num)
#define WM_TXQUEUELEN_MASK(txq) (WM_TXQUEUELEN(txq) - 1)
#define WM_TXQUEUE_GC(txq) (WM_TXQUEUELEN(txq) / 8)
#define WM_NTXDESC_82542 256
#define WM_NTXDESC_82544 4096
#define WM_NTXDESC(txq) ((txq)->txq_ndesc)
#define WM_NTXDESC_MASK(txq) (WM_NTXDESC(txq) - 1)
#define WM_TXDESCS_SIZE(txq) (WM_NTXDESC(txq) * (txq)->txq_descsize)
#define WM_NEXTTX(txq, x) (((x) + 1) & WM_NTXDESC_MASK(txq))
#define WM_NEXTTXS(txq, x) (((x) + 1) & WM_TXQUEUELEN_MASK(txq))
#define WM_MAXTXDMA (2 * round_page(IP_MAXPACKET))
#define WM_TXINTERQSIZE 256
#ifndef WM_TX_PROCESS_LIMIT_DEFAULT
#define WM_TX_PROCESS_LIMIT_DEFAULT 100U
#endif
#ifndef WM_TX_INTR_PROCESS_LIMIT_DEFAULT
#define WM_TX_INTR_PROCESS_LIMIT_DEFAULT 0U
#endif
#define WM_NRXDESC 256U
#define WM_NRXDESC_MASK (WM_NRXDESC - 1)
#define WM_NEXTRX(x) (((x) + 1) & WM_NRXDESC_MASK)
#define WM_PREVRX(x) (((x) - 1) & WM_NRXDESC_MASK)
#ifndef WM_RX_PROCESS_LIMIT_DEFAULT
#define WM_RX_PROCESS_LIMIT_DEFAULT 100U
#endif
#ifndef WM_RX_INTR_PROCESS_LIMIT_DEFAULT
#define WM_RX_INTR_PROCESS_LIMIT_DEFAULT 0U
#endif
typedef union txdescs {
wiseman_txdesc_t sctxu_txdescs[WM_NTXDESC_82544];
nq_txdesc_t sctxu_nq_txdescs[WM_NTXDESC_82544];
} txdescs_t;
typedef union rxdescs {
wiseman_rxdesc_t sctxu_rxdescs[WM_NRXDESC];
ext_rxdesc_t sctxu_ext_rxdescs[WM_NRXDESC];
nq_rxdesc_t sctxu_nq_rxdescs[WM_NRXDESC];
} rxdescs_t;
#define WM_CDTXOFF(txq, x) ((txq)->txq_descsize * (x))
#define WM_CDRXOFF(rxq, x) ((rxq)->rxq_descsize * (x))
struct wm_txsoft {
struct mbuf *txs_mbuf;
bus_dmamap_t txs_dmamap;
int txs_firstdesc;
int txs_lastdesc;
int txs_ndesc;
};
struct wm_rxsoft {
struct mbuf *rxs_mbuf;
bus_dmamap_t rxs_dmamap;
};
#define WM_LINKUP_TIMEOUT 50
static uint16_t swfwphysem[] = {
SWFW_PHY0_SM,
SWFW_PHY1_SM,
SWFW_PHY2_SM,
SWFW_PHY3_SM
};
static const uint32_t wm_82580_rxpbs_table[] = {
36, 72, 144, 1, 2, 4, 8, 16, 35, 70, 140
};
struct wm_softc;
#if defined(_LP64) && !defined(WM_DISABLE_EVENT_COUNTERS)
#if !defined(WM_EVENT_COUNTERS)
#define WM_EVENT_COUNTERS 1
#endif
#endif
#ifdef WM_EVENT_COUNTERS
#define WM_Q_EVCNT_DEFINE(qname, evname) \
char qname##_##evname##_evcnt_name[sizeof("qname##XX##evname")]; \
struct evcnt qname##_ev_##evname
#define WM_Q_EVCNT_ATTACH(qname, evname, q, qnum, xname, evtype) \
do { \
snprintf((q)->qname##_##evname##_evcnt_name, \
sizeof((q)->qname##_##evname##_evcnt_name), \
"%s%02d%s", #qname, (qnum), #evname); \
evcnt_attach_dynamic(&(q)->qname##_ev_##evname, \
(evtype), NULL, (xname), \
(q)->qname##_##evname##_evcnt_name); \
} while (0)
#define WM_Q_MISC_EVCNT_ATTACH(qname, evname, q, qnum, xname) \
WM_Q_EVCNT_ATTACH(qname, evname, q, qnum, xname, EVCNT_TYPE_MISC)
#define WM_Q_INTR_EVCNT_ATTACH(qname, evname, q, qnum, xname) \
WM_Q_EVCNT_ATTACH(qname, evname, q, qnum, xname, EVCNT_TYPE_INTR)
#define WM_Q_EVCNT_DETACH(qname, evname, q, qnum) \
evcnt_detach(&(q)->qname##_ev_##evname)
#endif
struct wm_txqueue {
kmutex_t *txq_lock;
struct wm_softc *txq_sc;
int txq_num;
struct wm_txsoft txq_soft[WM_TXQUEUELEN_MAX];
int txq_ndesc;
size_t txq_descsize;
txdescs_t *txq_descs_u;
bus_dmamap_t txq_desc_dmamap;
bus_dma_segment_t txq_desc_seg;
int txq_desc_rseg;
#define txq_desc_dma txq_desc_dmamap->dm_segs[0].ds_addr
#define txq_descs txq_descs_u->sctxu_txdescs
#define txq_nq_descs txq_descs_u->sctxu_nq_txdescs
bus_addr_t txq_tdt_reg;
int txq_free;
int txq_next;
int txq_sfree;
int txq_snext;
int txq_sdirty;
int txq_fifo_size;
int txq_fifo_head;
uint32_t txq_fifo_addr;
int txq_fifo_stall;
pcq_t *txq_interq;
int txq_flags;
#define WM_TXQ_NO_SPACE 0x1
#define WM_TXQ_LINKDOWN_DISCARD 0x2
bool txq_stopping;
bool txq_sending;
time_t txq_lastsent;
uint32_t txq_last_hw_cmd;
uint8_t txq_last_hw_fields;
uint16_t txq_last_hw_ipcs;
uint16_t txq_last_hw_tucs;
uint32_t txq_packets;
uint32_t txq_bytes;
#ifdef WM_EVENT_COUNTERS
WM_Q_EVCNT_DEFINE(txq, txsstall);
WM_Q_EVCNT_DEFINE(txq, txdstall);
WM_Q_EVCNT_DEFINE(txq, fifo_stall);
WM_Q_EVCNT_DEFINE(txq, txdw);
WM_Q_EVCNT_DEFINE(txq, txqe);
WM_Q_EVCNT_DEFINE(txq, ipsum);
WM_Q_EVCNT_DEFINE(txq, tusum);
WM_Q_EVCNT_DEFINE(txq, tusum6);
WM_Q_EVCNT_DEFINE(txq, tso);
WM_Q_EVCNT_DEFINE(txq, tso6);
WM_Q_EVCNT_DEFINE(txq, tsopain);
WM_Q_EVCNT_DEFINE(txq, pcqdrop);
WM_Q_EVCNT_DEFINE(txq, descdrop);
WM_Q_EVCNT_DEFINE(txq, toomanyseg);
WM_Q_EVCNT_DEFINE(txq, defrag);
WM_Q_EVCNT_DEFINE(txq, underrun);
WM_Q_EVCNT_DEFINE(txq, skipcontext);
char txq_txseg_evcnt_names[WM_NTXSEGS][sizeof("txqXXtxsegXXX")];
struct evcnt txq_ev_txseg[WM_NTXSEGS];
#endif
};
struct wm_rxqueue {
kmutex_t *rxq_lock;
struct wm_softc *rxq_sc;
struct wm_rxsoft rxq_soft[WM_NRXDESC];
int rxq_ndesc;
size_t rxq_descsize;
rxdescs_t *rxq_descs_u;
bus_dmamap_t rxq_desc_dmamap;
bus_dma_segment_t rxq_desc_seg;
int rxq_desc_rseg;
#define rxq_desc_dma rxq_desc_dmamap->dm_segs[0].ds_addr
#define rxq_descs rxq_descs_u->sctxu_rxdescs
#define rxq_ext_descs rxq_descs_u->sctxu_ext_rxdescs
#define rxq_nq_descs rxq_descs_u->sctxu_nq_rxdescs
bus_addr_t rxq_rdt_reg;
int rxq_ptr;
int rxq_discard;
int rxq_len;
struct mbuf *rxq_head;
struct mbuf *rxq_tail;
struct mbuf **rxq_tailp;
bool rxq_stopping;
uint32_t rxq_packets;
uint32_t rxq_bytes;
#ifdef WM_EVENT_COUNTERS
WM_Q_EVCNT_DEFINE(rxq, intr);
WM_Q_EVCNT_DEFINE(rxq, defer);
WM_Q_EVCNT_DEFINE(rxq, ipsum);
WM_Q_EVCNT_DEFINE(rxq, tusum);
WM_Q_EVCNT_DEFINE(rxq, qdrop);
#endif
};
struct wm_queue {
int wmq_id;
int wmq_intr_idx;
uint32_t wmq_itr;
bool wmq_set_itr;
struct wm_txqueue wmq_txq;
struct wm_rxqueue wmq_rxq;
char sysctlname[32];
bool wmq_txrx_use_workqueue;
bool wmq_wq_enqueued;
struct work wmq_cookie;
void *wmq_si;
};
struct wm_phyop {
int (*acquire)(struct wm_softc *) __attribute__((warn_unused_result));
void (*release)(struct wm_softc *);
int (*readreg_locked)(device_t, int, int, uint16_t *);
int (*writereg_locked)(device_t, int, int, uint16_t);
int reset_delay_us;
bool no_errprint;
};
struct wm_nvmop {
int (*acquire)(struct wm_softc *) __attribute__((warn_unused_result));
void (*release)(struct wm_softc *);
int (*read)(struct wm_softc *, int, int, uint16_t *);
};
struct wm_softc {
device_t sc_dev;
bus_space_tag_t sc_st;
bus_space_handle_t sc_sh;
bus_size_t sc_ss;
bus_space_tag_t sc_iot;
bus_space_handle_t sc_ioh;
bus_size_t sc_ios;
bus_space_tag_t sc_flasht;
bus_space_handle_t sc_flashh;
bus_size_t sc_flashs;
off_t sc_flashreg_offset;
bus_dma_tag_t sc_dmat;
struct ethercom sc_ethercom;
struct mii_data sc_mii;
pci_chipset_tag_t sc_pc;
pcitag_t sc_pcitag;
int sc_bus_speed;
int sc_pcixe_capoff;
uint16_t sc_pcidevid;
wm_chip_type sc_type;
int sc_rev;
wm_phy_type sc_phytype;
uint8_t sc_sfptype;
uint32_t sc_mediatype;
#define WM_MEDIATYPE_UNKNOWN 0x00
#define WM_MEDIATYPE_FIBER 0x01
#define WM_MEDIATYPE_COPPER 0x02
#define WM_MEDIATYPE_SERDES 0x03
int sc_funcid;
u_int sc_flags;
u_short sc_if_flags;
int sc_ec_capenable;
int sc_flowflags;
uint16_t eee_lp_ability;
int sc_align_tweak;
void *sc_ihs[WM_MAX_NINTR];
pci_intr_handle_t *sc_intrs;
int sc_nintrs;
int sc_link_intr_idx;
callout_t sc_tick_ch;
bool sc_core_stopping;
int sc_nvm_ver_major;
int sc_nvm_ver_minor;
int sc_nvm_ver_build;
int sc_nvm_addrbits;
unsigned int sc_nvm_wordsize;
int sc_ich8_flash_base;
int sc_ich8_flash_bank_size;
int sc_nvm_k1_enabled;
int sc_nqueues;
struct wm_queue *sc_queue;
u_int sc_tx_process_limit;
u_int sc_tx_intr_process_limit;
u_int sc_rx_process_limit;
u_int sc_rx_intr_process_limit;
struct workqueue *sc_queue_wq;
bool sc_txrx_use_workqueue;
int sc_affinity_offset;
#ifdef WM_EVENT_COUNTERS
struct evcnt sc_ev_linkintr;
struct evcnt sc_ev_rx_xon;
struct evcnt sc_ev_tx_xon;
struct evcnt sc_ev_rx_xoff;
struct evcnt sc_ev_tx_xoff;
struct evcnt sc_ev_rx_macctl;
struct evcnt sc_ev_crcerrs;
struct evcnt sc_ev_algnerrc;
struct evcnt sc_ev_symerrc;
struct evcnt sc_ev_rxerrc;
struct evcnt sc_ev_mpc;
struct evcnt sc_ev_scc;
struct evcnt sc_ev_ecol;
struct evcnt sc_ev_mcc;
struct evcnt sc_ev_latecol;
struct evcnt sc_ev_colc;
struct evcnt sc_ev_cbtmpc;
struct evcnt sc_ev_dc;
struct evcnt sc_ev_tncrs;
struct evcnt sc_ev_sec;
struct evcnt sc_ev_cexterr;
struct evcnt sc_ev_htdpmc;
struct evcnt sc_ev_rlec;
struct evcnt sc_ev_cbrdpc;
struct evcnt sc_ev_prc64;
struct evcnt sc_ev_prc127;
struct evcnt sc_ev_prc255;
struct evcnt sc_ev_prc511;
struct evcnt sc_ev_prc1023;
struct evcnt sc_ev_prc1522;
struct evcnt sc_ev_gprc;
struct evcnt sc_ev_bprc;
struct evcnt sc_ev_mprc;
struct evcnt sc_ev_gptc;
struct evcnt sc_ev_gorc;
struct evcnt sc_ev_gotc;
struct evcnt sc_ev_rnbc;
struct evcnt sc_ev_ruc;
struct evcnt sc_ev_rfc;
struct evcnt sc_ev_roc;
struct evcnt sc_ev_rjc;
struct evcnt sc_ev_mgtprc;
struct evcnt sc_ev_mgtpdc;
struct evcnt sc_ev_mgtptc;
struct evcnt sc_ev_tor;
struct evcnt sc_ev_tot;
struct evcnt sc_ev_tpr;
struct evcnt sc_ev_tpt;
struct evcnt sc_ev_ptc64;
struct evcnt sc_ev_ptc127;
struct evcnt sc_ev_ptc255;
struct evcnt sc_ev_ptc511;
struct evcnt sc_ev_ptc1023;
struct evcnt sc_ev_ptc1522;
struct evcnt sc_ev_mptc;
struct evcnt sc_ev_bptc;
struct evcnt sc_ev_tsctc;
struct evcnt sc_ev_tsctfc;
struct evcnt sc_ev_cbrmpc;
struct evcnt sc_ev_iac;
struct evcnt sc_ev_icrxptc;
struct evcnt sc_ev_icrxatc;
struct evcnt sc_ev_ictxptc;
struct evcnt sc_ev_ictxatc;
struct evcnt sc_ev_ictxqec;
struct evcnt sc_ev_ictxqmtc;
struct evcnt sc_ev_rxdmtc;
struct evcnt sc_ev_icrxoc;
struct evcnt sc_ev_rpthc;
struct evcnt sc_ev_debug1;
struct evcnt sc_ev_debug2;
struct evcnt sc_ev_debug3;
struct evcnt sc_ev_hgptc;
struct evcnt sc_ev_debug4;
struct evcnt sc_ev_htcbdpc;
struct evcnt sc_ev_hgorc;
struct evcnt sc_ev_hgotc;
struct evcnt sc_ev_lenerrs;
struct evcnt sc_ev_tlpic;
struct evcnt sc_ev_rlpic;
struct evcnt sc_ev_b2ogprc;
struct evcnt sc_ev_o2bspc;
struct evcnt sc_ev_b2ospc;
struct evcnt sc_ev_o2bgptc;
struct evcnt sc_ev_scvpc;
struct evcnt sc_ev_hrmpc;
#endif
struct sysctllog *sc_sysctllog;
callout_t sc_txfifo_ch;
uint32_t sc_ctrl;
#if 0
uint32_t sc_ctrl_ext;
#endif
uint32_t sc_icr;
uint32_t sc_itr_init;
uint32_t sc_tctl;
uint32_t sc_rctl;
uint32_t sc_txcw;
uint32_t sc_tipg;
uint32_t sc_fcrtl;
uint32_t sc_pba;
int sc_tbi_linkup;
int sc_tbi_serdes_anegticks;
int sc_tbi_serdes_ticks;
struct timeval sc_linkup_delay_time;
int sc_mchash_type;
krndsource_t rnd_source;
struct if_percpuq *sc_ipq;
kmutex_t *sc_core_lock;
kmutex_t *sc_ich_phymtx;
kmutex_t *sc_ich_nvmmtx;
struct wm_phyop phy;
struct wm_nvmop nvm;
struct workqueue *sc_reset_wq;
struct work sc_reset_work;
volatile unsigned sc_reset_pending;
bool sc_dying;
#ifdef WM_DEBUG
uint32_t sc_debug;
bool sc_trigger_reset;
#endif
};
#define WM_RXCHAIN_RESET(rxq) \
do { \
(rxq)->rxq_tailp = &(rxq)->rxq_head; \
*(rxq)->rxq_tailp = NULL; \
(rxq)->rxq_len = 0; \
} while (0)
#define WM_RXCHAIN_LINK(rxq, m) \
do { \
*(rxq)->rxq_tailp = (rxq)->rxq_tail = (m); \
(rxq)->rxq_tailp = &(m)->m_next; \
} while (0)
#ifdef WM_EVENT_COUNTERS
#ifdef __HAVE_ATOMIC64_LOADSTORE
#define WM_EVCNT_INCR(ev) \
atomic_store_relaxed(&((ev)->ev_count), \
atomic_load_relaxed(&(ev)->ev_count) + 1)
#define WM_EVCNT_STORE(ev, val) \
atomic_store_relaxed(&((ev)->ev_count), (val))
#define WM_EVCNT_ADD(ev, val) \
atomic_store_relaxed(&((ev)->ev_count), \
atomic_load_relaxed(&(ev)->ev_count) + (val))
#else
#define WM_EVCNT_INCR(ev) \
((ev)->ev_count)++
#define WM_EVCNT_STORE(ev, val) \
((ev)->ev_count = (val))
#define WM_EVCNT_ADD(ev, val) \
(ev)->ev_count += (val)
#endif
#define WM_Q_EVCNT_INCR(qname, evname) \
WM_EVCNT_INCR(&(qname)->qname##_ev_##evname)
#define WM_Q_EVCNT_STORE(qname, evname, val) \
WM_EVCNT_STORE(&(qname)->qname##_ev_##evname, (val))
#define WM_Q_EVCNT_ADD(qname, evname, val) \
WM_EVCNT_ADD(&(qname)->qname##_ev_##evname, (val))
#else
#define WM_EVCNT_INCR(ev) __nothing
#define WM_EVCNT_STORE(ev, val) __nothing
#define WM_EVCNT_ADD(ev, val) __nothing
#define WM_Q_EVCNT_INCR(qname, evname) __nothing
#define WM_Q_EVCNT_STORE(qname, evname, val) __nothing
#define WM_Q_EVCNT_ADD(qname, evname, val) __nothing
#endif
#define CSR_READ(sc, reg) \
bus_space_read_4((sc)->sc_st, (sc)->sc_sh, (reg))
#define CSR_WRITE(sc, reg, val) \
bus_space_write_4((sc)->sc_st, (sc)->sc_sh, (reg), (val))
#define CSR_WRITE_FLUSH(sc) \
(void)CSR_READ((sc), WMREG_STATUS)
#define ICH8_FLASH_READ32(sc, reg) \
bus_space_read_4((sc)->sc_flasht, (sc)->sc_flashh, \
(reg) + sc->sc_flashreg_offset)
#define ICH8_FLASH_WRITE32(sc, reg, data) \
bus_space_write_4((sc)->sc_flasht, (sc)->sc_flashh, \
(reg) + sc->sc_flashreg_offset, (data))
#define ICH8_FLASH_READ16(sc, reg) \
bus_space_read_2((sc)->sc_flasht, (sc)->sc_flashh, \
(reg) + sc->sc_flashreg_offset)
#define ICH8_FLASH_WRITE16(sc, reg, data) \
bus_space_write_2((sc)->sc_flasht, (sc)->sc_flashh, \
(reg) + sc->sc_flashreg_offset, (data))
#define WM_CDTXADDR(txq, x) ((txq)->txq_desc_dma + WM_CDTXOFF((txq), (x)))
#define WM_CDRXADDR(rxq, x) ((rxq)->rxq_desc_dma + WM_CDRXOFF((rxq), (x)))
#define WM_CDTXADDR_LO(txq, x) (WM_CDTXADDR((txq), (x)) & 0xffffffffU)
#define WM_CDTXADDR_HI(txq, x) \
(sizeof(bus_addr_t) == 8 ? \
(uint64_t)WM_CDTXADDR((txq), (x)) >> 32 : 0)
#define WM_CDRXADDR_LO(rxq, x) (WM_CDRXADDR((rxq), (x)) & 0xffffffffU)
#define WM_CDRXADDR_HI(rxq, x) \
(sizeof(bus_addr_t) == 8 ? \
(uint64_t)WM_CDRXADDR((rxq), (x)) >> 32 : 0)
#if 0
static inline uint32_t wm_io_read(struct wm_softc *, int);
#endif
static inline void wm_io_write(struct wm_softc *, int, uint32_t);
static inline void wm_82575_write_8bit_ctlr_reg(struct wm_softc *, uint32_t,
uint32_t, uint32_t);
static inline void wm_set_dma_addr(volatile wiseman_addr_t *, bus_addr_t);
static inline void wm_cdtxsync(struct wm_txqueue *, int, int, int);
static inline void wm_cdrxsync(struct wm_rxqueue *, int, int);
static inline void wm_init_rxdesc(struct wm_rxqueue *, int);
static const struct wm_product *wm_lookup(const struct pci_attach_args *);
static int wm_match(device_t, cfdata_t, void *);
static void wm_attach(device_t, device_t, void *);
static int wm_detach(device_t, int);
static bool wm_suspend(device_t, const pmf_qual_t *);
static bool wm_resume(device_t, const pmf_qual_t *);
static bool wm_watchdog(struct ifnet *);
static void wm_watchdog_txq(struct ifnet *, struct wm_txqueue *,
uint16_t *);
static void wm_watchdog_txq_locked(struct ifnet *, struct wm_txqueue *,
uint16_t *);
static void wm_tick(void *);
static int wm_ifflags_cb(struct ethercom *);
static int wm_ioctl(struct ifnet *, u_long, void *);
static uint16_t wm_check_alt_mac_addr(struct wm_softc *);
static int wm_read_mac_addr(struct wm_softc *, uint8_t *);
static void wm_set_ral(struct wm_softc *, const uint8_t *, int);
static uint32_t wm_mchash(struct wm_softc *, const uint8_t *);
static int wm_rar_count(struct wm_softc *);
static void wm_set_filter(struct wm_softc *);
static void wm_set_vlan(struct wm_softc *);
static void wm_set_pcie_completion_timeout(struct wm_softc *);
static void wm_get_auto_rd_done(struct wm_softc *);
static void wm_lan_init_done(struct wm_softc *);
static void wm_get_cfg_done(struct wm_softc *);
static int wm_phy_post_reset(struct wm_softc *);
static int wm_write_smbus_addr(struct wm_softc *);
static int wm_init_lcd_from_nvm(struct wm_softc *);
static int wm_oem_bits_config_ich8lan(struct wm_softc *, bool);
static void wm_initialize_hardware_bits(struct wm_softc *);
static uint32_t wm_rxpbs_adjust_82580(uint32_t);
static int wm_reset_phy(struct wm_softc *);
static void wm_flush_desc_rings(struct wm_softc *);
static void wm_reset(struct wm_softc *);
static int wm_add_rxbuf(struct wm_rxqueue *, int);
static void wm_rxdrain(struct wm_rxqueue *);
static void wm_init_rss(struct wm_softc *);
static void wm_adjust_qnum(struct wm_softc *, int);
static inline bool wm_is_using_msix(struct wm_softc *);
static inline bool wm_is_using_multiqueue(struct wm_softc *);
static int wm_softint_establish_queue(struct wm_softc *, int, int);
static int wm_setup_legacy(struct wm_softc *);
static int wm_setup_msix(struct wm_softc *);
static int wm_init(struct ifnet *);
static int wm_init_locked(struct ifnet *);
static void wm_init_sysctls(struct wm_softc *);
static void wm_update_stats(struct wm_softc *);
static void wm_clear_evcnt(struct wm_softc *);
static void wm_unset_stopping_flags(struct wm_softc *);
static void wm_set_stopping_flags(struct wm_softc *);
static void wm_stop(struct ifnet *, int);
static void wm_stop_locked(struct ifnet *, bool, bool);
static void wm_dump_mbuf_chain(struct wm_softc *, struct mbuf *);
static void wm_82547_txfifo_stall(void *);
static int wm_82547_txfifo_bugchk(struct wm_softc *, struct mbuf *);
static void wm_itrs_writereg(struct wm_softc *, struct wm_queue *);
static int wm_alloc_tx_descs(struct wm_softc *, struct wm_txqueue *);
static void wm_free_tx_descs(struct wm_softc *, struct wm_txqueue *);
static void wm_init_tx_descs(struct wm_softc *, struct wm_txqueue *);
static void wm_init_tx_regs(struct wm_softc *, struct wm_queue *,
struct wm_txqueue *);
static int wm_alloc_rx_descs(struct wm_softc *, struct wm_rxqueue *);
static void wm_free_rx_descs(struct wm_softc *, struct wm_rxqueue *);
static void wm_init_rx_regs(struct wm_softc *, struct wm_queue *,
struct wm_rxqueue *);
static int wm_alloc_tx_buffer(struct wm_softc *, struct wm_txqueue *);
static void wm_free_tx_buffer(struct wm_softc *, struct wm_txqueue *);
static void wm_init_tx_buffer(struct wm_softc *, struct wm_txqueue *);
static int wm_alloc_rx_buffer(struct wm_softc *, struct wm_rxqueue *);
static void wm_free_rx_buffer(struct wm_softc *, struct wm_rxqueue *);
static int wm_init_rx_buffer(struct wm_softc *, struct wm_rxqueue *);
static void wm_init_tx_queue(struct wm_softc *, struct wm_queue *,
struct wm_txqueue *);
static int wm_init_rx_queue(struct wm_softc *, struct wm_queue *,
struct wm_rxqueue *);
static int wm_alloc_txrx_queues(struct wm_softc *);
static void wm_free_txrx_queues(struct wm_softc *);
static int wm_init_txrx_queues(struct wm_softc *);
static void wm_tx_offload(struct wm_softc *, struct wm_txqueue *,
struct wm_txsoft *, uint32_t *, uint8_t *);
static inline int wm_select_txqueue(struct ifnet *, struct mbuf *);
static void wm_start(struct ifnet *);
static void wm_start_locked(struct ifnet *);
static int wm_transmit(struct ifnet *, struct mbuf *);
static void wm_transmit_locked(struct ifnet *, struct wm_txqueue *);
static void wm_send_common_locked(struct ifnet *, struct wm_txqueue *,
bool);
static void wm_nq_tx_offload(struct wm_softc *, struct wm_txqueue *,
struct wm_txsoft *, uint32_t *, uint32_t *, bool *);
static void wm_nq_start(struct ifnet *);
static void wm_nq_start_locked(struct ifnet *);
static int wm_nq_transmit(struct ifnet *, struct mbuf *);
static void wm_nq_transmit_locked(struct ifnet *, struct wm_txqueue *);
static void wm_nq_send_common_locked(struct ifnet *, struct wm_txqueue *,
bool);
static void wm_deferred_start_locked(struct wm_txqueue *);
static void wm_handle_queue(void *);
static void wm_handle_queue_work(struct work *, void *);
static void wm_handle_reset_work(struct work *, void *);
static bool wm_txeof(struct wm_txqueue *, u_int);
static bool wm_rxeof(struct wm_rxqueue *, u_int);
static void wm_linkintr_gmii(struct wm_softc *, uint32_t);
static void wm_linkintr_tbi(struct wm_softc *, uint32_t);
static void wm_linkintr_serdes(struct wm_softc *, uint32_t);
static void wm_linkintr(struct wm_softc *, uint32_t);
static int wm_intr_legacy(void *);
static inline void wm_txrxintr_disable(struct wm_queue *);
static inline void wm_txrxintr_enable(struct wm_queue *);
static void wm_itrs_calculate(struct wm_softc *, struct wm_queue *);
static int wm_txrxintr_msix(void *);
static int wm_linkintr_msix(void *);
static void wm_tbi_serdes_set_linkled(struct wm_softc *);
static void wm_gmii_reset(struct wm_softc *);
static void wm_gmii_setup_phytype(struct wm_softc *, uint32_t, uint16_t);
static int wm_get_phy_id_82575(struct wm_softc *);
static void wm_gmii_mediainit(struct wm_softc *, pci_product_id_t);
static int wm_gmii_mediachange(struct ifnet *);
static void wm_gmii_mediastatus(struct ifnet *, struct ifmediareq *);
static void wm_i82543_mii_sendbits(struct wm_softc *, uint32_t, int);
static uint16_t wm_i82543_mii_recvbits(struct wm_softc *);
static int wm_gmii_i82543_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_i82543_writereg(device_t, int, int, uint16_t);
static int wm_gmii_mdic_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_mdic_writereg(device_t, int, int, uint16_t);
static int wm_gmii_i82544_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_i82544_readreg_locked(device_t, int, int, uint16_t *);
static int wm_gmii_i82544_writereg(device_t, int, int, uint16_t);
static int wm_gmii_i82544_writereg_locked(device_t, int, int, uint16_t);
static int wm_gmii_i80003_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_i80003_writereg(device_t, int, int, uint16_t);
static int wm_gmii_bm_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_bm_writereg(device_t, int, int, uint16_t);
static int wm_enable_phy_wakeup_reg_access_bm(device_t, uint16_t *);
static int wm_disable_phy_wakeup_reg_access_bm(device_t, uint16_t *);
static int wm_access_phy_wakeup_reg_bm(device_t, int, int16_t *, int,
bool);
static int wm_gmii_hv_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_hv_readreg_locked(device_t, int, int, uint16_t *);
static int wm_gmii_hv_writereg(device_t, int, int, uint16_t);
static int wm_gmii_hv_writereg_locked(device_t, int, int, uint16_t);
static int wm_gmii_82580_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_82580_writereg(device_t, int, int, uint16_t);
static int wm_gmii_gs40g_readreg(device_t, int, int, uint16_t *);
static int wm_gmii_gs40g_writereg(device_t, int, int, uint16_t);
static void wm_gmii_statchg(struct ifnet *);
static int wm_kmrn_readreg(struct wm_softc *, int, uint16_t *);
static int wm_kmrn_readreg_locked(struct wm_softc *, int, uint16_t *);
static int wm_kmrn_writereg(struct wm_softc *, int, uint16_t);
static int wm_kmrn_writereg_locked(struct wm_softc *, int, uint16_t);
static int wm_access_emi_reg_locked(device_t, int, uint16_t *, bool);
static int wm_read_emi_reg_locked(device_t, int, uint16_t *);
static int wm_write_emi_reg_locked(device_t, int, uint16_t);
static bool wm_sgmii_uses_mdio(struct wm_softc *);
static void wm_sgmii_sfp_preconfig(struct wm_softc *);
static int wm_sgmii_readreg(device_t, int, int, uint16_t *);
static int wm_sgmii_readreg_locked(device_t, int, int, uint16_t *);
static int wm_sgmii_writereg(device_t, int, int, uint16_t);
static int wm_sgmii_writereg_locked(device_t, int, int, uint16_t);
static bool wm_tbi_havesignal(struct wm_softc *, uint32_t);
static void wm_tbi_mediainit(struct wm_softc *);
static int wm_tbi_mediachange(struct ifnet *);
static void wm_tbi_mediastatus(struct ifnet *, struct ifmediareq *);
static int wm_check_for_link(struct wm_softc *);
static void wm_tbi_tick(struct wm_softc *);
static void wm_serdes_power_up_link_82575(struct wm_softc *);
static int wm_serdes_mediachange(struct ifnet *);
static void wm_serdes_mediastatus(struct ifnet *, struct ifmediareq *);
static void wm_serdes_tick(struct wm_softc *);
static int wm_sfp_read_data_byte(struct wm_softc *, uint16_t, uint8_t *);
static uint32_t wm_sfp_get_media_type(struct wm_softc *);
static void wm_eeprom_sendbits(struct wm_softc *, uint32_t, int);
static void wm_eeprom_recvbits(struct wm_softc *, uint32_t *, int);
static int wm_nvm_set_addrbits_size_eecd(struct wm_softc *);
static int wm_nvm_read_uwire(struct wm_softc *, int, int, uint16_t *);
static int wm_nvm_ready_spi(struct wm_softc *);
static int wm_nvm_read_spi(struct wm_softc *, int, int, uint16_t *);
static int wm_poll_eerd_eewr_done(struct wm_softc *, int);
static int wm_nvm_read_eerd(struct wm_softc *, int, int, uint16_t *);
static int wm_nvm_valid_bank_detect_ich8lan(struct wm_softc *,
unsigned int *);
static int32_t wm_ich8_cycle_init(struct wm_softc *);
static int32_t wm_ich8_flash_cycle(struct wm_softc *, uint32_t);
static int32_t wm_read_ich8_data(struct wm_softc *, uint32_t, uint32_t,
uint32_t *);
static int32_t wm_read_ich8_byte(struct wm_softc *, uint32_t, uint8_t *);
static int32_t wm_read_ich8_word(struct wm_softc *, uint32_t, uint16_t *);
static int32_t wm_read_ich8_dword(struct wm_softc *, uint32_t, uint32_t *);
static int wm_nvm_read_ich8(struct wm_softc *, int, int, uint16_t *);
static int wm_nvm_read_spt(struct wm_softc *, int, int, uint16_t *);
static int wm_nvm_read_word_invm(struct wm_softc *, uint16_t, uint16_t *);
static int wm_nvm_read_invm(struct wm_softc *, int, int, uint16_t *);
static int wm_nvm_is_onboard_eeprom(struct wm_softc *);
static int wm_nvm_flash_presence_i210(struct wm_softc *);
static int wm_nvm_validate_checksum(struct wm_softc *);
static void wm_nvm_version_invm(struct wm_softc *);
static void wm_nvm_version(struct wm_softc *);
static int wm_nvm_read(struct wm_softc *, int, int, uint16_t *);
static int wm_get_null(struct wm_softc *);
static void wm_put_null(struct wm_softc *);
static int wm_get_eecd(struct wm_softc *);
static void wm_put_eecd(struct wm_softc *);
static int wm_get_swsm_semaphore(struct wm_softc *);
static void wm_put_swsm_semaphore(struct wm_softc *);
static int wm_get_swfw_semaphore(struct wm_softc *, uint16_t);
static void wm_put_swfw_semaphore(struct wm_softc *, uint16_t);
static int wm_get_nvm_80003(struct wm_softc *);
static void wm_put_nvm_80003(struct wm_softc *);
static int wm_get_nvm_82571(struct wm_softc *);
static void wm_put_nvm_82571(struct wm_softc *);
static int wm_get_phy_82575(struct wm_softc *);
static void wm_put_phy_82575(struct wm_softc *);
static int wm_get_swfwhw_semaphore(struct wm_softc *);
static void wm_put_swfwhw_semaphore(struct wm_softc *);
static int wm_get_swflag_ich8lan(struct wm_softc *);
static void wm_put_swflag_ich8lan(struct wm_softc *);
static int wm_get_nvm_ich8lan(struct wm_softc *);
static void wm_put_nvm_ich8lan(struct wm_softc *);
static int wm_get_hw_semaphore_82573(struct wm_softc *);
static void wm_put_hw_semaphore_82573(struct wm_softc *);
#if 0
static int wm_check_mng_mode(struct wm_softc *);
static int wm_check_mng_mode_ich8lan(struct wm_softc *);
static int wm_check_mng_mode_82574(struct wm_softc *);
static int wm_check_mng_mode_generic(struct wm_softc *);
#endif
static int wm_enable_mng_pass_thru(struct wm_softc *);
static bool wm_phy_resetisblocked(struct wm_softc *);
static void wm_get_hw_control(struct wm_softc *);
static void wm_release_hw_control(struct wm_softc *);
static void wm_gate_hw_phy_config_ich8lan(struct wm_softc *, bool);
static int wm_init_phy_workarounds_pchlan(struct wm_softc *);
static void wm_init_manageability(struct wm_softc *);
static void wm_release_manageability(struct wm_softc *);
static void wm_get_wakeup(struct wm_softc *);
static int wm_ulp_disable(struct wm_softc *);
static int wm_enable_phy_wakeup(struct wm_softc *);
static void wm_igp3_phy_powerdown_workaround_ich8lan(struct wm_softc *);
static void wm_suspend_workarounds_ich8lan(struct wm_softc *);
static int wm_resume_workarounds_pchlan(struct wm_softc *);
static void wm_enable_wakeup(struct wm_softc *);
static void wm_disable_aspm(struct wm_softc *);
static void wm_lplu_d0_disable(struct wm_softc *);
static int wm_set_eee_i350(struct wm_softc *);
static int wm_set_eee_pchlan(struct wm_softc *);
static int wm_set_eee(struct wm_softc *);
static int wm_kmrn_lock_loss_workaround_ich8lan(struct wm_softc *);
static void wm_gig_downshift_workaround_ich8lan(struct wm_softc *);
static int wm_hv_phy_workarounds_ich8lan(struct wm_softc *);
static void wm_copy_rx_addrs_to_phy_ich8lan(struct wm_softc *);
static void wm_copy_rx_addrs_to_phy_ich8lan_locked(struct wm_softc *);
static int wm_lv_jumbo_workaround_ich8lan(struct wm_softc *, bool);
static int wm_lv_phy_workarounds_ich8lan(struct wm_softc *);
static int wm_k1_workaround_lpt_lp(struct wm_softc *, bool);
static int wm_k1_gig_workaround_hv(struct wm_softc *, int);
static int wm_k1_workaround_lv(struct wm_softc *);
static int wm_link_stall_workaround_hv(struct wm_softc *);
static int wm_set_mdio_slow_mode_hv(struct wm_softc *);
static int wm_set_mdio_slow_mode_hv_locked(struct wm_softc *);
static void wm_configure_k1_ich8lan(struct wm_softc *, int);
static void wm_reset_init_script_82575(struct wm_softc *);
static void wm_reset_mdicnfg_82580(struct wm_softc *);
static bool wm_phy_is_accessible_pchlan(struct wm_softc *);
static void wm_toggle_lanphypc_pch_lpt(struct wm_softc *);
static int wm_platform_pm_pch_lpt(struct wm_softc *, bool);
static int wm_pll_workaround_i210(struct wm_softc *);
static void wm_legacy_irq_quirk_spt(struct wm_softc *);
static bool wm_phy_need_linkdown_discard(struct wm_softc *);
static void wm_set_linkdown_discard(struct wm_softc *);
static void wm_clear_linkdown_discard(struct wm_softc *);
static int wm_sysctl_tdh_handler(SYSCTLFN_PROTO);
static int wm_sysctl_tdt_handler(SYSCTLFN_PROTO);
#ifdef WM_DEBUG
static int wm_sysctl_debug(SYSCTLFN_PROTO);
#endif
CFATTACH_DECL3_NEW(wm, sizeof(struct wm_softc),
wm_match, wm_attach, wm_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
static const struct wm_product {
pci_vendor_id_t wmp_vendor;
pci_product_id_t wmp_product;
const char *wmp_name;
wm_chip_type wmp_type;
uint32_t wmp_flags;
#define WMP_F_UNKNOWN WM_MEDIATYPE_UNKNOWN
#define WMP_F_FIBER WM_MEDIATYPE_FIBER
#define WMP_F_COPPER WM_MEDIATYPE_COPPER
#define WMP_F_SERDES WM_MEDIATYPE_SERDES
#define WMP_MEDIATYPE(x) ((x) & 0x03)
} wm_products[] = {
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82542,
"Intel i82542 1000BASE-X Ethernet",
WM_T_82542_2_1, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82543GC_FIBER,
"Intel i82543GC 1000BASE-X Ethernet",
WM_T_82543, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82543GC_COPPER,
"Intel i82543GC 1000BASE-T Ethernet",
WM_T_82543, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544EI_COPPER,
"Intel i82544EI 1000BASE-T Ethernet",
WM_T_82544, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544EI_FIBER,
"Intel i82544EI 1000BASE-X Ethernet",
WM_T_82544, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544GC_COPPER,
"Intel i82544GC 1000BASE-T Ethernet",
WM_T_82544, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544GC_LOM,
"Intel i82544GC (LOM) 1000BASE-T Ethernet",
WM_T_82544, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EM,
"Intel i82540EM 1000BASE-T Ethernet",
WM_T_82540, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EM_LOM,
"Intel i82540EM (LOM) 1000BASE-T Ethernet",
WM_T_82540, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP_LOM,
"Intel i82540EP 1000BASE-T Ethernet",
WM_T_82540, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP,
"Intel i82540EP 1000BASE-T Ethernet",
WM_T_82540, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP_LP,
"Intel i82540EP 1000BASE-T Ethernet",
WM_T_82540, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545EM_COPPER,
"Intel i82545EM 1000BASE-T Ethernet",
WM_T_82545, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_COPPER,
"Intel i82545GM 1000BASE-T Ethernet",
WM_T_82545_3, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_FIBER,
"Intel i82545GM 1000BASE-X Ethernet",
WM_T_82545_3, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_SERDES,
"Intel i82545GM Gigabit Ethernet (SERDES)",
WM_T_82545_3, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_COPPER,
"Intel i82546EB 1000BASE-T Ethernet",
WM_T_82546, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_QUAD,
"Intel i82546EB 1000BASE-T Ethernet",
WM_T_82546, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545EM_FIBER,
"Intel i82545EM 1000BASE-X Ethernet",
WM_T_82545, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_FIBER,
"Intel i82546EB 1000BASE-X Ethernet",
WM_T_82546, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_COPPER,
"Intel i82546GB 1000BASE-T Ethernet",
WM_T_82546_3, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_FIBER,
"Intel i82546GB 1000BASE-X Ethernet",
WM_T_82546_3, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_SERDES,
"Intel i82546GB Gigabit Ethernet (SERDES)",
WM_T_82546_3, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER,
"i82546GB quad-port Gigabit Ethernet",
WM_T_82546_3, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER_KSP3,
"i82546GB quad-port Gigabit Ethernet (KSP3)",
WM_T_82546_3, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_PCIE,
"Intel PRO/1000MT (82546GB)",
WM_T_82546_3, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541EI,
"Intel i82541EI 1000BASE-T Ethernet",
WM_T_82541, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541ER_LOM,
"Intel i82541ER (LOM) 1000BASE-T Ethernet",
WM_T_82541, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541EI_MOBILE,
"Intel i82541EI Mobile 1000BASE-T Ethernet",
WM_T_82541, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541ER,
"Intel i82541ER 1000BASE-T Ethernet",
WM_T_82541_2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541GI,
"Intel i82541GI 1000BASE-T Ethernet",
WM_T_82541_2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541GI_MOBILE,
"Intel i82541GI Mobile 1000BASE-T Ethernet",
WM_T_82541_2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541PI,
"Intel i82541PI 1000BASE-T Ethernet",
WM_T_82541_2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547EI,
"Intel i82547EI 1000BASE-T Ethernet",
WM_T_82547, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547EI_MOBILE,
"Intel i82547EI Mobile 1000BASE-T Ethernet",
WM_T_82547, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547GI,
"Intel i82547GI 1000BASE-T Ethernet",
WM_T_82547_2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_COPPER,
"Intel PRO/1000 PT (82571EB)",
WM_T_82571, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_FIBER,
"Intel PRO/1000 PF (82571EB)",
WM_T_82571, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_SERDES,
"Intel PRO/1000 PB (82571EB)",
WM_T_82571, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_COPPER,
"Intel PRO/1000 QT (82571EB)",
WM_T_82571, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571GB_QUAD_COPPER,
"Intel PRO/1000 PT Quad Port Server Adapter",
WM_T_82571, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571PT_QUAD_COPPER,
"Intel Gigabit PT Quad Port Server ExpressModule",
WM_T_82571, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_DUAL_SERDES,
"Intel 82571EB Dual Gigabit Ethernet (SERDES)",
WM_T_82571, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_SERDES,
"Intel 82571EB Quad Gigabit Ethernet (SERDES)",
WM_T_82571, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_FIBER,
"Intel 82571EB Quad 1000baseX Ethernet",
WM_T_82571, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_COPPER,
"Intel i82572EI 1000baseT Ethernet",
WM_T_82572, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_FIBER,
"Intel i82572EI 1000baseX Ethernet",
WM_T_82572, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_SERDES,
"Intel i82572EI Gigabit Ethernet (SERDES)",
WM_T_82572, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI,
"Intel i82572EI 1000baseT Ethernet",
WM_T_82572, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573E,
"Intel i82573E",
WM_T_82573, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573E_IAMT,
"Intel i82573E IAMT",
WM_T_82573, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573L,
"Intel i82573L Gigabit Ethernet",
WM_T_82573, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82574L,
"Intel i82574L",
WM_T_82574, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82574LA,
"Intel i82574L",
WM_T_82574, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82583V,
"Intel i82583V",
WM_T_82583, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_CPR_DPT,
"i80003 dual 1000baseT Ethernet",
WM_T_80003, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_FIB_DPT,
"i80003 dual 1000baseX Ethernet",
WM_T_80003, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_SDS_DPT,
"Intel i80003ES2 dual Gigabit Ethernet (SERDES)",
WM_T_80003, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_CPR_SPT,
"Intel i80003 1000baseT Ethernet",
WM_T_80003, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_SDS_SPT,
"Intel i80003 Gigabit Ethernet (SERDES)",
WM_T_80003, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_M_AMT,
"Intel i82801H (M_AMT) LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_AMT,
"Intel i82801H (AMT) LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_LAN,
"Intel i82801H LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_LAN,
"Intel i82801H (IFE) 10/100 LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_M_LAN,
"Intel i82801H (M) LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_GT,
"Intel i82801H IFE (GT) 10/100 LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_G,
"Intel i82801H IFE (G) 10/100 LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_82567V_3,
"82567V-3 LAN Controller",
WM_T_ICH8, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_AMT,
"82801I (AMT) LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE,
"82801I 10/100 LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE_G,
"82801I (G) 10/100 LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE_GT,
"82801I (GT) 10/100 LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_C,
"82801I (C) LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_M,
"82801I mobile LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_M_V,
"82801I mobile (V) LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_M_AMT,
"82801I mobile (AMT) LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_BM,
"82567LM-4 LAN Controller",
WM_T_ICH9, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_LM,
"82567LM-2 LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_LF,
"82567LF-2 LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_LM,
"82567LM-3 LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_LF,
"82567LF-3 LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_V,
"82567V-2 LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_V,
"82567V-3? LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_HANKSVILLE,
"HANKSVILLE LAN Controller",
WM_T_ICH10, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_M_LM,
"PCH LAN (82577LM) Controller",
WM_T_PCH, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_M_LC,
"PCH LAN (82577LC) Controller",
WM_T_PCH, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_D_DM,
"PCH LAN (82578DM) Controller",
WM_T_PCH, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_D_DC,
"PCH LAN (82578DC) Controller",
WM_T_PCH, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH2_LV_LM,
"PCH2 LAN (82579LM) Controller",
WM_T_PCH2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH2_LV_V,
"PCH2 LAN (82579V) Controller",
WM_T_PCH2, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575EB_COPPER,
"82575EB dual-1000baseT Ethernet",
WM_T_82575, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575EB_FIBER_SERDES,
"82575EB dual-1000baseX Ethernet (SERDES)",
WM_T_82575, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575GB_QUAD_COPPER,
"82575GB quad-1000baseT Ethernet",
WM_T_82575, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575GB_QUAD_COPPER_PM,
"82575GB quad-1000baseT Ethernet (PM)",
WM_T_82575, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_COPPER,
"82576 1000BaseT Ethernet",
WM_T_82576, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_FIBER,
"82576 1000BaseX Ethernet",
WM_T_82576, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_SERDES,
"82576 gigabit Ethernet (SERDES)",
WM_T_82576, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_QUAD_COPPER,
"82576 quad-1000BaseT Ethernet",
WM_T_82576, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_QUAD_COPPER_ET2,
"82576 Gigabit ET2 Quad Port Server Adapter",
WM_T_82576, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_NS,
"82576 gigabit Ethernet",
WM_T_82576, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_NS_SERDES,
"82576 gigabit Ethernet (SERDES)",
WM_T_82576, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_SERDES_QUAD,
"82576 quad-gigabit Ethernet (SERDES)",
WM_T_82576, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_COPPER,
"82580 1000BaseT Ethernet",
WM_T_82580, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_FIBER,
"82580 1000BaseX Ethernet",
WM_T_82580, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_SERDES,
"82580 1000BaseT Ethernet (SERDES)",
WM_T_82580, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_SGMII,
"82580 gigabit Ethernet (SGMII)",
WM_T_82580, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_COPPER_DUAL,
"82580 dual-1000BaseT Ethernet",
WM_T_82580, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_QUAD_FIBER,
"82580 quad-1000BaseX Ethernet",
WM_T_82580, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SGMII,
"DH89XXCC Gigabit Ethernet (SGMII)",
WM_T_82580, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SERDES,
"DH89XXCC Gigabit Ethernet (SERDES)",
WM_T_82580, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_BPLANE,
"DH89XXCC 1000BASE-KX Ethernet",
WM_T_82580, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SFP,
"DH89XXCC Gigabit Ethernet (SFP)",
WM_T_82580, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_COPPER,
"I350 Gigabit Network Connection",
WM_T_I350, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_FIBER,
"I350 Gigabit Fiber Network Connection",
WM_T_I350, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_SERDES,
"I350 Gigabit Backplane Connection",
WM_T_I350, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_DA4,
"I350 Quad Port Gigabit Ethernet",
WM_T_I350, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_SGMII,
"I350 Gigabit Connection",
WM_T_I350, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_1000KX,
"I354 Gigabit Ethernet (KX)",
WM_T_I354, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_SGMII,
"I354 Gigabit Ethernet (SGMII)",
WM_T_I354, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_25GBE,
"I354 Gigabit Ethernet (2.5G)",
WM_T_I354, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_T1,
"I210-T1 Ethernet Server Adapter",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_OEM1,
"I210 Ethernet (Copper OEM)",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_IT,
"I210 Ethernet (Copper IT)",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_WOF,
"I210 Ethernet (Copper, FLASH less)",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_FIBER,
"I210 Gigabit Ethernet (Fiber)",
WM_T_I210, WMP_F_FIBER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SERDES,
"I210 Gigabit Ethernet (SERDES)",
WM_T_I210, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SERDES_WOF,
"I210 Gigabit Ethernet (SERDES, FLASH less)",
WM_T_I210, WMP_F_SERDES },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SGMII,
"I210 Gigabit Ethernet (SGMII)",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SGMII_WOF,
"I210 Gigabit Ethernet (SGMII, FLASH less)",
WM_T_I210, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I211_COPPER,
"I211 Ethernet (COPPER)",
WM_T_I211, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I217_V,
"I217 V Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I217_LM,
"I217 LM Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V,
"I218 V Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V2,
"I218 V Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V3,
"I218 V Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM,
"I218 LM Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM2,
"I218 LM Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM3,
"I218 LM Ethernet Connection",
WM_T_PCH_LPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM,
"I219 LM Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM2,
"I219 LM (2) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM3,
"I219 LM (3) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM4,
"I219 LM (4) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM5,
"I219 LM (5) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM6,
"I219 LM (6) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM7,
"I219 LM (7) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM8,
"I219 LM (8) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM9,
"I219 LM (9) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM10,
"I219 LM (10) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM11,
"I219 LM (11) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM12,
"I219 LM (12) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM13,
"I219 LM (13) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM14,
"I219 LM (14) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM15,
"I219 LM (15) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM16,
"I219 LM (16) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM17,
"I219 LM (17) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM18,
"I219 LM (18) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM19,
"I219 LM (19) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM20,
"I219 LM (20) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM21,
"I219 LM (21) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM22,
"I219 LM (22) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_LM23,
"I219 LM (23) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V,
"I219 V Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V2,
"I219 V (2) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V4,
"I219 V (4) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V5,
"I219 V (5) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V6,
"I219 V (6) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V7,
"I219 V (7) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V8,
"I219 V (8) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V9,
"I219 V (9) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V10,
"I219 V (10) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V11,
"I219 V (11) Ethernet Connection",
WM_T_PCH_CNP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V12,
"I219 V (12) Ethernet Connection",
WM_T_PCH_SPT, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V13,
"I219 V (13) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V14,
"I219 V (14) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V15,
"I219 V (15) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V16,
"I219 V (16) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V17,
"I219 V (17) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V18,
"I219 V (18) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V19,
"I219 V (19) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V20,
"I219 V (20) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V21,
"I219 V (21) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V22,
"I219 V (22) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I219_V23,
"I219 V (23) Ethernet Connection",
WM_T_PCH_TGP, WMP_F_COPPER },
{ 0, 0,
NULL,
0, 0 },
};
#if 0
static inline uint32_t
wm_io_read(struct wm_softc *sc, int reg)
{
bus_space_write_4(sc->sc_iot, sc->sc_ioh, 0, reg);
return (bus_space_read_4(sc->sc_iot, sc->sc_ioh, 4));
}
#endif
static inline void
wm_io_write(struct wm_softc *sc, int reg, uint32_t val)
{
bus_space_write_4(sc->sc_iot, sc->sc_ioh, 0, reg);
bus_space_write_4(sc->sc_iot, sc->sc_ioh, 4, val);
}
static inline void
wm_82575_write_8bit_ctlr_reg(struct wm_softc *sc, uint32_t reg, uint32_t off,
uint32_t data)
{
uint32_t regval;
int i;
regval = (data & SCTL_CTL_DATA_MASK) | (off << SCTL_CTL_ADDR_SHIFT);
CSR_WRITE(sc, reg, regval);
for (i = 0; i < SCTL_CTL_POLL_TIMEOUT; i++) {
delay(5);
if (CSR_READ(sc, reg) & SCTL_CTL_READY)
break;
}
if (i == SCTL_CTL_POLL_TIMEOUT) {
aprint_error("%s: WARNING:"
" i82575 reg 0x%08x setup did not indicate ready\n",
device_xname(sc->sc_dev), reg);
}
}
static inline void
wm_set_dma_addr(volatile wiseman_addr_t *wa, bus_addr_t v)
{
wa->wa_low = htole32(BUS_ADDR_LO32(v));
wa->wa_high = htole32(BUS_ADDR_HI32(v));
}
static inline void
wm_cdtxsync(struct wm_txqueue *txq, int start, int num, int ops)
{
struct wm_softc *sc = txq->txq_sc;
if ((start + num) > WM_NTXDESC(txq)) {
bus_dmamap_sync(sc->sc_dmat, txq->txq_desc_dmamap,
WM_CDTXOFF(txq, start), txq->txq_descsize *
(WM_NTXDESC(txq) - start), ops);
num -= (WM_NTXDESC(txq) - start);
start = 0;
}
bus_dmamap_sync(sc->sc_dmat, txq->txq_desc_dmamap,
WM_CDTXOFF(txq, start), txq->txq_descsize * num, ops);
}
static inline void
wm_cdrxsync(struct wm_rxqueue *rxq, int start, int ops)
{
struct wm_softc *sc = rxq->rxq_sc;
bus_dmamap_sync(sc->sc_dmat, rxq->rxq_desc_dmamap,
WM_CDRXOFF(rxq, start), rxq->rxq_descsize, ops);
}
static inline void
wm_init_rxdesc(struct wm_rxqueue *rxq, int start)
{
struct wm_softc *sc = rxq->rxq_sc;
struct wm_rxsoft *rxs = &rxq->rxq_soft[start];
struct mbuf *m = rxs->rxs_mbuf;
m->m_data = m->m_ext.ext_buf + sc->sc_align_tweak;
if (sc->sc_type == WM_T_82574) {
ext_rxdesc_t *rxd = &rxq->rxq_ext_descs[start];
rxd->erx_data.erxd_addr =
htole64(rxs->rxs_dmamap->dm_segs[0].ds_addr + sc->sc_align_tweak);
rxd->erx_data.erxd_dd = 0;
} else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
nq_rxdesc_t *rxd = &rxq->rxq_nq_descs[start];
rxd->nqrx_data.nrxd_paddr =
htole64(rxs->rxs_dmamap->dm_segs[0].ds_addr + sc->sc_align_tweak);
rxd->nqrx_data.nrxd_haddr = 0;
} else {
wiseman_rxdesc_t *rxd = &rxq->rxq_descs[start];
wm_set_dma_addr(&rxd->wrx_addr,
rxs->rxs_dmamap->dm_segs[0].ds_addr + sc->sc_align_tweak);
rxd->wrx_len = 0;
rxd->wrx_cksum = 0;
rxd->wrx_status = 0;
rxd->wrx_errors = 0;
rxd->wrx_special = 0;
}
wm_cdrxsync(rxq, start, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
CSR_WRITE(sc, rxq->rxq_rdt_reg, start);
}
static const struct wm_product *
wm_lookup(const struct pci_attach_args *pa)
{
const struct wm_product *wmp;
for (wmp = wm_products; wmp->wmp_name != NULL; wmp++) {
if (PCI_VENDOR(pa->pa_id) == wmp->wmp_vendor &&
PCI_PRODUCT(pa->pa_id) == wmp->wmp_product)
return wmp;
}
return NULL;
}
static int
wm_match(device_t parent, cfdata_t cf, void *aux)
{
struct pci_attach_args *pa = aux;
if (wm_lookup(pa) != NULL)
return 1;
return 0;
}
static void
wm_attach(device_t parent, device_t self, void *aux)
{
struct wm_softc *sc = device_private(self);
struct pci_attach_args *pa = aux;
prop_dictionary_t dict;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
pci_chipset_tag_t pc = pa->pa_pc;
int counts[PCI_INTR_TYPE_SIZE];
pci_intr_type_t max_type;
const char *eetype, *xname;
bus_space_tag_t memt;
bus_space_handle_t memh;
bus_size_t memsize;
int memh_valid;
int i, error;
const struct wm_product *wmp;
prop_data_t ea;
prop_number_t pn;
uint8_t enaddr[ETHER_ADDR_LEN];
char buf[256];
char wqname[MAXCOMLEN];
uint16_t cfg1, cfg2, swdpin, nvmword;
pcireg_t preg, memtype;
uint16_t eeprom_data, apme_mask;
bool force_clear_smbi;
uint32_t link_mode;
uint32_t reg;
#if defined(WM_DEBUG) && defined(WM_DEBUG_DEFAULT)
sc->sc_debug = WM_DEBUG_DEFAULT;
#endif
sc->sc_dev = self;
callout_init(&sc->sc_tick_ch, CALLOUT_MPSAFE);
callout_setfunc(&sc->sc_tick_ch, wm_tick, sc);
sc->sc_core_stopping = false;
wmp = wm_lookup(pa);
#ifdef DIAGNOSTIC
if (wmp == NULL) {
printf("\n");
panic("wm_attach: impossible");
}
#endif
sc->sc_mediatype = WMP_MEDIATYPE(wmp->wmp_flags);
sc->sc_pc = pa->pa_pc;
sc->sc_pcitag = pa->pa_tag;
if (pci_dma64_available(pa)) {
aprint_verbose(", 64-bit DMA");
sc->sc_dmat = pa->pa_dmat64;
} else {
aprint_verbose(", 32-bit DMA");
sc->sc_dmat = pa->pa_dmat;
}
sc->sc_pcidevid = PCI_PRODUCT(pa->pa_id);
sc->sc_rev = PCI_REVISION(pci_conf_read(pc, pa->pa_tag,PCI_CLASS_REG));
pci_aprint_devinfo_fancy(pa, "Ethernet controller", wmp->wmp_name, 1);
sc->sc_type = wmp->wmp_type;
sc->phy.acquire = sc->nvm.acquire = wm_get_null;
sc->phy.release = sc->nvm.release = wm_put_null;
sc->phy.reset_delay_us = (sc->sc_type >= WM_T_82571) ? 100 : 10000;
if (sc->sc_type < WM_T_82543) {
if (sc->sc_rev < 2) {
aprint_error_dev(sc->sc_dev,
"i82542 must be at least rev. 2\n");
return;
}
if (sc->sc_rev < 3)
sc->sc_type = WM_T_82542_2_0;
}
if ((sc->sc_type <= WM_T_82541_2) || (sc->sc_type == WM_T_82571)
|| (sc->sc_type == WM_T_82572))
pa->pa_flags &= ~PCI_FLAGS_MSI_OKAY;
if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
|| (sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
|| (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211))
sc->sc_flags |= WM_F_NEWQUEUE;
dict = device_properties(sc->sc_dev);
prop_dictionary_set_uint32(dict, "mactype", sc->sc_type);
memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, WM_PCI_MMBA);
switch (memtype) {
case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT:
case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_64BIT:
memh_valid = (pci_mapreg_map(pa, WM_PCI_MMBA,
memtype, 0, &memt, &memh, NULL, &memsize) == 0);
break;
default:
memh_valid = 0;
break;
}
if (memh_valid) {
sc->sc_st = memt;
sc->sc_sh = memh;
sc->sc_ss = memsize;
} else {
aprint_error_dev(sc->sc_dev,
"unable to map device registers\n");
return;
}
switch (sc->sc_type) {
case WM_T_82544:
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
for (i = PCI_MAPREG_START; i < PCI_MAPREG_END; i += 4) {
memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, i);
if (memtype == PCI_MAPREG_TYPE_IO)
break;
if (PCI_MAPREG_MEM_TYPE(memtype) ==
PCI_MAPREG_MEM_TYPE_64BIT)
i += 4;
}
if (i < PCI_MAPREG_END) {
preg = pci_conf_read(pc, pa->pa_tag, i);
if (PCI_MAPREG_MEM_ADDR(preg) == 0) {
aprint_error_dev(sc->sc_dev,
"WARNING: I/O BAR at zero.\n");
} else if (pci_mapreg_map(pa, i, PCI_MAPREG_TYPE_IO,
0, &sc->sc_iot, &sc->sc_ioh, NULL, &sc->sc_ios)
== 0) {
sc->sc_flags |= WM_F_IOH_VALID;
} else
aprint_error_dev(sc->sc_dev,
"WARNING: unable to map I/O space\n");
}
break;
default:
break;
}
preg = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
preg |= PCI_COMMAND_MASTER_ENABLE;
if (sc->sc_type < WM_T_82542_2_1)
preg &= ~PCI_COMMAND_INVALIDATE_ENABLE;
pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG, preg);
if ((error = pci_activate(pa->pa_pc, pa->pa_tag, self, NULL))
&& error != EOPNOTSUPP) {
aprint_error_dev(sc->sc_dev, "cannot activate %d\n", error);
return;
}
wm_adjust_qnum(sc, pci_msix_count(pa->pa_pc, pa->pa_tag));
if (sc->sc_nqueues > 1) {
max_type = PCI_INTR_TYPE_MSIX;
counts[PCI_INTR_TYPE_MSIX]
= (sc->sc_type == WM_T_82583) ? 0 : sc->sc_nqueues + 1;
} else {
max_type = PCI_INTR_TYPE_MSI;
counts[PCI_INTR_TYPE_MSIX] = 0;
}
counts[PCI_INTR_TYPE_MSI] = 1;
counts[PCI_INTR_TYPE_INTX] = 1;
if (wm_disable_msi != 0) {
counts[PCI_INTR_TYPE_MSI] = 0;
if (wm_disable_msix != 0) {
max_type = PCI_INTR_TYPE_INTX;
counts[PCI_INTR_TYPE_MSIX] = 0;
}
} else if (wm_disable_msix != 0) {
max_type = PCI_INTR_TYPE_MSI;
counts[PCI_INTR_TYPE_MSIX] = 0;
}
alloc_retry:
if (pci_intr_alloc(pa, &sc->sc_intrs, counts, max_type) != 0) {
aprint_error_dev(sc->sc_dev, "failed to allocate interrupt\n");
return;
}
if (pci_intr_type(pc, sc->sc_intrs[0]) == PCI_INTR_TYPE_MSIX) {
error = wm_setup_msix(sc);
if (error) {
pci_intr_release(pc, sc->sc_intrs,
counts[PCI_INTR_TYPE_MSIX]);
max_type = PCI_INTR_TYPE_MSI;
counts[PCI_INTR_TYPE_MSI] = 1;
counts[PCI_INTR_TYPE_INTX] = 1;
goto alloc_retry;
}
} else if (pci_intr_type(pc, sc->sc_intrs[0]) == PCI_INTR_TYPE_MSI) {
wm_adjust_qnum(sc, 0);
error = wm_setup_legacy(sc);
if (error) {
pci_intr_release(sc->sc_pc, sc->sc_intrs,
counts[PCI_INTR_TYPE_MSI]);
max_type = PCI_INTR_TYPE_INTX;
counts[PCI_INTR_TYPE_INTX] = 1;
goto alloc_retry;
}
} else {
wm_adjust_qnum(sc, 0);
error = wm_setup_legacy(sc);
if (error) {
pci_intr_release(sc->sc_pc, sc->sc_intrs,
counts[PCI_INTR_TYPE_INTX]);
return;
}
}
snprintf(wqname, sizeof(wqname), "%sTxRx", device_xname(sc->sc_dev));
error = workqueue_create(&sc->sc_queue_wq, wqname,
wm_handle_queue_work, sc, WM_WORKQUEUE_PRI, IPL_NET,
WQ_PERCPU | WQ_MPSAFE);
if (error) {
aprint_error_dev(sc->sc_dev,
"unable to create TxRx workqueue\n");
goto out;
}
snprintf(wqname, sizeof(wqname), "%sReset", device_xname(sc->sc_dev));
error = workqueue_create(&sc->sc_reset_wq, wqname,
wm_handle_reset_work, sc, WM_WORKQUEUE_PRI, IPL_SOFTCLOCK,
WQ_MPSAFE);
if (error) {
workqueue_destroy(sc->sc_queue_wq);
aprint_error_dev(sc->sc_dev,
"unable to create reset workqueue\n");
goto out;
}
if ((sc->sc_type == WM_T_82546) || (sc->sc_type == WM_T_82546_3)
|| (sc->sc_type == WM_T_82571) || (sc->sc_type == WM_T_80003)
|| (sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
|| (sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354))
sc->sc_funcid = (CSR_READ(sc, WMREG_STATUS)
>> STATUS_FUNCID_SHIFT) & STATUS_FUNCID_MASK;
else
sc->sc_funcid = 0;
if (sc->sc_type < WM_T_82543) {
sc->sc_bus_speed = 33;
} else if (sc->sc_type == WM_T_82547 || sc->sc_type == WM_T_82547_2) {
sc->sc_flags |= WM_F_CSA;
sc->sc_bus_speed = 66;
aprint_verbose_dev(sc->sc_dev,
"Communication Streaming Architecture\n");
if (sc->sc_type == WM_T_82547) {
callout_init(&sc->sc_txfifo_ch, CALLOUT_MPSAFE);
callout_setfunc(&sc->sc_txfifo_ch,
wm_82547_txfifo_stall, sc);
aprint_verbose_dev(sc->sc_dev,
"using 82547 Tx FIFO stall work-around\n");
}
} else if (sc->sc_type >= WM_T_82571) {
sc->sc_flags |= WM_F_PCIE;
if ((sc->sc_type != WM_T_ICH8) && (sc->sc_type != WM_T_ICH9)
&& (sc->sc_type != WM_T_ICH10)
&& (sc->sc_type != WM_T_PCH)
&& (sc->sc_type != WM_T_PCH2)
&& (sc->sc_type != WM_T_PCH_LPT)
&& (sc->sc_type != WM_T_PCH_SPT)
&& (sc->sc_type != WM_T_PCH_CNP)
&& (sc->sc_type != WM_T_PCH_TGP)) {
if (pci_get_capability(pa->pa_pc, pa->pa_tag,
PCI_CAP_PCIEXPRESS, &sc->sc_pcixe_capoff,
NULL) == 0)
aprint_error_dev(sc->sc_dev,
"unable to find PCIe capability\n");
}
aprint_verbose_dev(sc->sc_dev, "PCI-Express bus\n");
} else {
reg = CSR_READ(sc, WMREG_STATUS);
if (reg & STATUS_BUS64)
sc->sc_flags |= WM_F_BUS64;
if ((reg & STATUS_PCIX_MODE) != 0) {
pcireg_t pcix_cmd, pcix_sts, bytecnt, maxb;
sc->sc_flags |= WM_F_PCIX;
if (pci_get_capability(pa->pa_pc, pa->pa_tag,
PCI_CAP_PCIX, &sc->sc_pcixe_capoff, NULL) == 0)
aprint_error_dev(sc->sc_dev,
"unable to find PCIX capability\n");
else if (sc->sc_type != WM_T_82545_3 &&
sc->sc_type != WM_T_82546_3) {
pcix_cmd = pci_conf_read(pa->pa_pc, pa->pa_tag,
sc->sc_pcixe_capoff + PCIX_CMD);
pcix_sts = pci_conf_read(pa->pa_pc, pa->pa_tag,
sc->sc_pcixe_capoff + PCIX_STATUS);
bytecnt = (pcix_cmd & PCIX_CMD_BYTECNT_MASK) >>
PCIX_CMD_BYTECNT_SHIFT;
maxb = (pcix_sts & PCIX_STATUS_MAXB_MASK) >>
PCIX_STATUS_MAXB_SHIFT;
if (bytecnt > maxb) {
aprint_verbose_dev(sc->sc_dev,
"resetting PCI-X MMRBC: %d -> %d\n",
512 << bytecnt, 512 << maxb);
pcix_cmd = (pcix_cmd &
~PCIX_CMD_BYTECNT_MASK) |
(maxb << PCIX_CMD_BYTECNT_SHIFT);
pci_conf_write(pa->pa_pc, pa->pa_tag,
sc->sc_pcixe_capoff + PCIX_CMD,
pcix_cmd);
}
}
}
if (wmp->wmp_product == PCI_PRODUCT_INTEL_82546EB_QUAD) {
sc->sc_bus_speed = (sc->sc_flags & WM_F_PCIX) ? 120
: 66;
} else if (sc->sc_flags & WM_F_PCIX) {
switch (reg & STATUS_PCIXSPD_MASK) {
case STATUS_PCIXSPD_50_66:
sc->sc_bus_speed = 66;
break;
case STATUS_PCIXSPD_66_100:
sc->sc_bus_speed = 100;
break;
case STATUS_PCIXSPD_100_133:
sc->sc_bus_speed = 133;
break;
default:
aprint_error_dev(sc->sc_dev,
"unknown PCIXSPD %d; assuming 66MHz\n",
reg & STATUS_PCIXSPD_MASK);
sc->sc_bus_speed = 66;
break;
}
} else
sc->sc_bus_speed = (reg & STATUS_PCI66) ? 66 : 33;
aprint_verbose_dev(sc->sc_dev, "%d-bit %dMHz %s bus\n",
(sc->sc_flags & WM_F_BUS64) ? 64 : 32, sc->sc_bus_speed,
(sc->sc_flags & WM_F_PCIX) ? "PCIX" : "PCI");
}
CSR_READ(sc, WMREG_COLC);
CSR_READ(sc, WMREG_RXERRC);
if ((sc->sc_type == WM_T_82574) || (sc->sc_type == WM_T_82583)
|| (sc->sc_type >= WM_T_ICH8))
sc->sc_ich_phymtx = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
if (sc->sc_type >= WM_T_ICH8)
sc->sc_ich_nvmmtx = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
case WM_T_82544:
sc->nvm.read = wm_nvm_read_uwire;
sc->sc_nvm_wordsize = 64;
sc->sc_nvm_addrbits = 6;
break;
case WM_T_82540:
case WM_T_82545:
case WM_T_82545_3:
case WM_T_82546:
case WM_T_82546_3:
sc->nvm.read = wm_nvm_read_uwire;
reg = CSR_READ(sc, WMREG_EECD);
if (reg & EECD_EE_SIZE) {
sc->sc_nvm_wordsize = 256;
sc->sc_nvm_addrbits = 8;
} else {
sc->sc_nvm_wordsize = 64;
sc->sc_nvm_addrbits = 6;
}
sc->sc_flags |= WM_F_LOCK_EECD;
sc->nvm.acquire = wm_get_eecd;
sc->nvm.release = wm_put_eecd;
break;
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
reg = CSR_READ(sc, WMREG_EECD);
sc->sc_flags |= WM_F_LOCK_EECD;
sc->nvm.acquire = wm_get_eecd;
sc->nvm.release = wm_put_eecd;
if (reg & EECD_EE_TYPE) {
sc->nvm.read = wm_nvm_read_spi;
sc->sc_flags |= WM_F_EEPROM_SPI;
wm_nvm_set_addrbits_size_eecd(sc);
} else {
sc->nvm.read = wm_nvm_read_uwire;
if ((reg & EECD_EE_ABITS) != 0) {
sc->sc_nvm_wordsize = 256;
sc->sc_nvm_addrbits = 8;
} else {
sc->sc_nvm_wordsize = 64;
sc->sc_nvm_addrbits = 6;
}
}
break;
case WM_T_82571:
case WM_T_82572:
sc->nvm.read = wm_nvm_read_eerd;
sc->sc_flags |= WM_F_EEPROM_SPI;
wm_nvm_set_addrbits_size_eecd(sc);
sc->phy.acquire = wm_get_swsm_semaphore;
sc->phy.release = wm_put_swsm_semaphore;
sc->nvm.acquire = wm_get_nvm_82571;
sc->nvm.release = wm_put_nvm_82571;
break;
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
sc->nvm.read = wm_nvm_read_eerd;
if (sc->sc_type == WM_T_82573) {
sc->phy.acquire = wm_get_swsm_semaphore;
sc->phy.release = wm_put_swsm_semaphore;
sc->nvm.acquire = wm_get_nvm_82571;
sc->nvm.release = wm_put_nvm_82571;
} else {
sc->phy.acquire = sc->nvm.acquire
= wm_get_swfwhw_semaphore;
sc->phy.release = sc->nvm.release
= wm_put_swfwhw_semaphore;
}
if (wm_nvm_is_onboard_eeprom(sc) == 0) {
sc->sc_flags |= WM_F_EEPROM_FLASH;
sc->sc_nvm_wordsize = 2048;
} else {
sc->sc_flags |= WM_F_EEPROM_SPI;
wm_nvm_set_addrbits_size_eecd(sc);
}
break;
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_80003:
sc->sc_flags |= WM_F_EEPROM_SPI;
wm_nvm_set_addrbits_size_eecd(sc);
if ((sc->sc_type == WM_T_80003)
|| (sc->sc_nvm_wordsize < (1 << 15))) {
sc->nvm.read = wm_nvm_read_eerd;
} else {
sc->nvm.read = wm_nvm_read_spi;
sc->sc_flags |= WM_F_LOCK_EECD;
}
sc->phy.acquire = wm_get_phy_82575;
sc->phy.release = wm_put_phy_82575;
sc->nvm.acquire = wm_get_nvm_80003;
sc->nvm.release = wm_put_nvm_80003;
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
sc->nvm.read = wm_nvm_read_ich8;
sc->sc_flags |= WM_F_EEPROM_FLASH;
sc->sc_nvm_wordsize = 2048;
memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag,WM_ICH8_FLASH);
if (pci_mapreg_map(pa, WM_ICH8_FLASH, memtype, 0,
&sc->sc_flasht, &sc->sc_flashh, NULL, &sc->sc_flashs)) {
aprint_error_dev(sc->sc_dev,
"can't map FLASH registers\n");
goto out;
}
reg = ICH8_FLASH_READ32(sc, ICH_FLASH_GFPREG);
sc->sc_ich8_flash_base = (reg & ICH_GFPREG_BASE_MASK) *
ICH_FLASH_SECTOR_SIZE;
sc->sc_ich8_flash_bank_size =
((reg >> 16) & ICH_GFPREG_BASE_MASK) + 1;
sc->sc_ich8_flash_bank_size -= (reg & ICH_GFPREG_BASE_MASK);
sc->sc_ich8_flash_bank_size *= ICH_FLASH_SECTOR_SIZE;
sc->sc_ich8_flash_bank_size /= 2 * sizeof(uint16_t);
sc->sc_flashreg_offset = 0;
sc->phy.acquire = wm_get_swflag_ich8lan;
sc->phy.release = wm_put_swflag_ich8lan;
sc->nvm.acquire = wm_get_nvm_ich8lan;
sc->nvm.release = wm_put_nvm_ich8lan;
break;
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
sc->nvm.read = wm_nvm_read_spt;
sc->sc_flags |= WM_F_EEPROM_FLASH;
sc->sc_flasht = sc->sc_st;
sc->sc_flashh = sc->sc_sh;
sc->sc_ich8_flash_base = 0;
sc->sc_nvm_wordsize =
(((CSR_READ(sc, WMREG_STRAP) >> 1) & 0x1F) + 1)
* NVM_SIZE_MULTIPLIER;
sc->sc_nvm_wordsize /= 2;
sc->sc_ich8_flash_bank_size = sc->sc_nvm_wordsize / 2;
sc->sc_flashreg_offset = WM_PCH_SPT_FLASHOFFSET;
sc->phy.acquire = wm_get_swflag_ich8lan;
sc->phy.release = wm_put_swflag_ich8lan;
sc->nvm.acquire = wm_get_nvm_ich8lan;
sc->nvm.release = wm_put_nvm_ich8lan;
break;
case WM_T_I210:
case WM_T_I211:
sc->sc_flags |= WM_F_WA_I210_CLSEM;
if (wm_nvm_flash_presence_i210(sc)) {
sc->nvm.read = wm_nvm_read_eerd;
sc->sc_flags |= WM_F_EEPROM_FLASH_HW;
wm_nvm_set_addrbits_size_eecd(sc);
} else {
sc->nvm.read = wm_nvm_read_invm;
sc->sc_flags |= WM_F_EEPROM_INVM;
sc->sc_nvm_wordsize = INVM_SIZE;
}
sc->phy.acquire = wm_get_phy_82575;
sc->phy.release = wm_put_phy_82575;
sc->nvm.acquire = wm_get_nvm_80003;
sc->nvm.release = wm_put_nvm_80003;
break;
default:
break;
}
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
reg = CSR_READ(sc, WMREG_SWSM2);
if ((reg & SWSM2_LOCK) == 0) {
CSR_WRITE(sc, WMREG_SWSM2, reg | SWSM2_LOCK);
force_clear_smbi = true;
} else
force_clear_smbi = false;
break;
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
force_clear_smbi = true;
break;
default:
force_clear_smbi = false;
break;
}
if (force_clear_smbi) {
reg = CSR_READ(sc, WMREG_SWSM);
if ((reg & SWSM_SMBI) != 0)
aprint_error_dev(sc->sc_dev,
"Please update the Bootagent\n");
CSR_WRITE(sc, WMREG_SWSM, reg & ~SWSM_SMBI);
}
if (wm_nvm_validate_checksum(sc)) {
if (wm_nvm_validate_checksum(sc))
sc->sc_flags |= WM_F_EEPROM_INVALID;
}
if (sc->sc_flags & WM_F_EEPROM_INVALID)
aprint_verbose_dev(sc->sc_dev, "No EEPROM");
else {
aprint_verbose_dev(sc->sc_dev, "%u words ",
sc->sc_nvm_wordsize);
if (sc->sc_flags & WM_F_EEPROM_INVM)
aprint_verbose("iNVM");
else if (sc->sc_flags & WM_F_EEPROM_FLASH_HW)
aprint_verbose("FLASH(HW)");
else if (sc->sc_flags & WM_F_EEPROM_FLASH)
aprint_verbose("FLASH");
else {
if (sc->sc_flags & WM_F_EEPROM_SPI)
eetype = "SPI";
else
eetype = "MicroWire";
aprint_verbose("(%d address bits) %s EEPROM",
sc->sc_nvm_addrbits, eetype);
}
}
wm_nvm_version(sc);
aprint_verbose("\n");
wm_gmii_setup_phytype(sc, 0, 0);
switch (sc->sc_type) {
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
apme_mask = WUC_APME;
eeprom_data = CSR_READ(sc, WMREG_WUC);
if ((eeprom_data & apme_mask) != 0)
sc->sc_flags |= WM_F_WOL;
break;
default:
break;
}
wm_reset(sc);
aprint_verbose_dev(sc->sc_dev, "RX packet buffer size: %uKB\n",
sc->sc_pba);
if (sc->sc_type == WM_T_I211)
sc->sc_flags |= WM_F_PLL_WA_I210;
if (sc->sc_type == WM_T_I210) {
if (!wm_nvm_flash_presence_i210(sc))
sc->sc_flags |= WM_F_PLL_WA_I210;
else if ((sc->sc_nvm_ver_major < 3)
|| ((sc->sc_nvm_ver_major == 3)
&& (sc->sc_nvm_ver_minor < 25))) {
aprint_verbose_dev(sc->sc_dev,
"ROM image version %d.%d is older than 3.25\n",
sc->sc_nvm_ver_major, sc->sc_nvm_ver_minor);
sc->sc_flags |= WM_F_PLL_WA_I210;
}
}
if ((sc->sc_flags & WM_F_PLL_WA_I210) != 0)
wm_pll_workaround_i210(sc);
wm_get_wakeup(sc);
if ((sc->sc_flags & WM_F_HAS_AMT) == 0)
wm_get_hw_control(sc);
ea = prop_dictionary_get(dict, "mac-address");
if (ea != NULL) {
KASSERT(prop_object_type(ea) == PROP_TYPE_DATA);
KASSERT(prop_data_size(ea) == ETHER_ADDR_LEN);
memcpy(enaddr, prop_data_value(ea), ETHER_ADDR_LEN);
} else {
if (wm_read_mac_addr(sc, enaddr) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to read Ethernet address\n");
goto out;
}
}
aprint_normal_dev(sc->sc_dev, "Ethernet address %s\n",
ether_sprintf(enaddr));
pn = prop_dictionary_get(dict, "i82543-cfg1");
if (pn != NULL) {
KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
cfg1 = (uint16_t) prop_number_signed_value(pn);
} else {
if (wm_nvm_read(sc, NVM_OFF_CFG1, 1, &cfg1)) {
aprint_error_dev(sc->sc_dev, "unable to read CFG1\n");
goto out;
}
}
pn = prop_dictionary_get(dict, "i82543-cfg2");
if (pn != NULL) {
KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
cfg2 = (uint16_t) prop_number_signed_value(pn);
} else {
if (wm_nvm_read(sc, NVM_OFF_CFG2, 1, &cfg2)) {
aprint_error_dev(sc->sc_dev, "unable to read CFG2\n");
goto out;
}
}
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
eeprom_data = 0;
apme_mask = NVM_CFG3_APME;
break;
case WM_T_82544:
apme_mask = NVM_CFG2_82544_APM_EN;
eeprom_data = cfg2;
break;
case WM_T_82546:
case WM_T_82546_3:
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
case WM_T_80003:
case WM_T_82575:
case WM_T_82576:
apme_mask = NVM_CFG3_APME;
wm_nvm_read(sc, (sc->sc_funcid == 1) ? NVM_OFF_CFG3_PORTB
: NVM_OFF_CFG3_PORTA, 1, &eeprom_data);
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
apme_mask = NVM_CFG3_APME;
wm_nvm_read(sc,
NVM_OFF_LAN_FUNC_82580(sc->sc_funcid) + NVM_OFF_CFG3_PORTA,
1, &eeprom_data);
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
apme_mask = eeprom_data = 0;
break;
default:
apme_mask = NVM_CFG3_APME;
wm_nvm_read(sc, NVM_OFF_CFG3_PORTA, 1, &eeprom_data);
break;
}
if ((eeprom_data & apme_mask) != 0)
sc->sc_flags |= WM_F_WOL;
switch (sc->sc_pcidevid) {
case PCI_PRODUCT_INTEL_82546GB_PCIE:
sc->sc_flags &= ~WM_F_WOL;
break;
case PCI_PRODUCT_INTEL_82546EB_FIBER:
case PCI_PRODUCT_INTEL_82546GB_FIBER:
if (sc->sc_funcid == 1)
sc->sc_flags &= ~WM_F_WOL;
break;
case PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER_KSP3:
if (sc->sc_funcid != 0)
sc->sc_flags &= ~WM_F_WOL;
break;
case PCI_PRODUCT_INTEL_82571EB_FIBER:
if (sc->sc_funcid == 1)
sc->sc_flags &= ~WM_F_WOL;
break;
case PCI_PRODUCT_INTEL_82571EB_QUAD_COPPER:
case PCI_PRODUCT_INTEL_82571EB_QUAD_FIBER:
case PCI_PRODUCT_INTEL_82571GB_QUAD_COPPER:
if (sc->sc_funcid != 0)
sc->sc_flags &= ~WM_F_WOL;
break;
}
if (sc->sc_type >= WM_T_82575) {
if (wm_nvm_read(sc, NVM_OFF_COMPAT, 1, &nvmword) == 0) {
aprint_debug_dev(sc->sc_dev, "COMPAT = %hx\n",
nvmword);
if ((sc->sc_type == WM_T_82575) ||
(sc->sc_type == WM_T_82576)) {
if ((nvmword & NVM_COMPAT_SERDES_FORCE_MODE)
!= 0)
sc->sc_flags |= WM_F_PCS_DIS_AUTONEGO;
}
if ((sc->sc_type == WM_T_82575) ||
(sc->sc_type == WM_T_I350)) {
if (nvmword & NVM_COMPAT_MAS_EN(sc->sc_funcid))
sc->sc_flags |= WM_F_MAS;
}
}
}
if (sc->sc_type >= WM_T_82544) {
pn = prop_dictionary_get(dict, "i82543-swdpin");
if (pn != NULL) {
KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
swdpin = (uint16_t) prop_number_signed_value(pn);
} else {
if (wm_nvm_read(sc, NVM_OFF_SWDPIN, 1, &swdpin)) {
aprint_error_dev(sc->sc_dev,
"unable to read SWDPIN\n");
goto out;
}
}
}
if (cfg1 & NVM_CFG1_ILOS)
sc->sc_ctrl |= CTRL_ILOS;
if (sc->sc_type <= WM_T_82580) {
if (sc->sc_type >= WM_T_82544) {
sc->sc_ctrl |=
((swdpin >> NVM_SWDPIN_SWDPIO_SHIFT) & 0xf) <<
CTRL_SWDPIO_SHIFT;
sc->sc_ctrl |=
((swdpin >> NVM_SWDPIN_SWDPIN_SHIFT) & 0xf) <<
CTRL_SWDPINS_SHIFT;
} else {
sc->sc_ctrl |=
((cfg1 >> NVM_CFG1_SWDPIO_SHIFT) & 0xf) <<
CTRL_SWDPIO_SHIFT;
}
}
if ((sc->sc_type >= WM_T_82580) && (sc->sc_type <= WM_T_I211)) {
wm_nvm_read(sc,
NVM_OFF_LAN_FUNC_82580(sc->sc_funcid) + NVM_OFF_CFG3_PORTA,
1, &nvmword);
if (nvmword & NVM_CFG3_ILOS)
sc->sc_ctrl |= CTRL_ILOS;
}
#if 0
if (sc->sc_type >= WM_T_82544) {
if (cfg1 & NVM_CFG1_IPS0)
sc->sc_ctrl_ext |= CTRL_EXT_IPS;
if (cfg1 & NVM_CFG1_IPS1)
sc->sc_ctrl_ext |= CTRL_EXT_IPS1;
sc->sc_ctrl_ext |=
((swdpin >> (NVM_SWDPIN_SWDPIO_SHIFT + 4)) & 0xd) <<
CTRL_EXT_SWDPIO_SHIFT;
sc->sc_ctrl_ext |=
((swdpin >> (NVM_SWDPIN_SWDPIN_SHIFT + 4)) & 0xd) <<
CTRL_EXT_SWDPINS_SHIFT;
} else {
sc->sc_ctrl_ext |=
((cfg2 >> NVM_CFG2_SWDPIO_SHIFT) & 0xf) <<
CTRL_EXT_SWDPIO_SHIFT;
}
#endif
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
#if 0
CSR_WRITE(sc, WMREG_CTRL_EXT, sc->sc_ctrl_ext);
#endif
if (sc->sc_type == WM_T_PCH) {
uint16_t val;
wm_nvm_read(sc, NVM_OFF_K1_CONFIG, 1, &val);
if ((val & NVM_K1_CONFIG_ENABLE) != 0)
sc->sc_nvm_k1_enabled = 1;
else
sc->sc_nvm_k1_enabled = 0;
}
if (sc->sc_type == WM_T_ICH8 || sc->sc_type == WM_T_ICH9
|| sc->sc_type == WM_T_ICH10 || sc->sc_type == WM_T_PCH
|| sc->sc_type == WM_T_PCH2 || sc->sc_type == WM_T_PCH_LPT
|| sc->sc_type == WM_T_PCH_SPT || sc->sc_type == WM_T_PCH_CNP
|| sc->sc_type == WM_T_PCH_TGP
|| sc->sc_type == WM_T_82573
|| sc->sc_type == WM_T_82574 || sc->sc_type == WM_T_82583) {
} else if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
|| (sc->sc_type ==WM_T_82580) || (sc->sc_type ==WM_T_I350)
|| (sc->sc_type ==WM_T_I354) || (sc->sc_type ==WM_T_I210)
|| (sc->sc_type ==WM_T_I211)) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
link_mode = reg & CTRL_EXT_LINK_MODE_MASK;
switch (link_mode) {
case CTRL_EXT_LINK_MODE_1000KX:
aprint_normal_dev(sc->sc_dev, "1000KX\n");
sc->sc_mediatype = WM_MEDIATYPE_SERDES;
break;
case CTRL_EXT_LINK_MODE_SGMII:
if (wm_sgmii_uses_mdio(sc)) {
aprint_normal_dev(sc->sc_dev,
"SGMII(MDIO)\n");
sc->sc_flags |= WM_F_SGMII;
sc->sc_mediatype = WM_MEDIATYPE_COPPER;
break;
}
aprint_verbose_dev(sc->sc_dev, "SGMII(I2C)\n");
case CTRL_EXT_LINK_MODE_PCIE_SERDES:
sc->sc_mediatype = wm_sfp_get_media_type(sc);
if (sc->sc_mediatype == WM_MEDIATYPE_UNKNOWN) {
if (link_mode
== CTRL_EXT_LINK_MODE_SGMII) {
sc->sc_mediatype = WM_MEDIATYPE_COPPER;
sc->sc_flags |= WM_F_SGMII;
aprint_verbose_dev(sc->sc_dev,
"SGMII\n");
} else {
sc->sc_mediatype = WM_MEDIATYPE_SERDES;
aprint_verbose_dev(sc->sc_dev,
"SERDES\n");
}
break;
}
if (sc->sc_mediatype == WM_MEDIATYPE_SERDES)
aprint_normal_dev(sc->sc_dev, "SERDES(SFP)\n");
else if (sc->sc_mediatype == WM_MEDIATYPE_COPPER) {
aprint_normal_dev(sc->sc_dev, "SGMII(SFP)\n");
sc->sc_flags |= WM_F_SGMII;
}
if (sc->sc_sfptype == SFF_SFP_ETH_FLAGS_100FX)
break;
reg &= ~CTRL_EXT_LINK_MODE_MASK;
if (sc->sc_mediatype == WM_MEDIATYPE_COPPER)
reg |= CTRL_EXT_LINK_MODE_SGMII;
else
reg |= CTRL_EXT_LINK_MODE_PCIE_SERDES;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
break;
case CTRL_EXT_LINK_MODE_GMII:
default:
aprint_normal_dev(sc->sc_dev, "Copper\n");
sc->sc_mediatype = WM_MEDIATYPE_COPPER;
break;
}
reg &= ~CTRL_EXT_I2C_ENA;
if ((sc->sc_flags & WM_F_SGMII) != 0)
reg |= CTRL_EXT_I2C_ENA;
else
reg &= ~CTRL_EXT_I2C_ENA;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
if ((sc->sc_flags & WM_F_SGMII) != 0) {
if (!wm_sgmii_uses_mdio(sc))
wm_gmii_setup_phytype(sc, 0, 0);
wm_reset_mdicnfg_82580(sc);
}
} else if (sc->sc_type < WM_T_82543 ||
(CSR_READ(sc, WMREG_STATUS) & STATUS_TBIMODE) != 0) {
if (sc->sc_mediatype == WM_MEDIATYPE_COPPER) {
aprint_error_dev(sc->sc_dev,
"WARNING: TBIMODE set on 1000BASE-T product!\n");
sc->sc_mediatype = WM_MEDIATYPE_FIBER;
}
} else {
if (sc->sc_mediatype == WM_MEDIATYPE_FIBER) {
aprint_error_dev(sc->sc_dev,
"WARNING: TBIMODE clear on 1000BASE-X product!\n");
sc->sc_mediatype = WM_MEDIATYPE_COPPER;
}
}
if (sc->sc_type >= WM_T_PCH2)
sc->sc_flags |= WM_F_EEE;
else if ((sc->sc_type >= WM_T_I350) && (sc->sc_type <= WM_T_I211)
&& (sc->sc_mediatype == WM_MEDIATYPE_COPPER)) {
if (sc->sc_type != WM_T_I354)
sc->sc_flags |= WM_F_EEE;
}
if ((sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
|| (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211))
sc->sc_flags |= WM_F_CRC_STRIP;
switch (sc->sc_type) {
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
if (sc->sc_mediatype == WM_MEDIATYPE_COPPER)
sc->sc_flags |= WM_F_DELAY_LINKUP;
break;
default:
break;
}
prop_dictionary_set_uint32(dict, "macflags", sc->sc_flags);
if (sc->sc_flags != 0) {
snprintb(buf, sizeof(buf), WM_FLAGS, sc->sc_flags);
aprint_verbose_dev(sc->sc_dev, "%s\n", buf);
}
sc->sc_core_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
if (sc->sc_mediatype == WM_MEDIATYPE_COPPER)
wm_gmii_mediainit(sc, wmp->wmp_product);
else
wm_tbi_mediainit(sc);
ifp = &sc->sc_ethercom.ec_if;
xname = device_xname(sc->sc_dev);
strlcpy(ifp->if_xname, xname, IFNAMSIZ);
ifp->if_softc = sc;
ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
ifp->if_extflags = IFEF_MPSAFE;
ifp->if_ioctl = wm_ioctl;
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
ifp->if_start = wm_nq_start;
if (wm_is_using_multiqueue(sc))
ifp->if_transmit = wm_nq_transmit;
} else {
ifp->if_start = wm_start;
if (wm_is_using_multiqueue(sc))
ifp->if_transmit = wm_transmit;
}
ifp->if_init = wm_init;
ifp->if_stop = wm_stop;
IFQ_SET_MAXLEN(&ifp->if_snd, uimax(WM_IFQUEUELEN, IFQ_MAXLEN));
IFQ_SET_READY(&ifp->if_snd);
switch (sc->sc_type) {
case WM_T_82573:
wm_nvm_read(sc, NVM_OFF_INIT_3GIO_3, 1, &nvmword);
if ((nvmword & NVM_3GIO_3_ASPM_MASK) != 0)
sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
break;
case WM_T_82571:
case WM_T_82572:
case WM_T_82574:
case WM_T_82583:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
case WM_T_80003:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
break;
case WM_T_PCH:
sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
break;
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_ICH8:
break;
default:
sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
break;
}
if (sc->sc_type >= WM_T_82543) {
sc->sc_ethercom.ec_capabilities |=
ETHERCAP_VLAN_MTU | ETHERCAP_VLAN_HWTAGGING;
sc->sc_ethercom.ec_capenable |= ETHERCAP_VLAN_HWTAGGING;
}
if ((sc->sc_flags & WM_F_EEE) != 0)
sc->sc_ethercom.ec_capabilities |= ETHERCAP_EEE;
if (sc->sc_type >= WM_T_82543) {
ifp->if_capabilities |=
IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx |
IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx |
IFCAP_CSUM_TCPv6_Tx |
IFCAP_CSUM_UDPv6_Tx;
}
if (sc->sc_type >= WM_T_82571) {
ifp->if_capabilities |=
IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx;
}
if (sc->sc_type >= WM_T_82544 && sc->sc_type != WM_T_82547)
ifp->if_capabilities |= IFCAP_TSOv4;
if (sc->sc_type >= WM_T_82571)
ifp->if_capabilities |= IFCAP_TSOv6;
sc->sc_tx_process_limit = WM_TX_PROCESS_LIMIT_DEFAULT;
sc->sc_tx_intr_process_limit = WM_TX_INTR_PROCESS_LIMIT_DEFAULT;
sc->sc_rx_process_limit = WM_RX_PROCESS_LIMIT_DEFAULT;
sc->sc_rx_intr_process_limit = WM_RX_INTR_PROCESS_LIMIT_DEFAULT;
if_initialize(ifp);
sc->sc_ipq = if_percpuq_create(&sc->sc_ethercom.ec_if);
ether_ifattach(ifp, enaddr);
ether_set_ifflags_cb(&sc->sc_ethercom, wm_ifflags_cb);
if_register(ifp);
rnd_attach_source(&sc->rnd_source, xname, RND_TYPE_NET,
RND_FLAG_DEFAULT);
#ifdef WM_EVENT_COUNTERS
evcnt_attach_dynamic(&sc->sc_ev_linkintr, EVCNT_TYPE_INTR,
NULL, xname, "linkintr");
evcnt_attach_dynamic(&sc->sc_ev_crcerrs, EVCNT_TYPE_MISC,
NULL, xname, "CRC Error");
evcnt_attach_dynamic(&sc->sc_ev_symerrc, EVCNT_TYPE_MISC,
NULL, xname, "Symbol Error");
evcnt_attach_dynamic(&sc->sc_ev_mpc, EVCNT_TYPE_MISC,
NULL, xname, "Missed Packets");
evcnt_attach_dynamic(&sc->sc_ev_colc, EVCNT_TYPE_MISC,
NULL, xname, "Collision");
evcnt_attach_dynamic(&sc->sc_ev_sec, EVCNT_TYPE_MISC,
NULL, xname, "Sequence Error");
evcnt_attach_dynamic(&sc->sc_ev_rlec, EVCNT_TYPE_MISC,
NULL, xname, "Receive Length Error");
if (sc->sc_type >= WM_T_82543) {
evcnt_attach_dynamic(&sc->sc_ev_algnerrc, EVCNT_TYPE_MISC,
NULL, xname, "Alignment Error");
evcnt_attach_dynamic(&sc->sc_ev_rxerrc, EVCNT_TYPE_MISC,
NULL, xname, "Receive Error");
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
evcnt_attach_dynamic(&sc->sc_ev_cexterr,
EVCNT_TYPE_MISC, NULL, xname,
"Carrier Extension Error");
else
evcnt_attach_dynamic(&sc->sc_ev_htdpmc,
EVCNT_TYPE_MISC, NULL, xname,
"Host Transmit Discarded Packets by MAC");
evcnt_attach_dynamic(&sc->sc_ev_tncrs, EVCNT_TYPE_MISC,
NULL, xname, "Tx with No CRS");
evcnt_attach_dynamic(&sc->sc_ev_tsctc, EVCNT_TYPE_MISC,
NULL, xname, "TCP Segmentation Context Tx");
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
evcnt_attach_dynamic(&sc->sc_ev_tsctfc,
EVCNT_TYPE_MISC, NULL, xname,
"TCP Segmentation Context Tx Fail");
else {
evcnt_attach_dynamic(&sc->sc_ev_cbrdpc,
EVCNT_TYPE_MISC, NULL, xname,
"Circuit Breaker Rx Dropped Packet");
evcnt_attach_dynamic(&sc->sc_ev_cbrmpc,
EVCNT_TYPE_MISC, NULL, xname,
"Circuit Breaker Rx Manageability Packet");
}
}
if (sc->sc_type >= WM_T_82542_2_1) {
evcnt_attach_dynamic(&sc->sc_ev_tx_xoff, EVCNT_TYPE_MISC,
NULL, xname, "XOFF Transmitted");
evcnt_attach_dynamic(&sc->sc_ev_tx_xon, EVCNT_TYPE_MISC,
NULL, xname, "XON Transmitted");
evcnt_attach_dynamic(&sc->sc_ev_rx_xoff, EVCNT_TYPE_MISC,
NULL, xname, "XOFF Received");
evcnt_attach_dynamic(&sc->sc_ev_rx_xon, EVCNT_TYPE_MISC,
NULL, xname, "XON Received");
evcnt_attach_dynamic(&sc->sc_ev_rx_macctl, EVCNT_TYPE_MISC,
NULL, xname, "FC Received Unsupported");
}
evcnt_attach_dynamic(&sc->sc_ev_scc, EVCNT_TYPE_MISC,
NULL, xname, "Single Collision");
evcnt_attach_dynamic(&sc->sc_ev_ecol, EVCNT_TYPE_MISC,
NULL, xname, "Excessive Collisions");
evcnt_attach_dynamic(&sc->sc_ev_mcc, EVCNT_TYPE_MISC,
NULL, xname, "Multiple Collision");
evcnt_attach_dynamic(&sc->sc_ev_latecol, EVCNT_TYPE_MISC,
NULL, xname, "Late Collisions");
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc))
evcnt_attach_dynamic(&sc->sc_ev_cbtmpc, EVCNT_TYPE_MISC,
NULL, xname, "Circuit Breaker Tx Manageability Packet");
evcnt_attach_dynamic(&sc->sc_ev_dc, EVCNT_TYPE_MISC,
NULL, xname, "Defer");
evcnt_attach_dynamic(&sc->sc_ev_prc64, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (64 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_prc127, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (65-127 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_prc255, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (128-255 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_prc511, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (256-511 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_prc1023, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (512-1023 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_prc1522, EVCNT_TYPE_MISC,
NULL, xname, "Packets Rx (1024-1522 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_gprc, EVCNT_TYPE_MISC,
NULL, xname, "Good Packets Rx");
evcnt_attach_dynamic(&sc->sc_ev_bprc, EVCNT_TYPE_MISC,
NULL, xname, "Broadcast Packets Rx");
evcnt_attach_dynamic(&sc->sc_ev_mprc, EVCNT_TYPE_MISC,
NULL, xname, "Multicast Packets Rx");
evcnt_attach_dynamic(&sc->sc_ev_gptc, EVCNT_TYPE_MISC,
NULL, xname, "Good Packets Tx");
evcnt_attach_dynamic(&sc->sc_ev_gorc, EVCNT_TYPE_MISC,
NULL, xname, "Good Octets Rx");
evcnt_attach_dynamic(&sc->sc_ev_gotc, EVCNT_TYPE_MISC,
NULL, xname, "Good Octets Tx");
evcnt_attach_dynamic(&sc->sc_ev_rnbc, EVCNT_TYPE_MISC,
NULL, xname, "Rx No Buffers");
evcnt_attach_dynamic(&sc->sc_ev_ruc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Undersize (valid CRC)");
evcnt_attach_dynamic(&sc->sc_ev_rfc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Fragment (bad CRC)");
evcnt_attach_dynamic(&sc->sc_ev_roc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Oversize (valid CRC)");
evcnt_attach_dynamic(&sc->sc_ev_rjc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Jabber (bad CRC)");
if (sc->sc_type >= WM_T_82540) {
evcnt_attach_dynamic(&sc->sc_ev_mgtprc, EVCNT_TYPE_MISC,
NULL, xname, "Management Packets RX");
evcnt_attach_dynamic(&sc->sc_ev_mgtpdc, EVCNT_TYPE_MISC,
NULL, xname, "Management Packets Dropped");
evcnt_attach_dynamic(&sc->sc_ev_mgtptc, EVCNT_TYPE_MISC,
NULL, xname, "Management Packets TX");
}
evcnt_attach_dynamic(&sc->sc_ev_tor, EVCNT_TYPE_MISC,
NULL, xname, "Total Octets Rx");
evcnt_attach_dynamic(&sc->sc_ev_tot, EVCNT_TYPE_MISC,
NULL, xname, "Total Octets Tx");
evcnt_attach_dynamic(&sc->sc_ev_tpr, EVCNT_TYPE_MISC,
NULL, xname, "Total Packets Rx");
evcnt_attach_dynamic(&sc->sc_ev_tpt, EVCNT_TYPE_MISC,
NULL, xname, "Total Packets Tx");
evcnt_attach_dynamic(&sc->sc_ev_ptc64, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (64 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_ptc127, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (65-127 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_ptc255, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (128-255 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_ptc511, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (256-511 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_ptc1023, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (512-1023 bytes)");
evcnt_attach_dynamic(&sc->sc_ev_ptc1522, EVCNT_TYPE_MISC,
NULL, xname, "Packets Tx (1024-1522 Bytes)");
evcnt_attach_dynamic(&sc->sc_ev_mptc, EVCNT_TYPE_MISC,
NULL, xname, "Multicast Packets Tx");
evcnt_attach_dynamic(&sc->sc_ev_bptc, EVCNT_TYPE_MISC,
NULL, xname, "Broadcast Packets Tx");
if (sc->sc_type >= WM_T_82571)
evcnt_attach_dynamic(&sc->sc_ev_iac, EVCNT_TYPE_MISC,
NULL, xname, "Interrupt Assertion");
if (sc->sc_type < WM_T_82575) {
evcnt_attach_dynamic(&sc->sc_ev_icrxptc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Rx Pkt Timer Expire");
evcnt_attach_dynamic(&sc->sc_ev_icrxatc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Rx Abs Timer Expire");
evcnt_attach_dynamic(&sc->sc_ev_ictxptc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Tx Pkt Timer Expire");
evcnt_attach_dynamic(&sc->sc_ev_ictxatc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Tx Abs Timer Expire");
evcnt_attach_dynamic(&sc->sc_ev_ictxqec, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Tx Queue Empty");
evcnt_attach_dynamic(&sc->sc_ev_ictxqmtc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Tx Queue Min Thresh");
evcnt_attach_dynamic(&sc->sc_ev_rxdmtc, EVCNT_TYPE_MISC,
NULL, xname, "Intr. Cause Rx Desc Min Thresh");
evcnt_attach_dynamic(&sc->sc_ev_icrxoc, EVCNT_TYPE_MISC,
NULL, xname, "Interrupt Cause Receiver Overrun");
} else if (!WM_IS_ICHPCH(sc)) {
evcnt_attach_dynamic(&sc->sc_ev_rpthc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Packets To Host");
evcnt_attach_dynamic(&sc->sc_ev_debug1, EVCNT_TYPE_MISC,
NULL, xname, "Debug Counter 1");
evcnt_attach_dynamic(&sc->sc_ev_debug2, EVCNT_TYPE_MISC,
NULL, xname, "Debug Counter 2");
evcnt_attach_dynamic(&sc->sc_ev_debug3, EVCNT_TYPE_MISC,
NULL, xname, "Debug Counter 3");
evcnt_attach_dynamic(&sc->sc_ev_hgptc, EVCNT_TYPE_MISC,
NULL, xname, "Host Good Packets TX");
evcnt_attach_dynamic(&sc->sc_ev_debug4, EVCNT_TYPE_MISC,
NULL, xname, "Debug Counter 4");
evcnt_attach_dynamic(&sc->sc_ev_rxdmtc, EVCNT_TYPE_MISC,
NULL, xname, "Rx Desc Min Thresh");
evcnt_attach_dynamic(&sc->sc_ev_htcbdpc, EVCNT_TYPE_MISC,
NULL, xname, "Host Tx Circuit Breaker Dropped Packets");
evcnt_attach_dynamic(&sc->sc_ev_hgorc, EVCNT_TYPE_MISC,
NULL, xname, "Host Good Octets Rx");
evcnt_attach_dynamic(&sc->sc_ev_hgotc, EVCNT_TYPE_MISC,
NULL, xname, "Host Good Octets Tx");
evcnt_attach_dynamic(&sc->sc_ev_lenerrs, EVCNT_TYPE_MISC,
NULL, xname, "Length Errors (length/type <= 1500)");
evcnt_attach_dynamic(&sc->sc_ev_scvpc, EVCNT_TYPE_MISC,
NULL, xname, "SerDes/SGMII Code Violation Packet");
evcnt_attach_dynamic(&sc->sc_ev_hrmpc, EVCNT_TYPE_MISC,
NULL, xname, "Header Redirection Missed Packet");
}
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc)) {
evcnt_attach_dynamic(&sc->sc_ev_tlpic, EVCNT_TYPE_MISC,
NULL, xname, "EEE Tx LPI");
evcnt_attach_dynamic(&sc->sc_ev_rlpic, EVCNT_TYPE_MISC,
NULL, xname, "EEE Rx LPI");
evcnt_attach_dynamic(&sc->sc_ev_b2ogprc, EVCNT_TYPE_MISC,
NULL, xname, "BMC2OS Packets received by host");
evcnt_attach_dynamic(&sc->sc_ev_o2bspc, EVCNT_TYPE_MISC,
NULL, xname, "OS2BMC Packets transmitted by host");
evcnt_attach_dynamic(&sc->sc_ev_b2ospc, EVCNT_TYPE_MISC,
NULL, xname, "BMC2OS Packets sent by BMC");
evcnt_attach_dynamic(&sc->sc_ev_o2bgptc, EVCNT_TYPE_MISC,
NULL, xname, "OS2BMC Packets received by BMC");
}
#endif
sc->sc_txrx_use_workqueue = false;
if (wm_phy_need_linkdown_discard(sc)) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: %s: Set linkdown discard flag\n",
device_xname(sc->sc_dev), __func__));
wm_set_linkdown_discard(sc);
}
wm_init_sysctls(sc);
if (pmf_device_register(self, wm_suspend, wm_resume))
pmf_class_network_register(self, ifp);
else
aprint_error_dev(self, "couldn't establish power handler\n");
sc->sc_flags |= WM_F_ATTACHED;
out:
return;
}
static int
wm_detach(device_t self, int flags __unused)
{
struct wm_softc *sc = device_private(self);
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
int i;
if ((sc->sc_flags & WM_F_ATTACHED) == 0)
return 0;
IFNET_LOCK(ifp);
sc->sc_dying = true;
wm_stop(ifp, 1);
IFNET_UNLOCK(ifp);
pmf_device_deregister(self);
sysctl_teardown(&sc->sc_sysctllog);
#ifdef WM_EVENT_COUNTERS
evcnt_detach(&sc->sc_ev_linkintr);
evcnt_detach(&sc->sc_ev_crcerrs);
evcnt_detach(&sc->sc_ev_symerrc);
evcnt_detach(&sc->sc_ev_mpc);
evcnt_detach(&sc->sc_ev_colc);
evcnt_detach(&sc->sc_ev_sec);
evcnt_detach(&sc->sc_ev_rlec);
if (sc->sc_type >= WM_T_82543) {
evcnt_detach(&sc->sc_ev_algnerrc);
evcnt_detach(&sc->sc_ev_rxerrc);
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
evcnt_detach(&sc->sc_ev_cexterr);
else
evcnt_detach(&sc->sc_ev_htdpmc);
evcnt_detach(&sc->sc_ev_tncrs);
evcnt_detach(&sc->sc_ev_tsctc);
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
evcnt_detach(&sc->sc_ev_tsctfc);
else {
evcnt_detach(&sc->sc_ev_cbrdpc);
evcnt_detach(&sc->sc_ev_cbrmpc);
}
}
if (sc->sc_type >= WM_T_82542_2_1) {
evcnt_detach(&sc->sc_ev_tx_xoff);
evcnt_detach(&sc->sc_ev_tx_xon);
evcnt_detach(&sc->sc_ev_rx_xoff);
evcnt_detach(&sc->sc_ev_rx_xon);
evcnt_detach(&sc->sc_ev_rx_macctl);
}
evcnt_detach(&sc->sc_ev_scc);
evcnt_detach(&sc->sc_ev_ecol);
evcnt_detach(&sc->sc_ev_mcc);
evcnt_detach(&sc->sc_ev_latecol);
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc))
evcnt_detach(&sc->sc_ev_cbtmpc);
evcnt_detach(&sc->sc_ev_dc);
evcnt_detach(&sc->sc_ev_prc64);
evcnt_detach(&sc->sc_ev_prc127);
evcnt_detach(&sc->sc_ev_prc255);
evcnt_detach(&sc->sc_ev_prc511);
evcnt_detach(&sc->sc_ev_prc1023);
evcnt_detach(&sc->sc_ev_prc1522);
evcnt_detach(&sc->sc_ev_gprc);
evcnt_detach(&sc->sc_ev_bprc);
evcnt_detach(&sc->sc_ev_mprc);
evcnt_detach(&sc->sc_ev_gptc);
evcnt_detach(&sc->sc_ev_gorc);
evcnt_detach(&sc->sc_ev_gotc);
evcnt_detach(&sc->sc_ev_rnbc);
evcnt_detach(&sc->sc_ev_ruc);
evcnt_detach(&sc->sc_ev_rfc);
evcnt_detach(&sc->sc_ev_roc);
evcnt_detach(&sc->sc_ev_rjc);
if (sc->sc_type >= WM_T_82540) {
evcnt_detach(&sc->sc_ev_mgtprc);
evcnt_detach(&sc->sc_ev_mgtpdc);
evcnt_detach(&sc->sc_ev_mgtptc);
}
evcnt_detach(&sc->sc_ev_tor);
evcnt_detach(&sc->sc_ev_tot);
evcnt_detach(&sc->sc_ev_tpr);
evcnt_detach(&sc->sc_ev_tpt);
evcnt_detach(&sc->sc_ev_ptc64);
evcnt_detach(&sc->sc_ev_ptc127);
evcnt_detach(&sc->sc_ev_ptc255);
evcnt_detach(&sc->sc_ev_ptc511);
evcnt_detach(&sc->sc_ev_ptc1023);
evcnt_detach(&sc->sc_ev_ptc1522);
evcnt_detach(&sc->sc_ev_mptc);
evcnt_detach(&sc->sc_ev_bptc);
if (sc->sc_type >= WM_T_82571)
evcnt_detach(&sc->sc_ev_iac);
if (sc->sc_type < WM_T_82575) {
evcnt_detach(&sc->sc_ev_icrxptc);
evcnt_detach(&sc->sc_ev_icrxatc);
evcnt_detach(&sc->sc_ev_ictxptc);
evcnt_detach(&sc->sc_ev_ictxatc);
evcnt_detach(&sc->sc_ev_ictxqec);
evcnt_detach(&sc->sc_ev_ictxqmtc);
evcnt_detach(&sc->sc_ev_rxdmtc);
evcnt_detach(&sc->sc_ev_icrxoc);
} else if (!WM_IS_ICHPCH(sc)) {
evcnt_detach(&sc->sc_ev_rpthc);
evcnt_detach(&sc->sc_ev_debug1);
evcnt_detach(&sc->sc_ev_debug2);
evcnt_detach(&sc->sc_ev_debug3);
evcnt_detach(&sc->sc_ev_hgptc);
evcnt_detach(&sc->sc_ev_debug4);
evcnt_detach(&sc->sc_ev_rxdmtc);
evcnt_detach(&sc->sc_ev_htcbdpc);
evcnt_detach(&sc->sc_ev_hgorc);
evcnt_detach(&sc->sc_ev_hgotc);
evcnt_detach(&sc->sc_ev_lenerrs);
evcnt_detach(&sc->sc_ev_scvpc);
evcnt_detach(&sc->sc_ev_hrmpc);
}
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc)) {
evcnt_detach(&sc->sc_ev_tlpic);
evcnt_detach(&sc->sc_ev_rlpic);
evcnt_detach(&sc->sc_ev_b2ogprc);
evcnt_detach(&sc->sc_ev_o2bspc);
evcnt_detach(&sc->sc_ev_b2ospc);
evcnt_detach(&sc->sc_ev_o2bgptc);
}
#endif
rnd_detach_source(&sc->rnd_source);
mutex_enter(sc->sc_core_lock);
wm_release_manageability(sc);
wm_release_hw_control(sc);
wm_enable_wakeup(sc);
mutex_exit(sc->sc_core_lock);
mii_detach(&sc->sc_mii, MII_PHY_ANY, MII_OFFSET_ANY);
ether_ifdetach(ifp);
if_detach(ifp);
if_percpuq_destroy(sc->sc_ipq);
ifmedia_fini(&sc->sc_mii.mii_media);
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
mutex_enter(rxq->rxq_lock);
wm_rxdrain(rxq);
mutex_exit(rxq->rxq_lock);
}
for (i = 0; i < sc->sc_nintrs; i++) {
if (sc->sc_ihs[i] != NULL) {
pci_intr_disestablish(sc->sc_pc, sc->sc_ihs[i]);
sc->sc_ihs[i] = NULL;
}
}
pci_intr_release(sc->sc_pc, sc->sc_intrs, sc->sc_nintrs);
workqueue_destroy(sc->sc_queue_wq);
workqueue_destroy(sc->sc_reset_wq);
for (i = 0; i < sc->sc_nqueues; i++)
softint_disestablish(sc->sc_queue[i].wmq_si);
wm_free_txrx_queues(sc);
if (sc->sc_ss) {
bus_space_unmap(sc->sc_st, sc->sc_sh, sc->sc_ss);
sc->sc_ss = 0;
}
if (sc->sc_ios) {
bus_space_unmap(sc->sc_iot, sc->sc_ioh, sc->sc_ios);
sc->sc_ios = 0;
}
if (sc->sc_flashs) {
bus_space_unmap(sc->sc_flasht, sc->sc_flashh, sc->sc_flashs);
sc->sc_flashs = 0;
}
if (sc->sc_core_lock)
mutex_obj_free(sc->sc_core_lock);
if (sc->sc_ich_phymtx)
mutex_obj_free(sc->sc_ich_phymtx);
if (sc->sc_ich_nvmmtx)
mutex_obj_free(sc->sc_ich_nvmmtx);
return 0;
}
static bool
wm_suspend(device_t self, const pmf_qual_t *qual)
{
struct wm_softc *sc = device_private(self);
wm_release_manageability(sc);
wm_release_hw_control(sc);
wm_enable_wakeup(sc);
return true;
}
static bool
wm_resume(device_t self, const pmf_qual_t *qual)
{
struct wm_softc *sc = device_private(self);
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
pcireg_t reg;
char buf[256];
reg = CSR_READ(sc, WMREG_WUS);
if (reg != 0) {
snprintb(buf, sizeof(buf), WUS_FLAGS, reg);
device_printf(sc->sc_dev, "wakeup status %s\n", buf);
CSR_WRITE(sc, WMREG_WUS, 0xffffffff);
}
if (sc->sc_type >= WM_T_PCH2)
wm_resume_workarounds_pchlan(sc);
IFNET_LOCK(ifp);
if ((ifp->if_flags & IFF_UP) == 0) {
if (sc->sc_type >= WM_T_PCH_SPT)
wm_flush_desc_rings(sc);
wm_reset(sc);
if ((sc->sc_flags & WM_F_HAS_AMT) == 0)
wm_get_hw_control(sc);
wm_init_manageability(sc);
} else {
}
IFNET_UNLOCK(ifp);
return true;
}
static bool
wm_watchdog(struct ifnet *ifp)
{
int qid;
struct wm_softc *sc = ifp->if_softc;
uint16_t hang_queue = 0;
for (qid = 0; qid < sc->sc_nqueues; qid++) {
struct wm_txqueue *txq = &sc->sc_queue[qid].wmq_txq;
wm_watchdog_txq(ifp, txq, &hang_queue);
}
#ifdef WM_DEBUG
if (sc->sc_trigger_reset) {
sc->sc_trigger_reset = 0;
hang_queue++;
}
#endif
if (hang_queue == 0)
return true;
if (atomic_swap_uint(&sc->sc_reset_pending, 1) == 0)
workqueue_enqueue(sc->sc_reset_wq, &sc->sc_reset_work, NULL);
return false;
}
static void
wm_handle_reset_work(struct work *work, void *arg)
{
struct wm_softc * const sc = arg;
struct ifnet * const ifp = &sc->sc_ethercom.ec_if;
IFNET_LOCK(ifp);
wm_init(ifp);
IFNET_UNLOCK(ifp);
ifp->if_start(ifp);
atomic_store_relaxed(&sc->sc_reset_pending, 0);
}
static void
wm_watchdog_txq(struct ifnet *ifp, struct wm_txqueue *txq, uint16_t *hang)
{
mutex_enter(txq->txq_lock);
if (txq->txq_sending &&
time_uptime - txq->txq_lastsent > wm_watchdog_timeout)
wm_watchdog_txq_locked(ifp, txq, hang);
mutex_exit(txq->txq_lock);
}
static void
wm_watchdog_txq_locked(struct ifnet *ifp, struct wm_txqueue *txq,
uint16_t *hang)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_queue *wmq = container_of(txq, struct wm_queue, wmq_txq);
KASSERT(mutex_owned(txq->txq_lock));
wm_txeof(txq, UINT_MAX);
if (txq->txq_sending)
*hang |= __BIT(wmq->wmq_id);
if (txq->txq_free == WM_NTXDESC(txq)) {
log(LOG_ERR, "%s: device timeout (lost interrupt)\n",
device_xname(sc->sc_dev));
} else {
#ifdef WM_DEBUG
int i, j;
struct wm_txsoft *txs;
#endif
log(LOG_ERR,
"%s: device timeout (txfree %d txsfree %d txnext %d)\n",
device_xname(sc->sc_dev), txq->txq_free, txq->txq_sfree,
txq->txq_next);
if_statinc(ifp, if_oerrors);
#ifdef WM_DEBUG
for (i = txq->txq_sdirty; i != txq->txq_snext;
i = WM_NEXTTXS(txq, i)) {
txs = &txq->txq_soft[i];
printf("txs %d tx %d -> %d\n",
i, txs->txs_firstdesc, txs->txs_lastdesc);
for (j = txs->txs_firstdesc; ; j = WM_NEXTTX(txq, j)) {
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
printf("\tdesc %d: 0x%" PRIx64 "\n", j,
txq->txq_nq_descs[j].nqtx_data.nqtxd_addr);
printf("\t %#08x%08x\n",
txq->txq_nq_descs[j].nqtx_data.nqtxd_fields,
txq->txq_nq_descs[j].nqtx_data.nqtxd_cmdlen);
} else {
printf("\tdesc %d: 0x%" PRIx64 "\n", j,
(uint64_t)txq->txq_descs[j].wtx_addr.wa_high << 32 |
txq->txq_descs[j].wtx_addr.wa_low);
printf("\t %#04x%02x%02x%08x\n",
txq->txq_descs[j].wtx_fields.wtxu_vlan,
txq->txq_descs[j].wtx_fields.wtxu_options,
txq->txq_descs[j].wtx_fields.wtxu_status,
txq->txq_descs[j].wtx_cmdlen);
}
if (j == txs->txs_lastdesc)
break;
}
}
#endif
}
}
static void
wm_tick(void *arg)
{
struct wm_softc *sc = arg;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
mutex_enter(sc->sc_core_lock);
if (sc->sc_core_stopping) {
mutex_exit(sc->sc_core_lock);
return;
}
wm_update_stats(sc);
if (sc->sc_flags & WM_F_HAS_MII) {
bool dotick = true;
if ((sc->sc_flags & WM_F_DELAY_LINKUP) != 0) {
struct timeval now;
getmicrotime(&now);
if (timercmp(&now, &sc->sc_linkup_delay_time, <))
dotick = false;
else if (sc->sc_linkup_delay_time.tv_sec != 0) {
sc->sc_linkup_delay_time.tv_sec = 0;
sc->sc_linkup_delay_time.tv_usec = 0;
}
}
if (dotick)
mii_tick(&sc->sc_mii);
} else if ((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211)
&& (sc->sc_mediatype == WM_MEDIATYPE_SERDES))
wm_serdes_tick(sc);
else
wm_tbi_tick(sc);
mutex_exit(sc->sc_core_lock);
if (wm_watchdog(ifp))
callout_schedule(&sc->sc_tick_ch, hz);
}
static int
wm_ifflags_cb(struct ethercom *ec)
{
struct ifnet *ifp = &ec->ec_if;
struct wm_softc *sc = ifp->if_softc;
u_short iffchange;
int ecchange;
bool needreset = false;
int rc = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(IFNET_LOCKED(ifp));
mutex_enter(sc->sc_core_lock);
iffchange = ifp->if_flags ^ sc->sc_if_flags;
sc->sc_if_flags = ifp->if_flags;
if ((iffchange & ~(IFF_CANTCHANGE | IFF_DEBUG)) != 0) {
needreset = true;
goto ec;
}
if ((iffchange & IFF_PROMISC) != 0)
wm_set_filter(sc);
wm_set_vlan(sc);
ec:
ecchange = ec->ec_capenable ^ sc->sc_ec_capenable;
sc->sc_ec_capenable = ec->ec_capenable;
if ((ecchange & ~ETHERCAP_EEE) != 0) {
needreset = true;
goto out;
}
wm_set_eee(sc);
out:
if (needreset)
rc = ENETRESET;
mutex_exit(sc->sc_core_lock);
return rc;
}
static bool
wm_phy_need_linkdown_discard(struct wm_softc *sc)
{
switch (sc->sc_phytype) {
case WMPHY_82577:
case WMPHY_82578:
case WMPHY_82579:
case WMPHY_I217:
case WMPHY_82580:
case WMPHY_I350:
return true;
default:
return false;
}
}
static void
wm_set_linkdown_discard(struct wm_softc *sc)
{
for (int i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
mutex_enter(txq->txq_lock);
txq->txq_flags |= WM_TXQ_LINKDOWN_DISCARD;
mutex_exit(txq->txq_lock);
}
}
static void
wm_clear_linkdown_discard(struct wm_softc *sc)
{
for (int i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
mutex_enter(txq->txq_lock);
txq->txq_flags &= ~WM_TXQ_LINKDOWN_DISCARD;
mutex_exit(txq->txq_lock);
}
}
static int
wm_ioctl(struct ifnet *ifp, u_long cmd, void *data)
{
struct wm_softc *sc = ifp->if_softc;
struct ifreq *ifr = (struct ifreq *)data;
struct ifaddr *ifa = (struct ifaddr *)data;
struct sockaddr_dl *sdl;
int error;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (cmd) {
case SIOCADDMULTI:
case SIOCDELMULTI:
break;
default:
KASSERT(IFNET_LOCKED(ifp));
}
if (cmd == SIOCZIFDATA) {
mutex_enter(sc->sc_core_lock);
wm_update_stats(sc);
wm_clear_evcnt(sc);
mutex_exit(sc->sc_core_lock);
}
switch (cmd) {
case SIOCSIFMEDIA:
mutex_enter(sc->sc_core_lock);
if (IFM_SUBTYPE(ifr->ifr_media) == IFM_AUTO ||
(ifr->ifr_media & IFM_FDX) == 0)
ifr->ifr_media &= ~IFM_ETH_FMASK;
if (IFM_SUBTYPE(ifr->ifr_media) != IFM_AUTO) {
if ((ifr->ifr_media & IFM_ETH_FMASK) == IFM_FLOW) {
ifr->ifr_media |=
IFM_ETH_TXPAUSE | IFM_ETH_RXPAUSE;
}
sc->sc_flowflags = ifr->ifr_media & IFM_ETH_FMASK;
}
mutex_exit(sc->sc_core_lock);
error = ifmedia_ioctl(ifp, ifr, &sc->sc_mii.mii_media, cmd);
if (error == 0 && wm_phy_need_linkdown_discard(sc)) {
if (IFM_SUBTYPE(ifr->ifr_media) == IFM_NONE) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: %s: Set linkdown discard flag\n",
device_xname(sc->sc_dev), __func__));
wm_set_linkdown_discard(sc);
}
}
break;
case SIOCINITIFADDR:
mutex_enter(sc->sc_core_lock);
if (ifa->ifa_addr->sa_family == AF_LINK) {
sdl = satosdl(ifp->if_dl->ifa_addr);
(void)sockaddr_dl_setaddr(sdl, sdl->sdl_len,
LLADDR(satosdl(ifa->ifa_addr)), ifp->if_addrlen);
wm_set_filter(sc);
error = 0;
mutex_exit(sc->sc_core_lock);
break;
}
mutex_exit(sc->sc_core_lock);
default:
if (cmd == SIOCSIFFLAGS && wm_phy_need_linkdown_discard(sc)) {
if (((ifp->if_flags & IFF_UP) != 0) &&
((ifr->ifr_flags & IFF_UP) == 0)) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: %s: Set linkdown discard flag\n",
device_xname(sc->sc_dev), __func__));
wm_set_linkdown_discard(sc);
}
}
const int s = splnet();
error = ether_ioctl(ifp, cmd, data);
splx(s);
if (error != ENETRESET)
break;
error = 0;
if (cmd == SIOCSIFCAP)
error = if_init(ifp);
else if (cmd == SIOCADDMULTI || cmd == SIOCDELMULTI) {
mutex_enter(sc->sc_core_lock);
if (sc->sc_if_flags & IFF_RUNNING) {
wm_set_filter(sc);
}
mutex_exit(sc->sc_core_lock);
}
break;
}
return error;
}
static uint16_t
wm_check_alt_mac_addr(struct wm_softc *sc)
{
uint16_t myea[ETHER_ADDR_LEN / 2];
uint16_t offset = NVM_OFF_MACADDR;
if (wm_nvm_read(sc, NVM_OFF_ALT_MAC_ADDR_PTR, 1, &offset) != 0)
return 0;
if ((offset == 0x0000) || (offset == 0xffff))
return 0;
offset += NVM_OFF_MACADDR_82571(sc->sc_funcid);
if (wm_nvm_read(sc, offset, 1, myea) == 0)
if (((myea[0] & 0xff) & 0x01) == 0)
return offset;
return 0;
}
static int
wm_read_mac_addr(struct wm_softc *sc, uint8_t *enaddr)
{
uint16_t myea[ETHER_ADDR_LEN / 2];
uint16_t offset = NVM_OFF_MACADDR;
int do_invert = 0;
switch (sc->sc_type) {
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
offset = NVM_OFF_LAN_FUNC_82580(sc->sc_funcid) + 0;
break;
case WM_T_82571:
case WM_T_82575:
case WM_T_82576:
case WM_T_80003:
case WM_T_I210:
case WM_T_I211:
offset = wm_check_alt_mac_addr(sc);
if (offset == 0)
if ((sc->sc_funcid & 0x01) == 1)
do_invert = 1;
break;
default:
if ((sc->sc_funcid & 0x01) == 1)
do_invert = 1;
break;
}
if (wm_nvm_read(sc, offset, sizeof(myea) / sizeof(myea[0]), myea) != 0)
goto bad;
enaddr[0] = myea[0] & 0xff;
enaddr[1] = myea[0] >> 8;
enaddr[2] = myea[1] & 0xff;
enaddr[3] = myea[1] >> 8;
enaddr[4] = myea[2] & 0xff;
enaddr[5] = myea[2] >> 8;
if (do_invert != 0)
enaddr[5] ^= 1;
return 0;
bad:
return -1;
}
static void
wm_set_ral(struct wm_softc *sc, const uint8_t *enaddr, int idx)
{
uint32_t ral_lo, ral_hi, addrl, addrh;
uint32_t wlock_mac;
int rv;
if (enaddr != NULL) {
ral_lo = (uint32_t)enaddr[0] | ((uint32_t)enaddr[1] << 8) |
((uint32_t)enaddr[2] << 16) | ((uint32_t)enaddr[3] << 24);
ral_hi = (uint32_t)enaddr[4] | ((uint32_t)enaddr[5] << 8);
ral_hi |= RAL_AV;
} else {
ral_lo = 0;
ral_hi = 0;
}
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
CSR_WRITE(sc, WMREG_RAL(idx), ral_lo);
CSR_WRITE_FLUSH(sc);
CSR_WRITE(sc, WMREG_RAH(idx), ral_hi);
CSR_WRITE_FLUSH(sc);
break;
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
if (idx == 0) {
CSR_WRITE(sc, WMREG_CORDOVA_RAL(idx), ral_lo);
CSR_WRITE_FLUSH(sc);
CSR_WRITE(sc, WMREG_CORDOVA_RAH(idx), ral_hi);
CSR_WRITE_FLUSH(sc);
return;
}
if (sc->sc_type != WM_T_PCH2) {
wlock_mac = __SHIFTOUT(CSR_READ(sc, WMREG_FWSM),
FWSM_WLOCK_MAC);
addrl = WMREG_SHRAL(idx - 1);
addrh = WMREG_SHRAH(idx - 1);
} else {
wlock_mac = 0;
addrl = WMREG_PCH_LPT_SHRAL(idx - 1);
addrh = WMREG_PCH_LPT_SHRAH(idx - 1);
}
if ((wlock_mac == 0) || (idx <= wlock_mac)) {
rv = wm_get_swflag_ich8lan(sc);
if (rv != 0)
return;
CSR_WRITE(sc, addrl, ral_lo);
CSR_WRITE_FLUSH(sc);
CSR_WRITE(sc, addrh, ral_hi);
CSR_WRITE_FLUSH(sc);
wm_put_swflag_ich8lan(sc);
}
break;
default:
CSR_WRITE(sc, WMREG_CORDOVA_RAL(idx), ral_lo);
CSR_WRITE_FLUSH(sc);
CSR_WRITE(sc, WMREG_CORDOVA_RAH(idx), ral_hi);
CSR_WRITE_FLUSH(sc);
break;
}
}
static uint32_t
wm_mchash(struct wm_softc *sc, const uint8_t *enaddr)
{
static const int lo_shift[4] = { 4, 3, 2, 0 };
static const int hi_shift[4] = { 4, 5, 6, 8 };
static const int ich8_lo_shift[4] = { 6, 5, 4, 2 };
static const int ich8_hi_shift[4] = { 2, 3, 4, 6 };
uint32_t hash;
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)
|| (sc->sc_type == WM_T_PCH_SPT) || (sc->sc_type == WM_T_PCH_CNP)
|| (sc->sc_type == WM_T_PCH_TGP)) {
hash = (enaddr[4] >> ich8_lo_shift[sc->sc_mchash_type]) |
(((uint16_t)enaddr[5]) << ich8_hi_shift[sc->sc_mchash_type]);
return (hash & 0x3ff);
}
hash = (enaddr[4] >> lo_shift[sc->sc_mchash_type]) |
(((uint16_t)enaddr[5]) << hi_shift[sc->sc_mchash_type]);
return (hash & 0xfff);
}
static int
wm_rar_count(struct wm_softc *sc)
{
int size;
switch (sc->sc_type) {
case WM_T_ICH8:
size = WM_RAL_TABSIZE_ICH8 -1;
break;
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
size = WM_RAL_TABSIZE_ICH8;
break;
case WM_T_PCH2:
size = WM_RAL_TABSIZE_PCH2;
break;
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
size = WM_RAL_TABSIZE_PCH_LPT;
break;
case WM_T_82575:
case WM_T_I210:
case WM_T_I211:
size = WM_RAL_TABSIZE_82575;
break;
case WM_T_82576:
case WM_T_82580:
size = WM_RAL_TABSIZE_82576;
break;
case WM_T_I350:
case WM_T_I354:
size = WM_RAL_TABSIZE_I350;
break;
default:
size = WM_RAL_TABSIZE;
}
return size;
}
static void
wm_set_filter(struct wm_softc *sc)
{
struct ethercom *ec = &sc->sc_ethercom;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct ether_multi *enm;
struct ether_multistep step;
bus_addr_t mta_reg;
uint32_t hash, reg, bit;
int i, size, ralmax, rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(mutex_owned(sc->sc_core_lock));
if (sc->sc_type >= WM_T_82544)
mta_reg = WMREG_CORDOVA_MTA;
else
mta_reg = WMREG_MTA;
sc->sc_rctl &= ~(RCTL_BAM | RCTL_UPE | RCTL_MPE);
if (sc->sc_if_flags & IFF_BROADCAST)
sc->sc_rctl |= RCTL_BAM;
if (sc->sc_if_flags & IFF_PROMISC) {
sc->sc_rctl |= RCTL_UPE;
ETHER_LOCK(ec);
ec->ec_flags |= ETHER_F_ALLMULTI;
ETHER_UNLOCK(ec);
goto allmulti;
}
size = wm_rar_count(sc);
wm_set_ral(sc, CLLADDR(ifp->if_sadl), 0);
if ((sc->sc_type == WM_T_PCH_LPT) || (sc->sc_type == WM_T_PCH_SPT) ||
(sc->sc_type == WM_T_PCH_CNP) || (sc->sc_type == WM_T_PCH_TGP)) {
i = __SHIFTOUT(CSR_READ(sc, WMREG_FWSM), FWSM_WLOCK_MAC);
switch (i) {
case 0:
ralmax = size;
break;
case 1:
ralmax = 1;
break;
default:
ralmax = i + 1;
}
} else
ralmax = size;
for (i = 1; i < size; i++) {
if (i < ralmax)
wm_set_ral(sc, NULL, i);
}
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)
|| (sc->sc_type == WM_T_PCH_SPT) || (sc->sc_type == WM_T_PCH_CNP)
|| (sc->sc_type == WM_T_PCH_TGP))
size = WM_ICH8_MC_TABSIZE;
else
size = WM_MC_TABSIZE;
for (i = 0; i < size; i++) {
CSR_WRITE(sc, mta_reg + (i << 2), 0);
CSR_WRITE_FLUSH(sc);
}
ETHER_LOCK(ec);
ETHER_FIRST_MULTI(step, ec, enm);
while (enm != NULL) {
if (memcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
ec->ec_flags |= ETHER_F_ALLMULTI;
ETHER_UNLOCK(ec);
goto allmulti;
}
hash = wm_mchash(sc, enm->enm_addrlo);
reg = (hash >> 5);
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2)
|| (sc->sc_type == WM_T_PCH_LPT)
|| (sc->sc_type == WM_T_PCH_SPT)
|| (sc->sc_type == WM_T_PCH_CNP)
|| (sc->sc_type == WM_T_PCH_TGP))
reg &= 0x1f;
else
reg &= 0x7f;
bit = hash & 0x1f;
hash = CSR_READ(sc, mta_reg + (reg << 2));
hash |= 1U << bit;
if (sc->sc_type == WM_T_82544 && (reg & 1) != 0) {
bit = CSR_READ(sc, mta_reg + ((reg - 1) << 2));
CSR_WRITE(sc, mta_reg + (reg << 2), hash);
CSR_WRITE_FLUSH(sc);
CSR_WRITE(sc, mta_reg + ((reg - 1) << 2), bit);
CSR_WRITE_FLUSH(sc);
} else {
CSR_WRITE(sc, mta_reg + (reg << 2), hash);
CSR_WRITE_FLUSH(sc);
}
ETHER_NEXT_MULTI(step, enm);
}
ec->ec_flags &= ~ETHER_F_ALLMULTI;
ETHER_UNLOCK(ec);
goto setit;
allmulti:
sc->sc_rctl |= RCTL_MPE;
setit:
if (sc->sc_type >= WM_T_PCH2) {
if (((ec->ec_capabilities & ETHERCAP_JUMBO_MTU) != 0)
&& (ifp->if_mtu > ETHERMTU))
rv = wm_lv_jumbo_workaround_ich8lan(sc, true);
else
rv = wm_lv_jumbo_workaround_ich8lan(sc, false);
if (rv != 0)
device_printf(sc->sc_dev,
"Failed to do workaround for jumbo frame.\n");
}
CSR_WRITE(sc, WMREG_RCTL, sc->sc_rctl);
}
static void
wm_set_vlan(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (VLAN_ATTACHED(&sc->sc_ethercom))
sc->sc_ctrl |= CTRL_VME;
else
sc->sc_ctrl &= ~CTRL_VME;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
}
static void
wm_set_pcie_completion_timeout(struct wm_softc *sc)
{
uint32_t gcr;
pcireg_t ctrl2;
gcr = CSR_READ(sc, WMREG_GCR);
if ((gcr & GCR_CMPL_TMOUT_MASK) != 0)
goto out;
if ((gcr & GCR_CAP_VER2) == 0) {
gcr |= GCR_CMPL_TMOUT_10MS;
goto out;
}
ctrl2 = pci_conf_read(sc->sc_pc, sc->sc_pcitag,
sc->sc_pcixe_capoff + PCIE_DCSR2);
ctrl2 |= WM_PCIE_DCSR2_16MS;
pci_conf_write(sc->sc_pc, sc->sc_pcitag,
sc->sc_pcixe_capoff + PCIE_DCSR2, ctrl2);
out:
gcr &= ~GCR_CMPL_TMOUT_RESEND;
CSR_WRITE(sc, WMREG_GCR, gcr);
}
void
wm_get_auto_rd_done(struct wm_softc *sc)
{
int i;
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
case WM_T_80003:
case WM_T_ICH8:
case WM_T_ICH9:
for (i = 0; i < 10; i++) {
if (CSR_READ(sc, WMREG_EECD) & EECD_EE_AUTORD)
break;
delay(1000);
}
if (i == 10) {
log(LOG_ERR, "%s: auto read from eeprom failed to "
"complete\n", device_xname(sc->sc_dev));
}
break;
default:
break;
}
}
void
wm_lan_init_done(struct wm_softc *sc)
{
uint32_t reg = 0;
int i;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (sc->sc_type) {
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
for (i = 0; i < WM_ICH8_LAN_INIT_TIMEOUT; i++) {
reg = CSR_READ(sc, WMREG_STATUS);
if ((reg & STATUS_LAN_INIT_DONE) != 0)
break;
delay(100);
}
if (i >= WM_ICH8_LAN_INIT_TIMEOUT) {
log(LOG_ERR, "%s: %s: lan_init_done failed to "
"complete\n", device_xname(sc->sc_dev), __func__);
}
break;
default:
panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
__func__);
break;
}
reg &= ~STATUS_LAN_INIT_DONE;
CSR_WRITE(sc, WMREG_STATUS, reg);
}
void
wm_get_cfg_done(struct wm_softc *sc)
{
int mask;
uint32_t reg;
int i;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
break;
case WM_T_82543:
case WM_T_82544:
case WM_T_82540:
case WM_T_82545:
case WM_T_82545_3:
case WM_T_82546:
case WM_T_82546_3:
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
delay(10*1000);
break;
case WM_T_80003:
case WM_T_82571:
case WM_T_82572:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
if (sc->sc_type == WM_T_82571) {
mask = EEMNGCTL_CFGDONE_0;
} else
mask = EEMNGCTL_CFGDONE_0 << sc->sc_funcid;
for (i = 0; i < WM_PHY_CFG_TIMEOUT; i++) {
if (CSR_READ(sc, WMREG_EEMNGCTL) & mask)
break;
delay(1000);
}
if (i >= WM_PHY_CFG_TIMEOUT)
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s failed\n",
device_xname(sc->sc_dev), __func__));
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
delay(10*1000);
if (sc->sc_type >= WM_T_ICH10)
wm_lan_init_done(sc);
else
wm_get_auto_rd_done(sc);
reg = CSR_READ(sc, WMREG_STATUS);
if ((reg & STATUS_PHYRA) != 0)
CSR_WRITE(sc, WMREG_STATUS, reg & ~STATUS_PHYRA);
break;
default:
panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
__func__);
break;
}
}
int
wm_phy_post_reset(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
uint16_t reg;
int rv = 0;
if (sc->sc_type < WM_T_ICH8)
return 0;
if (wm_phy_resetisblocked(sc)) {
device_printf(dev, "PHY is blocked\n");
return -1;
}
delay(10*1000);
if (sc->sc_type == WM_T_PCH)
rv = wm_hv_phy_workarounds_ich8lan(sc);
else if (sc->sc_type == WM_T_PCH2)
rv = wm_lv_phy_workarounds_ich8lan(sc);
if (rv != 0)
return rv;
if (sc->sc_type >= WM_T_PCH) {
wm_gmii_hv_readreg(dev, 2, BM_PORT_GEN_CFG, ®);
reg &= ~BM_WUC_HOST_WU_BIT;
wm_gmii_hv_writereg(dev, 2, BM_PORT_GEN_CFG, reg);
}
if ((rv = wm_init_lcd_from_nvm(sc)) != 0)
return rv;
rv = wm_oem_bits_config_ich8lan(sc, true);
if (sc->sc_type == WM_T_PCH2) {
if ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID) == 0) {
delay(10 * 1000);
wm_gate_hw_phy_config_ich8lan(sc, false);
}
rv = sc->phy.acquire(sc);
if (rv)
return rv;
rv = wm_write_emi_reg_locked(dev,
I82579_LPI_UPDATE_TIMER, 0x1387);
sc->phy.release(sc);
}
return rv;
}
static int
wm_write_smbus_addr(struct wm_softc *sc)
{
uint32_t strap, freq;
uint16_t phy_data;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(CSR_READ(sc, WMREG_EXTCNFCTR) & EXTCNFCTR_MDIO_SW_OWNERSHIP);
strap = CSR_READ(sc, WMREG_STRAP);
freq = __SHIFTOUT(strap, STRAP_FREQ);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, HV_SMB_ADDR, &phy_data);
if (rv != 0)
return rv;
phy_data &= ~HV_SMB_ADDR_ADDR;
phy_data |= __SHIFTOUT(strap, STRAP_SMBUSADDR);
phy_data |= HV_SMB_ADDR_PEC_EN | HV_SMB_ADDR_VALID;
if (sc->sc_phytype == WMPHY_I217) {
if (freq --) {
phy_data &= ~(HV_SMB_ADDR_FREQ_LOW
| HV_SMB_ADDR_FREQ_HIGH);
phy_data |= __SHIFTIN((freq & 0x01) != 0,
HV_SMB_ADDR_FREQ_LOW);
phy_data |= __SHIFTIN((freq & 0x02) != 0,
HV_SMB_ADDR_FREQ_HIGH);
} else
DPRINTF(sc, WM_DEBUG_INIT,
("%s: %s Unsupported SMB frequency in PHY\n",
device_xname(sc->sc_dev), __func__));
}
return wm_gmii_hv_writereg_locked(sc->sc_dev, 2, HV_SMB_ADDR,
phy_data);
}
static int
wm_init_lcd_from_nvm(struct wm_softc *sc)
{
uint32_t extcnfctr, sw_cfg_mask, cnf_size, word_addr, i, reg;
uint16_t phy_page = 0;
int rv = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (sc->sc_type) {
case WM_T_ICH8:
if ((sc->sc_phytype == WMPHY_UNKNOWN)
|| (sc->sc_phytype != WMPHY_IGP_3))
return 0;
if ((sc->sc_pcidevid == PCI_PRODUCT_INTEL_82801H_AMT)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_82801H_LAN)) {
sw_cfg_mask = FEXTNVM_SW_CONFIG;
break;
}
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
sw_cfg_mask = FEXTNVM_SW_CONFIG_ICH8M;
break;
default:
return 0;
}
if ((rv = sc->phy.acquire(sc)) != 0)
return rv;
reg = CSR_READ(sc, WMREG_FEXTNVM);
if ((reg & sw_cfg_mask) == 0)
goto release;
extcnfctr = CSR_READ(sc, WMREG_EXTCNFCTR);
if ((sc->sc_type < WM_T_PCH2)
&& ((extcnfctr & EXTCNFCTR_PCIE_WRITE_ENABLE) != 0))
goto release;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s: Configure LCD by software\n",
device_xname(sc->sc_dev), __func__));
word_addr = __SHIFTOUT(extcnfctr, EXTCNFCTR_EXT_CNF_POINTER) << 1;
reg = CSR_READ(sc, WMREG_EXTCNFSIZE);
cnf_size = __SHIFTOUT(reg, EXTCNFSIZE_LENGTH);
if (cnf_size == 0)
goto release;
if (((sc->sc_type == WM_T_PCH)
&& ((extcnfctr & EXTCNFCTR_OEM_WRITE_ENABLE) == 0))
|| (sc->sc_type > WM_T_PCH)) {
DPRINTF(sc, WM_DEBUG_INIT,
("%s: %s: Configure SMBus and LED\n",
device_xname(sc->sc_dev), __func__));
if ((rv = wm_write_smbus_addr(sc)) != 0)
goto release;
reg = CSR_READ(sc, WMREG_LEDCTL);
rv = wm_gmii_hv_writereg_locked(sc->sc_dev, 1, HV_LED_CONFIG,
(uint16_t)reg);
if (rv != 0)
goto release;
}
for (i = 0; i < cnf_size; i++) {
uint16_t reg_data, reg_addr;
if (wm_nvm_read(sc, (word_addr + i * 2), 1, ®_data) != 0)
goto release;
if (wm_nvm_read(sc, (word_addr + i * 2 + 1), 1, ®_addr) !=0)
goto release;
if (reg_addr == IGPHY_PAGE_SELECT)
phy_page = reg_data;
reg_addr &= IGPHY_MAXREGADDR;
reg_addr |= phy_page;
KASSERT(sc->phy.writereg_locked != NULL);
rv = sc->phy.writereg_locked(sc->sc_dev, 1, reg_addr,
reg_data);
}
release:
sc->phy.release(sc);
return rv;
}
int
wm_oem_bits_config_ich8lan(struct wm_softc *sc, bool d0_state)
{
uint32_t mac_reg;
uint16_t oem_reg;
int rv;
if (sc->sc_type < WM_T_PCH)
return 0;
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
if (sc->sc_type == WM_T_PCH) {
mac_reg = CSR_READ(sc, WMREG_EXTCNFCTR);
if ((mac_reg & EXTCNFCTR_OEM_WRITE_ENABLE) != 0)
goto release;
}
mac_reg = CSR_READ(sc, WMREG_FEXTNVM);
if ((mac_reg & FEXTNVM_SW_CONFIG_ICH8M) == 0)
goto release;
mac_reg = CSR_READ(sc, WMREG_PHY_CTRL);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 1, HV_OEM_BITS, &oem_reg);
if (rv != 0)
goto release;
oem_reg &= ~(HV_OEM_BITS_A1KDIS | HV_OEM_BITS_LPLU);
if (d0_state) {
if ((mac_reg & PHY_CTRL_GBE_DIS) != 0)
oem_reg |= HV_OEM_BITS_A1KDIS;
if ((mac_reg & PHY_CTRL_D0A_LPLU) != 0)
oem_reg |= HV_OEM_BITS_LPLU;
} else {
if ((mac_reg & (PHY_CTRL_GBE_DIS | PHY_CTRL_NOND0A_GBE_DIS))
!= 0)
oem_reg |= HV_OEM_BITS_A1KDIS;
if ((mac_reg & (PHY_CTRL_D0A_LPLU | PHY_CTRL_NOND0A_LPLU))
!= 0)
oem_reg |= HV_OEM_BITS_LPLU;
}
if ((d0_state || (sc->sc_type != WM_T_PCH))
&& (wm_phy_resetisblocked(sc) == false))
oem_reg |= HV_OEM_BITS_ANEGNOW;
rv = wm_gmii_hv_writereg_locked(sc->sc_dev, 1, HV_OEM_BITS, oem_reg);
release:
sc->phy.release(sc);
return rv;
}
void
wm_initialize_hardware_bits(struct wm_softc *sc)
{
uint32_t tarc0, tarc1, reg;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (((sc->sc_type >= WM_T_82571) && (sc->sc_type <= WM_T_82583))
|| WM_IS_ICHPCH(sc)) {
reg = CSR_READ(sc, WMREG_TXDCTL(0));
reg |= TXDCTL_COUNT_DESC;
CSR_WRITE(sc, WMREG_TXDCTL(0), reg);
reg = CSR_READ(sc, WMREG_TXDCTL(1));
reg |= TXDCTL_COUNT_DESC;
CSR_WRITE(sc, WMREG_TXDCTL(1), reg);
tarc0 = CSR_READ(sc, WMREG_TARC0);
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
case WM_T_80003:
tarc0 &= ~__BITS(30, 27);
break;
default:
break;
}
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
tarc0 |= __BITS(26, 23);
tarc1 = CSR_READ(sc, WMREG_TARC1);
tarc1 &= ~__BITS(30, 29);
tarc1 |= __BITS(26, 24);
tarc1 |= __BIT(22);
if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
tarc1 &= ~__BIT(28);
else
tarc1 |= __BIT(28);
CSR_WRITE(sc, WMREG_TARC1, tarc1);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_DMA_DYN_CLK;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
break;
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
if ((sc->sc_type == WM_T_82574)
|| (sc->sc_type == WM_T_82583))
tarc0 |= __BIT(26);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~__BIT(23);
reg |= __BIT(22);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
sc->sc_ctrl &= ~__BIT(29);
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
reg = CSR_READ(sc, WMREG_GCR);
reg |= GCR_L1_ACT_WITHOUT_L0S_RX;
CSR_WRITE(sc, WMREG_GCR, reg);
if ((sc->sc_type == WM_T_82574)
|| (sc->sc_type == WM_T_82583)) {
reg = CSR_READ(sc, WMREG_GCR);
reg |= __BIT(22);
CSR_WRITE(sc, WMREG_GCR, reg);
reg = CSR_READ(sc, WMREG_GCR2);
reg |= __BIT(0);
CSR_WRITE(sc, WMREG_GCR2, reg);
}
break;
case WM_T_80003:
if ((sc->sc_mediatype == WM_MEDIATYPE_FIBER)
|| (sc->sc_mediatype == WM_MEDIATYPE_SERDES))
tarc0 &= ~__BIT(20);
tarc1 = CSR_READ(sc, WMREG_TARC1);
if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
tarc1 &= ~__BIT(28);
else
tarc1 |= __BIT(28);
CSR_WRITE(sc, WMREG_TARC1, tarc1);
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
if (sc->sc_type == WM_T_ICH8) {
tarc0 |= __BITS(29, 28);
} else if (sc->sc_type == WM_T_PCH_SPT) {
tarc0 |= __BIT(29);
tarc0 &= ~__BIT(28);
}
tarc0 |= __BITS(27, 26) | __BITS(24, 23);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= __BIT(22);
if (sc->sc_type >= WM_T_PCH)
reg |= CTRL_EXT_PHYPDEN;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
tarc1 = CSR_READ(sc, WMREG_TARC1);
if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
tarc1 &= ~__BIT(28);
else
tarc1 |= __BIT(28);
tarc1 |= __BIT(24) | __BIT(26) | __BIT(30);
CSR_WRITE(sc, WMREG_TARC1, tarc1);
if (sc->sc_type == WM_T_ICH8) {
reg = CSR_READ(sc, WMREG_STATUS);
reg &= ~__BIT(31);
CSR_WRITE(sc, WMREG_STATUS, reg);
}
if (sc->sc_type == WM_T_PCH_SPT) {
reg = CSR_READ(sc, WMREG_IOSFPC);
reg |= RCTL_RDMTS_HEX;
CSR_WRITE(sc, WMREG_IOSFPC, reg);
}
reg = CSR_READ(sc, WMREG_RFCTL);
reg |= WMREG_RFCTL_NFSWDIS | WMREG_RFCTL_NFSRDIS;
CSR_WRITE(sc, WMREG_RFCTL, reg);
break;
default:
break;
}
CSR_WRITE(sc, WMREG_TARC0, tarc0);
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_80003:
case WM_T_ICH8:
reg = CSR_READ(sc, WMREG_RFCTL);
reg |= WMREG_RFCTL_NEWIPV6EXDIS |WMREG_RFCTL_IPV6EXDIS;
CSR_WRITE(sc, WMREG_RFCTL, reg);
break;
case WM_T_82574:
reg = CSR_READ(sc, WMREG_RFCTL);
reg |= WMREG_RFCTL_EXSTEN;
CSR_WRITE(sc, WMREG_RFCTL, reg);
break;
default:
break;
}
} else if ((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211)) {
reg = CSR_READ(sc, WMREG_RFCTL);
reg |= WMREG_RFCTL_IPV6EXDIS;
CSR_WRITE(sc, WMREG_RFCTL, reg);
}
}
static uint32_t
wm_rxpbs_adjust_82580(uint32_t val)
{
uint32_t rv = 0;
if (val < __arraycount(wm_82580_rxpbs_table))
rv = wm_82580_rxpbs_table[val];
return rv;
}
static int
wm_reset_phy(struct wm_softc *sc)
{
uint32_t reg;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (wm_phy_resetisblocked(sc))
return -1;
rv = sc->phy.acquire(sc);
if (rv) {
device_printf(sc->sc_dev, "%s: failed to acquire phy: %d\n",
__func__, rv);
return rv;
}
reg = CSR_READ(sc, WMREG_CTRL);
CSR_WRITE(sc, WMREG_CTRL, reg | CTRL_PHY_RESET);
CSR_WRITE_FLUSH(sc);
delay(sc->phy.reset_delay_us);
CSR_WRITE(sc, WMREG_CTRL, reg);
CSR_WRITE_FLUSH(sc);
delay(150);
sc->phy.release(sc);
wm_get_cfg_done(sc);
wm_phy_post_reset(sc);
return 0;
}
static void
wm_flush_desc_rings(struct wm_softc *sc)
{
pcireg_t preg;
uint32_t reg;
struct wm_txqueue *txq;
wiseman_txdesc_t *txd;
int nexttx;
uint32_t rctl;
KASSERT(IFNET_LOCKED(&sc->sc_ethercom.ec_if));
reg = CSR_READ(sc, WMREG_FEXTNVM11);
reg |= FEXTNVM11_DIS_MULRFIX;
CSR_WRITE(sc, WMREG_FEXTNVM11, reg);
preg = pci_conf_read(sc->sc_pc, sc->sc_pcitag, WM_PCI_DESCRING_STATUS);
reg = CSR_READ(sc, WMREG_TDLEN(0));
if (((preg & DESCRING_STATUS_FLUSH_REQ) == 0) || (reg == 0))
return;
#ifdef WM_DEBUG
device_printf(sc->sc_dev, "Need TX flush (reg = %08x)\n", preg);
#endif
reg = CSR_READ(sc, WMREG_TCTL);
CSR_WRITE(sc, WMREG_TCTL, reg | TCTL_EN);
txq = &sc->sc_queue[0].wmq_txq;
nexttx = txq->txq_next;
txd = &txq->txq_descs[nexttx];
wm_set_dma_addr(&txd->wtx_addr, txq->txq_desc_dma);
txd->wtx_cmdlen = htole32(WTX_CMD_IFCS | 512);
txd->wtx_fields.wtxu_status = 0;
txd->wtx_fields.wtxu_options = 0;
txd->wtx_fields.wtxu_vlan = 0;
wm_cdtxsync(txq, 0, WM_NTXDESC(txq),
BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
txq->txq_next = WM_NEXTTX(txq, txq->txq_next);
CSR_WRITE(sc, WMREG_TDT(0), txq->txq_next);
CSR_WRITE_FLUSH(sc);
delay(250);
preg = pci_conf_read(sc->sc_pc, sc->sc_pcitag, WM_PCI_DESCRING_STATUS);
if ((preg & DESCRING_STATUS_FLUSH_REQ) == 0)
return;
#ifdef WM_DEBUG
device_printf(sc->sc_dev, "Need RX flush (reg = %08x)\n", preg);
#endif
rctl = CSR_READ(sc, WMREG_RCTL);
CSR_WRITE(sc, WMREG_RCTL, rctl & ~RCTL_EN);
CSR_WRITE_FLUSH(sc);
delay(150);
reg = CSR_READ(sc, WMREG_RXDCTL(0));
reg &= 0xffffc000;
reg |= (0x1f | (1 << 8) | RXDCTL_GRAN);
CSR_WRITE(sc, WMREG_RXDCTL(0), reg);
CSR_WRITE(sc, WMREG_RCTL, rctl | RCTL_EN);
CSR_WRITE_FLUSH(sc);
delay(150);
CSR_WRITE(sc, WMREG_RCTL, rctl & ~RCTL_EN);
}
static void
wm_reset(struct wm_softc *sc)
{
int phy_reset = 0;
int i, error = 0;
uint32_t reg;
uint16_t kmreg;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(sc->sc_type != 0);
switch (sc->sc_type) {
case WM_T_82547:
case WM_T_82547_2:
sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 8192 ?
PBA_22K : PBA_30K;
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
txq->txq_fifo_head = 0;
txq->txq_fifo_addr = sc->sc_pba << PBA_ADDR_SHIFT;
txq->txq_fifo_size =
(PBA_40K - sc->sc_pba) << PBA_BYTE_SHIFT;
txq->txq_fifo_stall = 0;
}
break;
case WM_T_82571:
case WM_T_82572:
case WM_T_82575:
case WM_T_80003:
sc->sc_pba = PBA_32K;
break;
case WM_T_82573:
sc->sc_pba = PBA_12K;
break;
case WM_T_82574:
case WM_T_82583:
sc->sc_pba = PBA_20K;
break;
case WM_T_82576:
sc->sc_pba = CSR_READ(sc, WMREG_RXPBS);
sc->sc_pba &= RXPBS_SIZE_MASK_82576;
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
sc->sc_pba = wm_rxpbs_adjust_82580(CSR_READ(sc, WMREG_RXPBS));
break;
case WM_T_I210:
case WM_T_I211:
sc->sc_pba = PBA_34K;
break;
case WM_T_ICH8:
sc->sc_pba = PBA_8K;
CSR_WRITE(sc, WMREG_PBS, PBA_16K);
break;
case WM_T_ICH9:
case WM_T_ICH10:
sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 4096 ?
PBA_14K : PBA_10K;
break;
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 1500 ?
PBA_12K : PBA_26K;
break;
default:
sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 8192 ?
PBA_40K : PBA_48K;
break;
}
if (((sc->sc_flags & WM_F_NEWQUEUE) == 0)
|| (sc->sc_type == WM_T_82575))
CSR_WRITE(sc, WMREG_PBA, sc->sc_pba);
if (sc->sc_flags & WM_F_PCIE) {
int timeout = 800;
sc->sc_ctrl |= CTRL_GIO_M_DIS;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
while (timeout--) {
if ((CSR_READ(sc, WMREG_STATUS) & STATUS_GIO_M_ENA)
== 0)
break;
delay(100);
}
if (timeout == 0)
device_printf(sc->sc_dev,
"failed to disable bus mastering\n");
}
if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
|| (sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
|| (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211))
wm_set_pcie_completion_timeout(sc);
CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
if (wm_is_using_msix(sc)) {
if (sc->sc_type != WM_T_82574) {
CSR_WRITE(sc, WMREG_EIMC, 0xffffffffU);
CSR_WRITE(sc, WMREG_EIAC, 0);
} else
CSR_WRITE(sc, WMREG_EIAC_82574, 0);
}
CSR_WRITE(sc, WMREG_RCTL, 0);
sc->sc_rctl &= ~RCTL_EN;
CSR_WRITE(sc, WMREG_TCTL, TCTL_PSP);
CSR_WRITE_FLUSH(sc);
delay(10*1000);
switch (sc->sc_type) {
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
error = wm_get_hw_semaphore_82573(sc);
break;
default:
break;
}
if ((sc->sc_type == WM_T_82541) || (sc->sc_type == WM_T_82547)) {
CSR_WRITE(sc, WMREG_CTRL,
CSR_READ(sc, WMREG_CTRL) | CTRL_PHY_RESET);
CSR_WRITE_FLUSH(sc);
delay(5000);
}
switch (sc->sc_type) {
case WM_T_82544:
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
if (sc->sc_flags & WM_F_IOH_VALID)
wm_io_write(sc, WMREG_CTRL, CTRL_RST);
else
CSR_WRITE(sc, WMREG_CTRL, CTRL_RST);
break;
case WM_T_82545_3:
case WM_T_82546_3:
CSR_WRITE(sc, WMREG_CTRL_SHADOW, CTRL_RST);
break;
case WM_T_80003:
reg = CSR_READ(sc, WMREG_CTRL) | CTRL_RST;
if (sc->phy.acquire(sc) != 0)
break;
CSR_WRITE(sc, WMREG_CTRL, reg);
sc->phy.release(sc);
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
reg = CSR_READ(sc, WMREG_CTRL) | CTRL_RST;
if (wm_phy_resetisblocked(sc) == false) {
if ((sc->sc_type == WM_T_PCH2)
&& ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID)
== 0))
wm_gate_hw_phy_config_ich8lan(sc, true);
reg |= CTRL_PHY_RESET;
phy_reset = 1;
} else
device_printf(sc->sc_dev, "XXX reset is blocked!!!\n");
if (sc->phy.acquire(sc) != 0)
break;
CSR_WRITE(sc, WMREG_CTRL, reg);
delay(20*1000);
mutex_exit(sc->sc_ich_phymtx);
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
CSR_WRITE(sc, WMREG_CTRL, CSR_READ(sc, WMREG_CTRL) | CTRL_RST);
if (sc->sc_pcidevid != PCI_PRODUCT_INTEL_DH89XXCC_SGMII)
CSR_WRITE_FLUSH(sc);
delay(5000);
break;
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
case WM_T_82540:
case WM_T_82545:
case WM_T_82546:
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82575:
case WM_T_82576:
case WM_T_82583:
default:
CSR_WRITE(sc, WMREG_CTRL, CSR_READ(sc, WMREG_CTRL) | CTRL_RST);
break;
}
switch (sc->sc_type) {
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
if (error == 0)
wm_put_hw_semaphore_82573(sc);
break;
default:
break;
}
if (sc->sc_type == WM_T_PCH2) {
reg = CSR_READ(sc, WMREG_FEXTNVM3);
reg &= ~FEXTNVM3_PHY_CFG_COUNTER_MASK;
reg |= FEXTNVM3_PHY_CFG_COUNTER_50MS;
CSR_WRITE(sc, WMREG_FEXTNVM3, reg);
}
if (phy_reset != 0)
wm_get_cfg_done(sc);
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
case WM_T_82544:
delay(10);
reg = CSR_READ(sc, WMREG_CTRL_EXT) | CTRL_EXT_EE_RST;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
CSR_WRITE_FLUSH(sc);
delay(2000);
break;
case WM_T_82540:
case WM_T_82545:
case WM_T_82545_3:
case WM_T_82546:
case WM_T_82546_3:
delay(5*1000);
break;
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
delay(20000);
break;
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
if (sc->sc_flags & WM_F_EEPROM_FLASH) {
delay(10);
reg = CSR_READ(sc, WMREG_CTRL_EXT) | CTRL_EXT_EE_RST;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
CSR_WRITE_FLUSH(sc);
}
wm_get_auto_rd_done(sc);
if ((sc->sc_type == WM_T_82573) || (sc->sc_type == WM_T_82574)
|| (sc->sc_type == WM_T_82583))
delay(25*1000);
break;
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
case WM_T_80003:
wm_get_auto_rd_done(sc);
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
break;
default:
panic("%s: unknown type\n", __func__);
}
switch (sc->sc_type) {
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_ICH8:
case WM_T_ICH9:
if ((CSR_READ(sc, WMREG_EECD) & EECD_EE_PRES) == 0) {
sc->sc_flags |= WM_F_EEPROM_INVALID;
if (sc->sc_type == WM_T_82575)
wm_reset_init_script_82575(sc);
}
break;
default:
break;
}
if (phy_reset != 0)
wm_phy_post_reset(sc);
if ((sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)) {
CSR_WRITE(sc, WMREG_STATUS, STATUS_DEV_RST_SET);
}
CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
reg = CSR_READ(sc, WMREG_ICR);
if (wm_is_using_msix(sc)) {
if (sc->sc_type != WM_T_82574) {
CSR_WRITE(sc, WMREG_EIMC, 0xffffffffU);
CSR_WRITE(sc, WMREG_EIAC, 0);
} else
CSR_WRITE(sc, WMREG_EIAC_82574, 0);
}
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)
|| (sc->sc_type == WM_T_PCH_SPT) || (sc->sc_type == WM_T_PCH_CNP)
|| (sc->sc_type == WM_T_PCH_TGP)) {
reg = CSR_READ(sc, WMREG_KABGTXD);
reg |= KABGTXD_BGSQLBIAS;
CSR_WRITE(sc, WMREG_KABGTXD, reg);
}
sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
wm_set_eee(sc);
if (sc->sc_type == WM_T_PCH)
CSR_WRITE(sc, WMREG_CRC_OFFSET, 0x65656565);
if (sc->sc_type >= WM_T_82544)
CSR_WRITE(sc, WMREG_WUC, 0);
if (sc->sc_type < WM_T_82575)
wm_disable_aspm(sc);
wm_reset_mdicnfg_82580(sc);
if ((sc->sc_flags & WM_F_PLL_WA_I210) != 0)
wm_pll_workaround_i210(sc);
if (sc->sc_type == WM_T_80003) {
sc->sc_flags |= WM_F_80003_MDIC_WA;
rv = wm_kmrn_readreg(sc,
KUMCTRLSTA_OFFSET >> KUMCTRLSTA_OFFSET_SHIFT, &kmreg);
if (rv == 0) {
if ((kmreg & KUMCTRLSTA_OPMODE_MASK)
== KUMCTRLSTA_OPMODE_INBAND_MDIO)
sc->sc_flags &= ~WM_F_80003_MDIC_WA;
else
sc->sc_flags |= WM_F_80003_MDIC_WA;
}
}
}
static int
wm_add_rxbuf(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
struct wm_rxsoft *rxs = &rxq->rxq_soft[idx];
struct mbuf *m;
int error;
KASSERT(mutex_owned(rxq->rxq_lock));
MGETHDR(m, M_DONTWAIT, MT_DATA);
if (m == NULL)
return ENOBUFS;
MCLAIM(m, &sc->sc_ethercom.ec_rx_mowner);
MCLGET(m, M_DONTWAIT);
if ((m->m_flags & M_EXT) == 0) {
m_freem(m);
return ENOBUFS;
}
if (rxs->rxs_mbuf != NULL)
bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
rxs->rxs_mbuf = m;
m->m_len = m->m_pkthdr.len = m->m_ext.ext_size;
error = bus_dmamap_load(sc->sc_dmat, rxs->rxs_dmamap, m->m_ext.ext_buf,
m->m_ext.ext_size, NULL, BUS_DMA_READ | BUS_DMA_NOWAIT);
if (error) {
aprint_error_dev(sc->sc_dev,
"unable to load rx DMA map %d, error = %d\n", idx, error);
panic("wm_add_rxbuf");
}
bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
if ((sc->sc_rctl & RCTL_EN) != 0)
wm_init_rxdesc(rxq, idx);
} else
wm_init_rxdesc(rxq, idx);
return 0;
}
static void
wm_rxdrain(struct wm_rxqueue *rxq)
{
struct wm_softc *sc = rxq->rxq_sc;
struct wm_rxsoft *rxs;
int i;
KASSERT(mutex_owned(rxq->rxq_lock));
for (i = 0; i < WM_NRXDESC; i++) {
rxs = &rxq->rxq_soft[i];
if (rxs->rxs_mbuf != NULL) {
bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
m_freem(rxs->rxs_mbuf);
rxs->rxs_mbuf = NULL;
}
}
}
static void
wm_init_rss(struct wm_softc *sc)
{
uint32_t mrqc, reta_reg, rss_key[RSSRK_NUM_REGS];
int i;
CTASSERT(sizeof(rss_key) == RSS_KEYSIZE);
for (i = 0; i < RETA_NUM_ENTRIES; i++) {
unsigned int qid, reta_ent;
qid = i % sc->sc_nqueues;
switch (sc->sc_type) {
case WM_T_82574:
reta_ent = __SHIFTIN(qid,
RETA_ENT_QINDEX_MASK_82574);
break;
case WM_T_82575:
reta_ent = __SHIFTIN(qid,
RETA_ENT_QINDEX1_MASK_82575);
break;
default:
reta_ent = __SHIFTIN(qid, RETA_ENT_QINDEX_MASK);
break;
}
reta_reg = CSR_READ(sc, WMREG_RETA_Q(i));
reta_reg &= ~RETA_ENTRY_MASK_Q(i);
reta_reg |= __SHIFTIN(reta_ent, RETA_ENTRY_MASK_Q(i));
CSR_WRITE(sc, WMREG_RETA_Q(i), reta_reg);
}
rss_getkey((uint8_t *)rss_key);
for (i = 0; i < RSSRK_NUM_REGS; i++)
CSR_WRITE(sc, WMREG_RSSRK(i), rss_key[i]);
if (sc->sc_type == WM_T_82574)
mrqc = MRQC_ENABLE_RSS_MQ_82574;
else
mrqc = MRQC_ENABLE_RSS_MQ;
mrqc |= (MRQC_RSS_FIELD_IPV4 | MRQC_RSS_FIELD_IPV4_TCP);
mrqc |= (MRQC_RSS_FIELD_IPV6 | MRQC_RSS_FIELD_IPV6_TCP);
#if 0
mrqc |= (MRQC_RSS_FIELD_IPV4_UDP | MRQC_RSS_FIELD_IPV6_UDP);
mrqc |= MRQC_RSS_FIELD_IPV6_UDP_EX;
#endif
mrqc |= MRQC_RSS_FIELD_IPV6_TCP_EX;
CSR_WRITE(sc, WMREG_MRQC, mrqc);
}
static void
wm_adjust_qnum(struct wm_softc *sc, int nvectors)
{
int hw_ntxqueues, hw_nrxqueues, hw_nqueues;
if (nvectors < 2) {
sc->sc_nqueues = 1;
return;
}
switch (sc->sc_type) {
case WM_T_82572:
hw_ntxqueues = 2;
hw_nrxqueues = 2;
break;
case WM_T_82574:
hw_ntxqueues = 2;
hw_nrxqueues = 2;
break;
case WM_T_82575:
hw_ntxqueues = 4;
hw_nrxqueues = 4;
break;
case WM_T_82576:
hw_ntxqueues = 16;
hw_nrxqueues = 16;
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
hw_ntxqueues = 8;
hw_nrxqueues = 8;
break;
case WM_T_I210:
hw_ntxqueues = 4;
hw_nrxqueues = 4;
break;
case WM_T_I211:
hw_ntxqueues = 2;
hw_nrxqueues = 2;
break;
default:
hw_ntxqueues = 1;
hw_nrxqueues = 1;
break;
}
hw_nqueues = uimin(hw_ntxqueues, hw_nrxqueues);
if (nvectors < hw_nqueues + 1)
sc->sc_nqueues = nvectors - 1;
else
sc->sc_nqueues = hw_nqueues;
if (ncpu < sc->sc_nqueues)
sc->sc_nqueues = ncpu;
}
static inline bool
wm_is_using_msix(struct wm_softc *sc)
{
return (sc->sc_nintrs > 1);
}
static inline bool
wm_is_using_multiqueue(struct wm_softc *sc)
{
return (sc->sc_nqueues > 1);
}
static int
wm_softint_establish_queue(struct wm_softc *sc, int qidx, int intr_idx)
{
struct wm_queue *wmq = &sc->sc_queue[qidx];
wmq->wmq_id = qidx;
wmq->wmq_intr_idx = intr_idx;
wmq->wmq_si = softint_establish(SOFTINT_NET | SOFTINT_MPSAFE,
wm_handle_queue, wmq);
if (wmq->wmq_si != NULL)
return 0;
aprint_error_dev(sc->sc_dev, "unable to establish queue[%d] handler\n",
wmq->wmq_id);
pci_intr_disestablish(sc->sc_pc, sc->sc_ihs[wmq->wmq_intr_idx]);
sc->sc_ihs[wmq->wmq_intr_idx] = NULL;
return ENOMEM;
}
static int
wm_setup_legacy(struct wm_softc *sc)
{
pci_chipset_tag_t pc = sc->sc_pc;
const char *intrstr = NULL;
char intrbuf[PCI_INTRSTR_LEN];
int error;
error = wm_alloc_txrx_queues(sc);
if (error) {
aprint_error_dev(sc->sc_dev, "cannot allocate queues %d\n",
error);
return ENOMEM;
}
intrstr = pci_intr_string(pc, sc->sc_intrs[0], intrbuf,
sizeof(intrbuf));
pci_intr_setattr(pc, &sc->sc_intrs[0], PCI_INTR_MPSAFE, true);
sc->sc_ihs[0] = pci_intr_establish_xname(pc, sc->sc_intrs[0],
IPL_NET, wm_intr_legacy, sc, device_xname(sc->sc_dev));
if (sc->sc_ihs[0] == NULL) {
aprint_error_dev(sc->sc_dev,"unable to establish %s\n",
(pci_intr_type(pc, sc->sc_intrs[0])
== PCI_INTR_TYPE_MSI) ? "MSI" : "INTx");
return ENOMEM;
}
aprint_normal_dev(sc->sc_dev, "interrupting at %s\n", intrstr);
sc->sc_nintrs = 1;
return wm_softint_establish_queue(sc, 0, 0);
}
static int
wm_setup_msix(struct wm_softc *sc)
{
void *vih;
kcpuset_t *affinity;
int qidx, error, intr_idx, txrx_established;
pci_chipset_tag_t pc = sc->sc_pc;
const char *intrstr = NULL;
char intrbuf[PCI_INTRSTR_LEN];
char intr_xname[INTRDEVNAMEBUF];
if (sc->sc_nqueues < ncpu) {
sc->sc_affinity_offset = 1;
} else {
sc->sc_affinity_offset = 0;
}
error = wm_alloc_txrx_queues(sc);
if (error) {
aprint_error_dev(sc->sc_dev, "cannot allocate queues %d\n",
error);
return ENOMEM;
}
kcpuset_create(&affinity, false);
intr_idx = 0;
txrx_established = 0;
for (qidx = 0; qidx < sc->sc_nqueues; qidx++) {
struct wm_queue *wmq = &sc->sc_queue[qidx];
int affinity_to = (sc->sc_affinity_offset + intr_idx) % ncpu;
intrstr = pci_intr_string(pc, sc->sc_intrs[intr_idx], intrbuf,
sizeof(intrbuf));
pci_intr_setattr(pc, &sc->sc_intrs[intr_idx],
PCI_INTR_MPSAFE, true);
memset(intr_xname, 0, sizeof(intr_xname));
snprintf(intr_xname, sizeof(intr_xname), "%sTXRX%d",
device_xname(sc->sc_dev), qidx);
vih = pci_intr_establish_xname(pc, sc->sc_intrs[intr_idx],
IPL_NET, wm_txrxintr_msix, wmq, intr_xname);
if (vih == NULL) {
aprint_error_dev(sc->sc_dev,
"unable to establish MSI-X(for TX and RX)%s%s\n",
intrstr ? " at " : "",
intrstr ? intrstr : "");
goto fail;
}
kcpuset_zero(affinity);
kcpuset_set(affinity, affinity_to);
error = interrupt_distribute(vih, affinity, NULL);
if (error == 0) {
aprint_normal_dev(sc->sc_dev,
"for TX and RX interrupting at %s affinity to %u\n",
intrstr, affinity_to);
} else {
aprint_normal_dev(sc->sc_dev,
"for TX and RX interrupting at %s\n", intrstr);
}
sc->sc_ihs[intr_idx] = vih;
if (wm_softint_establish_queue(sc, qidx, intr_idx) != 0)
goto fail;
txrx_established++;
intr_idx++;
}
intrstr = pci_intr_string(pc, sc->sc_intrs[intr_idx], intrbuf,
sizeof(intrbuf));
pci_intr_setattr(pc, &sc->sc_intrs[intr_idx], PCI_INTR_MPSAFE, true);
memset(intr_xname, 0, sizeof(intr_xname));
snprintf(intr_xname, sizeof(intr_xname), "%sLINK",
device_xname(sc->sc_dev));
vih = pci_intr_establish_xname(pc, sc->sc_intrs[intr_idx],
IPL_NET, wm_linkintr_msix, sc, intr_xname);
if (vih == NULL) {
aprint_error_dev(sc->sc_dev,
"unable to establish MSI-X(for LINK)%s%s\n",
intrstr ? " at " : "",
intrstr ? intrstr : "");
goto fail;
}
aprint_normal_dev(sc->sc_dev,
"for LINK interrupting at %s\n", intrstr);
sc->sc_ihs[intr_idx] = vih;
sc->sc_link_intr_idx = intr_idx;
sc->sc_nintrs = sc->sc_nqueues + 1;
kcpuset_destroy(affinity);
return 0;
fail:
for (qidx = 0; qidx < txrx_established; qidx++) {
struct wm_queue *wmq = &sc->sc_queue[qidx];
pci_intr_disestablish(sc->sc_pc,sc->sc_ihs[wmq->wmq_intr_idx]);
sc->sc_ihs[wmq->wmq_intr_idx] = NULL;
}
kcpuset_destroy(affinity);
return ENOMEM;
}
static void
wm_unset_stopping_flags(struct wm_softc *sc)
{
int i;
KASSERT(mutex_owned(sc->sc_core_lock));
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
mutex_enter(txq->txq_lock);
txq->txq_stopping = false;
mutex_exit(txq->txq_lock);
mutex_enter(rxq->rxq_lock);
rxq->rxq_stopping = false;
mutex_exit(rxq->rxq_lock);
}
sc->sc_core_stopping = false;
}
static void
wm_set_stopping_flags(struct wm_softc *sc)
{
int i;
KASSERT(mutex_owned(sc->sc_core_lock));
sc->sc_core_stopping = true;
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
mutex_enter(rxq->rxq_lock);
rxq->rxq_stopping = true;
mutex_exit(rxq->rxq_lock);
mutex_enter(txq->txq_lock);
txq->txq_stopping = true;
mutex_exit(txq->txq_lock);
}
}
static void
wm_itrs_writereg(struct wm_softc *sc, struct wm_queue *wmq)
{
if (!wmq->wmq_set_itr)
return;
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
uint32_t eitr = __SHIFTIN(wmq->wmq_itr, EITR_ITR_INT_MASK);
if (sc->sc_type == WM_T_82575)
eitr |= __SHIFTIN(wmq->wmq_itr,
EITR_COUNTER_MASK_82575);
else
eitr |= EITR_CNT_INGR;
CSR_WRITE(sc, WMREG_EITR(wmq->wmq_intr_idx), eitr);
} else if (sc->sc_type == WM_T_82574 && wm_is_using_msix(sc)) {
CSR_WRITE(sc, WMREG_EITR_82574(wmq->wmq_intr_idx),
wmq->wmq_itr & EITR_ITR_INT_MASK_82574);
} else {
KASSERT(wmq->wmq_id == 0);
CSR_WRITE(sc, WMREG_ITR, wmq->wmq_itr);
}
wmq->wmq_set_itr = false;
}
static void
wm_itrs_calculate(struct wm_softc *sc, struct wm_queue *wmq)
{
#ifdef NOTYET
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
struct wm_txqueue *txq = &wmq->wmq_txq;
uint32_t avg_size = 0;
uint32_t new_itr;
if (rxq->rxq_packets)
avg_size = rxq->rxq_bytes / rxq->rxq_packets;
if (txq->txq_packets)
avg_size = uimax(avg_size, txq->txq_bytes / txq->txq_packets);
if (avg_size == 0) {
new_itr = 450;
goto out;
}
avg_size += 24;
avg_size = uimin(avg_size, 3000);
if ((avg_size > 300) && (avg_size < 1200))
new_itr = avg_size / 3;
else
new_itr = avg_size / 2;
out:
if ((sc->sc_flags & WM_F_NEWQUEUE) == 0 || sc->sc_type != WM_T_82575)
new_itr *= 4;
if (new_itr != wmq->wmq_itr) {
wmq->wmq_itr = new_itr;
wmq->wmq_set_itr = true;
} else
wmq->wmq_set_itr = false;
rxq->rxq_packets = 0;
rxq->rxq_bytes = 0;
txq->txq_packets = 0;
txq->txq_bytes = 0;
#endif
}
static void
wm_init_sysctls(struct wm_softc *sc)
{
struct sysctllog **log;
const struct sysctlnode *rnode, *qnode, *cnode;
int i, rv;
const char *dvname;
log = &sc->sc_sysctllog;
dvname = device_xname(sc->sc_dev);
rv = sysctl_createv(log, 0, NULL, &rnode,
0, CTLTYPE_NODE, dvname,
SYSCTL_DESCR("wm information and settings"),
NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL);
if (rv != 0)
goto err;
rv = sysctl_createv(log, 0, &rnode, &cnode, CTLFLAG_READWRITE,
CTLTYPE_BOOL, "txrx_workqueue",
SYSCTL_DESCR("Use workqueue for packet processing"),
NULL, 0, &sc->sc_txrx_use_workqueue, 0, CTL_CREATE, CTL_EOL);
if (rv != 0)
goto teardown;
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_queue *wmq = &sc->sc_queue[i];
struct wm_txqueue *txq = &wmq->wmq_txq;
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
snprintf(sc->sc_queue[i].sysctlname,
sizeof(sc->sc_queue[i].sysctlname), "q%d", i);
if (sysctl_createv(log, 0, &rnode, &qnode,
0, CTLTYPE_NODE,
sc->sc_queue[i].sysctlname, SYSCTL_DESCR("Queue Name"),
NULL, 0, NULL, 0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_free", SYSCTL_DESCR("TX queue free"),
NULL, 0, &txq->txq_free,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txd_head", SYSCTL_DESCR("TX descriptor head"),
wm_sysctl_tdh_handler, 0, (void *)txq,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txd_tail", SYSCTL_DESCR("TX descriptor tail"),
wm_sysctl_tdt_handler, 0, (void *)txq,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_next", SYSCTL_DESCR("TX queue next"),
NULL, 0, &txq->txq_next,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_sfree", SYSCTL_DESCR("TX queue sfree"),
NULL, 0, &txq->txq_sfree,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_snext", SYSCTL_DESCR("TX queue snext"),
NULL, 0, &txq->txq_snext,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_sdirty", SYSCTL_DESCR("TX queue sdirty"),
NULL, 0, &txq->txq_sdirty,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"txq_flags", SYSCTL_DESCR("TX queue flags"),
NULL, 0, &txq->txq_flags,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_BOOL,
"txq_stopping", SYSCTL_DESCR("TX queue stopping"),
NULL, 0, &txq->txq_stopping,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_BOOL,
"txq_sending", SYSCTL_DESCR("TX queue sending"),
NULL, 0, &txq->txq_sending,
0, CTL_CREATE, CTL_EOL) != 0)
break;
if (sysctl_createv(log, 0, &qnode, &cnode,
CTLFLAG_READONLY, CTLTYPE_INT,
"rxq_ptr", SYSCTL_DESCR("RX queue pointer"),
NULL, 0, &rxq->rxq_ptr,
0, CTL_CREATE, CTL_EOL) != 0)
break;
}
#ifdef WM_DEBUG
rv = sysctl_createv(log, 0, &rnode, &cnode, CTLFLAG_READWRITE,
CTLTYPE_INT, "debug_flags",
SYSCTL_DESCR(
"Debug flags:\n" \
"\t0x01 LINK\n" \
"\t0x02 TX\n" \
"\t0x04 RX\n" \
"\t0x08 GMII\n" \
"\t0x10 MANAGE\n" \
"\t0x20 NVM\n" \
"\t0x40 INIT\n" \
"\t0x80 LOCK"),
wm_sysctl_debug, 0, (void *)sc, 0, CTL_CREATE, CTL_EOL);
if (rv != 0)
goto teardown;
rv = sysctl_createv(log, 0, &rnode, &cnode, CTLFLAG_READWRITE,
CTLTYPE_BOOL, "trigger_reset",
SYSCTL_DESCR("Trigger an interface reset"),
NULL, 0, &sc->sc_trigger_reset, 0, CTL_CREATE, CTL_EOL);
if (rv != 0)
goto teardown;
#endif
return;
teardown:
sysctl_teardown(log);
err:
sc->sc_sysctllog = NULL;
device_printf(sc->sc_dev, "%s: sysctl_createv failed, rv = %d\n",
__func__, rv);
}
static void
wm_update_stats(struct wm_softc *sc)
{
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
uint64_t crcerrs, algnerrc, symerrc, mpc, colc, sec, rlec, rxerrc,
cexterr;
uint64_t total_qdrop = 0;
crcerrs = CSR_READ(sc, WMREG_CRCERRS);
symerrc = CSR_READ(sc, WMREG_SYMERRC);
mpc = CSR_READ(sc, WMREG_MPC);
colc = CSR_READ(sc, WMREG_COLC);
sec = CSR_READ(sc, WMREG_SEC);
rlec = CSR_READ(sc, WMREG_RLEC);
WM_EVCNT_ADD(&sc->sc_ev_crcerrs, crcerrs);
WM_EVCNT_ADD(&sc->sc_ev_symerrc, symerrc);
WM_EVCNT_ADD(&sc->sc_ev_mpc, mpc);
WM_EVCNT_ADD(&sc->sc_ev_colc, colc);
WM_EVCNT_ADD(&sc->sc_ev_sec, sec);
WM_EVCNT_ADD(&sc->sc_ev_rlec, rlec);
if (sc->sc_type >= WM_T_82543) {
algnerrc = CSR_READ(sc, WMREG_ALGNERRC);
rxerrc = CSR_READ(sc, WMREG_RXERRC);
WM_EVCNT_ADD(&sc->sc_ev_algnerrc, algnerrc);
WM_EVCNT_ADD(&sc->sc_ev_rxerrc, rxerrc);
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc)) {
cexterr = CSR_READ(sc, WMREG_CEXTERR);
WM_EVCNT_ADD(&sc->sc_ev_cexterr, cexterr);
} else {
cexterr = 0;
WM_EVCNT_ADD(&sc->sc_ev_htdpmc,
CSR_READ(sc, WMREG_HTDPMC));
}
WM_EVCNT_ADD(&sc->sc_ev_tncrs, CSR_READ(sc, WMREG_TNCRS));
WM_EVCNT_ADD(&sc->sc_ev_tsctc, CSR_READ(sc, WMREG_TSCTC));
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
WM_EVCNT_ADD(&sc->sc_ev_tsctfc,
CSR_READ(sc, WMREG_TSCTFC));
else {
WM_EVCNT_ADD(&sc->sc_ev_cbrdpc,
CSR_READ(sc, WMREG_CBRDPC));
WM_EVCNT_ADD(&sc->sc_ev_cbrmpc,
CSR_READ(sc, WMREG_CBRMPC));
}
} else
algnerrc = rxerrc = cexterr = 0;
if (sc->sc_type >= WM_T_82542_2_1) {
WM_EVCNT_ADD(&sc->sc_ev_rx_xon, CSR_READ(sc, WMREG_XONRXC));
WM_EVCNT_ADD(&sc->sc_ev_tx_xon, CSR_READ(sc, WMREG_XONTXC));
WM_EVCNT_ADD(&sc->sc_ev_rx_xoff, CSR_READ(sc, WMREG_XOFFRXC));
WM_EVCNT_ADD(&sc->sc_ev_tx_xoff, CSR_READ(sc, WMREG_XOFFTXC));
WM_EVCNT_ADD(&sc->sc_ev_rx_macctl, CSR_READ(sc, WMREG_FCRUC));
}
WM_EVCNT_ADD(&sc->sc_ev_scc, CSR_READ(sc, WMREG_SCC));
WM_EVCNT_ADD(&sc->sc_ev_ecol, CSR_READ(sc, WMREG_ECOL));
WM_EVCNT_ADD(&sc->sc_ev_mcc, CSR_READ(sc, WMREG_MCC));
WM_EVCNT_ADD(&sc->sc_ev_latecol, CSR_READ(sc, WMREG_LATECOL));
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc)) {
WM_EVCNT_ADD(&sc->sc_ev_cbtmpc, CSR_READ(sc, WMREG_CBTMPC));
}
WM_EVCNT_ADD(&sc->sc_ev_dc, CSR_READ(sc, WMREG_DC));
WM_EVCNT_ADD(&sc->sc_ev_prc64, CSR_READ(sc, WMREG_PRC64));
WM_EVCNT_ADD(&sc->sc_ev_prc127, CSR_READ(sc, WMREG_PRC127));
WM_EVCNT_ADD(&sc->sc_ev_prc255, CSR_READ(sc, WMREG_PRC255));
WM_EVCNT_ADD(&sc->sc_ev_prc511, CSR_READ(sc, WMREG_PRC511));
WM_EVCNT_ADD(&sc->sc_ev_prc1023, CSR_READ(sc, WMREG_PRC1023));
WM_EVCNT_ADD(&sc->sc_ev_prc1522, CSR_READ(sc, WMREG_PRC1522));
WM_EVCNT_ADD(&sc->sc_ev_gprc, CSR_READ(sc, WMREG_GPRC));
WM_EVCNT_ADD(&sc->sc_ev_bprc, CSR_READ(sc, WMREG_BPRC));
WM_EVCNT_ADD(&sc->sc_ev_mprc, CSR_READ(sc, WMREG_MPRC));
WM_EVCNT_ADD(&sc->sc_ev_gptc, CSR_READ(sc, WMREG_GPTC));
WM_EVCNT_ADD(&sc->sc_ev_gorc,
CSR_READ(sc, WMREG_GORCL) +
((uint64_t)CSR_READ(sc, WMREG_GORCH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_gotc,
CSR_READ(sc, WMREG_GOTCL) +
((uint64_t)CSR_READ(sc, WMREG_GOTCH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_rnbc, CSR_READ(sc, WMREG_RNBC));
WM_EVCNT_ADD(&sc->sc_ev_ruc, CSR_READ(sc, WMREG_RUC));
WM_EVCNT_ADD(&sc->sc_ev_rfc, CSR_READ(sc, WMREG_RFC));
WM_EVCNT_ADD(&sc->sc_ev_roc, CSR_READ(sc, WMREG_ROC));
WM_EVCNT_ADD(&sc->sc_ev_rjc, CSR_READ(sc, WMREG_RJC));
if (sc->sc_type >= WM_T_82540) {
WM_EVCNT_ADD(&sc->sc_ev_mgtprc, CSR_READ(sc, WMREG_MGTPRC));
WM_EVCNT_ADD(&sc->sc_ev_mgtpdc, CSR_READ(sc, WMREG_MGTPDC));
WM_EVCNT_ADD(&sc->sc_ev_mgtptc, CSR_READ(sc, WMREG_MGTPTC));
}
WM_EVCNT_ADD(&sc->sc_ev_tor,
CSR_READ(sc, WMREG_TORL) +
((uint64_t)CSR_READ(sc, WMREG_TORH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_tot,
CSR_READ(sc, WMREG_TOTL) +
((uint64_t)CSR_READ(sc, WMREG_TOTH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_tpr, CSR_READ(sc, WMREG_TPR));
WM_EVCNT_ADD(&sc->sc_ev_tpt, CSR_READ(sc, WMREG_TPT));
WM_EVCNT_ADD(&sc->sc_ev_ptc64, CSR_READ(sc, WMREG_PTC64));
WM_EVCNT_ADD(&sc->sc_ev_ptc127, CSR_READ(sc, WMREG_PTC127));
WM_EVCNT_ADD(&sc->sc_ev_ptc255, CSR_READ(sc, WMREG_PTC255));
WM_EVCNT_ADD(&sc->sc_ev_ptc511, CSR_READ(sc, WMREG_PTC511));
WM_EVCNT_ADD(&sc->sc_ev_ptc1023, CSR_READ(sc, WMREG_PTC1023));
WM_EVCNT_ADD(&sc->sc_ev_ptc1522, CSR_READ(sc, WMREG_PTC1522));
WM_EVCNT_ADD(&sc->sc_ev_mptc, CSR_READ(sc, WMREG_MPTC));
WM_EVCNT_ADD(&sc->sc_ev_bptc, CSR_READ(sc, WMREG_BPTC));
if (sc->sc_type >= WM_T_82571)
WM_EVCNT_ADD(&sc->sc_ev_iac, CSR_READ(sc, WMREG_IAC));
if (sc->sc_type < WM_T_82575) {
WM_EVCNT_ADD(&sc->sc_ev_icrxptc, CSR_READ(sc, WMREG_ICRXPTC));
WM_EVCNT_ADD(&sc->sc_ev_icrxatc, CSR_READ(sc, WMREG_ICRXATC));
WM_EVCNT_ADD(&sc->sc_ev_ictxptc, CSR_READ(sc, WMREG_ICTXPTC));
WM_EVCNT_ADD(&sc->sc_ev_ictxatc, CSR_READ(sc, WMREG_ICTXATC));
WM_EVCNT_ADD(&sc->sc_ev_ictxqec, CSR_READ(sc, WMREG_ICTXQEC));
WM_EVCNT_ADD(&sc->sc_ev_ictxqmtc,
CSR_READ(sc, WMREG_ICTXQMTC));
WM_EVCNT_ADD(&sc->sc_ev_rxdmtc,
CSR_READ(sc, WMREG_ICRXDMTC));
WM_EVCNT_ADD(&sc->sc_ev_icrxoc, CSR_READ(sc, WMREG_ICRXOC));
} else if (!WM_IS_ICHPCH(sc)) {
WM_EVCNT_ADD(&sc->sc_ev_rpthc, CSR_READ(sc, WMREG_RPTHC));
WM_EVCNT_ADD(&sc->sc_ev_debug1, CSR_READ(sc, WMREG_DEBUG1));
WM_EVCNT_ADD(&sc->sc_ev_debug2, CSR_READ(sc, WMREG_DEBUG2));
WM_EVCNT_ADD(&sc->sc_ev_debug3, CSR_READ(sc, WMREG_DEBUG3));
WM_EVCNT_ADD(&sc->sc_ev_hgptc, CSR_READ(sc, WMREG_HGPTC));
WM_EVCNT_ADD(&sc->sc_ev_debug4, CSR_READ(sc, WMREG_DEBUG4));
WM_EVCNT_ADD(&sc->sc_ev_rxdmtc, CSR_READ(sc, WMREG_RXDMTC));
WM_EVCNT_ADD(&sc->sc_ev_htcbdpc, CSR_READ(sc, WMREG_HTCBDPC));
WM_EVCNT_ADD(&sc->sc_ev_hgorc,
CSR_READ(sc, WMREG_HGORCL) +
((uint64_t)CSR_READ(sc, WMREG_HGORCH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_hgotc,
CSR_READ(sc, WMREG_HGOTCL) +
((uint64_t)CSR_READ(sc, WMREG_HGOTCH) << 32));
WM_EVCNT_ADD(&sc->sc_ev_lenerrs, CSR_READ(sc, WMREG_LENERRS));
WM_EVCNT_ADD(&sc->sc_ev_scvpc, CSR_READ(sc, WMREG_SCVPC));
WM_EVCNT_ADD(&sc->sc_ev_hrmpc, CSR_READ(sc, WMREG_HRMPC));
#ifdef WM_EVENT_COUNTERS
for (int i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
uint32_t rqdpc;
rqdpc = CSR_READ(sc, WMREG_RQDPC(i));
if ((rqdpc != 0) && (sc->sc_type >= WM_T_I210))
CSR_WRITE(sc, WMREG_RQDPC(i), 0);
WM_Q_EVCNT_ADD(rxq, qdrop, rqdpc);
total_qdrop += rqdpc;
}
#endif
}
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc)) {
WM_EVCNT_ADD(&sc->sc_ev_tlpic, CSR_READ(sc, WMREG_TLPIC));
WM_EVCNT_ADD(&sc->sc_ev_rlpic, CSR_READ(sc, WMREG_RLPIC));
if ((CSR_READ(sc, WMREG_MANC) & MANC_EN_BMC2OS) != 0) {
WM_EVCNT_ADD(&sc->sc_ev_b2ogprc,
CSR_READ(sc, WMREG_B2OGPRC));
WM_EVCNT_ADD(&sc->sc_ev_o2bspc,
CSR_READ(sc, WMREG_O2BSPC));
WM_EVCNT_ADD(&sc->sc_ev_b2ospc,
CSR_READ(sc, WMREG_B2OSPC));
WM_EVCNT_ADD(&sc->sc_ev_o2bgptc,
CSR_READ(sc, WMREG_O2BGPTC));
}
}
net_stat_ref_t nsr = IF_STAT_GETREF(ifp);
if_statadd_ref(ifp, nsr, if_collisions, colc);
if_statadd_ref(ifp, nsr, if_ierrors,
crcerrs + algnerrc + symerrc + rxerrc + sec + cexterr + rlec);
if_statadd_ref(ifp, nsr, if_iqdrops, mpc + total_qdrop);
IF_STAT_PUTREF(ifp);
}
void
wm_clear_evcnt(struct wm_softc *sc)
{
#ifdef WM_EVENT_COUNTERS
int i;
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
WM_Q_EVCNT_STORE(rxq, intr, 0);
WM_Q_EVCNT_STORE(rxq, defer, 0);
WM_Q_EVCNT_STORE(rxq, ipsum, 0);
WM_Q_EVCNT_STORE(rxq, tusum, 0);
if ((sc->sc_type >= WM_T_82575) && !WM_IS_ICHPCH(sc))
WM_Q_EVCNT_STORE(rxq, qdrop, 0);
}
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
int j;
WM_Q_EVCNT_STORE(txq, txsstall, 0);
WM_Q_EVCNT_STORE(txq, txdstall, 0);
WM_Q_EVCNT_STORE(txq, fifo_stall, 0);
WM_Q_EVCNT_STORE(txq, txdw, 0);
WM_Q_EVCNT_STORE(txq, txqe, 0);
WM_Q_EVCNT_STORE(txq, ipsum, 0);
WM_Q_EVCNT_STORE(txq, tusum, 0);
WM_Q_EVCNT_STORE(txq, tusum6, 0);
WM_Q_EVCNT_STORE(txq, tso, 0);
WM_Q_EVCNT_STORE(txq, tso6, 0);
WM_Q_EVCNT_STORE(txq, tsopain, 0);
for (j = 0; j < WM_NTXSEGS; j++)
WM_EVCNT_STORE(&txq->txq_ev_txseg[j], 0);
WM_Q_EVCNT_STORE(txq, pcqdrop, 0);
WM_Q_EVCNT_STORE(txq, descdrop, 0);
WM_Q_EVCNT_STORE(txq, toomanyseg, 0);
WM_Q_EVCNT_STORE(txq, defrag, 0);
if (sc->sc_type <= WM_T_82544)
WM_Q_EVCNT_STORE(txq, underrun, 0);
WM_Q_EVCNT_STORE(txq, skipcontext, 0);
}
WM_EVCNT_STORE(&sc->sc_ev_linkintr, 0);
WM_EVCNT_STORE(&sc->sc_ev_crcerrs, 0);
WM_EVCNT_STORE(&sc->sc_ev_symerrc, 0);
WM_EVCNT_STORE(&sc->sc_ev_mpc, 0);
WM_EVCNT_STORE(&sc->sc_ev_colc, 0);
WM_EVCNT_STORE(&sc->sc_ev_sec, 0);
WM_EVCNT_STORE(&sc->sc_ev_rlec, 0);
if (sc->sc_type >= WM_T_82543) {
WM_EVCNT_STORE(&sc->sc_ev_algnerrc, 0);
WM_EVCNT_STORE(&sc->sc_ev_rxerrc, 0);
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
WM_EVCNT_STORE(&sc->sc_ev_cexterr, 0);
else
WM_EVCNT_STORE(&sc->sc_ev_htdpmc, 0);
WM_EVCNT_STORE(&sc->sc_ev_tncrs, 0);
WM_EVCNT_STORE(&sc->sc_ev_tsctc, 0);
if ((sc->sc_type < WM_T_82575) || WM_IS_ICHPCH(sc))
WM_EVCNT_STORE(&sc->sc_ev_tsctfc, 0);
else {
WM_EVCNT_STORE(&sc->sc_ev_cbrdpc, 0);
WM_EVCNT_STORE(&sc->sc_ev_cbrmpc, 0);
}
}
if (sc->sc_type >= WM_T_82542_2_1) {
WM_EVCNT_STORE(&sc->sc_ev_tx_xoff, 0);
WM_EVCNT_STORE(&sc->sc_ev_tx_xon, 0);
WM_EVCNT_STORE(&sc->sc_ev_rx_xoff, 0);
WM_EVCNT_STORE(&sc->sc_ev_rx_xon, 0);
WM_EVCNT_STORE(&sc->sc_ev_rx_macctl, 0);
}
WM_EVCNT_STORE(&sc->sc_ev_scc, 0);
WM_EVCNT_STORE(&sc->sc_ev_ecol, 0);
WM_EVCNT_STORE(&sc->sc_ev_mcc, 0);
WM_EVCNT_STORE(&sc->sc_ev_latecol, 0);
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc))
WM_EVCNT_STORE(&sc->sc_ev_cbtmpc, 0);
WM_EVCNT_STORE(&sc->sc_ev_dc, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc64, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc127, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc255, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc511, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc1023, 0);
WM_EVCNT_STORE(&sc->sc_ev_prc1522, 0);
WM_EVCNT_STORE(&sc->sc_ev_gprc, 0);
WM_EVCNT_STORE(&sc->sc_ev_bprc, 0);
WM_EVCNT_STORE(&sc->sc_ev_mprc, 0);
WM_EVCNT_STORE(&sc->sc_ev_gptc, 0);
WM_EVCNT_STORE(&sc->sc_ev_gorc, 0);
WM_EVCNT_STORE(&sc->sc_ev_gotc, 0);
WM_EVCNT_STORE(&sc->sc_ev_rnbc, 0);
WM_EVCNT_STORE(&sc->sc_ev_ruc, 0);
WM_EVCNT_STORE(&sc->sc_ev_rfc, 0);
WM_EVCNT_STORE(&sc->sc_ev_roc, 0);
WM_EVCNT_STORE(&sc->sc_ev_rjc, 0);
if (sc->sc_type >= WM_T_82540) {
WM_EVCNT_STORE(&sc->sc_ev_mgtprc, 0);
WM_EVCNT_STORE(&sc->sc_ev_mgtpdc, 0);
WM_EVCNT_STORE(&sc->sc_ev_mgtptc, 0);
}
WM_EVCNT_STORE(&sc->sc_ev_tor, 0);
WM_EVCNT_STORE(&sc->sc_ev_tot, 0);
WM_EVCNT_STORE(&sc->sc_ev_tpr, 0);
WM_EVCNT_STORE(&sc->sc_ev_tpt, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc64, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc127, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc255, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc511, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc1023, 0);
WM_EVCNT_STORE(&sc->sc_ev_ptc1522, 0);
WM_EVCNT_STORE(&sc->sc_ev_mptc, 0);
WM_EVCNT_STORE(&sc->sc_ev_bptc, 0);
if (sc->sc_type >= WM_T_82571)
WM_EVCNT_STORE(&sc->sc_ev_iac, 0);
if (sc->sc_type < WM_T_82575) {
WM_EVCNT_STORE(&sc->sc_ev_icrxptc, 0);
WM_EVCNT_STORE(&sc->sc_ev_icrxatc, 0);
WM_EVCNT_STORE(&sc->sc_ev_ictxptc, 0);
WM_EVCNT_STORE(&sc->sc_ev_ictxatc, 0);
WM_EVCNT_STORE(&sc->sc_ev_ictxqec, 0);
WM_EVCNT_STORE(&sc->sc_ev_ictxqmtc, 0);
WM_EVCNT_STORE(&sc->sc_ev_rxdmtc, 0);
WM_EVCNT_STORE(&sc->sc_ev_icrxoc, 0);
} else if (!WM_IS_ICHPCH(sc)) {
WM_EVCNT_STORE(&sc->sc_ev_rpthc, 0);
WM_EVCNT_STORE(&sc->sc_ev_debug1, 0);
WM_EVCNT_STORE(&sc->sc_ev_debug2, 0);
WM_EVCNT_STORE(&sc->sc_ev_debug3, 0);
WM_EVCNT_STORE(&sc->sc_ev_hgptc, 0);
WM_EVCNT_STORE(&sc->sc_ev_debug4, 0);
WM_EVCNT_STORE(&sc->sc_ev_rxdmtc, 0);
WM_EVCNT_STORE(&sc->sc_ev_htcbdpc, 0);
WM_EVCNT_STORE(&sc->sc_ev_hgorc, 0);
WM_EVCNT_STORE(&sc->sc_ev_hgotc, 0);
WM_EVCNT_STORE(&sc->sc_ev_lenerrs, 0);
WM_EVCNT_STORE(&sc->sc_ev_scvpc, 0);
WM_EVCNT_STORE(&sc->sc_ev_hrmpc, 0);
}
if ((sc->sc_type >= WM_T_I350) && !WM_IS_ICHPCH(sc)) {
WM_EVCNT_STORE(&sc->sc_ev_tlpic, 0);
WM_EVCNT_STORE(&sc->sc_ev_rlpic, 0);
WM_EVCNT_STORE(&sc->sc_ev_b2ogprc, 0);
WM_EVCNT_STORE(&sc->sc_ev_o2bspc, 0);
WM_EVCNT_STORE(&sc->sc_ev_b2ospc, 0);
WM_EVCNT_STORE(&sc->sc_ev_o2bgptc, 0);
}
#endif
}
static int
wm_init(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
int ret;
KASSERT(IFNET_LOCKED(ifp));
if (sc->sc_dying)
return ENXIO;
mutex_enter(sc->sc_core_lock);
ret = wm_init_locked(ifp);
mutex_exit(sc->sc_core_lock);
return ret;
}
static int
wm_init_locked(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct ethercom *ec = &sc->sc_ethercom;
int i, j, trynum, error = 0;
uint32_t reg, sfp_mask = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(IFNET_LOCKED(ifp));
KASSERT(mutex_owned(sc->sc_core_lock));
#ifdef __NO_STRICT_ALIGNMENT
sc->sc_align_tweak = 0;
#else
if ((ifp->if_mtu + ETHER_HDR_LEN + ETHER_CRC_LEN) > (MCLBYTES - 2))
sc->sc_align_tweak = 0;
else
sc->sc_align_tweak = 2;
#endif
wm_stop_locked(ifp, false, false);
if_statadd2(ifp, if_collisions, CSR_READ(sc, WMREG_COLC),
if_ierrors, CSR_READ(sc, WMREG_RXERRC));
if (sc->sc_type >= WM_T_PCH_SPT)
wm_flush_desc_rings(sc);
wm_reset(sc);
if ((sc->sc_flags & WM_F_HAS_AMT) != 0)
wm_get_hw_control(sc);
if ((sc->sc_type >= WM_T_PCH_SPT) &&
pci_intr_type(sc->sc_pc, sc->sc_intrs[0]) == PCI_INTR_TYPE_INTX)
wm_legacy_irq_quirk_spt(sc);
wm_initialize_hardware_bits(sc);
if (sc->sc_flags & WM_F_HAS_MII)
wm_gmii_reset(sc);
if (sc->sc_type >= WM_T_ICH8) {
reg = CSR_READ(sc, WMREG_GCR);
if (sc->sc_type == WM_T_ICH8)
reg |= GCR_NO_SNOOP_ALL;
else
reg &= ~GCR_NO_SNOOP_ALL;
CSR_WRITE(sc, WMREG_GCR, reg);
}
if (sc->sc_type >= WM_T_PCH_TGP) {
reg = CSR_READ(sc, WMREG_FFLT_DBG);
reg |= (1 << 12);
CSR_WRITE(sc, WMREG_FFLT_DBG, reg);
}
if ((sc->sc_type >= WM_T_ICH8)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER_KSP3)) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_RO_DIS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
}
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0 && sc->sc_type != WM_T_82575) {
sc->sc_itr_init = 450;
} else if (sc->sc_type >= WM_T_82543) {
sc->sc_itr_init = 1500;
}
error = wm_init_txrx_queues(sc);
if (error)
goto out;
if (((sc->sc_flags & WM_F_SGMII) == 0) &&
(sc->sc_mediatype == WM_MEDIATYPE_SERDES) &&
(sc->sc_type >= WM_T_82575))
wm_serdes_power_up_link_82575(sc);
CSR_WRITE(sc, WMREG_VET, 0);
if ((sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354))
trynum = 10;
else
trynum = 1;
for (i = 0; i < WM_VLAN_TABSIZE; i++)
for (j = 0; j < trynum; j++)
CSR_WRITE(sc, WMREG_VFTA + (i << 2), 0);
if ((sc->sc_type != WM_T_ICH8) && (sc->sc_type != WM_T_ICH9)
&& (sc->sc_type != WM_T_ICH10) && (sc->sc_type != WM_T_PCH)
&& (sc->sc_type != WM_T_PCH2) && (sc->sc_type != WM_T_PCH_LPT)
&& (sc->sc_type != WM_T_PCH_SPT) && (sc->sc_type != WM_T_PCH_CNP)
&& (sc->sc_type != WM_T_PCH_TGP)) {
CSR_WRITE(sc, WMREG_FCAL, FCAL_CONST);
CSR_WRITE(sc, WMREG_FCAH, FCAH_CONST);
CSR_WRITE(sc, WMREG_FCT, ETHERTYPE_FLOWCONTROL);
}
sc->sc_fcrtl = FCRTL_DFLT;
if (sc->sc_type < WM_T_82543) {
CSR_WRITE(sc, WMREG_OLD_FCRTH, FCRTH_DFLT);
CSR_WRITE(sc, WMREG_OLD_FCRTL, sc->sc_fcrtl);
} else {
CSR_WRITE(sc, WMREG_FCRTH, FCRTH_DFLT);
CSR_WRITE(sc, WMREG_FCRTL, sc->sc_fcrtl);
}
if (sc->sc_type == WM_T_80003)
CSR_WRITE(sc, WMREG_FCTTV, 0xffff);
else
CSR_WRITE(sc, WMREG_FCTTV, FCTTV_DFLT);
wm_set_vlan(sc);
if (sc->sc_flags & WM_F_HAS_MII) {
uint16_t kmreg;
switch (sc->sc_type) {
case WM_T_80003:
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_TIMEOUTS,
0xFFFF);
wm_kmrn_readreg(sc, KUMCTRLSTA_OFFSET_INB_PARAM,
&kmreg);
kmreg |= 0x3F;
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_INB_PARAM,
kmreg);
break;
default:
break;
}
if (sc->sc_type == WM_T_80003) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_LINK_MODE_MASK;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_FIFO_CTRL,
KUMCTRLSTA_FIFO_CTRL_RX_BYPASS
| KUMCTRLSTA_FIFO_CTRL_TX_BYPASS);
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_INB_CTRL,
KUMCTRLSTA_INB_CTRL_DIS_PADDING |
KUMCTRLSTA_INB_CTRL_LINK_TMOUT_DFLT);
}
}
#if 0
CSR_WRITE(sc, WMREG_CTRL_EXT, sc->sc_ctrl_ext);
#endif
reg = CSR_READ(sc, WMREG_RXCSUM);
reg &= ~(RXCSUM_IPOFL | RXCSUM_IPV6OFL | RXCSUM_TUOFL);
if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
reg |= RXCSUM_IPOFL;
if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx))
reg |= RXCSUM_IPOFL | RXCSUM_TUOFL;
if (ifp->if_capenable & (IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx))
reg |= RXCSUM_IPV6OFL | RXCSUM_TUOFL;
CSR_WRITE(sc, WMREG_RXCSUM, reg);
if (wm_is_using_msix(sc)) {
uint32_t ivar, qintr_idx;
struct wm_queue *wmq;
unsigned int qid;
if (sc->sc_type == WM_T_82575) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_PBA | CTRL_EXT_EIAME | CTRL_EXT_NSICR;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
CSR_WRITE(sc, WMREG_MSIXBM(wmq->wmq_intr_idx),
EITR_TX_QUEUE(wmq->wmq_id)
| EITR_RX_QUEUE(wmq->wmq_id));
}
CSR_WRITE(sc, WMREG_MSIXBM(sc->sc_link_intr_idx),
EITR_OTHER);
} else if (sc->sc_type == WM_T_82574) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_PBA | CTRL_EXT_EIAME;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
reg = CSR_READ(sc, WMREG_RFCTL);
reg |= WMREG_RFCTL_ACKDIS;
CSR_WRITE(sc, WMREG_RFCTL, reg);
ivar = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
qid = wmq->wmq_id;
qintr_idx = wmq->wmq_intr_idx;
ivar |= __SHIFTIN((IVAR_VALID_82574|qintr_idx),
IVAR_TX_MASK_Q_82574(qid));
ivar |= __SHIFTIN((IVAR_VALID_82574|qintr_idx),
IVAR_RX_MASK_Q_82574(qid));
}
ivar |= __SHIFTIN((IVAR_VALID_82574
| sc->sc_link_intr_idx), IVAR_OTHER_MASK);
CSR_WRITE(sc, WMREG_IVAR, ivar | IVAR_INT_ON_ALL_WB);
} else {
CSR_WRITE(sc, WMREG_GPIE, GPIE_NSICR | GPIE_MULTI_MSIX
| GPIE_EIAME | GPIE_PBA);
switch (sc->sc_type) {
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
qid = wmq->wmq_id;
qintr_idx = wmq->wmq_intr_idx;
ivar = CSR_READ(sc, WMREG_IVAR_Q(qid));
ivar &= ~IVAR_TX_MASK_Q(qid);
ivar |= __SHIFTIN((qintr_idx
| IVAR_VALID),
IVAR_TX_MASK_Q(qid));
ivar &= ~IVAR_RX_MASK_Q(qid);
ivar |= __SHIFTIN((qintr_idx
| IVAR_VALID),
IVAR_RX_MASK_Q(qid));
CSR_WRITE(sc, WMREG_IVAR_Q(qid), ivar);
}
break;
case WM_T_82576:
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
qid = wmq->wmq_id;
qintr_idx = wmq->wmq_intr_idx;
ivar = CSR_READ(sc,
WMREG_IVAR_Q_82576(qid));
ivar &= ~IVAR_TX_MASK_Q_82576(qid);
ivar |= __SHIFTIN((qintr_idx
| IVAR_VALID),
IVAR_TX_MASK_Q_82576(qid));
ivar &= ~IVAR_RX_MASK_Q_82576(qid);
ivar |= __SHIFTIN((qintr_idx
| IVAR_VALID),
IVAR_RX_MASK_Q_82576(qid));
CSR_WRITE(sc, WMREG_IVAR_Q_82576(qid),
ivar);
}
break;
default:
break;
}
ivar = __SHIFTIN((sc->sc_link_intr_idx | IVAR_VALID),
IVAR_MISC_OTHER);
CSR_WRITE(sc, WMREG_IVAR_MISC, ivar);
}
if (wm_is_using_multiqueue(sc)) {
wm_init_rss(sc);
reg = CSR_READ(sc, WMREG_RXCSUM);
reg |= RXCSUM_PCSD;
CSR_WRITE(sc, WMREG_RXCSUM, reg);
}
}
CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
if ((sc->sc_flags & WM_F_SFP) != 0) {
sc->sc_ctrl |= CTRL_EXTLINK_EN;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
sfp_mask = ICR_GPI(0);
}
if (wm_is_using_msix(sc)) {
uint32_t mask;
struct wm_queue *wmq;
switch (sc->sc_type) {
case WM_T_82574:
mask = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
mask |= ICR_TXQ(wmq->wmq_id);
mask |= ICR_RXQ(wmq->wmq_id);
}
mask |= ICR_OTHER;
CSR_WRITE(sc, WMREG_EIAC_82574, mask);
CSR_WRITE(sc, WMREG_IMS, mask | ICR_LSC);
break;
default:
if (sc->sc_type == WM_T_82575) {
mask = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
mask |= EITR_TX_QUEUE(wmq->wmq_id);
mask |= EITR_RX_QUEUE(wmq->wmq_id);
}
mask |= EITR_OTHER;
} else {
mask = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
wmq = &sc->sc_queue[i];
mask |= 1 << wmq->wmq_intr_idx;
}
mask |= 1 << sc->sc_link_intr_idx;
}
CSR_WRITE(sc, WMREG_EIAC, mask);
CSR_WRITE(sc, WMREG_EIAM, mask);
CSR_WRITE(sc, WMREG_EIMS, mask);
CSR_WRITE(sc, WMREG_IMS, ICR_LSC | sfp_mask);
break;
}
} else {
sc->sc_icr = ICR_TXDW | ICR_LSC | ICR_RXSEQ | ICR_RXDMT0 |
ICR_RXO | ICR_RXT0 | sfp_mask;
CSR_WRITE(sc, WMREG_IMS, sc->sc_icr);
}
CSR_WRITE(sc, WMREG_TIPG, sc->sc_tipg);
if (sc->sc_type >= WM_T_82543) {
for (int qidx = 0; qidx < sc->sc_nqueues; qidx++) {
struct wm_queue *wmq = &sc->sc_queue[qidx];
wm_itrs_writereg(sc, wmq);
}
}
CSR_WRITE(sc, WMREG_VET, ETHERTYPE_VLAN);
sc->sc_tctl = TCTL_EN | TCTL_PSP | TCTL_RTLC
| TCTL_CT(TX_COLLISION_THRESHOLD)
| TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
if (sc->sc_type >= WM_T_82571)
sc->sc_tctl |= TCTL_MULR;
CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
CSR_WRITE(sc, WMREG_TDT(0), 0);
}
if (sc->sc_type == WM_T_80003) {
reg = CSR_READ(sc, WMREG_TCTL_EXT);
reg &= ~TCTL_EXT_GCEX_MASK;
reg |= DEFAULT_80003ES2LAN_TCTL_EXT_GCEX;
CSR_WRITE(sc, WMREG_TCTL_EXT, reg);
}
if ((error = mii_ifmedia_change(&sc->sc_mii)) != 0)
goto out;
wm_init_manageability(sc);
sc->sc_mchash_type = 0;
sc->sc_rctl = RCTL_EN | RCTL_LBM_NONE | RCTL_RDMTS_1_2 | RCTL_DPF
| __SHIFTIN(sc->sc_mchash_type, RCTL_MO);
if (sc->sc_type == WM_T_82574)
sc->sc_rctl |= RCTL_DTYP_ONEBUF;
if ((sc->sc_flags & WM_F_CRC_STRIP) != 0)
sc->sc_rctl |= RCTL_SECRC;
if (((ec->ec_capabilities & ETHERCAP_JUMBO_MTU) != 0)
&& (ifp->if_mtu > ETHERMTU)) {
sc->sc_rctl |= RCTL_LPE;
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
CSR_WRITE(sc, WMREG_RLPML, ETHER_MAX_LEN_JUMBO);
}
if (MCLBYTES == 2048)
sc->sc_rctl |= RCTL_2k;
else {
if (sc->sc_type >= WM_T_82543) {
switch (MCLBYTES) {
case 4096:
sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_4k;
break;
case 8192:
sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_8k;
break;
case 16384:
sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_16k;
break;
default:
panic("wm_init: MCLBYTES %d unsupported",
MCLBYTES);
break;
}
} else
panic("wm_init: i82542 requires MCLBYTES = 2048");
}
switch (sc->sc_type) {
case WM_T_82571:
reg = CSR_READ(sc, WMREG_PBA_ECC);
reg |= PBA_ECC_CORR_EN;
CSR_WRITE(sc, WMREG_PBA_ECC, reg);
break;
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
reg = CSR_READ(sc, WMREG_PBECCSTS);
reg |= PBECCSTS_UNCORR_ECC_ENABLE;
CSR_WRITE(sc, WMREG_PBECCSTS, reg);
sc->sc_ctrl |= CTRL_MEHE;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
break;
default:
break;
}
wm_set_filter(sc);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
int qidx;
for (qidx = 0; qidx < sc->sc_nqueues; qidx++) {
struct wm_rxqueue *rxq = &sc->sc_queue[qidx].wmq_rxq;
for (i = 0; i < WM_NRXDESC; i++) {
mutex_enter(rxq->rxq_lock);
wm_init_rxdesc(rxq, i);
mutex_exit(rxq->rxq_lock);
}
}
}
wm_unset_stopping_flags(sc);
callout_schedule(&sc->sc_tick_ch, hz);
ifp->if_flags |= IFF_RUNNING;
out:
sc->sc_if_flags = ifp->if_flags;
sc->sc_ec_capenable = ec->ec_capenable;
if (error)
log(LOG_ERR, "%s: interface not running\n",
device_xname(sc->sc_dev));
return error;
}
static void
wm_stop(struct ifnet *ifp, int disable)
{
struct wm_softc *sc = ifp->if_softc;
ASSERT_SLEEPABLE();
KASSERT(IFNET_LOCKED(ifp));
mutex_enter(sc->sc_core_lock);
wm_stop_locked(ifp, disable ? true : false, true);
mutex_exit(sc->sc_core_lock);
for (int i = 0; i < sc->sc_nqueues; i++)
workqueue_wait(sc->sc_queue_wq, &sc->sc_queue[i].wmq_cookie);
workqueue_wait(sc->sc_reset_wq, &sc->sc_reset_work);
}
static void
wm_stop_locked(struct ifnet *ifp, bool disable, bool wait)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_txsoft *txs;
int i, qidx;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(IFNET_LOCKED(ifp));
KASSERT(mutex_owned(sc->sc_core_lock));
wm_set_stopping_flags(sc);
if (sc->sc_flags & WM_F_HAS_MII) {
mii_down(&sc->sc_mii);
} else {
#if 0
wm_reset(sc);
#endif
}
CSR_WRITE(sc, WMREG_TCTL, 0);
CSR_WRITE(sc, WMREG_RCTL, 0);
sc->sc_rctl &= ~RCTL_EN;
CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
sc->sc_icr = 0;
if (wm_is_using_msix(sc)) {
if (sc->sc_type != WM_T_82574) {
CSR_WRITE(sc, WMREG_EIMC, 0xffffffffU);
CSR_WRITE(sc, WMREG_EIAC, 0);
} else
CSR_WRITE(sc, WMREG_EIAC_82574, 0);
}
if (wait)
callout_halt(&sc->sc_tick_ch, sc->sc_core_lock);
else
callout_stop(&sc->sc_tick_ch);
if (sc->sc_type == WM_T_82547) {
if (wait)
callout_halt(&sc->sc_txfifo_ch, sc->sc_core_lock);
else
callout_stop(&sc->sc_txfifo_ch);
}
for (qidx = 0; qidx < sc->sc_nqueues; qidx++) {
struct wm_queue *wmq = &sc->sc_queue[qidx];
struct wm_txqueue *txq = &wmq->wmq_txq;
struct mbuf *m;
mutex_enter(txq->txq_lock);
txq->txq_sending = false;
for (i = 0; i < WM_TXQUEUELEN(txq); i++) {
txs = &txq->txq_soft[i];
if (txs->txs_mbuf != NULL) {
bus_dmamap_unload(sc->sc_dmat,txs->txs_dmamap);
m_freem(txs->txs_mbuf);
txs->txs_mbuf = NULL;
}
}
while ((m = pcq_get(txq->txq_interq)) != NULL)
m_freem(m);
mutex_exit(txq->txq_lock);
}
ifp->if_flags &= ~IFF_RUNNING;
sc->sc_if_flags = ifp->if_flags;
if (disable) {
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
mutex_enter(rxq->rxq_lock);
wm_rxdrain(rxq);
mutex_exit(rxq->rxq_lock);
}
}
#if 0
if (sc->sc_type >= WM_T_82544)
CSR_WRITE(sc, WMREG_WUC, 0);
#endif
}
static void
wm_dump_mbuf_chain(struct wm_softc *sc, struct mbuf *m0)
{
struct mbuf *m;
int i;
log(LOG_DEBUG, "%s: mbuf chain:\n", device_xname(sc->sc_dev));
for (m = m0, i = 0; m != NULL; m = m->m_next, i++)
log(LOG_DEBUG, "%s:\tm_data = %p, m_len = %d, "
"m_flags = 0x%08x\n", device_xname(sc->sc_dev),
m->m_data, m->m_len, m->m_flags);
log(LOG_DEBUG, "%s:\t%d mbuf%s in chain\n", device_xname(sc->sc_dev),
i, i == 1 ? "" : "s");
}
static void
wm_82547_txfifo_stall(void *arg)
{
struct wm_softc *sc = arg;
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
mutex_enter(txq->txq_lock);
if (txq->txq_stopping)
goto out;
if (txq->txq_fifo_stall) {
if (CSR_READ(sc, WMREG_TDT(0)) == CSR_READ(sc, WMREG_TDH(0)) &&
CSR_READ(sc, WMREG_TDFT) == CSR_READ(sc, WMREG_TDFH) &&
CSR_READ(sc, WMREG_TDFTS) == CSR_READ(sc, WMREG_TDFHS)) {
uint32_t tctl = CSR_READ(sc, WMREG_TCTL);
CSR_WRITE(sc, WMREG_TCTL, tctl & ~TCTL_EN);
CSR_WRITE(sc, WMREG_TDFT, txq->txq_fifo_addr);
CSR_WRITE(sc, WMREG_TDFH, txq->txq_fifo_addr);
CSR_WRITE(sc, WMREG_TDFTS, txq->txq_fifo_addr);
CSR_WRITE(sc, WMREG_TDFHS, txq->txq_fifo_addr);
CSR_WRITE(sc, WMREG_TCTL, tctl);
CSR_WRITE_FLUSH(sc);
txq->txq_fifo_head = 0;
txq->txq_fifo_stall = 0;
wm_start_locked(&sc->sc_ethercom.ec_if);
} else {
callout_schedule(&sc->sc_txfifo_ch, 1);
}
}
out:
mutex_exit(txq->txq_lock);
}
#define WM_FIFO_HDR 0x10
#define WM_82547_PAD_LEN 0x3e0
static int
wm_82547_txfifo_bugchk(struct wm_softc *sc, struct mbuf *m0)
{
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
int space = txq->txq_fifo_size - txq->txq_fifo_head;
int len = roundup(m0->m_pkthdr.len + WM_FIFO_HDR, WM_FIFO_HDR);
if (txq->txq_fifo_stall)
return 1;
if (sc->sc_mii.mii_media_active & IFM_FDX) {
goto send_packet;
}
if (len >= WM_82547_PAD_LEN + space) {
txq->txq_fifo_stall = 1;
callout_schedule(&sc->sc_txfifo_ch, 1);
return 1;
}
send_packet:
txq->txq_fifo_head += len;
if (txq->txq_fifo_head >= txq->txq_fifo_size)
txq->txq_fifo_head -= txq->txq_fifo_size;
return 0;
}
static int
wm_alloc_tx_descs(struct wm_softc *sc, struct wm_txqueue *txq)
{
int error;
if (sc->sc_type < WM_T_82544)
WM_NTXDESC(txq) = WM_NTXDESC_82542;
else
WM_NTXDESC(txq) = WM_NTXDESC_82544;
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
txq->txq_descsize = sizeof(nq_txdesc_t);
else
txq->txq_descsize = sizeof(wiseman_txdesc_t);
if ((error = bus_dmamem_alloc(sc->sc_dmat, WM_TXDESCS_SIZE(txq),
PAGE_SIZE, (bus_size_t) 0x100000000ULL, &txq->txq_desc_seg,
1, &txq->txq_desc_rseg, 0)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to allocate TX control data, error = %d\n",
error);
goto fail_0;
}
if ((error = bus_dmamem_map(sc->sc_dmat, &txq->txq_desc_seg,
txq->txq_desc_rseg, WM_TXDESCS_SIZE(txq),
(void **)&txq->txq_descs_u, BUS_DMA_COHERENT)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to map TX control data, error = %d\n", error);
goto fail_1;
}
if ((error = bus_dmamap_create(sc->sc_dmat, WM_TXDESCS_SIZE(txq), 1,
WM_TXDESCS_SIZE(txq), 0, 0, &txq->txq_desc_dmamap)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to create TX control data DMA map, error = %d\n",
error);
goto fail_2;
}
if ((error = bus_dmamap_load(sc->sc_dmat, txq->txq_desc_dmamap,
txq->txq_descs_u, WM_TXDESCS_SIZE(txq), NULL, 0)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to load TX control data DMA map, error = %d\n",
error);
goto fail_3;
}
return 0;
fail_3:
bus_dmamap_destroy(sc->sc_dmat, txq->txq_desc_dmamap);
fail_2:
bus_dmamem_unmap(sc->sc_dmat, (void *)txq->txq_descs_u,
WM_TXDESCS_SIZE(txq));
fail_1:
bus_dmamem_free(sc->sc_dmat, &txq->txq_desc_seg, txq->txq_desc_rseg);
fail_0:
return error;
}
static void
wm_free_tx_descs(struct wm_softc *sc, struct wm_txqueue *txq)
{
bus_dmamap_unload(sc->sc_dmat, txq->txq_desc_dmamap);
bus_dmamap_destroy(sc->sc_dmat, txq->txq_desc_dmamap);
bus_dmamem_unmap(sc->sc_dmat, (void *)txq->txq_descs_u,
WM_TXDESCS_SIZE(txq));
bus_dmamem_free(sc->sc_dmat, &txq->txq_desc_seg, txq->txq_desc_rseg);
}
static int
wm_alloc_rx_descs(struct wm_softc *sc, struct wm_rxqueue *rxq)
{
int error;
size_t rxq_descs_size;
rxq->rxq_ndesc = WM_NRXDESC;
if (sc->sc_type == WM_T_82574)
rxq->rxq_descsize = sizeof(ext_rxdesc_t);
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
rxq->rxq_descsize = sizeof(nq_rxdesc_t);
else
rxq->rxq_descsize = sizeof(wiseman_rxdesc_t);
rxq_descs_size = rxq->rxq_descsize * rxq->rxq_ndesc;
if ((error = bus_dmamem_alloc(sc->sc_dmat, rxq_descs_size,
PAGE_SIZE, (bus_size_t) 0x100000000ULL, &rxq->rxq_desc_seg,
1, &rxq->rxq_desc_rseg, 0)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to allocate RX control data, error = %d\n",
error);
goto fail_0;
}
if ((error = bus_dmamem_map(sc->sc_dmat, &rxq->rxq_desc_seg,
rxq->rxq_desc_rseg, rxq_descs_size,
(void **)&rxq->rxq_descs_u, BUS_DMA_COHERENT)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to map RX control data, error = %d\n", error);
goto fail_1;
}
if ((error = bus_dmamap_create(sc->sc_dmat, rxq_descs_size, 1,
rxq_descs_size, 0, 0, &rxq->rxq_desc_dmamap)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to create RX control data DMA map, error = %d\n",
error);
goto fail_2;
}
if ((error = bus_dmamap_load(sc->sc_dmat, rxq->rxq_desc_dmamap,
rxq->rxq_descs_u, rxq_descs_size, NULL, 0)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to load RX control data DMA map, error = %d\n",
error);
goto fail_3;
}
return 0;
fail_3:
bus_dmamap_destroy(sc->sc_dmat, rxq->rxq_desc_dmamap);
fail_2:
bus_dmamem_unmap(sc->sc_dmat, (void *)rxq->rxq_descs_u,
rxq_descs_size);
fail_1:
bus_dmamem_free(sc->sc_dmat, &rxq->rxq_desc_seg, rxq->rxq_desc_rseg);
fail_0:
return error;
}
static void
wm_free_rx_descs(struct wm_softc *sc, struct wm_rxqueue *rxq)
{
bus_dmamap_unload(sc->sc_dmat, rxq->rxq_desc_dmamap);
bus_dmamap_destroy(sc->sc_dmat, rxq->rxq_desc_dmamap);
bus_dmamem_unmap(sc->sc_dmat, (void *)rxq->rxq_descs_u,
rxq->rxq_descsize * rxq->rxq_ndesc);
bus_dmamem_free(sc->sc_dmat, &rxq->rxq_desc_seg, rxq->rxq_desc_rseg);
}
static int
wm_alloc_tx_buffer(struct wm_softc *sc, struct wm_txqueue *txq)
{
int i, error;
WM_TXQUEUELEN(txq) =
(sc->sc_type == WM_T_82547 || sc->sc_type == WM_T_82547_2) ?
WM_TXQUEUELEN_MAX_82547 : WM_TXQUEUELEN_MAX;
for (i = 0; i < WM_TXQUEUELEN(txq); i++) {
if ((error = bus_dmamap_create(sc->sc_dmat, WM_MAXTXDMA,
WM_NTXSEGS, WTX_MAX_LEN, 0, 0,
&txq->txq_soft[i].txs_dmamap)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to create Tx DMA map %d, error = %d\n",
i, error);
goto fail;
}
}
return 0;
fail:
for (i = 0; i < WM_TXQUEUELEN(txq); i++) {
if (txq->txq_soft[i].txs_dmamap != NULL)
bus_dmamap_destroy(sc->sc_dmat,
txq->txq_soft[i].txs_dmamap);
}
return error;
}
static void
wm_free_tx_buffer(struct wm_softc *sc, struct wm_txqueue *txq)
{
int i;
for (i = 0; i < WM_TXQUEUELEN(txq); i++) {
if (txq->txq_soft[i].txs_dmamap != NULL)
bus_dmamap_destroy(sc->sc_dmat,
txq->txq_soft[i].txs_dmamap);
}
}
static int
wm_alloc_rx_buffer(struct wm_softc *sc, struct wm_rxqueue *rxq)
{
int i, error;
for (i = 0; i < rxq->rxq_ndesc; i++) {
if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
MCLBYTES, 0, 0,
&rxq->rxq_soft[i].rxs_dmamap)) != 0) {
aprint_error_dev(sc->sc_dev,
"unable to create Rx DMA map %d error = %d\n",
i, error);
goto fail;
}
rxq->rxq_soft[i].rxs_mbuf = NULL;
}
return 0;
fail:
for (i = 0; i < rxq->rxq_ndesc; i++) {
if (rxq->rxq_soft[i].rxs_dmamap != NULL)
bus_dmamap_destroy(sc->sc_dmat,
rxq->rxq_soft[i].rxs_dmamap);
}
return error;
}
static void
wm_free_rx_buffer(struct wm_softc *sc, struct wm_rxqueue *rxq)
{
int i;
for (i = 0; i < rxq->rxq_ndesc; i++) {
if (rxq->rxq_soft[i].rxs_dmamap != NULL)
bus_dmamap_destroy(sc->sc_dmat,
rxq->rxq_soft[i].rxs_dmamap);
}
}
static int
wm_alloc_txrx_queues(struct wm_softc *sc)
{
int i, error, tx_done, rx_done;
sc->sc_queue = kmem_zalloc(sizeof(struct wm_queue) * sc->sc_nqueues,
KM_SLEEP);
if (sc->sc_queue == NULL) {
aprint_error_dev(sc->sc_dev,"unable to allocate wm_queue\n");
error = ENOMEM;
goto fail_0;
}
error = 0;
tx_done = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
#ifdef WM_EVENT_COUNTERS
int j;
const char *xname;
#endif
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
txq->txq_sc = sc;
txq->txq_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
error = wm_alloc_tx_descs(sc, txq);
if (error)
break;
error = wm_alloc_tx_buffer(sc, txq);
if (error) {
wm_free_tx_descs(sc, txq);
break;
}
txq->txq_interq = pcq_create(WM_TXINTERQSIZE, KM_SLEEP);
if (txq->txq_interq == NULL) {
wm_free_tx_descs(sc, txq);
wm_free_tx_buffer(sc, txq);
error = ENOMEM;
break;
}
#ifdef WM_EVENT_COUNTERS
xname = device_xname(sc->sc_dev);
WM_Q_MISC_EVCNT_ATTACH(txq, txsstall, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, txdstall, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, fifo_stall, txq, i, xname);
WM_Q_INTR_EVCNT_ATTACH(txq, txdw, txq, i, xname);
WM_Q_INTR_EVCNT_ATTACH(txq, txqe, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, ipsum, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, tusum, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, tusum6, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, tso, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, tso6, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, tsopain, txq, i, xname);
for (j = 0; j < WM_NTXSEGS; j++) {
snprintf(txq->txq_txseg_evcnt_names[j],
sizeof(txq->txq_txseg_evcnt_names[j]),
"txq%02dtxseg%d", i, j);
evcnt_attach_dynamic(&txq->txq_ev_txseg[j],
EVCNT_TYPE_MISC,
NULL, xname, txq->txq_txseg_evcnt_names[j]);
}
WM_Q_MISC_EVCNT_ATTACH(txq, pcqdrop, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, descdrop, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, toomanyseg, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, defrag, txq, i, xname);
if (sc->sc_type <= WM_T_82544)
WM_Q_MISC_EVCNT_ATTACH(txq, underrun, txq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(txq, skipcontext, txq, i, xname);
#endif
tx_done++;
}
if (error)
goto fail_1;
error = 0;
rx_done = 0;
for (i = 0; i < sc->sc_nqueues; i++) {
#ifdef WM_EVENT_COUNTERS
const char *xname;
#endif
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
rxq->rxq_sc = sc;
rxq->rxq_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
error = wm_alloc_rx_descs(sc, rxq);
if (error)
break;
error = wm_alloc_rx_buffer(sc, rxq);
if (error) {
wm_free_rx_descs(sc, rxq);
break;
}
#ifdef WM_EVENT_COUNTERS
xname = device_xname(sc->sc_dev);
WM_Q_INTR_EVCNT_ATTACH(rxq, intr, rxq, i, xname);
WM_Q_INTR_EVCNT_ATTACH(rxq, defer, rxq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(rxq, ipsum, rxq, i, xname);
WM_Q_MISC_EVCNT_ATTACH(rxq, tusum, rxq, i, xname);
if ((sc->sc_type >= WM_T_82575) && !WM_IS_ICHPCH(sc))
WM_Q_MISC_EVCNT_ATTACH(rxq, qdrop, rxq, i, xname);
#endif
rx_done++;
}
if (error)
goto fail_2;
return 0;
fail_2:
for (i = 0; i < rx_done; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
wm_free_rx_buffer(sc, rxq);
wm_free_rx_descs(sc, rxq);
if (rxq->rxq_lock)
mutex_obj_free(rxq->rxq_lock);
}
fail_1:
for (i = 0; i < tx_done; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
pcq_destroy(txq->txq_interq);
wm_free_tx_buffer(sc, txq);
wm_free_tx_descs(sc, txq);
if (txq->txq_lock)
mutex_obj_free(txq->txq_lock);
}
kmem_free(sc->sc_queue,
sizeof(struct wm_queue) * sc->sc_nqueues);
fail_0:
return error;
}
static void
wm_free_txrx_queues(struct wm_softc *sc)
{
int i;
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_rxqueue *rxq = &sc->sc_queue[i].wmq_rxq;
#ifdef WM_EVENT_COUNTERS
WM_Q_EVCNT_DETACH(rxq, intr, rxq, i);
WM_Q_EVCNT_DETACH(rxq, defer, rxq, i);
WM_Q_EVCNT_DETACH(rxq, ipsum, rxq, i);
WM_Q_EVCNT_DETACH(rxq, tusum, rxq, i);
if ((sc->sc_type >= WM_T_82575) && !WM_IS_ICHPCH(sc))
WM_Q_EVCNT_DETACH(rxq, qdrop, rxq, i);
#endif
wm_free_rx_buffer(sc, rxq);
wm_free_rx_descs(sc, rxq);
if (rxq->rxq_lock)
mutex_obj_free(rxq->rxq_lock);
}
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_txqueue *txq = &sc->sc_queue[i].wmq_txq;
struct mbuf *m;
#ifdef WM_EVENT_COUNTERS
int j;
WM_Q_EVCNT_DETACH(txq, txsstall, txq, i);
WM_Q_EVCNT_DETACH(txq, txdstall, txq, i);
WM_Q_EVCNT_DETACH(txq, fifo_stall, txq, i);
WM_Q_EVCNT_DETACH(txq, txdw, txq, i);
WM_Q_EVCNT_DETACH(txq, txqe, txq, i);
WM_Q_EVCNT_DETACH(txq, ipsum, txq, i);
WM_Q_EVCNT_DETACH(txq, tusum, txq, i);
WM_Q_EVCNT_DETACH(txq, tusum6, txq, i);
WM_Q_EVCNT_DETACH(txq, tso, txq, i);
WM_Q_EVCNT_DETACH(txq, tso6, txq, i);
WM_Q_EVCNT_DETACH(txq, tsopain, txq, i);
for (j = 0; j < WM_NTXSEGS; j++)
evcnt_detach(&txq->txq_ev_txseg[j]);
WM_Q_EVCNT_DETACH(txq, pcqdrop, txq, i);
WM_Q_EVCNT_DETACH(txq, descdrop, txq, i);
WM_Q_EVCNT_DETACH(txq, toomanyseg, txq, i);
WM_Q_EVCNT_DETACH(txq, defrag, txq, i);
if (sc->sc_type <= WM_T_82544)
WM_Q_EVCNT_DETACH(txq, underrun, txq, i);
WM_Q_EVCNT_DETACH(txq, skipcontext, txq, i);
#endif
while ((m = pcq_get(txq->txq_interq)) != NULL)
m_freem(m);
pcq_destroy(txq->txq_interq);
wm_free_tx_buffer(sc, txq);
wm_free_tx_descs(sc, txq);
if (txq->txq_lock)
mutex_obj_free(txq->txq_lock);
}
kmem_free(sc->sc_queue, sizeof(struct wm_queue) * sc->sc_nqueues);
}
static void
wm_init_tx_descs(struct wm_softc *sc __unused, struct wm_txqueue *txq)
{
KASSERT(mutex_owned(txq->txq_lock));
memset(txq->txq_descs, 0, WM_TXDESCS_SIZE(txq));
wm_cdtxsync(txq, 0, WM_NTXDESC(txq),
BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
txq->txq_free = WM_NTXDESC(txq);
txq->txq_next = 0;
}
static void
wm_init_tx_regs(struct wm_softc *sc, struct wm_queue *wmq,
struct wm_txqueue *txq)
{
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(mutex_owned(txq->txq_lock));
if (sc->sc_type < WM_T_82543) {
CSR_WRITE(sc, WMREG_OLD_TDBAH, WM_CDTXADDR_HI(txq, 0));
CSR_WRITE(sc, WMREG_OLD_TDBAL, WM_CDTXADDR_LO(txq, 0));
CSR_WRITE(sc, WMREG_OLD_TDLEN, WM_TXDESCS_SIZE(txq));
CSR_WRITE(sc, WMREG_OLD_TDH, 0);
CSR_WRITE(sc, WMREG_OLD_TDT, 0);
CSR_WRITE(sc, WMREG_OLD_TIDV, 128);
} else {
int qid = wmq->wmq_id;
CSR_WRITE(sc, WMREG_TDBAH(qid), WM_CDTXADDR_HI(txq, 0));
CSR_WRITE(sc, WMREG_TDBAL(qid), WM_CDTXADDR_LO(txq, 0));
CSR_WRITE(sc, WMREG_TDLEN(qid), WM_TXDESCS_SIZE(txq));
CSR_WRITE(sc, WMREG_TDH(qid), 0);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
CSR_WRITE(sc, WMREG_TXDCTL(qid), TXDCTL_QUEUE_ENABLE
| TXDCTL_PTHRESH(0) | TXDCTL_HTHRESH(0)
| TXDCTL_WTHRESH(0));
else {
CSR_WRITE(sc, WMREG_TIDV, wmq->wmq_itr / 4);
if (sc->sc_type >= WM_T_82540) {
CSR_WRITE(sc, WMREG_TADV, wmq->wmq_itr / 4);
}
CSR_WRITE(sc, WMREG_TDT(qid), 0);
CSR_WRITE(sc, WMREG_TXDCTL(qid), TXDCTL_PTHRESH(0) |
TXDCTL_HTHRESH(0) | TXDCTL_WTHRESH(0));
}
}
}
static void
wm_init_tx_buffer(struct wm_softc *sc __unused, struct wm_txqueue *txq)
{
int i;
KASSERT(mutex_owned(txq->txq_lock));
for (i = 0; i < WM_TXQUEUELEN(txq); i++)
txq->txq_soft[i].txs_mbuf = NULL;
txq->txq_sfree = WM_TXQUEUELEN(txq);
txq->txq_snext = 0;
txq->txq_sdirty = 0;
}
static void
wm_init_tx_queue(struct wm_softc *sc, struct wm_queue *wmq,
struct wm_txqueue *txq)
{
KASSERT(mutex_owned(txq->txq_lock));
if (sc->sc_type < WM_T_82543)
txq->txq_tdt_reg = WMREG_OLD_TDT;
else
txq->txq_tdt_reg = WMREG_TDT(wmq->wmq_id);
wm_init_tx_descs(sc, txq);
wm_init_tx_regs(sc, wmq, txq);
wm_init_tx_buffer(sc, txq);
txq->txq_flags &= WM_TXQ_LINKDOWN_DISCARD;
txq->txq_sending = false;
}
static void
wm_init_rx_regs(struct wm_softc *sc, struct wm_queue *wmq,
struct wm_rxqueue *rxq)
{
KASSERT(mutex_owned(rxq->rxq_lock));
if (sc->sc_type < WM_T_82543) {
CSR_WRITE(sc, WMREG_OLD_RDBAH0, WM_CDRXADDR_HI(rxq, 0));
CSR_WRITE(sc, WMREG_OLD_RDBAL0, WM_CDRXADDR_LO(rxq, 0));
CSR_WRITE(sc, WMREG_OLD_RDLEN0,
rxq->rxq_descsize * rxq->rxq_ndesc);
CSR_WRITE(sc, WMREG_OLD_RDH0, 0);
CSR_WRITE(sc, WMREG_OLD_RDT0, 0);
CSR_WRITE(sc, WMREG_OLD_RDTR0, 28 | RDTR_FPD);
CSR_WRITE(sc, WMREG_OLD_RDBA1_HI, 0);
CSR_WRITE(sc, WMREG_OLD_RDBA1_LO, 0);
CSR_WRITE(sc, WMREG_OLD_RDLEN1, 0);
CSR_WRITE(sc, WMREG_OLD_RDH1, 0);
CSR_WRITE(sc, WMREG_OLD_RDT1, 0);
CSR_WRITE(sc, WMREG_OLD_RDTR1, 0);
} else {
int qid = wmq->wmq_id;
CSR_WRITE(sc, WMREG_RDBAH(qid), WM_CDRXADDR_HI(rxq, 0));
CSR_WRITE(sc, WMREG_RDBAL(qid), WM_CDRXADDR_LO(rxq, 0));
CSR_WRITE(sc, WMREG_RDLEN(qid),
rxq->rxq_descsize * rxq->rxq_ndesc);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
uint32_t srrctl;
if (MCLBYTES & ((1 << SRRCTL_BSIZEPKT_SHIFT) - 1))
panic("%s: MCLBYTES %d unsupported for 82575 "
"or higher\n", __func__, MCLBYTES);
srrctl = SRRCTL_DESCTYPE_ADV_ONEBUF
| (MCLBYTES >> SRRCTL_BSIZEPKT_SHIFT);
if (sc->sc_nqueues > 1)
srrctl |= SRRCTL_DROP_EN;
CSR_WRITE(sc, WMREG_SRRCTL(qid), srrctl);
CSR_WRITE(sc, WMREG_RXDCTL(qid), RXDCTL_QUEUE_ENABLE
| RXDCTL_PTHRESH(16) | RXDCTL_HTHRESH(8)
| RXDCTL_WTHRESH(1));
CSR_WRITE(sc, WMREG_RDH(qid), 0);
CSR_WRITE(sc, WMREG_RDT(qid), 0);
} else {
CSR_WRITE(sc, WMREG_RDH(qid), 0);
CSR_WRITE(sc, WMREG_RDT(qid), 0);
CSR_WRITE(sc, WMREG_RDTR,
(wmq->wmq_itr / 4) | RDTR_FPD);
CSR_WRITE(sc, WMREG_RADV, wmq->wmq_itr / 4);
CSR_WRITE(sc, WMREG_RXDCTL(qid), RXDCTL_PTHRESH(0) |
RXDCTL_HTHRESH(0) | RXDCTL_WTHRESH(1));
}
}
}
static int
wm_init_rx_buffer(struct wm_softc *sc, struct wm_rxqueue *rxq)
{
struct wm_rxsoft *rxs;
int error, i;
KASSERT(mutex_owned(rxq->rxq_lock));
for (i = 0; i < rxq->rxq_ndesc; i++) {
rxs = &rxq->rxq_soft[i];
if (rxs->rxs_mbuf == NULL) {
if ((error = wm_add_rxbuf(rxq, i)) != 0) {
log(LOG_ERR, "%s: unable to allocate or map "
"rx buffer %d, error = %d\n",
device_xname(sc->sc_dev), i, error);
wm_rxdrain(rxq);
return ENOMEM;
}
} else {
if ((sc->sc_flags & WM_F_NEWQUEUE) == 0)
wm_init_rxdesc(rxq, i);
}
}
rxq->rxq_ptr = 0;
rxq->rxq_discard = 0;
WM_RXCHAIN_RESET(rxq);
return 0;
}
static int
wm_init_rx_queue(struct wm_softc *sc, struct wm_queue *wmq,
struct wm_rxqueue *rxq)
{
KASSERT(mutex_owned(rxq->rxq_lock));
if (sc->sc_type < WM_T_82543)
rxq->rxq_rdt_reg = WMREG_OLD_RDT0;
else
rxq->rxq_rdt_reg = WMREG_RDT(wmq->wmq_id);
wm_init_rx_regs(sc, wmq, rxq);
return wm_init_rx_buffer(sc, rxq);
}
static int
wm_init_txrx_queues(struct wm_softc *sc)
{
int i, error = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
for (i = 0; i < sc->sc_nqueues; i++) {
struct wm_queue *wmq = &sc->sc_queue[i];
struct wm_txqueue *txq = &wmq->wmq_txq;
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
if (wm_is_using_multiqueue(sc))
wmq->wmq_itr = 50;
else
wmq->wmq_itr = sc->sc_itr_init;
wmq->wmq_set_itr = true;
mutex_enter(txq->txq_lock);
wm_init_tx_queue(sc, wmq, txq);
mutex_exit(txq->txq_lock);
mutex_enter(rxq->rxq_lock);
error = wm_init_rx_queue(sc, wmq, rxq);
mutex_exit(rxq->rxq_lock);
if (error)
break;
}
return error;
}
static void
wm_tx_offload(struct wm_softc *sc, struct wm_txqueue *txq,
struct wm_txsoft *txs, uint32_t *cmdp, uint8_t *fieldsp)
{
struct mbuf *m0 = txs->txs_mbuf;
struct livengood_tcpip_ctxdesc *t;
uint32_t ipcs, tucs, cmd, cmdlen, seg;
uint32_t ipcse;
struct ether_header *eh;
int offset, iphl;
uint8_t fields;
eh = mtod(m0, struct ether_header *);
switch (htons(eh->ether_type)) {
case ETHERTYPE_IP:
case ETHERTYPE_IPV6:
offset = ETHER_HDR_LEN;
break;
case ETHERTYPE_VLAN:
offset = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
break;
default:
txq->txq_last_hw_cmd = txq->txq_last_hw_fields = 0;
txq->txq_last_hw_ipcs = 0;
txq->txq_last_hw_tucs = 0;
*fieldsp = 0;
*cmdp = 0;
return;
}
if ((m0->m_pkthdr.csum_flags &
(M_CSUM_TSOv4 | M_CSUM_UDPv4 | M_CSUM_TCPv4 | M_CSUM_IPv4)) != 0) {
iphl = M_CSUM_DATA_IPv4_IPHL(m0->m_pkthdr.csum_data);
} else
iphl = M_CSUM_DATA_IPv6_IPHL(m0->m_pkthdr.csum_data);
ipcse = offset + iphl - 1;
cmd = WTX_CMD_DEXT | WTX_DTYP_D;
cmdlen = WTX_CMD_DEXT | WTX_DTYP_C | WTX_CMD_IDE;
seg = 0;
fields = 0;
if ((m0->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0) {
int hlen = offset + iphl;
bool v4 = (m0->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0;
if (__predict_false(m0->m_len <
(hlen + sizeof(struct tcphdr)))) {
struct tcphdr th;
WM_Q_EVCNT_INCR(txq, tsopain);
m_copydata(m0, hlen, sizeof(th), &th);
if (v4) {
struct ip ip;
m_copydata(m0, offset, sizeof(ip), &ip);
ip.ip_len = 0;
m_copyback(m0,
offset + offsetof(struct ip, ip_len),
sizeof(ip.ip_len), &ip.ip_len);
th.th_sum = in_cksum_phdr(ip.ip_src.s_addr,
ip.ip_dst.s_addr, htons(IPPROTO_TCP));
} else {
struct ip6_hdr ip6;
m_copydata(m0, offset, sizeof(ip6), &ip6);
ip6.ip6_plen = 0;
m_copyback(m0,
offset + offsetof(struct ip6_hdr, ip6_plen),
sizeof(ip6.ip6_plen), &ip6.ip6_plen);
th.th_sum = in6_cksum_phdr(&ip6.ip6_src,
&ip6.ip6_dst, 0, htonl(IPPROTO_TCP));
}
m_copyback(m0, hlen + offsetof(struct tcphdr, th_sum),
sizeof(th.th_sum), &th.th_sum);
hlen += th.th_off << 2;
} else {
struct tcphdr *th;
if (v4) {
struct ip *ip =
(void *)(mtod(m0, char *) + offset);
th = (void *)(mtod(m0, char *) + hlen);
ip->ip_len = 0;
th->th_sum = in_cksum_phdr(ip->ip_src.s_addr,
ip->ip_dst.s_addr, htons(IPPROTO_TCP));
} else {
struct ip6_hdr *ip6 =
(void *)(mtod(m0, char *) + offset);
th = (void *)(mtod(m0, char *) + hlen);
ip6->ip6_plen = 0;
th->th_sum = in6_cksum_phdr(&ip6->ip6_src,
&ip6->ip6_dst, 0, htonl(IPPROTO_TCP));
}
hlen += th->th_off << 2;
}
if (v4) {
WM_Q_EVCNT_INCR(txq, tso);
cmdlen |= WTX_TCPIP_CMD_IP;
} else {
WM_Q_EVCNT_INCR(txq, tso6);
ipcse = 0;
}
cmd |= WTX_TCPIP_CMD_TSE;
cmdlen |= WTX_TCPIP_CMD_TSE |
WTX_TCPIP_CMD_TCP | (m0->m_pkthdr.len - hlen);
seg = WTX_TCPIP_SEG_HDRLEN(hlen) |
WTX_TCPIP_SEG_MSS(m0->m_pkthdr.segsz);
}
ipcs = WTX_TCPIP_IPCSS(offset) |
WTX_TCPIP_IPCSO(offset + offsetof(struct ip, ip_sum)) |
WTX_TCPIP_IPCSE(ipcse);
if (m0->m_pkthdr.csum_flags & (M_CSUM_IPv4 | M_CSUM_TSOv4)) {
WM_Q_EVCNT_INCR(txq, ipsum);
fields |= WTX_IXSM;
}
offset += iphl;
if (m0->m_pkthdr.csum_flags &
(M_CSUM_TCPv4 | M_CSUM_UDPv4 | M_CSUM_TSOv4)) {
WM_Q_EVCNT_INCR(txq, tusum);
fields |= WTX_TXSM;
tucs = WTX_TCPIP_TUCSS(offset) |
WTX_TCPIP_TUCSO(offset +
M_CSUM_DATA_IPv4_OFFSET(m0->m_pkthdr.csum_data)) |
WTX_TCPIP_TUCSE(0) ;
} else if ((m0->m_pkthdr.csum_flags &
(M_CSUM_TCPv6 | M_CSUM_UDPv6 | M_CSUM_TSOv6)) != 0) {
WM_Q_EVCNT_INCR(txq, tusum6);
fields |= WTX_TXSM;
tucs = WTX_TCPIP_TUCSS(offset) |
WTX_TCPIP_TUCSO(offset +
M_CSUM_DATA_IPv6_OFFSET(m0->m_pkthdr.csum_data)) |
WTX_TCPIP_TUCSE(0) ;
} else {
tucs = WTX_TCPIP_TUCSS(offset) |
WTX_TCPIP_TUCSO(offset + offsetof(struct tcphdr, th_sum)) |
WTX_TCPIP_TUCSE(0) ;
}
*cmdp = cmd;
*fieldsp = fields;
if (sc->sc_nqueues < 2) {
if ((m0->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6))
== 0) {
if (txq->txq_last_hw_cmd == cmd &&
txq->txq_last_hw_fields == fields &&
txq->txq_last_hw_ipcs == (ipcs & 0xffff) &&
txq->txq_last_hw_tucs == (tucs & 0xffff)) {
WM_Q_EVCNT_INCR(txq, skipcontext);
return;
}
}
txq->txq_last_hw_cmd = cmd;
txq->txq_last_hw_fields = fields;
txq->txq_last_hw_ipcs = (ipcs & 0xffff);
txq->txq_last_hw_tucs = (tucs & 0xffff);
}
t = (struct livengood_tcpip_ctxdesc *)
&txq->txq_descs[txq->txq_next];
t->tcpip_ipcs = htole32(ipcs);
t->tcpip_tucs = htole32(tucs);
t->tcpip_cmdlen = htole32(cmdlen);
t->tcpip_seg = htole32(seg);
wm_cdtxsync(txq, txq->txq_next, 1, BUS_DMASYNC_PREWRITE);
txq->txq_next = WM_NEXTTX(txq, txq->txq_next);
txs->txs_ndesc++;
}
static inline int
wm_select_txqueue(struct ifnet *ifp, struct mbuf *m)
{
struct wm_softc *sc = ifp->if_softc;
u_int cpuid = cpu_index(curcpu());
return ((cpuid + ncpu - sc->sc_affinity_offset) % ncpu) % sc->sc_nqueues;
}
static inline bool
wm_linkdown_discard(struct wm_txqueue *txq)
{
if ((txq->txq_flags & WM_TXQ_LINKDOWN_DISCARD) != 0)
return true;
return false;
}
static void
wm_start(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
KASSERT(if_is_mpsafe(ifp));
mutex_enter(txq->txq_lock);
if (!txq->txq_stopping)
wm_start_locked(ifp);
mutex_exit(txq->txq_lock);
}
static void
wm_start_locked(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
wm_send_common_locked(ifp, txq, false);
}
static int
wm_transmit(struct ifnet *ifp, struct mbuf *m)
{
int qid;
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq;
qid = wm_select_txqueue(ifp, m);
txq = &sc->sc_queue[qid].wmq_txq;
if (__predict_false(!pcq_put(txq->txq_interq, m))) {
m_freem(m);
WM_Q_EVCNT_INCR(txq, pcqdrop);
return ENOBUFS;
}
net_stat_ref_t nsr = IF_STAT_GETREF(ifp);
if_statadd_ref(ifp, nsr, if_obytes, m->m_pkthdr.len);
if (m->m_flags & M_MCAST)
if_statinc_ref(ifp, nsr, if_omcasts);
IF_STAT_PUTREF(ifp);
if (mutex_tryenter(txq->txq_lock)) {
if (!txq->txq_stopping)
wm_transmit_locked(ifp, txq);
mutex_exit(txq->txq_lock);
}
return 0;
}
static void
wm_transmit_locked(struct ifnet *ifp, struct wm_txqueue *txq)
{
wm_send_common_locked(ifp, txq, true);
}
static void
wm_send_common_locked(struct ifnet *ifp, struct wm_txqueue *txq,
bool is_transmit)
{
struct wm_softc *sc = ifp->if_softc;
struct mbuf *m0;
struct wm_txsoft *txs;
bus_dmamap_t dmamap;
int error, nexttx, lasttx = -1, ofree, seg, segs_needed, use_tso;
bus_addr_t curaddr;
bus_size_t seglen, curlen;
uint32_t cksumcmd;
uint8_t cksumfields;
bool remap = true;
KASSERT(mutex_owned(txq->txq_lock));
KASSERT(!txq->txq_stopping);
if ((txq->txq_flags & WM_TXQ_NO_SPACE) != 0)
return;
if (__predict_false(wm_linkdown_discard(txq))) {
do {
if (is_transmit)
m0 = pcq_get(txq->txq_interq);
else
IFQ_DEQUEUE(&ifp->if_snd, m0);
if (m0 != NULL) {
if_statinc(ifp, if_opackets);
m_freem(m0);
}
} while (m0 != NULL);
return;
}
ofree = txq->txq_free;
for (;;) {
m0 = NULL;
if (txq->txq_sfree < WM_TXQUEUE_GC(txq)) {
wm_txeof(txq, UINT_MAX);
if (txq->txq_sfree == 0) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: no free job descriptors\n",
device_xname(sc->sc_dev)));
WM_Q_EVCNT_INCR(txq, txsstall);
break;
}
}
if (is_transmit)
m0 = pcq_get(txq->txq_interq);
else
IFQ_DEQUEUE(&ifp->if_snd, m0);
if (m0 == NULL)
break;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: have packet to transmit: %p\n",
device_xname(sc->sc_dev), m0));
txs = &txq->txq_soft[txq->txq_snext];
dmamap = txs->txs_dmamap;
use_tso = (m0->m_pkthdr.csum_flags &
(M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0;
dmamap->dm_maxsegsz =
(use_tso && (m0->m_pkthdr.segsz << 2) < WTX_MAX_LEN)
? m0->m_pkthdr.segsz << 2
: WTX_MAX_LEN;
retry:
error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
BUS_DMA_WRITE | BUS_DMA_NOWAIT);
if (__predict_false(error)) {
if (error == EFBIG) {
if (remap == true) {
struct mbuf *m;
remap = false;
m = m_defrag(m0, M_NOWAIT);
if (m != NULL) {
WM_Q_EVCNT_INCR(txq, defrag);
m0 = m;
goto retry;
}
}
WM_Q_EVCNT_INCR(txq, toomanyseg);
log(LOG_ERR, "%s: Tx packet consumes too many "
"DMA segments, dropping...\n",
device_xname(sc->sc_dev));
wm_dump_mbuf_chain(sc, m0);
m_freem(m0);
continue;
}
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: dmamap load failed: %d\n",
device_xname(sc->sc_dev), error));
break;
}
segs_needed = dmamap->dm_nsegs;
if (use_tso) {
segs_needed++;
}
if (segs_needed > txq->txq_free - 2) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: need %d (%d) descriptors, have %d\n",
device_xname(sc->sc_dev), dmamap->dm_nsegs,
segs_needed, txq->txq_free - 1));
txq->txq_flags |= WM_TXQ_NO_SPACE;
bus_dmamap_unload(sc->sc_dmat, dmamap);
WM_Q_EVCNT_INCR(txq, txdstall);
break;
}
if (sc->sc_type == WM_T_82547 &&
wm_82547_txfifo_bugchk(sc, m0)) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: 82547 Tx FIFO bug detected\n",
device_xname(sc->sc_dev)));
txq->txq_flags |= WM_TXQ_NO_SPACE;
bus_dmamap_unload(sc->sc_dmat, dmamap);
WM_Q_EVCNT_INCR(txq, fifo_stall);
break;
}
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: packet has %d (%d) DMA segments\n",
device_xname(sc->sc_dev), dmamap->dm_nsegs, segs_needed));
WM_EVCNT_INCR(&txq->txq_ev_txseg[dmamap->dm_nsegs - 1]);
txs->txs_mbuf = m0;
txs->txs_firstdesc = txq->txq_next;
txs->txs_ndesc = segs_needed;
if (m0->m_pkthdr.csum_flags &
(M_CSUM_TSOv4 | M_CSUM_TSOv6 |
M_CSUM_IPv4 | M_CSUM_TCPv4 | M_CSUM_UDPv4 |
M_CSUM_TCPv6 | M_CSUM_UDPv6)) {
wm_tx_offload(sc, txq, txs, &cksumcmd, &cksumfields);
} else {
txq->txq_last_hw_cmd = txq->txq_last_hw_fields = 0;
txq->txq_last_hw_ipcs = txq->txq_last_hw_tucs = 0;
cksumcmd = 0;
cksumfields = 0;
}
cksumcmd |= WTX_CMD_IDE | WTX_CMD_IFCS;
bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
BUS_DMASYNC_PREWRITE);
for (nexttx = txq->txq_next, seg = 0;
seg < dmamap->dm_nsegs; seg++) {
for (seglen = dmamap->dm_segs[seg].ds_len,
curaddr = dmamap->dm_segs[seg].ds_addr;
seglen != 0;
curaddr += curlen, seglen -= curlen,
nexttx = WM_NEXTTX(txq, nexttx)) {
curlen = seglen;
if (use_tso && seg == dmamap->dm_nsegs - 1 &&
curlen > 8)
curlen -= 4;
wm_set_dma_addr(
&txq->txq_descs[nexttx].wtx_addr, curaddr);
txq->txq_descs[nexttx].wtx_cmdlen
= htole32(cksumcmd | curlen);
txq->txq_descs[nexttx].wtx_fields.wtxu_status
= 0;
txq->txq_descs[nexttx].wtx_fields.wtxu_options
= cksumfields;
txq->txq_descs[nexttx].wtx_fields.wtxu_vlan =0;
lasttx = nexttx;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: desc %d: low %#" PRIx64 ", "
"len %#04zx\n",
device_xname(sc->sc_dev), nexttx,
(uint64_t)curaddr, curlen));
}
}
KASSERT(lasttx != -1);
txq->txq_descs[lasttx].wtx_cmdlen |=
htole32(WTX_CMD_EOP | WTX_CMD_RS);
if (vlan_has_tag(m0)) {
txq->txq_descs[lasttx].wtx_cmdlen |=
htole32(WTX_CMD_VLE);
txq->txq_descs[lasttx].wtx_fields.wtxu_vlan
= htole16(vlan_get_tag(m0));
}
txs->txs_lastdesc = lasttx;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: desc %d: cmdlen 0x%08x\n",
device_xname(sc->sc_dev),
lasttx, le32toh(txq->txq_descs[lasttx].wtx_cmdlen)));
wm_cdtxsync(txq, txq->txq_next, txs->txs_ndesc,
BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
CSR_WRITE(sc, txq->txq_tdt_reg, nexttx);
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: TDT -> %d\n", device_xname(sc->sc_dev), nexttx));
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: finished transmitting packet, job %d\n",
device_xname(sc->sc_dev), txq->txq_snext));
txq->txq_free -= txs->txs_ndesc;
txq->txq_next = nexttx;
txq->txq_sfree--;
txq->txq_snext = WM_NEXTTXS(txq, txq->txq_snext);
bpf_mtap(ifp, m0, BPF_D_OUT);
}
if (m0 != NULL) {
txq->txq_flags |= WM_TXQ_NO_SPACE;
WM_Q_EVCNT_INCR(txq, descdrop);
DPRINTF(sc, WM_DEBUG_TX, ("%s: TX: error after IFQ_DEQUEUE\n",
__func__));
m_freem(m0);
}
if (txq->txq_sfree == 0 || txq->txq_free <= 2) {
txq->txq_flags |= WM_TXQ_NO_SPACE;
}
if (txq->txq_free != ofree) {
txq->txq_lastsent = time_uptime;
txq->txq_sending = true;
}
}
static void
wm_nq_tx_offload(struct wm_softc *sc, struct wm_txqueue *txq,
struct wm_txsoft *txs, uint32_t *cmdlenp, uint32_t *fieldsp, bool *do_csum)
{
struct mbuf *m0 = txs->txs_mbuf;
uint32_t vl_len, mssidx, cmdc;
struct ether_header *eh;
int offset, iphl;
*cmdlenp = 0;
*fieldsp = 0;
eh = mtod(m0, struct ether_header *);
switch (htons(eh->ether_type)) {
case ETHERTYPE_IP:
case ETHERTYPE_IPV6:
offset = ETHER_HDR_LEN;
break;
case ETHERTYPE_VLAN:
offset = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
break;
default:
*do_csum = false;
return;
}
*do_csum = true;
*cmdlenp = NQTX_DTYP_D | NQTX_CMD_DEXT | NQTX_CMD_IFCS;
cmdc = NQTX_DTYP_C | NQTX_CMD_DEXT;
vl_len = (offset << NQTXC_VLLEN_MACLEN_SHIFT);
KASSERT((offset & ~NQTXC_VLLEN_MACLEN_MASK) == 0);
if ((m0->m_pkthdr.csum_flags &
(M_CSUM_TSOv4 | M_CSUM_UDPv4 | M_CSUM_TCPv4 | M_CSUM_IPv4)) != 0) {
iphl = M_CSUM_DATA_IPv4_IPHL(m0->m_pkthdr.csum_data);
} else {
iphl = M_CSUM_DATA_IPv6_IPHL(m0->m_pkthdr.csum_data);
}
vl_len |= (iphl << NQTXC_VLLEN_IPLEN_SHIFT);
KASSERT((iphl & ~NQTXC_VLLEN_IPLEN_MASK) == 0);
if (vlan_has_tag(m0)) {
vl_len |= ((vlan_get_tag(m0) & NQTXC_VLLEN_VLAN_MASK)
<< NQTXC_VLLEN_VLAN_SHIFT);
*cmdlenp |= NQTX_CMD_VLE;
}
mssidx = 0;
if ((m0->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0) {
int hlen = offset + iphl;
int tcp_hlen;
bool v4 = (m0->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0;
if (__predict_false(m0->m_len <
(hlen + sizeof(struct tcphdr)))) {
struct tcphdr th;
WM_Q_EVCNT_INCR(txq, tsopain);
m_copydata(m0, hlen, sizeof(th), &th);
if (v4) {
struct ip ip;
m_copydata(m0, offset, sizeof(ip), &ip);
ip.ip_len = 0;
m_copyback(m0,
offset + offsetof(struct ip, ip_len),
sizeof(ip.ip_len), &ip.ip_len);
th.th_sum = in_cksum_phdr(ip.ip_src.s_addr,
ip.ip_dst.s_addr, htons(IPPROTO_TCP));
} else {
struct ip6_hdr ip6;
m_copydata(m0, offset, sizeof(ip6), &ip6);
ip6.ip6_plen = 0;
m_copyback(m0,
offset + offsetof(struct ip6_hdr, ip6_plen),
sizeof(ip6.ip6_plen), &ip6.ip6_plen);
th.th_sum = in6_cksum_phdr(&ip6.ip6_src,
&ip6.ip6_dst, 0, htonl(IPPROTO_TCP));
}
m_copyback(m0, hlen + offsetof(struct tcphdr, th_sum),
sizeof(th.th_sum), &th.th_sum);
tcp_hlen = th.th_off << 2;
} else {
struct tcphdr *th;
if (v4) {
struct ip *ip =
(void *)(mtod(m0, char *) + offset);
th = (void *)(mtod(m0, char *) + hlen);
ip->ip_len = 0;
th->th_sum = in_cksum_phdr(ip->ip_src.s_addr,
ip->ip_dst.s_addr, htons(IPPROTO_TCP));
} else {
struct ip6_hdr *ip6 =
(void *)(mtod(m0, char *) + offset);
th = (void *)(mtod(m0, char *) + hlen);
ip6->ip6_plen = 0;
th->th_sum = in6_cksum_phdr(&ip6->ip6_src,
&ip6->ip6_dst, 0, htonl(IPPROTO_TCP));
}
tcp_hlen = th->th_off << 2;
}
hlen += tcp_hlen;
*cmdlenp |= NQTX_CMD_TSE;
if (v4) {
WM_Q_EVCNT_INCR(txq, tso);
*fieldsp |= NQTXD_FIELDS_IXSM | NQTXD_FIELDS_TUXSM;
} else {
WM_Q_EVCNT_INCR(txq, tso6);
*fieldsp |= NQTXD_FIELDS_TUXSM;
}
*fieldsp |= ((m0->m_pkthdr.len - hlen) << NQTXD_FIELDS_PAYLEN_SHIFT);
KASSERT(((m0->m_pkthdr.len - hlen) & ~NQTXD_FIELDS_PAYLEN_MASK) == 0);
mssidx |= (m0->m_pkthdr.segsz << NQTXC_MSSIDX_MSS_SHIFT);
KASSERT((m0->m_pkthdr.segsz & ~NQTXC_MSSIDX_MSS_MASK) == 0);
mssidx |= (tcp_hlen << NQTXC_MSSIDX_L4LEN_SHIFT);
KASSERT((tcp_hlen & ~NQTXC_MSSIDX_L4LEN_MASK) == 0);
} else {
*fieldsp |= (m0->m_pkthdr.len << NQTXD_FIELDS_PAYLEN_SHIFT);
KASSERT((m0->m_pkthdr.len & ~NQTXD_FIELDS_PAYLEN_MASK) == 0);
}
if (m0->m_pkthdr.csum_flags & M_CSUM_IPv4) {
*fieldsp |= NQTXD_FIELDS_IXSM;
cmdc |= NQTXC_CMD_IP4;
}
if (m0->m_pkthdr.csum_flags &
(M_CSUM_UDPv4 | M_CSUM_TCPv4 | M_CSUM_TSOv4)) {
WM_Q_EVCNT_INCR(txq, tusum);
if (m0->m_pkthdr.csum_flags & (M_CSUM_TCPv4 | M_CSUM_TSOv4))
cmdc |= NQTXC_CMD_TCP;
else
cmdc |= NQTXC_CMD_UDP;
cmdc |= NQTXC_CMD_IP4;
*fieldsp |= NQTXD_FIELDS_TUXSM;
}
if (m0->m_pkthdr.csum_flags &
(M_CSUM_UDPv6 | M_CSUM_TCPv6 | M_CSUM_TSOv6)) {
WM_Q_EVCNT_INCR(txq, tusum6);
if (m0->m_pkthdr.csum_flags & (M_CSUM_TCPv6 | M_CSUM_TSOv6))
cmdc |= NQTXC_CMD_TCP;
else
cmdc |= NQTXC_CMD_UDP;
cmdc |= NQTXC_CMD_IP6;
*fieldsp |= NQTXD_FIELDS_TUXSM;
}
txq->txq_nq_descs[txq->txq_next].nqtx_ctx.nqtxc_vl_len =
htole32(vl_len);
txq->txq_nq_descs[txq->txq_next].nqtx_ctx.nqtxc_sn = 0;
txq->txq_nq_descs[txq->txq_next].nqtx_ctx.nqtxc_cmd =
htole32(cmdc);
txq->txq_nq_descs[txq->txq_next].nqtx_ctx.nqtxc_mssidx =
htole32(mssidx);
wm_cdtxsync(txq, txq->txq_next, 1, BUS_DMASYNC_PREWRITE);
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: context desc %d 0x%08x%08x\n", device_xname(sc->sc_dev),
txq->txq_next, 0, vl_len));
DPRINTF(sc, WM_DEBUG_TX, ("\t0x%08x%08x\n", mssidx, cmdc));
txq->txq_next = WM_NEXTTX(txq, txq->txq_next);
txs->txs_ndesc++;
}
static void
wm_nq_start(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
KASSERT(if_is_mpsafe(ifp));
mutex_enter(txq->txq_lock);
if (!txq->txq_stopping)
wm_nq_start_locked(ifp);
mutex_exit(txq->txq_lock);
}
static void
wm_nq_start_locked(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq = &sc->sc_queue[0].wmq_txq;
wm_nq_send_common_locked(ifp, txq, false);
}
static int
wm_nq_transmit(struct ifnet *ifp, struct mbuf *m)
{
int qid;
struct wm_softc *sc = ifp->if_softc;
struct wm_txqueue *txq;
qid = wm_select_txqueue(ifp, m);
txq = &sc->sc_queue[qid].wmq_txq;
if (__predict_false(!pcq_put(txq->txq_interq, m))) {
m_freem(m);
WM_Q_EVCNT_INCR(txq, pcqdrop);
return ENOBUFS;
}
net_stat_ref_t nsr = IF_STAT_GETREF(ifp);
if_statadd_ref(ifp, nsr, if_obytes, m->m_pkthdr.len);
if (m->m_flags & M_MCAST)
if_statinc_ref(ifp, nsr, if_omcasts);
IF_STAT_PUTREF(ifp);
if (mutex_tryenter(txq->txq_lock)) {
if (!txq->txq_stopping)
wm_nq_transmit_locked(ifp, txq);
mutex_exit(txq->txq_lock);
}
return 0;
}
static void
wm_nq_transmit_locked(struct ifnet *ifp, struct wm_txqueue *txq)
{
wm_nq_send_common_locked(ifp, txq, true);
}
static void
wm_nq_send_common_locked(struct ifnet *ifp, struct wm_txqueue *txq,
bool is_transmit)
{
struct wm_softc *sc = ifp->if_softc;
struct mbuf *m0;
struct wm_txsoft *txs;
bus_dmamap_t dmamap;
int error, nexttx, lasttx = -1, seg, segs_needed;
bool do_csum, sent;
bool remap = true;
KASSERT(mutex_owned(txq->txq_lock));
KASSERT(!txq->txq_stopping);
if ((txq->txq_flags & WM_TXQ_NO_SPACE) != 0)
return;
if (__predict_false(wm_linkdown_discard(txq))) {
do {
if (is_transmit)
m0 = pcq_get(txq->txq_interq);
else
IFQ_DEQUEUE(&ifp->if_snd, m0);
if (m0 != NULL) {
if_statinc(ifp, if_opackets);
m_freem(m0);
}
} while (m0 != NULL);
return;
}
sent = false;
for (;;) {
m0 = NULL;
if (txq->txq_sfree < WM_TXQUEUE_GC(txq)) {
wm_txeof(txq, UINT_MAX);
if (txq->txq_sfree == 0) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: no free job descriptors\n",
device_xname(sc->sc_dev)));
WM_Q_EVCNT_INCR(txq, txsstall);
break;
}
}
if (is_transmit)
m0 = pcq_get(txq->txq_interq);
else
IFQ_DEQUEUE(&ifp->if_snd, m0);
if (m0 == NULL)
break;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: have packet to transmit: %p\n",
device_xname(sc->sc_dev), m0));
txs = &txq->txq_soft[txq->txq_snext];
dmamap = txs->txs_dmamap;
retry:
error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
BUS_DMA_WRITE | BUS_DMA_NOWAIT);
if (__predict_false(error)) {
if (error == EFBIG) {
if (remap == true) {
struct mbuf *m;
remap = false;
m = m_defrag(m0, M_NOWAIT);
if (m != NULL) {
WM_Q_EVCNT_INCR(txq, defrag);
m0 = m;
goto retry;
}
}
WM_Q_EVCNT_INCR(txq, toomanyseg);
log(LOG_ERR, "%s: Tx packet consumes too many "
"DMA segments, dropping...\n",
device_xname(sc->sc_dev));
wm_dump_mbuf_chain(sc, m0);
m_freem(m0);
continue;
}
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: dmamap load failed: %d\n",
device_xname(sc->sc_dev), error));
break;
}
segs_needed = dmamap->dm_nsegs;
if (segs_needed > txq->txq_free - 2) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: need %d (%d) descriptors, have %d\n",
device_xname(sc->sc_dev), dmamap->dm_nsegs,
segs_needed, txq->txq_free - 1));
txq->txq_flags |= WM_TXQ_NO_SPACE;
bus_dmamap_unload(sc->sc_dmat, dmamap);
WM_Q_EVCNT_INCR(txq, txdstall);
break;
}
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: packet has %d (%d) DMA segments\n",
device_xname(sc->sc_dev), dmamap->dm_nsegs, segs_needed));
WM_EVCNT_INCR(&txq->txq_ev_txseg[dmamap->dm_nsegs - 1]);
txs->txs_mbuf = m0;
txs->txs_firstdesc = txq->txq_next;
txs->txs_ndesc = segs_needed;
uint32_t cmdlen, fields, dcmdlen;
if (m0->m_pkthdr.csum_flags &
(M_CSUM_TSOv4 | M_CSUM_TSOv6 |
M_CSUM_IPv4 | M_CSUM_TCPv4 | M_CSUM_UDPv4 |
M_CSUM_TCPv6 | M_CSUM_UDPv6)) {
wm_nq_tx_offload(sc, txq, txs, &cmdlen, &fields,
&do_csum);
} else {
do_csum = false;
cmdlen = 0;
fields = 0;
}
bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
BUS_DMASYNC_PREWRITE);
nexttx = txq->txq_next;
if (!do_csum) {
wm_set_dma_addr(&txq->txq_descs[nexttx].wtx_addr,
dmamap->dm_segs[0].ds_addr);
txq->txq_descs[nexttx].wtx_cmdlen =
htole32(WTX_CMD_IFCS | dmamap->dm_segs[0].ds_len);
txq->txq_descs[nexttx].wtx_fields.wtxu_status = 0;
txq->txq_descs[nexttx].wtx_fields.wtxu_options = 0;
if (vlan_has_tag(m0)) {
txq->txq_descs[nexttx].wtx_cmdlen |=
htole32(WTX_CMD_VLE);
txq->txq_descs[nexttx].wtx_fields.wtxu_vlan =
htole16(vlan_get_tag(m0));
} else
txq->txq_descs[nexttx].wtx_fields.wtxu_vlan =0;
dcmdlen = 0;
} else {
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_addr =
htole64(dmamap->dm_segs[0].ds_addr);
KASSERT((dmamap->dm_segs[0].ds_len & cmdlen) == 0);
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_cmdlen =
htole32(dmamap->dm_segs[0].ds_len | cmdlen);
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_fields =
htole32(fields);
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: adv data desc %d 0x%" PRIx64 "\n",
device_xname(sc->sc_dev), nexttx,
(uint64_t)dmamap->dm_segs[0].ds_addr));
DPRINTF(sc, WM_DEBUG_TX,
("\t 0x%08x%08x\n", fields,
(uint32_t)dmamap->dm_segs[0].ds_len | cmdlen));
dcmdlen = NQTX_DTYP_D | NQTX_CMD_DEXT;
}
lasttx = nexttx;
nexttx = WM_NEXTTX(txq, nexttx);
for (seg = 1; seg < dmamap->dm_nsegs;
seg++, nexttx = WM_NEXTTX(txq, nexttx)) {
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_addr =
htole64(dmamap->dm_segs[seg].ds_addr);
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_cmdlen =
htole32(dcmdlen | dmamap->dm_segs[seg].ds_len);
KASSERT((dcmdlen & dmamap->dm_segs[seg].ds_len) == 0);
txq->txq_nq_descs[nexttx].nqtx_data.nqtxd_fields = 0;
lasttx = nexttx;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: desc %d: %#" PRIx64 ", len %#04zx\n",
device_xname(sc->sc_dev), nexttx,
(uint64_t)dmamap->dm_segs[seg].ds_addr,
dmamap->dm_segs[seg].ds_len));
}
KASSERT(lasttx != -1);
KASSERT((WTX_CMD_EOP | WTX_CMD_RS) ==
(NQTX_CMD_EOP | NQTX_CMD_RS));
txq->txq_descs[lasttx].wtx_cmdlen |=
htole32(WTX_CMD_EOP | WTX_CMD_RS);
txs->txs_lastdesc = lasttx;
DPRINTF(sc, WM_DEBUG_TX, ("%s: TX: desc %d: cmdlen 0x%08x\n",
device_xname(sc->sc_dev),
lasttx, le32toh(txq->txq_descs[lasttx].wtx_cmdlen)));
wm_cdtxsync(txq, txq->txq_next, txs->txs_ndesc,
BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
CSR_WRITE(sc, txq->txq_tdt_reg, nexttx);
sent = true;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: TDT -> %d\n", device_xname(sc->sc_dev), nexttx));
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: finished transmitting packet, job %d\n",
device_xname(sc->sc_dev), txq->txq_snext));
txq->txq_free -= txs->txs_ndesc;
txq->txq_next = nexttx;
txq->txq_sfree--;
txq->txq_snext = WM_NEXTTXS(txq, txq->txq_snext);
bpf_mtap(ifp, m0, BPF_D_OUT);
}
if (m0 != NULL) {
txq->txq_flags |= WM_TXQ_NO_SPACE;
WM_Q_EVCNT_INCR(txq, descdrop);
DPRINTF(sc, WM_DEBUG_TX, ("%s: TX: error after IFQ_DEQUEUE\n",
__func__));
m_freem(m0);
}
if (txq->txq_sfree == 0 || txq->txq_free <= 2) {
txq->txq_flags |= WM_TXQ_NO_SPACE;
}
if (sent) {
txq->txq_lastsent = time_uptime;
txq->txq_sending = true;
}
}
static void
wm_deferred_start_locked(struct wm_txqueue *txq)
{
struct wm_softc *sc = txq->txq_sc;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct wm_queue *wmq = container_of(txq, struct wm_queue, wmq_txq);
int qid = wmq->wmq_id;
KASSERT(mutex_owned(txq->txq_lock));
KASSERT(!txq->txq_stopping);
if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
if (qid == 0)
wm_nq_start_locked(ifp);
wm_nq_transmit_locked(ifp, txq);
} else {
if (qid == 0)
wm_start_locked(ifp);
wm_transmit_locked(ifp, txq);
}
}
static bool
wm_txeof(struct wm_txqueue *txq, u_int limit)
{
struct wm_softc *sc = txq->txq_sc;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct wm_txsoft *txs;
int count = 0;
int i;
uint8_t status;
bool more = false;
KASSERT(mutex_owned(txq->txq_lock));
if (txq->txq_stopping)
return false;
txq->txq_flags &= ~WM_TXQ_NO_SPACE;
for (i = txq->txq_sdirty; txq->txq_sfree != WM_TXQUEUELEN(txq);
i = WM_NEXTTXS(txq, i), txq->txq_sfree++) {
txs = &txq->txq_soft[i];
DPRINTF(sc, WM_DEBUG_TX, ("%s: TX: checking job %d\n",
device_xname(sc->sc_dev), i));
wm_cdtxsync(txq, txs->txs_firstdesc, txs->txs_ndesc,
BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
status =
txq->txq_descs[txs->txs_lastdesc].wtx_fields.wtxu_status;
if ((status & WTX_ST_DD) == 0) {
wm_cdtxsync(txq, txs->txs_lastdesc, 1,
BUS_DMASYNC_PREREAD);
break;
}
if (limit-- == 0) {
more = true;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: loop limited, job %d is not processed\n",
device_xname(sc->sc_dev), i));
break;
}
count++;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: job %d done: descs %d..%d\n",
device_xname(sc->sc_dev), i, txs->txs_firstdesc,
txs->txs_lastdesc));
#ifdef WM_EVENT_COUNTERS
if ((status & WTX_ST_TU) && (sc->sc_type <= WM_T_82544))
WM_Q_EVCNT_INCR(txq, underrun);
#endif
if (((status & (WTX_ST_EC | WTX_ST_LC)) != 0)
&& ((sc->sc_type < WM_T_82574)
|| (sc->sc_type == WM_T_80003))) {
if_statinc(ifp, if_oerrors);
if (status & WTX_ST_LC)
log(LOG_WARNING, "%s: late collision\n",
device_xname(sc->sc_dev));
else if (status & WTX_ST_EC) {
if_statadd(ifp, if_collisions,
TX_COLLISION_THRESHOLD + 1);
log(LOG_WARNING, "%s: excessive collisions\n",
device_xname(sc->sc_dev));
}
} else
if_statinc(ifp, if_opackets);
txq->txq_packets++;
txq->txq_bytes += txs->txs_mbuf->m_pkthdr.len;
txq->txq_free += txs->txs_ndesc;
bus_dmamap_sync(sc->sc_dmat, txs->txs_dmamap,
0, txs->txs_dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
m_freem(txs->txs_mbuf);
txs->txs_mbuf = NULL;
}
txq->txq_sdirty = i;
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: txsdirty -> %d\n", device_xname(sc->sc_dev), i));
if (count != 0)
rnd_add_uint32(&sc->rnd_source, count);
if (txq->txq_sfree == WM_TXQUEUELEN(txq))
txq->txq_sending = false;
return more;
}
static inline uint32_t
wm_rxdesc_get_status(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return EXTRXC_STATUS(
le32toh(rxq->rxq_ext_descs[idx].erx_ctx.erxc_err_stat));
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return NQRXC_STATUS(
le32toh(rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_err_stat));
else
return rxq->rxq_descs[idx].wrx_status;
}
static inline uint32_t
wm_rxdesc_get_errors(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return EXTRXC_ERROR(
le32toh(rxq->rxq_ext_descs[idx].erx_ctx.erxc_err_stat));
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return NQRXC_ERROR(
le32toh(rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_err_stat));
else
return rxq->rxq_descs[idx].wrx_errors;
}
static inline uint16_t
wm_rxdesc_get_vlantag(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return rxq->rxq_ext_descs[idx].erx_ctx.erxc_vlan;
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_vlan;
else
return rxq->rxq_descs[idx].wrx_special;
}
static inline int
wm_rxdesc_get_pktlen(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return rxq->rxq_ext_descs[idx].erx_ctx.erxc_pktlen;
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_pktlen;
else
return rxq->rxq_descs[idx].wrx_len;
}
#ifdef WM_DEBUG
static inline uint32_t
wm_rxdesc_get_rsshash(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return rxq->rxq_ext_descs[idx].erx_ctx.erxc_rsshash;
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_rsshash;
else
return 0;
}
static inline uint8_t
wm_rxdesc_get_rsstype(struct wm_rxqueue *rxq, int idx)
{
struct wm_softc *sc = rxq->rxq_sc;
if (sc->sc_type == WM_T_82574)
return EXTRXC_RSS_TYPE(rxq->rxq_ext_descs[idx].erx_ctx.erxc_mrq);
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return NQRXC_RSS_TYPE(rxq->rxq_nq_descs[idx].nqrx_ctx.nrxc_misc);
else
return 0;
}
#endif
static inline bool
wm_rxdesc_is_set_status(struct wm_softc *sc, uint32_t status,
uint32_t legacy_bit, uint32_t ext_bit, uint32_t nq_bit)
{
if (sc->sc_type == WM_T_82574)
return (status & ext_bit) != 0;
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return (status & nq_bit) != 0;
else
return (status & legacy_bit) != 0;
}
static inline bool
wm_rxdesc_is_set_error(struct wm_softc *sc, uint32_t error,
uint32_t legacy_bit, uint32_t ext_bit, uint32_t nq_bit)
{
if (sc->sc_type == WM_T_82574)
return (error & ext_bit) != 0;
else if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
return (error & nq_bit) != 0;
else
return (error & legacy_bit) != 0;
}
static inline bool
wm_rxdesc_is_eop(struct wm_rxqueue *rxq, uint32_t status)
{
if (wm_rxdesc_is_set_status(rxq->rxq_sc, status,
WRX_ST_EOP, EXTRXC_STATUS_EOP, NQRXC_STATUS_EOP))
return true;
else
return false;
}
static inline bool
wm_rxdesc_has_errors(struct wm_rxqueue *rxq, uint32_t errors)
{
struct wm_softc *sc = rxq->rxq_sc;
if (wm_rxdesc_is_set_error(sc, errors,
WRX_ER_CE | WRX_ER_SE | WRX_ER_SEQ | WRX_ER_CXE | WRX_ER_RXE,
EXTRXC_ERROR_CE | EXTRXC_ERROR_SE | EXTRXC_ERROR_SEQ
| EXTRXC_ERROR_CXE | EXTRXC_ERROR_RXE,
NQRXC_ERROR_RXE)) {
if (wm_rxdesc_is_set_error(sc, errors, WRX_ER_SE,
EXTRXC_ERROR_SE, 0))
log(LOG_WARNING, "%s: symbol error\n",
device_xname(sc->sc_dev));
else if (wm_rxdesc_is_set_error(sc, errors, WRX_ER_SEQ,
EXTRXC_ERROR_SEQ, 0))
log(LOG_WARNING, "%s: receive sequence error\n",
device_xname(sc->sc_dev));
else if (wm_rxdesc_is_set_error(sc, errors, WRX_ER_CE,
EXTRXC_ERROR_CE, 0))
log(LOG_WARNING, "%s: CRC error\n",
device_xname(sc->sc_dev));
return true;
}
return false;
}
static inline bool
wm_rxdesc_dd(struct wm_rxqueue *rxq, int idx, uint32_t status)
{
struct wm_softc *sc = rxq->rxq_sc;
if (!wm_rxdesc_is_set_status(sc, status, WRX_ST_DD, EXTRXC_STATUS_DD,
NQRXC_STATUS_DD)) {
wm_cdrxsync(rxq, idx, BUS_DMASYNC_PREREAD);
return false;
}
return true;
}
static inline bool
wm_rxdesc_input_vlantag(struct wm_rxqueue *rxq, uint32_t status,
uint16_t vlantag, struct mbuf *m)
{
if (wm_rxdesc_is_set_status(rxq->rxq_sc, status,
WRX_ST_VP, EXTRXC_STATUS_VP, NQRXC_STATUS_VP)) {
vlan_set_tag(m, le16toh(vlantag));
}
return true;
}
static inline void
wm_rxdesc_ensure_checksum(struct wm_rxqueue *rxq, uint32_t status,
uint32_t errors, struct mbuf *m)
{
struct wm_softc *sc = rxq->rxq_sc;
if (!wm_rxdesc_is_set_status(sc, status, WRX_ST_IXSM, 0, 0)) {
if (wm_rxdesc_is_set_status(sc, status,
WRX_ST_IPCS, EXTRXC_STATUS_IPCS, NQRXC_STATUS_IPCS)) {
WM_Q_EVCNT_INCR(rxq, ipsum);
m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
if (wm_rxdesc_is_set_error(sc, errors,
WRX_ER_IPE, EXTRXC_ERROR_IPE, NQRXC_ERROR_IPE))
m->m_pkthdr.csum_flags |= M_CSUM_IPv4_BAD;
}
if (wm_rxdesc_is_set_status(sc, status,
WRX_ST_TCPCS, EXTRXC_STATUS_TCPCS, NQRXC_STATUS_L4I)) {
WM_Q_EVCNT_INCR(rxq, tusum);
m->m_pkthdr.csum_flags |=
M_CSUM_TCPv4 | M_CSUM_UDPv4 |
M_CSUM_TCPv6 | M_CSUM_UDPv6;
if (wm_rxdesc_is_set_error(sc, errors, WRX_ER_TCPE,
EXTRXC_ERROR_TCPE, NQRXC_ERROR_L4E))
m->m_pkthdr.csum_flags |= M_CSUM_TCP_UDP_BAD;
}
}
}
static bool
wm_rxeof(struct wm_rxqueue *rxq, u_int limit)
{
struct wm_softc *sc = rxq->rxq_sc;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct wm_rxsoft *rxs;
struct mbuf *m;
int i, len;
int count = 0;
uint32_t status, errors;
uint16_t vlantag;
bool more = false;
KASSERT(mutex_owned(rxq->rxq_lock));
for (i = rxq->rxq_ptr;; i = WM_NEXTRX(i)) {
rxs = &rxq->rxq_soft[i];
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: checking descriptor %d\n",
device_xname(sc->sc_dev), i));
wm_cdrxsync(rxq, i,
BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
status = wm_rxdesc_get_status(rxq, i);
errors = wm_rxdesc_get_errors(rxq, i);
len = le16toh(wm_rxdesc_get_pktlen(rxq, i));
vlantag = wm_rxdesc_get_vlantag(rxq, i);
#ifdef WM_DEBUG
uint32_t rsshash = le32toh(wm_rxdesc_get_rsshash(rxq, i));
uint8_t rsstype = wm_rxdesc_get_rsstype(rxq, i);
#endif
if (!wm_rxdesc_dd(rxq, i, status))
break;
if (limit-- == 0) {
more = true;
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: loop limited, descriptor %d is not processed\n",
device_xname(sc->sc_dev), i));
break;
}
count++;
if (__predict_false(rxq->rxq_discard)) {
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: discarding contents of descriptor %d\n",
device_xname(sc->sc_dev), i));
wm_init_rxdesc(rxq, i);
if (wm_rxdesc_is_eop(rxq, status)) {
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: resetting rxdiscard -> 0\n",
device_xname(sc->sc_dev)));
rxq->rxq_discard = 0;
}
continue;
}
bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_POSTREAD);
m = rxs->rxs_mbuf;
if ((len == 0) || (wm_add_rxbuf(rxq, i) != 0)) {
if_statinc(ifp, if_ierrors);
bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
wm_init_rxdesc(rxq, i);
if (!wm_rxdesc_is_eop(rxq, status))
rxq->rxq_discard = 1;
m_freem(rxq->rxq_head);
WM_RXCHAIN_RESET(rxq);
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: Rx buffer allocation failed, "
"dropping packet%s\n", device_xname(sc->sc_dev),
rxq->rxq_discard ? " (discard)" : ""));
continue;
}
m->m_len = len;
rxq->rxq_len += len;
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: buffer at %p len %d\n",
device_xname(sc->sc_dev), m->m_data, len));
if (!wm_rxdesc_is_eop(rxq, status)) {
WM_RXCHAIN_LINK(rxq, m);
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: not yet EOP, rxlen -> %d\n",
device_xname(sc->sc_dev), rxq->rxq_len));
continue;
}
if ((sc->sc_flags & WM_F_CRC_STRIP) == 0) {
if (m->m_len < ETHER_CRC_LEN) {
rxq->rxq_tail->m_len
-= (ETHER_CRC_LEN - m->m_len);
m->m_len = 0;
} else
m->m_len -= ETHER_CRC_LEN;
len = rxq->rxq_len - ETHER_CRC_LEN;
} else
len = rxq->rxq_len;
WM_RXCHAIN_LINK(rxq, m);
*rxq->rxq_tailp = NULL;
m = rxq->rxq_head;
WM_RXCHAIN_RESET(rxq);
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: have entire packet, len -> %d\n",
device_xname(sc->sc_dev), len));
if (wm_rxdesc_has_errors(rxq, errors)) {
m_freem(m);
continue;
}
m_set_rcvif(m, ifp);
m->m_pkthdr.len = len;
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: RSS type=%" PRIu8 ", RSS hash=%" PRIu32 "\n",
device_xname(sc->sc_dev), rsstype, rsshash));
if (!wm_rxdesc_input_vlantag(rxq, status, vlantag, m))
continue;
wm_rxdesc_ensure_checksum(rxq, status, errors, m);
rxq->rxq_packets++;
rxq->rxq_bytes += len;
if_percpuq_enqueue(sc->sc_ipq, m);
if (rxq->rxq_stopping)
break;
}
rxq->rxq_ptr = i;
if (count != 0)
rnd_add_uint32(&sc->rnd_source, count);
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: rxptr -> %d\n", device_xname(sc->sc_dev), i));
return more;
}
static void
wm_linkintr_gmii(struct wm_softc *sc, uint32_t icr)
{
device_t dev = sc->sc_dev;
uint32_t status, reg;
bool link;
bool dopoll = true;
int rv;
KASSERT(mutex_owned(sc->sc_core_lock));
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s:\n", device_xname(dev),
__func__));
if ((icr & ICR_LSC) == 0) {
if (icr & ICR_RXSEQ)
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK Receive sequence error\n",
device_xname(dev)));
return;
}
status = CSR_READ(sc, WMREG_STATUS);
link = status & STATUS_LU;
if (link) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> up %s\n",
device_xname(dev),
(status & STATUS_FD) ? "FDX" : "HDX"));
if (wm_phy_need_linkdown_discard(sc)) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: linkintr: Clear linkdown discard flag\n",
device_xname(dev)));
wm_clear_linkdown_discard(sc);
}
} else {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> down\n",
device_xname(dev)));
if (wm_phy_need_linkdown_discard(sc)) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: linkintr: Set linkdown discard flag\n",
device_xname(dev)));
wm_set_linkdown_discard(sc);
}
}
if ((sc->sc_type == WM_T_ICH8) && (link == false))
wm_gig_downshift_workaround_ich8lan(sc);
if ((sc->sc_type == WM_T_ICH8) && (sc->sc_phytype == WMPHY_IGP_3))
wm_kmrn_lock_loss_workaround_ich8lan(sc);
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> mii_pollstat\n",
device_xname(dev)));
if ((sc->sc_flags & WM_F_DELAY_LINKUP) != 0) {
if (link) {
dopoll = false;
getmicrotime(&sc->sc_linkup_delay_time);
sc->sc_linkup_delay_time.tv_sec += 1;
} else if (sc->sc_linkup_delay_time.tv_sec != 0) {
sc->sc_linkup_delay_time.tv_sec = 0;
sc->sc_linkup_delay_time.tv_usec = 0;
}
}
if (dopoll)
mii_pollstat(&sc->sc_mii);
if (sc->sc_type == WM_T_82543) {
int miistatus, active;
miistatus = sc->sc_mii.mii_media_status;
if (miistatus & IFM_ACTIVE) {
active = sc->sc_mii.mii_media_active;
sc->sc_ctrl &= ~(CTRL_SPEED_MASK | CTRL_FD);
switch (IFM_SUBTYPE(active)) {
case IFM_10_T:
sc->sc_ctrl |= CTRL_SPEED_10;
break;
case IFM_100_TX:
sc->sc_ctrl |= CTRL_SPEED_100;
break;
case IFM_1000_T:
sc->sc_ctrl |= CTRL_SPEED_1000;
break;
default:
device_printf(dev, "unknown media (%x)\n",
active);
break;
}
if (active & IFM_FDX)
sc->sc_ctrl |= CTRL_FD;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
}
} else if (sc->sc_type == WM_T_PCH) {
wm_k1_gig_workaround_hv(sc,
((sc->sc_mii.mii_media_status & IFM_ACTIVE) != 0));
}
if ((sc->sc_type >= WM_T_PCH2) && (sc->sc_type <= WM_T_PCH_TGP)
&& link) {
uint32_t tipg_reg;
uint32_t speed = __SHIFTOUT(status, STATUS_SPEED);
bool fdx;
uint16_t emi_addr, emi_val;
tipg_reg = CSR_READ(sc, WMREG_TIPG);
tipg_reg &= ~TIPG_IPGT_MASK;
fdx = status & STATUS_FD;
if (!fdx && (speed == STATUS_SPEED_10)) {
tipg_reg |= 0xff;
emi_val = 0;
} else if ((sc->sc_type >= WM_T_PCH_SPT) &&
fdx && speed != STATUS_SPEED_1000) {
tipg_reg |= 0xc;
emi_val = 1;
} else {
tipg_reg |= 0x08;
emi_val = 1;
}
CSR_WRITE(sc, WMREG_TIPG, tipg_reg);
rv = sc->phy.acquire(sc);
if (rv)
return;
if (sc->sc_type == WM_T_PCH2)
emi_addr = I82579_RX_CONFIG;
else
emi_addr = I217_RX_CONFIG;
rv = wm_write_emi_reg_locked(dev, emi_addr, emi_val);
if (sc->sc_type >= WM_T_PCH_LPT) {
uint16_t phy_reg;
sc->phy.readreg_locked(dev, 2,
I217_PLL_CLOCK_GATE_REG, &phy_reg);
phy_reg &= ~I217_PLL_CLOCK_GATE_MASK;
if (speed == STATUS_SPEED_100
|| speed == STATUS_SPEED_10)
phy_reg |= 0x3e8;
else
phy_reg |= 0xfa;
sc->phy.writereg_locked(dev, 2,
I217_PLL_CLOCK_GATE_REG, phy_reg);
if (speed == STATUS_SPEED_1000) {
sc->phy.readreg_locked(dev, 2,
HV_PM_CTRL, &phy_reg);
phy_reg |= HV_PM_CTRL_K1_CLK_REQ;
sc->phy.writereg_locked(dev, 2,
HV_PM_CTRL, phy_reg);
}
}
sc->phy.release(sc);
if (rv)
return;
if (sc->sc_type >= WM_T_PCH_SPT) {
uint16_t data, ptr_gap;
if (speed == STATUS_SPEED_1000) {
rv = sc->phy.acquire(sc);
if (rv)
return;
rv = sc->phy.readreg_locked(dev, 2,
I82579_UNKNOWN1, &data);
if (rv) {
sc->phy.release(sc);
return;
}
ptr_gap = (data & (0x3ff << 2)) >> 2;
if (ptr_gap < 0x18) {
data &= ~(0x3ff << 2);
data |= (0x18 << 2);
rv = sc->phy.writereg_locked(dev,
2, I82579_UNKNOWN1, data);
}
sc->phy.release(sc);
if (rv)
return;
} else {
rv = sc->phy.acquire(sc);
if (rv)
return;
rv = sc->phy.writereg_locked(dev, 2,
I82579_UNKNOWN1, 0xc023);
sc->phy.release(sc);
if (rv)
return;
}
}
}
if (sc->sc_type >= WM_T_PCH_LPT) {
reg = CSR_READ(sc, WMREG_FEXTNVM4);
reg &= ~FEXTNVM4_BEACON_DURATION;
reg |= FEXTNVM4_BEACON_DURATION_8US;
CSR_WRITE(sc, WMREG_FEXTNVM4, reg);
}
if ((sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_LM) ||
(sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_V) ||
(sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_LM3) ||
(sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_V3))
wm_k1_workaround_lpt_lp(sc, link);
if (sc->sc_type >= WM_T_PCH_LPT) {
wm_platform_pm_pch_lpt(sc,
((sc->sc_mii.mii_media_status & IFM_ACTIVE) != 0));
}
sc->eee_lp_ability = 0;
if (sc->sc_type == WM_T_PCH_SPT) {
reg = CSR_READ(sc, WMREG_FEXTNVM6);
if (CSR_READ(sc, WMREG_PCIEANACFG) & FEXTNVM6_K1_OFF_ENABLE)
reg |= FEXTNVM6_K1_OFF_ENABLE;
else
reg &= ~FEXTNVM6_K1_OFF_ENABLE;
CSR_WRITE(sc, WMREG_FEXTNVM6, reg);
}
if (!link)
return;
switch (sc->sc_type) {
case WM_T_PCH2:
wm_k1_workaround_lv(sc);
case WM_T_PCH:
if (sc->sc_phytype == WMPHY_82578)
wm_link_stall_workaround_hv(sc);
break;
default:
break;
}
if (sc->sc_phytype > WMPHY_82579)
wm_set_eee_pchlan(sc);
}
static void
wm_linkintr_tbi(struct wm_softc *sc, uint32_t icr)
{
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
uint32_t status;
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s:\n", device_xname(sc->sc_dev),
__func__));
status = CSR_READ(sc, WMREG_STATUS);
if (icr & ICR_LSC) {
wm_check_for_link(sc);
if (status & STATUS_LU) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> up %s\n",
device_xname(sc->sc_dev),
(status & STATUS_FD) ? "FDX" : "HDX"));
sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
sc->sc_tctl &= ~TCTL_COLD(0x3ff);
sc->sc_fcrtl &= ~FCRTL_XONE;
if (status & STATUS_FD)
sc->sc_tctl |=
TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
else
sc->sc_tctl |=
TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
if (sc->sc_ctrl & CTRL_TFCE)
sc->sc_fcrtl |= FCRTL_XONE;
CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ?
WMREG_OLD_FCRTL : WMREG_FCRTL, sc->sc_fcrtl);
sc->sc_tbi_linkup = 1;
if_link_state_change(ifp, LINK_STATE_UP);
} else {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> down\n",
device_xname(sc->sc_dev)));
sc->sc_tbi_linkup = 0;
if_link_state_change(ifp, LINK_STATE_DOWN);
}
wm_tbi_serdes_set_linkled(sc);
} else if (icr & ICR_RXSEQ)
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: Receive sequence error\n",
device_xname(sc->sc_dev)));
}
static void
wm_linkintr_serdes(struct wm_softc *sc, uint32_t icr)
{
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct mii_data *mii = &sc->sc_mii;
struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
uint32_t pcs_adv, pcs_lpab, reg;
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s:\n", device_xname(sc->sc_dev),
__func__));
if (icr & ICR_LSC) {
reg = CSR_READ(sc, WMREG_PCS_LSTS);
if ((reg & PCS_LSTS_LINKOK) != 0) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> up\n",
device_xname(sc->sc_dev)));
mii->mii_media_status |= IFM_ACTIVE;
sc->sc_tbi_linkup = 1;
if_link_state_change(ifp, LINK_STATE_UP);
} else {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: LSC -> down\n",
device_xname(sc->sc_dev)));
mii->mii_media_status |= IFM_NONE;
sc->sc_tbi_linkup = 0;
if_link_state_change(ifp, LINK_STATE_DOWN);
wm_tbi_serdes_set_linkled(sc);
return;
}
mii->mii_media_active |= IFM_1000_SX;
if ((reg & PCS_LSTS_FDX) != 0)
mii->mii_media_active |= IFM_FDX;
else
mii->mii_media_active |= IFM_HDX;
if (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO) {
reg = CSR_READ(sc, WMREG_PCS_LSTS);
if ((reg & PCS_LSTS_AN_COMP) == 0) {
DPRINTF(sc, WM_DEBUG_LINK,
("XXX LINKOK but not ACOMP\n"));
return;
}
pcs_adv = CSR_READ(sc, WMREG_PCS_ANADV);
pcs_lpab = CSR_READ(sc, WMREG_PCS_LPAB);
DPRINTF(sc, WM_DEBUG_LINK,
("XXX AN result %08x, %08x\n", pcs_adv, pcs_lpab));
if ((pcs_adv & TXCW_SYM_PAUSE)
&& (pcs_lpab & TXCW_SYM_PAUSE)) {
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_TXPAUSE | IFM_ETH_RXPAUSE;
} else if (((pcs_adv & TXCW_SYM_PAUSE) == 0)
&& (pcs_adv & TXCW_ASYM_PAUSE)
&& (pcs_lpab & TXCW_SYM_PAUSE)
&& (pcs_lpab & TXCW_ASYM_PAUSE))
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_TXPAUSE;
else if ((pcs_adv & TXCW_SYM_PAUSE)
&& (pcs_adv & TXCW_ASYM_PAUSE)
&& ((pcs_lpab & TXCW_SYM_PAUSE) == 0)
&& (pcs_lpab & TXCW_ASYM_PAUSE))
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_RXPAUSE;
}
wm_tbi_serdes_set_linkled(sc);
} else
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: Receive sequence error\n",
device_xname(sc->sc_dev)));
}
static void
wm_linkintr(struct wm_softc *sc, uint32_t icr)
{
KASSERT(mutex_owned(sc->sc_core_lock));
if (sc->sc_flags & WM_F_HAS_MII)
wm_linkintr_gmii(sc, icr);
else if ((sc->sc_mediatype == WM_MEDIATYPE_SERDES)
&& ((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211)))
wm_linkintr_serdes(sc, icr);
else
wm_linkintr_tbi(sc, icr);
}
static inline void
wm_sched_handle_queue(struct wm_softc *sc, struct wm_queue *wmq)
{
if (wmq->wmq_txrx_use_workqueue) {
if (!wmq->wmq_wq_enqueued) {
wmq->wmq_wq_enqueued = true;
workqueue_enqueue(sc->sc_queue_wq, &wmq->wmq_cookie,
curcpu());
}
} else
softint_schedule(wmq->wmq_si);
}
static inline void
wm_legacy_intr_disable(struct wm_softc *sc)
{
CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
}
static inline void
wm_legacy_intr_enable(struct wm_softc *sc)
{
CSR_WRITE(sc, WMREG_IMS, sc->sc_icr);
}
static int
wm_intr_legacy(void *arg)
{
struct wm_softc *sc = arg;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct wm_queue *wmq = &sc->sc_queue[0];
struct wm_txqueue *txq = &wmq->wmq_txq;
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
u_int txlimit = sc->sc_tx_intr_process_limit;
u_int rxlimit = sc->sc_rx_intr_process_limit;
uint32_t icr, rndval = 0;
bool more = false;
icr = CSR_READ(sc, WMREG_ICR);
if ((icr & sc->sc_icr) == 0)
return 0;
DPRINTF(sc, WM_DEBUG_TX,
("%s: INTx: got intr\n",device_xname(sc->sc_dev)));
if (rndval == 0)
rndval = icr;
mutex_enter(txq->txq_lock);
if (txq->txq_stopping) {
mutex_exit(txq->txq_lock);
return 1;
}
#if defined(WM_DEBUG) || defined(WM_EVENT_COUNTERS)
if (icr & ICR_TXDW) {
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: got TXDW interrupt\n",
device_xname(sc->sc_dev)));
WM_Q_EVCNT_INCR(txq, txdw);
}
#endif
if (txlimit > 0) {
more |= wm_txeof(txq, txlimit);
if (!IF_IS_EMPTY(&ifp->if_snd))
more = true;
} else
more = true;
mutex_exit(txq->txq_lock);
mutex_enter(rxq->rxq_lock);
if (rxq->rxq_stopping) {
mutex_exit(rxq->rxq_lock);
return 1;
}
#if defined(WM_DEBUG) || defined(WM_EVENT_COUNTERS)
if (icr & (ICR_RXDMT0 | ICR_RXT0)) {
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: got Rx intr %#" __PRIxBIT "\n",
device_xname(sc->sc_dev),
icr & (ICR_RXDMT0 | ICR_RXT0)));
WM_Q_EVCNT_INCR(rxq, intr);
}
#endif
if (rxlimit > 0) {
more = wm_rxeof(rxq, rxlimit);
} else
more = true;
mutex_exit(rxq->rxq_lock);
mutex_enter(sc->sc_core_lock);
if (sc->sc_core_stopping) {
mutex_exit(sc->sc_core_lock);
return 1;
}
if (icr & (ICR_LSC | ICR_RXSEQ)) {
WM_EVCNT_INCR(&sc->sc_ev_linkintr);
wm_linkintr(sc, icr);
}
if ((icr & ICR_GPI(0)) != 0)
device_printf(sc->sc_dev, "got module interrupt\n");
mutex_exit(sc->sc_core_lock);
if (icr & ICR_RXO) {
#if defined(WM_DEBUG)
log(LOG_WARNING, "%s: Receive overrun\n",
device_xname(sc->sc_dev));
#endif
}
rnd_add_uint32(&sc->rnd_source, rndval);
if (more) {
wm_legacy_intr_disable(sc);
wmq->wmq_txrx_use_workqueue = sc->sc_txrx_use_workqueue;
wm_sched_handle_queue(sc, wmq);
}
return 1;
}
static inline void
wm_txrxintr_disable(struct wm_queue *wmq)
{
struct wm_softc *sc = wmq->wmq_txq.txq_sc;
if (__predict_false(!wm_is_using_msix(sc))) {
wm_legacy_intr_disable(sc);
return;
}
if (sc->sc_type == WM_T_82574)
CSR_WRITE(sc, WMREG_IMC,
ICR_TXQ(wmq->wmq_id) | ICR_RXQ(wmq->wmq_id));
else if (sc->sc_type == WM_T_82575)
CSR_WRITE(sc, WMREG_EIMC,
EITR_TX_QUEUE(wmq->wmq_id) | EITR_RX_QUEUE(wmq->wmq_id));
else
CSR_WRITE(sc, WMREG_EIMC, 1 << wmq->wmq_intr_idx);
}
static inline void
wm_txrxintr_enable(struct wm_queue *wmq)
{
struct wm_softc *sc = wmq->wmq_txq.txq_sc;
wm_itrs_calculate(sc, wmq);
if (__predict_false(!wm_is_using_msix(sc))) {
wm_legacy_intr_enable(sc);
return;
}
if (sc->sc_type == WM_T_82574)
CSR_WRITE(sc, WMREG_IMS,
ICR_TXQ(wmq->wmq_id) | ICR_RXQ(wmq->wmq_id) | ICR_OTHER);
else if (sc->sc_type == WM_T_82575)
CSR_WRITE(sc, WMREG_EIMS,
EITR_TX_QUEUE(wmq->wmq_id) | EITR_RX_QUEUE(wmq->wmq_id));
else
CSR_WRITE(sc, WMREG_EIMS, 1 << wmq->wmq_intr_idx);
}
static int
wm_txrxintr_msix(void *arg)
{
struct wm_queue *wmq = arg;
struct wm_txqueue *txq = &wmq->wmq_txq;
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
struct wm_softc *sc = txq->txq_sc;
u_int txlimit = sc->sc_tx_intr_process_limit;
u_int rxlimit = sc->sc_rx_intr_process_limit;
bool txmore;
bool rxmore;
KASSERT(wmq->wmq_intr_idx == wmq->wmq_id);
DPRINTF(sc, WM_DEBUG_TX,
("%s: TX: got Tx intr\n", device_xname(sc->sc_dev)));
wm_txrxintr_disable(wmq);
mutex_enter(txq->txq_lock);
if (txq->txq_stopping) {
mutex_exit(txq->txq_lock);
return 1;
}
WM_Q_EVCNT_INCR(txq, txdw);
if (txlimit > 0) {
txmore = wm_txeof(txq, txlimit);
} else
txmore = true;
mutex_exit(txq->txq_lock);
DPRINTF(sc, WM_DEBUG_RX,
("%s: RX: got Rx intr\n", device_xname(sc->sc_dev)));
mutex_enter(rxq->rxq_lock);
if (rxq->rxq_stopping) {
mutex_exit(rxq->rxq_lock);
return 1;
}
WM_Q_EVCNT_INCR(rxq, intr);
if (rxlimit > 0) {
rxmore = wm_rxeof(rxq, rxlimit);
} else
rxmore = true;
mutex_exit(rxq->rxq_lock);
wm_itrs_writereg(sc, wmq);
if (txmore || rxmore) {
wmq->wmq_txrx_use_workqueue = sc->sc_txrx_use_workqueue;
wm_sched_handle_queue(sc, wmq);
} else
wm_txrxintr_enable(wmq);
return 1;
}
static void
wm_handle_queue(void *arg)
{
struct wm_queue *wmq = arg;
struct wm_txqueue *txq = &wmq->wmq_txq;
struct wm_rxqueue *rxq = &wmq->wmq_rxq;
struct wm_softc *sc = txq->txq_sc;
u_int txlimit = sc->sc_tx_process_limit;
u_int rxlimit = sc->sc_rx_process_limit;
bool txmore;
bool rxmore;
mutex_enter(txq->txq_lock);
if (txq->txq_stopping) {
mutex_exit(txq->txq_lock);
return;
}
txmore = wm_txeof(txq, txlimit);
wm_deferred_start_locked(txq);
mutex_exit(txq->txq_lock);
mutex_enter(rxq->rxq_lock);
if (rxq->rxq_stopping) {
mutex_exit(rxq->rxq_lock);
return;
}
WM_Q_EVCNT_INCR(rxq, defer);
rxmore = wm_rxeof(rxq, rxlimit);
mutex_exit(rxq->rxq_lock);
if (txmore || rxmore) {
wmq->wmq_txrx_use_workqueue = sc->sc_txrx_use_workqueue;
wm_sched_handle_queue(sc, wmq);
} else
wm_txrxintr_enable(wmq);
}
static void
wm_handle_queue_work(struct work *wk, void *context)
{
struct wm_queue *wmq = container_of(wk, struct wm_queue, wmq_cookie);
wmq->wmq_wq_enqueued = false;
wm_handle_queue(wmq);
}
static int
wm_linkintr_msix(void *arg)
{
struct wm_softc *sc = arg;
uint32_t reg;
bool has_rxo;
reg = CSR_READ(sc, WMREG_ICR);
mutex_enter(sc->sc_core_lock);
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: got link intr. ICR = %08x\n",
device_xname(sc->sc_dev), reg));
if (sc->sc_core_stopping)
goto out;
if ((reg & ICR_LSC) != 0) {
WM_EVCNT_INCR(&sc->sc_ev_linkintr);
wm_linkintr(sc, ICR_LSC);
}
if ((reg & ICR_GPI(0)) != 0)
device_printf(sc->sc_dev, "got module interrupt\n");
if (sc->sc_type == WM_T_82574 && ((reg & ICR_RXO) != 0)) {
#if defined(WM_DEBUG)
log(LOG_WARNING, "%s: Receive overrun\n",
device_xname(sc->sc_dev));
#endif
has_rxo = true;
CSR_WRITE(sc, WMREG_IMC, ICR_OTHER);
CSR_WRITE(sc, WMREG_ICS, ICR_RXQ(0) | ICR_RXQ(1));
}
out:
mutex_exit(sc->sc_core_lock);
if (sc->sc_type == WM_T_82574) {
if (!has_rxo)
CSR_WRITE(sc, WMREG_IMS, ICR_OTHER | ICR_LSC);
else
CSR_WRITE(sc, WMREG_IMS, ICR_LSC);
} else if (sc->sc_type == WM_T_82575)
CSR_WRITE(sc, WMREG_EIMS, EITR_OTHER);
else
CSR_WRITE(sc, WMREG_EIMS, 1 << sc->sc_link_intr_idx);
return 1;
}
static void
wm_tbi_serdes_set_linkled(struct wm_softc *sc)
{
if (sc->sc_tbi_linkup)
sc->sc_ctrl |= CTRL_SWDPIN(0);
else
sc->sc_ctrl &= ~CTRL_SWDPIN(0);
sc->sc_ctrl ^= (sc->sc_type >= WM_T_82540) ? CTRL_SWDPIN(0) : 0;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
}
static void
wm_gmii_reset(struct wm_softc *sc)
{
uint32_t reg;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->phy.acquire(sc);
if (rv != 0) {
aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
__func__);
return;
}
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
break;
case WM_T_82543:
sc->sc_ctrl |= CTRL_FRCSPD | CTRL_FRCFDX;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~((CTRL_EXT_SWDPIO_MASK << CTRL_EXT_SWDPIO_SHIFT) |
CTRL_EXT_SWDPIN(4));
reg |= CTRL_EXT_SWDPIO(4);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
CSR_WRITE_FLUSH(sc);
delay(10*1000);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg | CTRL_EXT_SWDPIN(4));
CSR_WRITE_FLUSH(sc);
delay(150);
#if 0
sc->sc_ctrl_ext = reg | CTRL_EXT_SWDPIN(4);
#endif
delay(20*1000);
break;
case WM_T_82544:
case WM_T_82540:
case WM_T_82545:
case WM_T_82545_3:
case WM_T_82546:
case WM_T_82546_3:
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
case WM_T_82583:
case WM_T_80003:
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
CSR_WRITE_FLUSH(sc);
delay(20000);
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
delay(20000);
if ((sc->sc_type == WM_T_82541)
|| (sc->sc_type == WM_T_82541_2)
|| (sc->sc_type == WM_T_82547)
|| (sc->sc_type == WM_T_82547_2)) {
}
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
CSR_WRITE_FLUSH(sc);
delay(100);
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
delay(150);
break;
default:
panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
__func__);
break;
}
sc->phy.release(sc);
wm_get_cfg_done(sc);
switch (sc->sc_type) {
case WM_T_82542_2_0:
case WM_T_82542_2_1:
case WM_T_82543:
case WM_T_82544:
case WM_T_82540:
case WM_T_82545:
case WM_T_82545_3:
case WM_T_82546:
case WM_T_82546_3:
case WM_T_82541_2:
case WM_T_82547_2:
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
case WM_T_80003:
break;
case WM_T_82541:
case WM_T_82547:
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
wm_phy_post_reset(sc);
break;
default:
panic("%s: unknown type\n", __func__);
break;
}
}
static void
wm_gmii_setup_phytype(struct wm_softc *sc, uint32_t phy_oui,
uint16_t phy_model)
{
device_t dev = sc->sc_dev;
struct mii_data *mii = &sc->sc_mii;
uint16_t new_phytype = WMPHY_UNKNOWN;
uint16_t doubt_phytype = WMPHY_UNKNOWN;
mii_readreg_t new_readreg;
mii_writereg_t new_writereg;
bool dodiag = true;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((sc->sc_sfptype != 0) && (phy_oui == 0) && (phy_model == 0))
dodiag = false;
if (mii->mii_readreg == NULL) {
switch (sc->sc_pcidevid) {
case PCI_PRODUCT_INTEL_PCH_M_LM:
case PCI_PRODUCT_INTEL_PCH_M_LC:
new_phytype = WMPHY_82577;
break;
case PCI_PRODUCT_INTEL_PCH_D_DM:
case PCI_PRODUCT_INTEL_PCH_D_DC:
new_phytype = WMPHY_82578;
break;
case PCI_PRODUCT_INTEL_PCH2_LV_LM:
case PCI_PRODUCT_INTEL_PCH2_LV_V:
new_phytype = WMPHY_82579;
break;
case PCI_PRODUCT_INTEL_82801H_82567V_3:
case PCI_PRODUCT_INTEL_82801I_BM:
case PCI_PRODUCT_INTEL_82801I_IGP_M_AMT:
case PCI_PRODUCT_INTEL_82801J_R_BM_LM:
case PCI_PRODUCT_INTEL_82801J_R_BM_LF:
case PCI_PRODUCT_INTEL_82801J_D_BM_LM:
case PCI_PRODUCT_INTEL_82801J_D_BM_LF:
case PCI_PRODUCT_INTEL_82801J_R_BM_V:
new_phytype = WMPHY_BM;
break;
default:
break;
}
} else {
switch (phy_oui) {
case MII_OUI_ATTANSIC:
switch (phy_model) {
case MII_MODEL_ATTANSIC_AR8021:
new_phytype = WMPHY_82578;
break;
default:
break;
}
break;
case MII_OUI_xxMARVELL:
switch (phy_model) {
case MII_MODEL_xxMARVELL_I210:
new_phytype = WMPHY_I210;
break;
case MII_MODEL_xxMARVELL_E1011:
case MII_MODEL_xxMARVELL_E1000_3:
case MII_MODEL_xxMARVELL_E1000_5:
case MII_MODEL_xxMARVELL_E1112:
new_phytype = WMPHY_M88;
break;
case MII_MODEL_xxMARVELL_E1149:
new_phytype = WMPHY_BM;
break;
case MII_MODEL_xxMARVELL_E1111:
case MII_MODEL_xxMARVELL_I347:
case MII_MODEL_xxMARVELL_E1512:
case MII_MODEL_xxMARVELL_E1340M:
case MII_MODEL_xxMARVELL_E1543:
new_phytype = WMPHY_M88;
break;
case MII_MODEL_xxMARVELL_I82563:
new_phytype = WMPHY_GG82563;
break;
default:
break;
}
break;
case MII_OUI_INTEL:
switch (phy_model) {
case MII_MODEL_INTEL_I82577:
new_phytype = WMPHY_82577;
break;
case MII_MODEL_INTEL_I82579:
new_phytype = WMPHY_82579;
break;
case MII_MODEL_INTEL_I217:
new_phytype = WMPHY_I217;
break;
case MII_MODEL_INTEL_I82580:
new_phytype = WMPHY_82580;
break;
case MII_MODEL_INTEL_I350:
new_phytype = WMPHY_I350;
break;
default:
break;
}
break;
case MII_OUI_yyINTEL:
switch (phy_model) {
case MII_MODEL_yyINTEL_I82562G:
case MII_MODEL_yyINTEL_I82562EM:
case MII_MODEL_yyINTEL_I82562ET:
new_phytype = WMPHY_IFE;
break;
case MII_MODEL_yyINTEL_IGP01E1000:
new_phytype = WMPHY_IGP;
break;
case MII_MODEL_yyINTEL_I82566:
new_phytype = WMPHY_IGP_3;
break;
default:
break;
}
break;
default:
break;
}
if (dodiag) {
if (new_phytype == WMPHY_UNKNOWN)
aprint_verbose_dev(dev,
"%s: Unknown PHY model. OUI=%06x, "
"model=%04x\n", __func__, phy_oui,
phy_model);
if ((sc->sc_phytype != WMPHY_UNKNOWN)
&& (sc->sc_phytype != new_phytype)) {
aprint_error_dev(dev, "Previously assumed PHY "
"type(%u) was incorrect. PHY type from PHY"
"ID = %u\n", sc->sc_phytype, new_phytype);
}
}
}
if (((sc->sc_flags & WM_F_SGMII) != 0) && !wm_sgmii_uses_mdio(sc)) {
new_readreg = wm_sgmii_readreg;
new_writereg = wm_sgmii_writereg;
} else if ((sc->sc_type == WM_T_82574) || (sc->sc_type == WM_T_82583)){
if ((sc->sc_phytype != WMPHY_UNKNOWN)
&& (new_phytype != WMPHY_BM)
&& (new_phytype != WMPHY_UNKNOWN))
doubt_phytype = new_phytype;
new_phytype = WMPHY_BM;
new_readreg = wm_gmii_bm_readreg;
new_writereg = wm_gmii_bm_writereg;
} else if (sc->sc_type >= WM_T_PCH) {
new_readreg = wm_gmii_hv_readreg;
new_writereg = wm_gmii_hv_writereg;
} else if (sc->sc_type >= WM_T_ICH8) {
new_readreg = wm_gmii_i82544_readreg;
new_writereg = wm_gmii_i82544_writereg;
} else if (sc->sc_type >= WM_T_80003) {
if ((sc->sc_phytype != WMPHY_UNKNOWN)
&& (new_phytype != WMPHY_GG82563)
&& (new_phytype != WMPHY_UNKNOWN))
doubt_phytype = new_phytype;
new_phytype = WMPHY_GG82563;
new_readreg = wm_gmii_i80003_readreg;
new_writereg = wm_gmii_i80003_writereg;
} else if (sc->sc_type >= WM_T_I210) {
if ((sc->sc_phytype != WMPHY_UNKNOWN)
&& (new_phytype != WMPHY_I210)
&& (new_phytype != WMPHY_UNKNOWN))
doubt_phytype = new_phytype;
new_phytype = WMPHY_I210;
new_readreg = wm_gmii_gs40g_readreg;
new_writereg = wm_gmii_gs40g_writereg;
} else if (sc->sc_type >= WM_T_82580) {
new_readreg = wm_gmii_82580_readreg;
new_writereg = wm_gmii_82580_writereg;
} else if (sc->sc_type >= WM_T_82544) {
new_readreg = wm_gmii_i82544_readreg;
new_writereg = wm_gmii_i82544_writereg;
} else {
new_readreg = wm_gmii_i82543_readreg;
new_writereg = wm_gmii_i82543_writereg;
}
if (new_phytype == WMPHY_BM) {
new_readreg = wm_gmii_bm_readreg;
new_writereg = wm_gmii_bm_writereg;
}
if ((sc->sc_type >= WM_T_PCH) && (sc->sc_type <= WM_T_PCH_TGP)) {
new_readreg = wm_gmii_hv_readreg;
new_writereg = wm_gmii_hv_writereg;
}
if (dodiag) {
if (doubt_phytype != WMPHY_UNKNOWN)
aprint_error_dev(dev, "Assumed new PHY type was "
"incorrect. old = %u, new = %u\n", sc->sc_phytype,
new_phytype);
else if ((sc->sc_phytype != WMPHY_UNKNOWN)
&& (sc->sc_phytype != new_phytype))
aprint_error_dev(dev, "Previously assumed PHY type(%u)"
"was incorrect. New PHY type = %u\n",
sc->sc_phytype, new_phytype);
if ((mii->mii_readreg != NULL) &&
(new_phytype == WMPHY_UNKNOWN))
aprint_error_dev(dev, "PHY type is still unknown.\n");
if ((mii->mii_readreg != NULL) &&
(mii->mii_readreg != new_readreg))
aprint_error_dev(dev, "Previously assumed PHY "
"read/write function was incorrect.\n");
}
sc->sc_phytype = new_phytype;
mii->mii_readreg = new_readreg;
mii->mii_writereg = new_writereg;
if (new_readreg == wm_gmii_hv_readreg) {
sc->phy.readreg_locked = wm_gmii_hv_readreg_locked;
sc->phy.writereg_locked = wm_gmii_hv_writereg_locked;
} else if (new_readreg == wm_sgmii_readreg) {
sc->phy.readreg_locked = wm_sgmii_readreg_locked;
sc->phy.writereg_locked = wm_sgmii_writereg_locked;
} else if (new_readreg == wm_gmii_i82544_readreg) {
sc->phy.readreg_locked = wm_gmii_i82544_readreg_locked;
sc->phy.writereg_locked = wm_gmii_i82544_writereg_locked;
}
}
static int
wm_get_phy_id_82575(struct wm_softc *sc)
{
uint32_t reg;
int phyid = -1;
if ((sc->sc_flags & WM_F_SGMII) == 0)
return -1;
if (wm_sgmii_uses_mdio(sc)) {
switch (sc->sc_type) {
case WM_T_82575:
case WM_T_82576:
reg = CSR_READ(sc, WMREG_MDIC);
phyid = (reg & MDIC_PHY_MASK) >> MDIC_PHY_SHIFT;
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
reg = CSR_READ(sc, WMREG_MDICNFG);
phyid = (reg & MDICNFG_PHY_MASK) >> MDICNFG_PHY_SHIFT;
break;
default:
return -1;
}
}
return phyid;
}
static void
wm_gmii_mediainit(struct wm_softc *sc, pci_product_id_t prodid)
{
device_t dev = sc->sc_dev;
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct mii_data *mii = &sc->sc_mii;
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
sc->sc_flags |= WM_F_HAS_MII;
if (sc->sc_type == WM_T_80003)
sc->sc_tipg = TIPG_1000T_80003_DFLT;
else
sc->sc_tipg = TIPG_1000T_DFLT;
sc->sc_ctrl |= CTRL_SLU;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
mii->mii_ifp = ifp;
mii->mii_statchg = wm_gmii_statchg;
if ((sc->sc_type == WM_T_PCH) || (sc->sc_type == WM_T_PCH2)
|| (sc->sc_type == WM_T_PCH_LPT) || (sc->sc_type == WM_T_PCH_SPT)
|| (sc->sc_type == WM_T_PCH_CNP) || (sc->sc_type == WM_T_PCH_TGP))
wm_init_phy_workarounds_pchlan(sc);
wm_gmii_reset(sc);
sc->sc_ethercom.ec_mii = &sc->sc_mii;
ifmedia_init_with_lock(&mii->mii_media, IFM_IMASK, wm_gmii_mediachange,
wm_gmii_mediastatus, sc->sc_core_lock);
wm_sgmii_sfp_preconfig(sc);
if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
|| (sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
|| (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211)) {
if ((sc->sc_flags & WM_F_SGMII) == 0) {
mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, 1,
MII_OFFSET_ANY, MIIF_DOPAUSE);
} else {
int i, id;
uint32_t ctrl_ext;
id = wm_get_phy_id_82575(sc);
if (id != -1) {
mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff,
id, MII_OFFSET_ANY, MIIF_DOPAUSE);
}
if ((id == -1)
|| (LIST_FIRST(&mii->mii_phys) == NULL)) {
ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
CSR_WRITE(sc, WMREG_CTRL_EXT,
ctrl_ext &~ CTRL_EXT_SWDPIN(3));
CSR_WRITE_FLUSH(sc);
delay(300*1000);
sc->phy.no_errprint = true;
for (i = 1; i < 8; i++)
mii_attach(sc->sc_dev, &sc->sc_mii,
0xffffffff, i, MII_OFFSET_ANY,
MIIF_DOPAUSE);
sc->phy.no_errprint = false;
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
}
}
} else
mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
MII_OFFSET_ANY, MIIF_DOPAUSE);
if (((sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT) ||
(sc->sc_type == WM_T_PCH_SPT) || (sc->sc_type == WM_T_PCH_CNP)
|| (sc->sc_type == WM_T_PCH_TGP))
&& (LIST_FIRST(&mii->mii_phys) == NULL)) {
wm_set_mdio_slow_mode_hv(sc);
mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
MII_OFFSET_ANY, MIIF_DOPAUSE);
}
if (LIST_FIRST(&mii->mii_phys) == NULL) {
aprint_verbose_dev(dev, "Assumed PHY access function "
"(type = %d) might be incorrect. Use BM and retry.\n",
sc->sc_phytype);
sc->sc_phytype = WMPHY_BM;
mii->mii_readreg = wm_gmii_bm_readreg;
mii->mii_writereg = wm_gmii_bm_writereg;
mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
MII_OFFSET_ANY, MIIF_DOPAUSE);
}
if (LIST_FIRST(&mii->mii_phys) == NULL) {
ifmedia_add(&mii->mii_media, IFM_ETHER | IFM_NONE, 0, NULL);
ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_NONE);
sc->sc_phytype = WMPHY_NONE;
} else {
struct mii_softc *child = LIST_FIRST(&mii->mii_phys);
wm_gmii_setup_phytype(sc, child->mii_mpd_oui,
child->mii_mpd_model);
ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_AUTO);
}
}
static int
wm_gmii_mediachange(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
uint32_t reg;
int rc;
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(mutex_owned(sc->sc_core_lock));
if ((sc->sc_if_flags & IFF_UP) == 0)
return 0;
if ((sc->sc_type == WM_T_82580)
|| (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I210)
|| (sc->sc_type == WM_T_I211)) {
reg = CSR_READ(sc, WMREG_PHPM);
reg &= ~PHPM_GO_LINK_D;
CSR_WRITE(sc, WMREG_PHPM, reg);
}
wm_lplu_d0_disable(sc);
sc->sc_ctrl &= ~(CTRL_SPEED_MASK | CTRL_FD);
sc->sc_ctrl |= CTRL_SLU;
if ((IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
|| (sc->sc_type > WM_T_82543)) {
sc->sc_ctrl &= ~(CTRL_FRCSPD | CTRL_FRCFDX);
} else {
sc->sc_ctrl &= ~CTRL_ASDE;
sc->sc_ctrl |= CTRL_FRCSPD | CTRL_FRCFDX;
if (ife->ifm_media & IFM_FDX)
sc->sc_ctrl |= CTRL_FD;
switch (IFM_SUBTYPE(ife->ifm_media)) {
case IFM_10_T:
sc->sc_ctrl |= CTRL_SPEED_10;
break;
case IFM_100_TX:
sc->sc_ctrl |= CTRL_SPEED_100;
break;
case IFM_1000_T:
sc->sc_ctrl |= CTRL_SPEED_1000;
break;
case IFM_NONE:
break;
default:
panic("wm_gmii_mediachange: bad media 0x%x",
ife->ifm_media);
}
}
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
if ((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211))
wm_serdes_mediachange(ifp);
if (sc->sc_type <= WM_T_82543)
wm_gmii_reset(sc);
else if ((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211)
&& ((sc->sc_flags & WM_F_SGMII) != 0)) {
delay(300 * 1000);
wm_gmii_reset(sc);
}
if ((rc = mii_mediachg(&sc->sc_mii)) == ENXIO)
return 0;
return rc;
}
static void
wm_gmii_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
{
struct wm_softc *sc = ifp->if_softc;
struct ethercom *ec = &sc->sc_ethercom;
struct mii_data *mii;
bool dopoll = true;
KASSERT(mutex_owned(sc->sc_core_lock));
KASSERT(ec->ec_mii != NULL);
KASSERT(mii_locked(ec->ec_mii));
mii = ec->ec_mii;
if ((sc->sc_flags & WM_F_DELAY_LINKUP) != 0) {
struct timeval now;
getmicrotime(&now);
if (timercmp(&now, &sc->sc_linkup_delay_time, <))
dopoll = false;
else if (sc->sc_linkup_delay_time.tv_sec != 0) {
sc->sc_linkup_delay_time.tv_sec = 0;
sc->sc_linkup_delay_time.tv_usec = 0;
}
}
if (dopoll)
mii_pollstat(mii);
ifmr->ifm_active = mii->mii_media_active;
ifmr->ifm_status = mii->mii_media_status;
ifmr->ifm_active = (ifmr->ifm_active & ~IFM_ETH_FMASK)
| sc->sc_flowflags;
}
#define MDI_IO CTRL_SWDPIN(2)
#define MDI_DIR CTRL_SWDPIO(2)
#define MDI_CLK CTRL_SWDPIN(3)
static void
wm_i82543_mii_sendbits(struct wm_softc *sc, uint32_t data, int nbits)
{
uint32_t i, v;
v = CSR_READ(sc, WMREG_CTRL);
v &= ~(MDI_IO | MDI_CLK | (CTRL_SWDPIO_MASK << CTRL_SWDPIO_SHIFT));
v |= MDI_DIR | CTRL_SWDPIO(3);
for (i = __BIT(nbits - 1); i != 0; i >>= 1) {
if (data & i)
v |= MDI_IO;
else
v &= ~MDI_IO;
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
CSR_WRITE_FLUSH(sc);
delay(10);
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
}
}
static uint16_t
wm_i82543_mii_recvbits(struct wm_softc *sc)
{
uint32_t v, i;
uint16_t data = 0;
v = CSR_READ(sc, WMREG_CTRL);
v &= ~(MDI_IO | MDI_CLK | (CTRL_SWDPIO_MASK << CTRL_SWDPIO_SHIFT));
v |= CTRL_SWDPIO(3);
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
CSR_WRITE_FLUSH(sc);
delay(10);
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
for (i = 0; i < 16; i++) {
data <<= 1;
CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
CSR_WRITE_FLUSH(sc);
delay(10);
if (CSR_READ(sc, WMREG_CTRL) & MDI_IO)
data |= 1;
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
}
CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
CSR_WRITE_FLUSH(sc);
delay(10);
CSR_WRITE(sc, WMREG_CTRL, v);
CSR_WRITE_FLUSH(sc);
delay(10);
return data;
}
#undef MDI_IO
#undef MDI_DIR
#undef MDI_CLK
static int
wm_gmii_i82543_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
wm_i82543_mii_sendbits(sc, 0xffffffffU, 32);
wm_i82543_mii_sendbits(sc, reg | (phy << 5) |
(MII_COMMAND_READ << 10) | (MII_COMMAND_START << 12), 14);
*val = wm_i82543_mii_recvbits(sc) & 0xffff;
DPRINTF(sc, WM_DEBUG_GMII,
("%s: GMII: read phy %d reg %d -> 0x%04hx\n",
device_xname(dev), phy, reg, *val));
return 0;
}
static int
wm_gmii_i82543_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
wm_i82543_mii_sendbits(sc, 0xffffffffU, 32);
wm_i82543_mii_sendbits(sc, val | (MII_COMMAND_ACK << 16) |
(reg << 18) | (phy << 23) | (MII_COMMAND_WRITE << 28) |
(MII_COMMAND_START << 30), 32);
return 0;
}
static int
wm_gmii_mdic_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
uint32_t mdic = 0;
int i;
if ((sc->sc_phytype != WMPHY_82579) && (sc->sc_phytype != WMPHY_I217)
&& (reg > MII_ADDRMASK)) {
device_printf(dev, "%s: PHYTYPE = %d, addr 0x%x > 0x1f\n",
__func__, sc->sc_phytype, reg);
reg &= MII_ADDRMASK;
}
CSR_WRITE(sc, WMREG_MDIC, MDIC_OP_READ | MDIC_PHYADD(phy) |
MDIC_REGADD(reg));
for (i = 0; i < WM_GEN_POLL_TIMEOUT * 3; i++) {
delay(50);
mdic = CSR_READ(sc, WMREG_MDIC);
if (mdic & MDIC_READY)
break;
}
if ((mdic & MDIC_READY) == 0) {
DPRINTF(sc, WM_DEBUG_GMII,
("%s: MDIC read timed out: phy %d reg %d\n",
device_xname(dev), phy, reg));
return ETIMEDOUT;
} else if (mdic & MDIC_E) {
DPRINTF(sc, WM_DEBUG_GMII,
("%s: MDIC read error: phy %d reg %d\n",
device_xname(sc->sc_dev), phy, reg));
return -1;
} else
*val = MDIC_DATA(mdic);
if (sc->sc_type == WM_T_PCH2)
delay(100);
return 0;
}
static int
wm_gmii_mdic_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
uint32_t mdic = 0;
int i;
if ((sc->sc_phytype != WMPHY_82579) && (sc->sc_phytype != WMPHY_I217)
&& (reg > MII_ADDRMASK)) {
device_printf(dev, "%s: PHYTYPE = %d, addr 0x%x > 0x1f\n",
__func__, sc->sc_phytype, reg);
reg &= MII_ADDRMASK;
}
CSR_WRITE(sc, WMREG_MDIC, MDIC_OP_WRITE | MDIC_PHYADD(phy) |
MDIC_REGADD(reg) | MDIC_DATA(val));
for (i = 0; i < WM_GEN_POLL_TIMEOUT * 3; i++) {
delay(50);
mdic = CSR_READ(sc, WMREG_MDIC);
if (mdic & MDIC_READY)
break;
}
if ((mdic & MDIC_READY) == 0) {
DPRINTF(sc, WM_DEBUG_GMII,
("%s: MDIC write timed out: phy %d reg %d\n",
device_xname(dev), phy, reg));
return ETIMEDOUT;
} else if (mdic & MDIC_E) {
DPRINTF(sc, WM_DEBUG_GMII,
("%s: MDIC write error: phy %d reg %d\n",
device_xname(dev), phy, reg));
return -1;
}
if (sc->sc_type == WM_T_PCH2)
delay(100);
return 0;
}
static int
wm_gmii_i82544_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_gmii_i82544_readreg_locked(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_i82544_readreg_locked(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int rv;
switch (sc->sc_phytype) {
case WMPHY_IGP:
case WMPHY_IGP_2:
case WMPHY_IGP_3:
if (reg > BME1000_MAX_MULTI_PAGE_REG) {
rv = wm_gmii_mdic_writereg(dev, phy,
IGPHY_PAGE_SELECT, reg);
if (rv != 0)
return rv;
}
break;
default:
#ifdef WM_DEBUG
if ((reg >> MII_ADDRBITS) != 0)
device_printf(dev,
"%s: PHYTYPE = 0x%x, addr = 0x%02x\n",
__func__, sc->sc_phytype, reg);
#endif
break;
}
return wm_gmii_mdic_readreg(dev, phy, reg & MII_ADDRMASK, val);
}
static int
wm_gmii_i82544_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_gmii_i82544_writereg_locked(dev, phy, reg & MII_ADDRMASK, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_i82544_writereg_locked(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int rv;
switch (sc->sc_phytype) {
case WMPHY_IGP:
case WMPHY_IGP_2:
case WMPHY_IGP_3:
if (reg > BME1000_MAX_MULTI_PAGE_REG) {
rv = wm_gmii_mdic_writereg(dev, phy,
IGPHY_PAGE_SELECT, reg);
if (rv != 0)
return rv;
}
break;
default:
#ifdef WM_DEBUG
if ((reg >> MII_ADDRBITS) != 0)
device_printf(dev,
"%s: PHYTYPE == 0x%x, addr = 0x%02x",
__func__, sc->sc_phytype, reg);
#endif
break;
}
return wm_gmii_mdic_writereg(dev, phy, reg & MII_ADDRMASK, val);
}
static int
wm_gmii_i80003_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int page_select;
uint16_t temp, temp2;
int rv;
if (phy != 1)
return -1;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
if ((reg & MII_ADDRMASK) < GG82563_MIN_ALT_REG)
page_select = GG82563_PHY_PAGE_SELECT;
else {
page_select = GG82563_PHY_PAGE_SELECT_ALT;
}
temp = reg >> GG82563_PAGE_SHIFT;
if ((rv = wm_gmii_mdic_writereg(dev, phy, page_select, temp)) != 0)
goto out;
if ((sc->sc_flags & WM_F_80003_MDIC_WA) != 0) {
delay(200);
rv = wm_gmii_mdic_readreg(dev, phy, page_select, &temp2);
if ((rv != 0) || (temp2 != temp)) {
device_printf(dev, "%s failed\n", __func__);
rv = -1;
goto out;
}
delay(200);
rv = wm_gmii_mdic_readreg(dev, phy, reg & MII_ADDRMASK, val);
delay(200);
} else
rv = wm_gmii_mdic_readreg(dev, phy, reg & MII_ADDRMASK, val);
out:
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_i80003_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int page_select, rv;
uint16_t temp, temp2;
if (phy != 1)
return -1;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
if ((reg & MII_ADDRMASK) < GG82563_MIN_ALT_REG)
page_select = GG82563_PHY_PAGE_SELECT;
else {
page_select = GG82563_PHY_PAGE_SELECT_ALT;
}
temp = (uint16_t)reg >> GG82563_PAGE_SHIFT;
if ((rv = wm_gmii_mdic_writereg(dev, phy, page_select, temp)) != 0)
goto out;
if ((sc->sc_flags & WM_F_80003_MDIC_WA) != 0) {
delay(200);
rv = wm_gmii_mdic_readreg(dev, phy, page_select, &temp2);
if ((rv != 0) || (temp2 != temp)) {
device_printf(dev, "%s failed\n", __func__);
rv = -1;
goto out;
}
delay(200);
rv = wm_gmii_mdic_writereg(dev, phy, reg & MII_ADDRMASK, val);
delay(200);
} else
rv = wm_gmii_mdic_writereg(dev, phy, reg & MII_ADDRMASK, val);
out:
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_bm_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
uint16_t page = reg >> BME1000_PAGE_SHIFT;
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
if ((sc->sc_type != WM_T_82574) && (sc->sc_type != WM_T_82583))
phy = ((page >= 768) || ((page == 0) && (reg == 25))
|| (reg == 31)) ? 1 : phy;
if (page == BM_WUC_PAGE) {
rv = wm_access_phy_wakeup_reg_bm(dev, reg, val, true, false);
goto release;
}
if (reg > BME1000_MAX_MULTI_PAGE_REG) {
if ((phy == 1) && (sc->sc_type != WM_T_82574)
&& (sc->sc_type != WM_T_82583))
rv = wm_gmii_mdic_writereg(dev, phy,
IGPHY_PAGE_SELECT, page << BME1000_PAGE_SHIFT);
else
rv = wm_gmii_mdic_writereg(dev, phy,
BME1000_PHY_PAGE_SELECT, page);
if (rv != 0)
goto release;
}
rv = wm_gmii_mdic_readreg(dev, phy, reg & MII_ADDRMASK, val);
release:
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_bm_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
uint16_t page = reg >> BME1000_PAGE_SHIFT;
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
if ((sc->sc_type != WM_T_82574) && (sc->sc_type != WM_T_82583))
phy = ((page >= 768) || ((page == 0) && (reg == 25))
|| (reg == 31)) ? 1 : phy;
if (page == BM_WUC_PAGE) {
rv = wm_access_phy_wakeup_reg_bm(dev, reg, &val, false, false);
goto release;
}
if (reg > BME1000_MAX_MULTI_PAGE_REG) {
if ((phy == 1) && (sc->sc_type != WM_T_82574)
&& (sc->sc_type != WM_T_82583))
rv = wm_gmii_mdic_writereg(dev, phy,
IGPHY_PAGE_SELECT, page << BME1000_PAGE_SHIFT);
else
rv = wm_gmii_mdic_writereg(dev, phy,
BME1000_PHY_PAGE_SELECT, page);
if (rv != 0)
goto release;
}
rv = wm_gmii_mdic_writereg(dev, phy, reg & MII_ADDRMASK, val);
release:
sc->phy.release(sc);
return rv;
}
static int
wm_enable_phy_wakeup_reg_access_bm(device_t dev, uint16_t *phy_regp)
{
#ifdef WM_DEBUG
struct wm_softc *sc = device_private(dev);
#endif
uint16_t temp;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
if (!phy_regp)
return -1;
rv = wm_gmii_mdic_writereg(dev, 1, IGPHY_PAGE_SELECT,
BM_PORT_CTRL_PAGE << IGP3_PAGE_SHIFT);
if (rv != 0)
return rv;
rv = wm_gmii_mdic_readreg(dev, 1, BM_WUC_ENABLE_REG, phy_regp);
if (rv != 0)
return rv;
temp = *phy_regp;
temp |= BM_WUC_ENABLE_BIT;
temp &= ~(BM_WUC_ME_WU_BIT | BM_WUC_HOST_WU_BIT);
if ((rv = wm_gmii_mdic_writereg(dev, 1, BM_WUC_ENABLE_REG, temp)) != 0)
return rv;
return wm_gmii_mdic_writereg(dev, 1, IGPHY_PAGE_SELECT,
BM_WUC_PAGE << IGP3_PAGE_SHIFT);
}
static int
wm_disable_phy_wakeup_reg_access_bm(device_t dev, uint16_t *phy_regp)
{
#ifdef WM_DEBUG
struct wm_softc *sc = device_private(dev);
#endif
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
if (!phy_regp)
return -1;
wm_gmii_mdic_writereg(dev, 1, IGPHY_PAGE_SELECT,
BM_PORT_CTRL_PAGE << IGP3_PAGE_SHIFT);
wm_gmii_mdic_writereg(dev, 1, BM_WUC_ENABLE_REG, *phy_regp);
return 0;
}
static int
wm_access_phy_wakeup_reg_bm(device_t dev, int offset, int16_t *val, int rd,
bool page_set)
{
struct wm_softc *sc = device_private(dev);
uint16_t regnum = BM_PHY_REG_NUM(offset);
uint16_t page = BM_PHY_REG_PAGE(offset);
uint16_t wuce;
int rv = 0;
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s called\n",
device_xname(dev), __func__));
if ((sc->sc_type == WM_T_PCH)
&& ((CSR_READ(sc, WMREG_PHY_CTRL) & PHY_CTRL_GBE_DIS) == 0)) {
device_printf(dev,
"Attempting to access page %d while gig enabled.\n", page);
}
if (!page_set) {
rv = wm_enable_phy_wakeup_reg_access_bm(dev, &wuce);
if (rv != 0) {
device_printf(dev,
"%s: Could not enable PHY wakeup reg access\n",
__func__);
return rv;
}
}
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s: Accessing PHY page %d reg 0x%x\n",
device_xname(sc->sc_dev), __func__, page, regnum));
rv = wm_gmii_mdic_writereg(dev, 1, BM_WUC_ADDRESS_OPCODE, regnum);
if (rv != 0)
return rv;
if (rd) {
rv = wm_gmii_mdic_readreg(dev, 1, BM_WUC_DATA_OPCODE, val);
} else {
rv = wm_gmii_mdic_writereg(dev, 1, BM_WUC_DATA_OPCODE, *val);
}
if (rv != 0)
return rv;
if (!page_set)
rv = wm_disable_phy_wakeup_reg_access_bm(dev, &wuce);
return rv;
}
static int
wm_gmii_hv_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int rv;
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s called\n",
device_xname(dev), __func__));
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_gmii_hv_readreg_locked(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_hv_readreg_locked(device_t dev, int phy, int reg, uint16_t *val)
{
uint16_t page = BM_PHY_REG_PAGE(reg);
uint16_t regnum = BM_PHY_REG_NUM(reg);
int rv;
phy = (page >= HV_INTC_FC_PAGE_START) ? 1 : phy;
if (page == BM_WUC_PAGE)
return wm_access_phy_wakeup_reg_bm(dev, reg, val, true, false);
if ((page > 0) && (page < HV_INTC_FC_PAGE_START)) {
device_printf(dev, "gmii_hv_readreg!!!\n");
return -1;
}
if (page == HV_INTC_FC_PAGE_START)
page = 0;
if (regnum > BME1000_MAX_MULTI_PAGE_REG) {
rv = wm_gmii_mdic_writereg(dev, 1, IGPHY_PAGE_SELECT,
page << BME1000_PAGE_SHIFT);
if (rv != 0)
return rv;
}
return wm_gmii_mdic_readreg(dev, phy, regnum & MII_ADDRMASK, val);
}
static int
wm_gmii_hv_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int rv;
DPRINTF(sc, WM_DEBUG_GMII, ("%s: %s called\n",
device_xname(dev), __func__));
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_gmii_hv_writereg_locked(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_hv_writereg_locked(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
uint16_t page = BM_PHY_REG_PAGE(reg);
uint16_t regnum = BM_PHY_REG_NUM(reg);
int rv;
phy = (page >= HV_INTC_FC_PAGE_START) ? 1 : phy;
if (page == BM_WUC_PAGE)
return wm_access_phy_wakeup_reg_bm(dev, reg, &val, false,
false);
if ((page > 0) && (page < HV_INTC_FC_PAGE_START)) {
device_printf(dev, "gmii_hv_writereg!!!\n");
return -1;
}
{
if (page == HV_INTC_FC_PAGE_START)
page = 0;
if (sc->sc_phytype == WMPHY_82578) {
struct mii_softc *child;
child = LIST_FIRST(&sc->sc_mii.mii_phys);
if ((child != NULL) && (child->mii_mpd_rev >= 1)
&& (phy == 2) && ((regnum & MII_ADDRMASK) == 0)
&& ((val & (1 << 11)) != 0)) {
device_printf(dev, "XXX need workaround\n");
}
}
if (regnum > BME1000_MAX_MULTI_PAGE_REG) {
rv = wm_gmii_mdic_writereg(dev, 1,
IGPHY_PAGE_SELECT, page << BME1000_PAGE_SHIFT);
if (rv != 0)
return rv;
}
}
return wm_gmii_mdic_writereg(dev, phy, regnum & MII_ADDRMASK, val);
}
static int
wm_gmii_82580_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
#ifdef DIAGNOSTIC
if (reg > MII_ADDRMASK) {
device_printf(dev, "%s: PHYTYPE = %d, addr 0x%x > 0x1f\n",
__func__, sc->sc_phytype, reg);
reg &= MII_ADDRMASK;
}
#endif
rv = wm_gmii_mdic_readreg(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_82580_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
#ifdef DIAGNOSTIC
if (reg > MII_ADDRMASK) {
device_printf(dev, "%s: PHYTYPE = %d, addr 0x%x > 0x1f\n",
__func__, sc->sc_phytype, reg);
reg &= MII_ADDRMASK;
}
#endif
rv = wm_gmii_mdic_writereg(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_gs40g_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int page, offset;
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
page = reg >> GS40G_PAGE_SHIFT;
rv = wm_gmii_mdic_writereg(dev, phy, GS40G_PAGE_SELECT, page);
if (rv != 0)
goto release;
offset = reg & GS40G_OFFSET_MASK;
rv = wm_gmii_mdic_readreg(dev, phy, offset, val);
release:
sc->phy.release(sc);
return rv;
}
static int
wm_gmii_gs40g_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
uint16_t page;
int offset, rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
page = reg >> GS40G_PAGE_SHIFT;
rv = wm_gmii_mdic_writereg(dev, phy, GS40G_PAGE_SELECT, page);
if (rv != 0)
goto release;
offset = reg & GS40G_OFFSET_MASK;
rv = wm_gmii_mdic_writereg(dev, phy, offset, val);
release:
sc->phy.release(sc);
return rv;
}
static void
wm_gmii_statchg(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct mii_data *mii = &sc->sc_mii;
sc->sc_ctrl &= ~(CTRL_TFCE | CTRL_RFCE);
sc->sc_tctl &= ~TCTL_COLD(0x3ff);
sc->sc_fcrtl &= ~FCRTL_XONE;
if (IFM_SUBTYPE(mii->mii_media.ifm_cur->ifm_media) == IFM_AUTO &&
(mii->mii_media_active & IFM_ETH_FMASK) != sc->sc_flowflags) {
sc->sc_flowflags = mii->mii_media_active & IFM_ETH_FMASK;
mii->mii_media_active &= ~IFM_ETH_FMASK;
}
if (sc->sc_flowflags & IFM_FLOW) {
if (sc->sc_flowflags & IFM_ETH_TXPAUSE) {
sc->sc_ctrl |= CTRL_TFCE;
sc->sc_fcrtl |= FCRTL_XONE;
}
if (sc->sc_flowflags & IFM_ETH_RXPAUSE)
sc->sc_ctrl |= CTRL_RFCE;
}
if (mii->mii_media_active & IFM_FDX) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: statchg: FDX\n", ifp->if_xname));
sc->sc_tctl |= TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
} else {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: statchg: HDX\n", ifp->if_xname));
sc->sc_tctl |= TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
}
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ?
WMREG_OLD_FCRTL : WMREG_FCRTL, sc->sc_fcrtl);
if (sc->sc_type == WM_T_80003) {
switch (IFM_SUBTYPE(mii->mii_media_active)) {
case IFM_1000_T:
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_HD_CTRL,
KUMCTRLSTA_HD_CTRL_1000_DEFAULT);
sc->sc_tipg = TIPG_1000T_80003_DFLT;
break;
default:
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_HD_CTRL,
KUMCTRLSTA_HD_CTRL_10_100_DEFAULT);
sc->sc_tipg = TIPG_10_100_80003_DFLT;
break;
}
CSR_WRITE(sc, WMREG_TIPG, sc->sc_tipg);
}
}
static int
wm_kmrn_readreg(struct wm_softc *sc, int reg, uint16_t *val)
{
int rv;
if (sc->sc_type == WM_T_80003)
rv = wm_get_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
else
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(sc->sc_dev, "%s: failed to get semaphore\n",
__func__);
return rv;
}
rv = wm_kmrn_readreg_locked(sc, reg, val);
if (sc->sc_type == WM_T_80003)
wm_put_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
else
sc->phy.release(sc);
return rv;
}
static int
wm_kmrn_readreg_locked(struct wm_softc *sc, int reg, uint16_t *val)
{
CSR_WRITE(sc, WMREG_KUMCTRLSTA,
((reg << KUMCTRLSTA_OFFSET_SHIFT) & KUMCTRLSTA_OFFSET) |
KUMCTRLSTA_REN);
CSR_WRITE_FLUSH(sc);
delay(2);
*val = CSR_READ(sc, WMREG_KUMCTRLSTA) & KUMCTRLSTA_MASK;
return 0;
}
static int
wm_kmrn_writereg(struct wm_softc *sc, int reg, uint16_t val)
{
int rv;
if (sc->sc_type == WM_T_80003)
rv = wm_get_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
else
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(sc->sc_dev, "%s: failed to get semaphore\n",
__func__);
return rv;
}
rv = wm_kmrn_writereg_locked(sc, reg, val);
if (sc->sc_type == WM_T_80003)
wm_put_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
else
sc->phy.release(sc);
return rv;
}
static int
wm_kmrn_writereg_locked(struct wm_softc *sc, int reg, uint16_t val)
{
CSR_WRITE(sc, WMREG_KUMCTRLSTA,
((reg << KUMCTRLSTA_OFFSET_SHIFT) & KUMCTRLSTA_OFFSET) | val);
return 0;
}
static int
wm_access_emi_reg_locked(device_t dev, int reg, uint16_t *val, bool rd)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.writereg_locked(dev, 2, I82579_EMI_ADDR, reg);
if (rv != 0)
return rv;
if (rd)
rv = sc->phy.readreg_locked(dev, 2, I82579_EMI_DATA, val);
else
rv = sc->phy.writereg_locked(dev, 2, I82579_EMI_DATA, *val);
return rv;
}
static int
wm_read_emi_reg_locked(device_t dev, int reg, uint16_t *val)
{
return wm_access_emi_reg_locked(dev, reg, val, true);
}
static int
wm_write_emi_reg_locked(device_t dev, int reg, uint16_t val)
{
return wm_access_emi_reg_locked(dev, reg, &val, false);
}
static bool
wm_sgmii_uses_mdio(struct wm_softc *sc)
{
uint32_t reg;
bool ismdio = false;
switch (sc->sc_type) {
case WM_T_82575:
case WM_T_82576:
reg = CSR_READ(sc, WMREG_MDIC);
ismdio = ((reg & MDIC_DEST) != 0);
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
reg = CSR_READ(sc, WMREG_MDICNFG);
ismdio = ((reg & MDICNFG_DEST) != 0);
break;
default:
break;
}
return ismdio;
}
static void
wm_sgmii_sfp_preconfig(struct wm_softc *sc)
{
uint16_t id1, id2, phyreg;
int i, rv;
if (((sc->sc_flags & WM_F_SGMII) == 0)
|| ((sc->sc_flags & WM_F_SFP) == 0))
return;
for (i = 0; i < MII_NPHY; i++) {
sc->phy.no_errprint = true;
rv = sc->phy.readreg_locked(sc->sc_dev, i, MII_PHYIDR1, &id1);
if (rv != 0)
continue;
rv = sc->phy.readreg_locked(sc->sc_dev, i, MII_PHYIDR2, &id2);
if (rv != 0)
continue;
if (MII_OUI(id1, id2) != MII_OUI_xxMARVELL)
continue;
sc->phy.no_errprint = false;
sc->phy.readreg_locked(sc->sc_dev, i, MAKPHY_ESSR, &phyreg);
phyreg &= ~(ESSR_SER_ANEG_BYPASS | ESSR_HWCFG_MODE);
phyreg |= ESSR_SGMII_WOC_COPPER;
sc->phy.writereg_locked(sc->sc_dev, i, MAKPHY_ESSR, phyreg);
break;
}
}
static int
wm_sgmii_readreg(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_sgmii_readreg_locked(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_sgmii_readreg_locked(device_t dev, int phy, int reg, uint16_t *val)
{
struct wm_softc *sc = device_private(dev);
uint32_t i2ccmd;
int i, rv = 0;
i2ccmd = (reg << I2CCMD_REG_ADDR_SHIFT)
| (phy << I2CCMD_PHY_ADDR_SHIFT) | I2CCMD_OPCODE_READ;
CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
delay(50);
i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
if (i2ccmd & I2CCMD_READY)
break;
}
if ((i2ccmd & I2CCMD_READY) == 0) {
device_printf(dev, "I2CCMD Read did not complete\n");
rv = ETIMEDOUT;
}
if ((i2ccmd & I2CCMD_ERROR) != 0) {
if (!sc->phy.no_errprint)
device_printf(dev, "I2CCMD Error bit set\n");
rv = EIO;
}
*val = (uint16_t)((i2ccmd >> 8) & 0x00ff) | ((i2ccmd << 8) & 0xff00);
return rv;
}
static int
wm_sgmii_writereg(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = wm_sgmii_writereg_locked(dev, phy, reg, val);
sc->phy.release(sc);
return rv;
}
static int
wm_sgmii_writereg_locked(device_t dev, int phy, int reg, uint16_t val)
{
struct wm_softc *sc = device_private(dev);
uint32_t i2ccmd;
uint16_t swapdata;
int rv = 0;
int i;
swapdata = ((val >> 8) & 0x00FF) | ((val << 8) & 0xFF00);
i2ccmd = (reg << I2CCMD_REG_ADDR_SHIFT)
| (phy << I2CCMD_PHY_ADDR_SHIFT) | I2CCMD_OPCODE_WRITE | swapdata;
CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
delay(50);
i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
if (i2ccmd & I2CCMD_READY)
break;
}
if ((i2ccmd & I2CCMD_READY) == 0) {
device_printf(dev, "I2CCMD Write did not complete\n");
rv = ETIMEDOUT;
}
if ((i2ccmd & I2CCMD_ERROR) != 0) {
device_printf(dev, "I2CCMD Error bit set\n");
rv = EIO;
}
return rv;
}
static bool
wm_tbi_havesignal(struct wm_softc *sc, uint32_t ctrl)
{
bool sig;
sig = ctrl & CTRL_SWDPIN(1);
if ((sc->sc_type == WM_T_82543) || (sc->sc_type == WM_T_82544))
sig = !sig;
return sig;
}
static void
wm_tbi_mediainit(struct wm_softc *sc)
{
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
const char *sep = "";
if (sc->sc_type < WM_T_82543)
sc->sc_tipg = TIPG_WM_DFLT;
else
sc->sc_tipg = TIPG_LG_DFLT;
sc->sc_tbi_serdes_anegticks = 5;
sc->sc_mii.mii_ifp = ifp;
sc->sc_ethercom.ec_mii = &sc->sc_mii;
ifp->if_baudrate = IF_Gbps(1);
if (((sc->sc_type >= WM_T_82575) && (sc->sc_type <= WM_T_I211))
&& (sc->sc_mediatype == WM_MEDIATYPE_SERDES)) {
ifmedia_init_with_lock(&sc->sc_mii.mii_media, IFM_IMASK,
wm_serdes_mediachange, wm_serdes_mediastatus,
sc->sc_core_lock);
} else {
ifmedia_init_with_lock(&sc->sc_mii.mii_media, IFM_IMASK,
wm_tbi_mediachange, wm_tbi_mediastatus, sc->sc_core_lock);
}
sc->sc_ctrl |= CTRL_SWDPIO(0);
if (sc->sc_mediatype != WM_MEDIATYPE_SERDES)
sc->sc_ctrl &= ~CTRL_SWDPIO(1);
if (sc->sc_mediatype == WM_MEDIATYPE_SERDES)
sc->sc_ctrl &= ~CTRL_LRST;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
#define ADD(ss, mm, dd) \
do { \
aprint_normal("%s%s", sep, ss); \
ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER | (mm), (dd), NULL); \
sep = ", "; \
} while (0)
aprint_normal_dev(sc->sc_dev, "");
if (sc->sc_type == WM_T_I354) {
uint32_t status;
status = CSR_READ(sc, WMREG_STATUS);
if (((status & STATUS_2P5_SKU) != 0)
&& ((status & STATUS_2P5_SKU_OVER) == 0)) {
ADD("2500baseKX-FDX", IFM_2500_KX | IFM_FDX,ANAR_X_FD);
} else
ADD("1000baseKX-FDX", IFM_1000_KX | IFM_FDX,ANAR_X_FD);
} else if (sc->sc_type == WM_T_82545) {
ADD("1000baseLX", IFM_1000_LX, ANAR_X_HD);
ADD("1000baseLX-FDX", IFM_1000_LX | IFM_FDX, ANAR_X_FD);
} else if (sc->sc_sfptype != 0) {
switch (sc->sc_sfptype) {
default:
case SFF_SFP_ETH_FLAGS_1000SX:
ADD("1000baseSX", IFM_1000_SX, ANAR_X_HD);
ADD("1000baseSX-FDX", IFM_1000_SX | IFM_FDX, ANAR_X_FD);
break;
case SFF_SFP_ETH_FLAGS_1000LX:
ADD("1000baseLX", IFM_1000_LX, ANAR_X_HD);
ADD("1000baseLX-FDX", IFM_1000_LX | IFM_FDX, ANAR_X_FD);
break;
case SFF_SFP_ETH_FLAGS_1000CX:
ADD("1000baseCX", IFM_1000_CX, ANAR_X_HD);
ADD("1000baseCX-FDX", IFM_1000_CX | IFM_FDX, ANAR_X_FD);
break;
case SFF_SFP_ETH_FLAGS_1000T:
ADD("1000baseT", IFM_1000_T, 0);
ADD("1000baseT-FDX", IFM_1000_T | IFM_FDX, 0);
break;
case SFF_SFP_ETH_FLAGS_100FX:
ADD("100baseFX", IFM_100_FX, ANAR_TX);
ADD("100baseFX-FDX", IFM_100_FX | IFM_FDX, ANAR_TX_FD);
break;
}
} else {
ADD("1000baseSX", IFM_1000_SX, ANAR_X_HD);
ADD("1000baseSX-FDX", IFM_1000_SX | IFM_FDX, ANAR_X_FD);
}
ADD("auto", IFM_AUTO, ANAR_X_FD | ANAR_X_HD);
aprint_normal("\n");
#undef ADD
ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER | IFM_AUTO);
}
static int
wm_tbi_mediachange(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
uint32_t status, ctrl;
bool signal;
int i;
KASSERT(sc->sc_mediatype != WM_MEDIATYPE_COPPER);
if (sc->sc_mediatype == WM_MEDIATYPE_SERDES) {
if (sc->sc_type < WM_T_82575)
return 0;
}
if ((sc->sc_type == WM_T_82571) || (sc->sc_type == WM_T_82572)
|| (sc->sc_type >= WM_T_82575))
CSR_WRITE(sc, WMREG_SCTL, SCTL_DISABLE_SERDES_LOOPBACK);
sc->sc_ctrl &= ~CTRL_LRST;
sc->sc_txcw = TXCW_ANE;
if (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
sc->sc_txcw |= TXCW_FD | TXCW_HD;
else if (ife->ifm_media & IFM_FDX)
sc->sc_txcw |= TXCW_FD;
else
sc->sc_txcw |= TXCW_HD;
if ((sc->sc_mii.mii_media.ifm_media & IFM_FLOW) != 0)
sc->sc_txcw |= TXCW_SYM_PAUSE | TXCW_ASYM_PAUSE;
DPRINTF(sc, WM_DEBUG_LINK,("%s: sc_txcw = 0x%x after autoneg check\n",
device_xname(sc->sc_dev), sc->sc_txcw));
CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
delay(1000);
ctrl = CSR_READ(sc, WMREG_CTRL);
signal = wm_tbi_havesignal(sc, ctrl);
DPRINTF(sc, WM_DEBUG_LINK,
("%s: signal = %d\n", device_xname(sc->sc_dev), signal));
if (signal) {
for (i = 0; i < WM_LINKUP_TIMEOUT; i++) {
delay(10000);
if (CSR_READ(sc, WMREG_STATUS) & STATUS_LU)
break;
}
DPRINTF(sc, WM_DEBUG_LINK,
("%s: i = %d after waiting for link\n",
device_xname(sc->sc_dev), i));
status = CSR_READ(sc, WMREG_STATUS);
DPRINTF(sc, WM_DEBUG_LINK,
("%s: status after final read = 0x%x, STATUS_LU = %#"
__PRIxBIT "\n",
device_xname(sc->sc_dev), status, STATUS_LU));
if (status & STATUS_LU) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: set media -> link up %s\n",
device_xname(sc->sc_dev),
(status & STATUS_FD) ? "FDX" : "HDX"));
sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
sc->sc_tctl &= ~TCTL_COLD(0x3ff);
sc->sc_fcrtl &= ~FCRTL_XONE;
if (status & STATUS_FD)
sc->sc_tctl |=
TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
else
sc->sc_tctl |=
TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
if (CSR_READ(sc, WMREG_CTRL) & CTRL_TFCE)
sc->sc_fcrtl |= FCRTL_XONE;
CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ?
WMREG_OLD_FCRTL : WMREG_FCRTL, sc->sc_fcrtl);
sc->sc_tbi_linkup = 1;
} else {
if (i == WM_LINKUP_TIMEOUT)
wm_check_for_link(sc);
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: set media -> link down\n",
device_xname(sc->sc_dev)));
sc->sc_tbi_linkup = 0;
}
} else {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: LINK: set media -> no signal\n",
device_xname(sc->sc_dev)));
sc->sc_tbi_linkup = 0;
}
wm_tbi_serdes_set_linkled(sc);
return 0;
}
static void
wm_tbi_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
{
struct wm_softc *sc = ifp->if_softc;
uint32_t ctrl, status;
ifmr->ifm_status = IFM_AVALID;
ifmr->ifm_active = IFM_ETHER;
status = CSR_READ(sc, WMREG_STATUS);
if ((status & STATUS_LU) == 0) {
ifmr->ifm_active |= IFM_NONE;
return;
}
ifmr->ifm_status |= IFM_ACTIVE;
if (sc->sc_type == WM_T_82545)
ifmr->ifm_active |= IFM_1000_LX;
else
ifmr->ifm_active |= IFM_1000_SX;
if (CSR_READ(sc, WMREG_STATUS) & STATUS_FD)
ifmr->ifm_active |= IFM_FDX;
else
ifmr->ifm_active |= IFM_HDX;
ctrl = CSR_READ(sc, WMREG_CTRL);
if (ctrl & CTRL_RFCE)
ifmr->ifm_active |= IFM_FLOW | IFM_ETH_RXPAUSE;
if (ctrl & CTRL_TFCE)
ifmr->ifm_active |= IFM_FLOW | IFM_ETH_TXPAUSE;
}
static int
wm_check_for_link(struct wm_softc *sc)
{
struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
uint32_t rxcw;
uint32_t ctrl;
uint32_t status;
bool signal;
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_mediatype == WM_MEDIATYPE_SERDES) {
if (sc->sc_type >= WM_T_82571) {
sc->sc_tbi_linkup = 1;
return 0;
}
}
rxcw = CSR_READ(sc, WMREG_RXCW);
ctrl = CSR_READ(sc, WMREG_CTRL);
status = CSR_READ(sc, WMREG_STATUS);
signal = wm_tbi_havesignal(sc, ctrl);
DPRINTF(sc, WM_DEBUG_LINK,
("%s: %s: signal = %d, status_lu = %d, rxcw_c = %d\n",
device_xname(sc->sc_dev), __func__, signal,
((status & STATUS_LU) != 0), ((rxcw & RXCW_C) != 0)));
if (signal && ((status & STATUS_LU) == 0) && ((rxcw & RXCW_C) == 0)) {
DPRINTF(sc, WM_DEBUG_LINK,
("%s: %s: force linkup and fullduplex\n",
device_xname(sc->sc_dev), __func__));
sc->sc_tbi_linkup = 0;
CSR_WRITE(sc, WMREG_TXCW, (sc->sc_txcw & ~TXCW_ANE));
sc->sc_ctrl = ctrl | CTRL_SLU | CTRL_FD;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
} else if (((status & STATUS_LU) != 0)
&& ((rxcw & RXCW_C) != 0)
&& (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)) {
sc->sc_tbi_linkup = 1;
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s: go back to autonego\n",
device_xname(sc->sc_dev), __func__));
CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
CSR_WRITE(sc, WMREG_CTRL, (ctrl & ~CTRL_SLU));
} else if (signal && ((rxcw & RXCW_C) != 0)) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s: /C/",
device_xname(sc->sc_dev), __func__));
} else {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s: linkup %08x,%08x,%08x\n",
device_xname(sc->sc_dev), __func__, rxcw, ctrl,
status));
}
return 0;
}
static void
wm_tbi_tick(struct wm_softc *sc)
{
struct mii_data *mii = &sc->sc_mii;
struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
uint32_t status;
KASSERT(mutex_owned(sc->sc_core_lock));
status = CSR_READ(sc, WMREG_STATUS);
(void)CSR_READ(sc, WMREG_RXCW);
(void)CSR_READ(sc, WMREG_CTRL);
if ((status & STATUS_LU) == 0) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: checklink -> down\n",
device_xname(sc->sc_dev)));
sc->sc_tbi_linkup = 0;
} else if (sc->sc_tbi_linkup == 0) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: LINK: checklink -> up %s\n",
device_xname(sc->sc_dev),
(status & STATUS_FD) ? "FDX" : "HDX"));
sc->sc_tbi_linkup = 1;
sc->sc_tbi_serdes_ticks = 0;
}
if ((sc->sc_if_flags & IFF_UP) == 0)
goto setled;
if ((status & STATUS_LU) == 0) {
sc->sc_tbi_linkup = 0;
if ((IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
&& (++sc->sc_tbi_serdes_ticks
>= sc->sc_tbi_serdes_anegticks)) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s: EXPIRE\n",
device_xname(sc->sc_dev), __func__));
sc->sc_tbi_serdes_ticks = 0;
sc->sc_ctrl |= CTRL_LRST;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
delay(1000);
sc->sc_ctrl &= ~CTRL_LRST;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
CSR_WRITE_FLUSH(sc);
delay(1000);
CSR_WRITE(sc, WMREG_TXCW,
sc->sc_txcw & ~TXCW_ANE);
CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
}
}
setled:
wm_tbi_serdes_set_linkled(sc);
}
static void
wm_serdes_power_up_link_82575(struct wm_softc *sc)
{
uint32_t reg;
if ((sc->sc_mediatype != WM_MEDIATYPE_SERDES)
&& ((sc->sc_flags & WM_F_SGMII) == 0))
return;
reg = CSR_READ(sc, WMREG_PCS_CFG);
reg |= PCS_CFG_PCS_EN;
CSR_WRITE(sc, WMREG_PCS_CFG, reg);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_SWDPIN(3);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
CSR_WRITE_FLUSH(sc);
delay(1000);
}
static int
wm_serdes_mediachange(struct ifnet *ifp)
{
struct wm_softc *sc = ifp->if_softc;
bool pcs_autoneg = true;
uint32_t ctrl_ext, pcs_lctl, reg;
if ((sc->sc_mediatype != WM_MEDIATYPE_SERDES)
&& ((sc->sc_flags & WM_F_SGMII) == 0))
return 0;
if ((sc->sc_type == WM_T_82571) || (sc->sc_type == WM_T_82572)
|| (sc->sc_type >= WM_T_82575))
CSR_WRITE(sc, WMREG_SCTL, SCTL_DISABLE_SERDES_LOOPBACK);
ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
ctrl_ext &= ~CTRL_EXT_SWDPIN(3);
ctrl_ext |= CTRL_EXT_I2C_ENA;
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
sc->sc_ctrl |= CTRL_SLU;
if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)) {
sc->sc_ctrl |= CTRL_SWDPIN(0) | CTRL_SWDPIN(1);
reg = CSR_READ(sc, WMREG_CONNSW);
reg |= CONNSW_ENRGSRC;
CSR_WRITE(sc, WMREG_CONNSW, reg);
}
pcs_lctl = CSR_READ(sc, WMREG_PCS_LCTL);
switch (ctrl_ext & CTRL_EXT_LINK_MODE_MASK) {
case CTRL_EXT_LINK_MODE_SGMII:
pcs_autoneg = true;
pcs_lctl &= ~PCS_LCTL_AN_TIMEOUT;
break;
case CTRL_EXT_LINK_MODE_1000KX:
pcs_autoneg = false;
default:
if ((sc->sc_type == WM_T_82575)
|| (sc->sc_type == WM_T_82576)) {
if ((sc->sc_flags & WM_F_PCS_DIS_AUTONEGO) != 0)
pcs_autoneg = false;
}
sc->sc_ctrl |= CTRL_SPEED_1000 | CTRL_FRCSPD | CTRL_FD
| CTRL_FRCFDX;
pcs_lctl |= PCS_LCTL_FSV_1000 | PCS_LCTL_FDV_FULL;
}
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
pcs_lctl &= ~(PCS_LCTL_AN_ENABLE | PCS_LCTL_FLV_LINK_UP |
PCS_LCTL_FSD | PCS_LCTL_FORCE_LINK);
if (pcs_autoneg) {
pcs_lctl |= PCS_LCTL_AN_ENABLE | PCS_LCTL_AN_RESTART;
pcs_lctl &= ~PCS_LCTL_FORCE_FC;
reg = CSR_READ(sc, WMREG_PCS_ANADV);
reg &= ~(TXCW_ASYM_PAUSE | TXCW_SYM_PAUSE);
reg |= TXCW_ASYM_PAUSE | TXCW_SYM_PAUSE;
CSR_WRITE(sc, WMREG_PCS_ANADV, reg);
} else
pcs_lctl |= PCS_LCTL_FSD | PCS_LCTL_FORCE_FC;
CSR_WRITE(sc, WMREG_PCS_LCTL, pcs_lctl);
return 0;
}
static void
wm_serdes_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
{
struct wm_softc *sc = ifp->if_softc;
struct mii_data *mii = &sc->sc_mii;
struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
uint32_t pcs_adv, pcs_lpab, reg;
ifmr->ifm_status = IFM_AVALID;
ifmr->ifm_active = IFM_ETHER;
reg = CSR_READ(sc, WMREG_PCS_LSTS);
if ((reg & PCS_LSTS_LINKOK) == 0) {
ifmr->ifm_active |= IFM_NONE;
sc->sc_tbi_linkup = 0;
goto setled;
}
sc->sc_tbi_linkup = 1;
ifmr->ifm_status |= IFM_ACTIVE;
if (sc->sc_type == WM_T_I354) {
uint32_t status;
status = CSR_READ(sc, WMREG_STATUS);
if (((status & STATUS_2P5_SKU) != 0)
&& ((status & STATUS_2P5_SKU_OVER) == 0)) {
ifmr->ifm_active |= IFM_2500_KX;
} else
ifmr->ifm_active |= IFM_1000_KX;
} else {
switch (__SHIFTOUT(reg, PCS_LSTS_SPEED)) {
case PCS_LSTS_SPEED_10:
ifmr->ifm_active |= IFM_10_T;
break;
case PCS_LSTS_SPEED_100:
ifmr->ifm_active |= IFM_100_FX;
break;
case PCS_LSTS_SPEED_1000:
ifmr->ifm_active |= IFM_1000_SX;
break;
default:
device_printf(sc->sc_dev, "Unknown speed\n");
ifmr->ifm_active |= IFM_1000_SX;
break;
}
}
ifp->if_baudrate = ifmedia_baudrate(ifmr->ifm_active);
if ((reg & PCS_LSTS_FDX) != 0)
ifmr->ifm_active |= IFM_FDX;
else
ifmr->ifm_active |= IFM_HDX;
mii->mii_media_active &= ~IFM_ETH_FMASK;
if (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO) {
reg = CSR_READ(sc, WMREG_PCS_LSTS);
if ((reg & PCS_LSTS_AN_COMP) == 0) {
DPRINTF(sc, WM_DEBUG_LINK,
("XXX LINKOK but not ACOMP\n"));
goto setled;
}
pcs_adv = CSR_READ(sc, WMREG_PCS_ANADV);
pcs_lpab = CSR_READ(sc, WMREG_PCS_LPAB);
DPRINTF(sc, WM_DEBUG_LINK,
("XXX AN result(2) %08x, %08x\n", pcs_adv, pcs_lpab));
if ((pcs_adv & TXCW_SYM_PAUSE)
&& (pcs_lpab & TXCW_SYM_PAUSE)) {
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_TXPAUSE | IFM_ETH_RXPAUSE;
} else if (((pcs_adv & TXCW_SYM_PAUSE) == 0)
&& (pcs_adv & TXCW_ASYM_PAUSE)
&& (pcs_lpab & TXCW_SYM_PAUSE)
&& (pcs_lpab & TXCW_ASYM_PAUSE)) {
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_TXPAUSE;
} else if ((pcs_adv & TXCW_SYM_PAUSE)
&& (pcs_adv & TXCW_ASYM_PAUSE)
&& ((pcs_lpab & TXCW_SYM_PAUSE) == 0)
&& (pcs_lpab & TXCW_ASYM_PAUSE)) {
mii->mii_media_active |= IFM_FLOW
| IFM_ETH_RXPAUSE;
}
}
ifmr->ifm_active = (ifmr->ifm_active & ~IFM_ETH_FMASK)
| (mii->mii_media_active & IFM_ETH_FMASK);
setled:
wm_tbi_serdes_set_linkled(sc);
}
static void
wm_serdes_tick(struct wm_softc *sc)
{
struct ifnet *ifp = &sc->sc_ethercom.ec_if;
struct mii_data *mii = &sc->sc_mii;
struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
uint32_t reg;
KASSERT(mutex_owned(sc->sc_core_lock));
mii->mii_media_status = IFM_AVALID;
mii->mii_media_active = IFM_ETHER;
reg = CSR_READ(sc, WMREG_PCS_LSTS);
if ((reg & PCS_LSTS_LINKOK) != 0) {
mii->mii_media_status |= IFM_ACTIVE;
sc->sc_tbi_linkup = 1;
sc->sc_tbi_serdes_ticks = 0;
mii->mii_media_active |= IFM_1000_SX;
if ((reg & PCS_LSTS_FDX) != 0)
mii->mii_media_active |= IFM_FDX;
else
mii->mii_media_active |= IFM_HDX;
} else {
mii->mii_media_status |= IFM_NONE;
sc->sc_tbi_linkup = 0;
if ((IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
&& (++sc->sc_tbi_serdes_ticks
>= sc->sc_tbi_serdes_anegticks)) {
DPRINTF(sc, WM_DEBUG_LINK, ("%s: %s: EXPIRE\n",
device_xname(sc->sc_dev), __func__));
sc->sc_tbi_serdes_ticks = 0;
wm_serdes_mediachange(ifp);
}
}
wm_tbi_serdes_set_linkled(sc);
}
static int
wm_sfp_read_data_byte(struct wm_softc *sc, uint16_t offset, uint8_t *data)
{
uint32_t i2ccmd;
int i;
i2ccmd = (offset << I2CCMD_REG_ADDR_SHIFT) | I2CCMD_OPCODE_READ;
CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
delay(50);
i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
if (i2ccmd & I2CCMD_READY)
break;
}
if ((i2ccmd & I2CCMD_READY) == 0)
return -1;
if ((i2ccmd & I2CCMD_ERROR) != 0)
return -1;
*data = i2ccmd & 0x00ff;
return 0;
}
static uint32_t
wm_sfp_get_media_type(struct wm_softc *sc)
{
uint32_t ctrl_ext;
uint8_t val = 0;
int timeout = 3;
uint32_t mediatype = WM_MEDIATYPE_UNKNOWN;
int rv = -1;
ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
ctrl_ext &= ~CTRL_EXT_SWDPIN(3);
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext | CTRL_EXT_I2C_ENA);
CSR_WRITE_FLUSH(sc);
while (timeout) {
rv = wm_sfp_read_data_byte(sc, SFF_SFP_ID_OFF, &val);
if (rv == 0)
break;
delay(100*1000);
timeout--;
}
if (rv != 0)
goto out;
switch (val) {
case SFF_SFP_ID_SFF:
aprint_normal_dev(sc->sc_dev,
"Module/Connector soldered to board\n");
break;
case SFF_SFP_ID_SFP:
sc->sc_flags |= WM_F_SFP;
break;
case SFF_SFP_ID_UNKNOWN:
goto out;
default:
break;
}
rv = wm_sfp_read_data_byte(sc, SFF_SFP_ETH_FLAGS_OFF, &val);
if (rv != 0)
goto out;
sc->sc_sfptype = val;
if ((val & (SFF_SFP_ETH_FLAGS_1000SX | SFF_SFP_ETH_FLAGS_1000LX)) != 0)
mediatype = WM_MEDIATYPE_SERDES;
else if ((val & SFF_SFP_ETH_FLAGS_1000T) != 0) {
sc->sc_flags |= WM_F_SGMII;
mediatype = WM_MEDIATYPE_COPPER;
} else if ((val & SFF_SFP_ETH_FLAGS_100FX) != 0) {
sc->sc_flags |= WM_F_SGMII;
mediatype = WM_MEDIATYPE_SERDES;
} else {
device_printf(sc->sc_dev, "%s: unknown media type? (0x%hhx)\n",
__func__, sc->sc_sfptype);
sc->sc_sfptype = 0;
}
out:
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
return mediatype;
}
static void
wm_eeprom_sendbits(struct wm_softc *sc, uint32_t bits, int nbits)
{
uint32_t reg;
int x;
reg = CSR_READ(sc, WMREG_EECD);
for (x = nbits; x > 0; x--) {
if (bits & (1U << (x - 1)))
reg |= EECD_DI;
else
reg &= ~EECD_DI;
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
CSR_WRITE(sc, WMREG_EECD, reg | EECD_SK);
CSR_WRITE_FLUSH(sc);
delay(2);
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
}
}
static void
wm_eeprom_recvbits(struct wm_softc *sc, uint32_t *valp, int nbits)
{
uint32_t reg, val;
int x;
reg = CSR_READ(sc, WMREG_EECD) & ~EECD_DI;
val = 0;
for (x = nbits; x > 0; x--) {
CSR_WRITE(sc, WMREG_EECD, reg | EECD_SK);
CSR_WRITE_FLUSH(sc);
delay(2);
if (CSR_READ(sc, WMREG_EECD) & EECD_DO)
val |= (1U << (x - 1));
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
}
*valp = val;
}
static int
wm_nvm_read_uwire(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
{
uint32_t reg, val;
int i, rv;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
for (i = 0; i < wordcnt; i++) {
reg = CSR_READ(sc, WMREG_EECD) & ~(EECD_SK | EECD_DI);
CSR_WRITE(sc, WMREG_EECD, reg);
if (sc->sc_type == WM_T_82540) {
reg |= EECD_SK;
CSR_WRITE(sc, WMREG_EECD, reg);
reg &= ~EECD_SK;
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
}
reg |= EECD_CS;
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
wm_eeprom_sendbits(sc, UWIRE_OPC_READ, 3);
wm_eeprom_sendbits(sc, word + i, sc->sc_nvm_addrbits);
wm_eeprom_recvbits(sc, &val, 16);
data[i] = val & 0xffff;
reg = CSR_READ(sc, WMREG_EECD) & ~EECD_CS;
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
}
sc->nvm.release(sc);
return 0;
}
static int
wm_nvm_set_addrbits_size_eecd(struct wm_softc *sc)
{
int size;
uint32_t reg;
uint16_t data;
reg = CSR_READ(sc, WMREG_EECD);
sc->sc_nvm_addrbits = (reg & EECD_EE_ABITS) ? 16 : 8;
size = __SHIFTOUT(reg, EECD_EE_SIZE_EX_MASK);
switch (sc->sc_type) {
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
sc->sc_nvm_wordsize = 64;
if (wm_nvm_read(sc, NVM_OFF_EEPROM_SIZE, 1, &data) != 0) {
aprint_error_dev(sc->sc_dev,
"%s: failed to read EEPROM size\n", __func__);
}
reg = data;
size = __SHIFTOUT(reg, EECD_EE_SIZE_EX_MASK);
if (size == 0)
size = 6;
else
size += NVM_WORD_SIZE_BASE_SHIFT + 1;
break;
case WM_T_80003:
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
size += NVM_WORD_SIZE_BASE_SHIFT;
if (size > 14)
size = 14;
break;
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
case WM_T_I210:
case WM_T_I211:
size += NVM_WORD_SIZE_BASE_SHIFT;
if (size > 15)
size = 15;
break;
default:
aprint_error_dev(sc->sc_dev,
"%s: unknown device(%d)?\n", __func__, sc->sc_type);
return -1;
break;
}
sc->sc_nvm_wordsize = 1 << size;
return 0;
}
static int
wm_nvm_ready_spi(struct wm_softc *sc)
{
uint32_t val;
int usec;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
for (usec = 0; usec < SPI_MAX_RETRIES; delay(5), usec += 5) {
wm_eeprom_sendbits(sc, SPI_OPC_RDSR, 8);
wm_eeprom_recvbits(sc, &val, 8);
if ((val & SPI_SR_RDY) == 0)
break;
}
if (usec >= SPI_MAX_RETRIES) {
aprint_error_dev(sc->sc_dev,"EEPROM failed to become ready\n");
return -1;
}
return 0;
}
static int
wm_nvm_read_spi(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
{
uint32_t reg, val;
int i;
uint8_t opc;
int rv;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
reg = CSR_READ(sc, WMREG_EECD) & ~(EECD_SK | EECD_CS);
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
if ((rv = wm_nvm_ready_spi(sc)) != 0)
goto out;
CSR_WRITE(sc, WMREG_EECD, reg | EECD_CS);
CSR_WRITE_FLUSH(sc);
delay(2);
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
opc = SPI_OPC_READ;
if (sc->sc_nvm_addrbits == 8 && word >= 128)
opc |= SPI_OPC_A8;
wm_eeprom_sendbits(sc, opc, 8);
wm_eeprom_sendbits(sc, word << 1, sc->sc_nvm_addrbits);
for (i = 0; i < wordcnt; i++) {
wm_eeprom_recvbits(sc, &val, 16);
data[i] = ((val >> 8) & 0xff) | ((val & 0xff) << 8);
}
reg = (CSR_READ(sc, WMREG_EECD) & ~EECD_SK) | EECD_CS;
CSR_WRITE(sc, WMREG_EECD, reg);
CSR_WRITE_FLUSH(sc);
delay(2);
out:
sc->nvm.release(sc);
return rv;
}
static int
wm_poll_eerd_eewr_done(struct wm_softc *sc, int rw)
{
uint32_t attempts = 100000;
uint32_t i, reg = 0;
int32_t done = -1;
for (i = 0; i < attempts; i++) {
reg = CSR_READ(sc, rw);
if (reg & EERD_DONE) {
done = 0;
break;
}
delay(5);
}
return done;
}
static int
wm_nvm_read_eerd(struct wm_softc *sc, int offset, int wordcnt, uint16_t *data)
{
int i, eerd = 0;
int rv;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
for (i = 0; i < wordcnt; i++) {
eerd = ((offset + i) << EERD_ADDR_SHIFT) | EERD_START;
CSR_WRITE(sc, WMREG_EERD, eerd);
rv = wm_poll_eerd_eewr_done(sc, WMREG_EERD);
if (rv != 0) {
aprint_error_dev(sc->sc_dev, "EERD polling failed: "
"offset=%d. wordcnt=%d\n", offset, wordcnt);
break;
}
data[i] = (CSR_READ(sc, WMREG_EERD) >> EERD_DATA_SHIFT);
}
sc->nvm.release(sc);
return rv;
}
static int
wm_nvm_valid_bank_detect_ich8lan(struct wm_softc *sc, unsigned int *bank)
{
uint32_t eecd;
uint32_t act_offset = ICH_NVM_SIG_WORD * 2 + 1;
uint32_t bank1_offset = sc->sc_ich8_flash_bank_size * sizeof(uint16_t);
uint32_t nvm_dword = 0;
uint8_t sig_byte = 0;
int rv;
switch (sc->sc_type) {
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
bank1_offset = sc->sc_ich8_flash_bank_size * 2;
act_offset = ICH_NVM_SIG_WORD * 2;
*bank = 0;
rv = wm_read_ich8_dword(sc, act_offset, &nvm_dword);
if (rv != 0)
return rv;
sig_byte = (uint8_t)((nvm_dword & 0xFF00) >> 8);
if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
*bank = 0;
return 0;
}
rv = wm_read_ich8_dword(sc, act_offset + bank1_offset,
&nvm_dword);
sig_byte = (uint8_t)((nvm_dword & 0xFF00) >> 8);
if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
*bank = 1;
return 0;
}
aprint_error_dev(sc->sc_dev,
"%s: no valid NVM bank present (%u)\n", __func__, *bank);
return -1;
case WM_T_ICH8:
case WM_T_ICH9:
eecd = CSR_READ(sc, WMREG_EECD);
if ((eecd & EECD_SEC1VAL_VALMASK) == EECD_SEC1VAL_VALMASK) {
*bank = ((eecd & EECD_SEC1VAL) != 0) ? 1 : 0;
return 0;
}
default:
*bank = 0;
wm_read_ich8_byte(sc, act_offset, &sig_byte);
if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
*bank = 0;
return 0;
}
wm_read_ich8_byte(sc, act_offset + bank1_offset,
&sig_byte);
if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
*bank = 1;
return 0;
}
}
DPRINTF(sc, WM_DEBUG_NVM, ("%s: No valid NVM bank present\n",
device_xname(sc->sc_dev)));
return -1;
}
static int32_t
wm_ich8_cycle_init(struct wm_softc *sc)
{
uint16_t hsfsts;
int32_t error = 1;
int32_t i = 0;
if (sc->sc_type >= WM_T_PCH_SPT)
hsfsts = ICH8_FLASH_READ32(sc, ICH_FLASH_HSFSTS) & 0xffffUL;
else
hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
if ((hsfsts & HSFSTS_FLDVAL) == 0)
return error;
hsfsts |= HSFSTS_ERR | HSFSTS_DAEL;
if (sc->sc_type >= WM_T_PCH_SPT)
ICH8_FLASH_WRITE32(sc, ICH_FLASH_HSFSTS, hsfsts & 0xffffUL);
else
ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS, hsfsts);
if ((hsfsts & HSFSTS_FLINPRO) == 0) {
hsfsts |= HSFSTS_DONE;
if (sc->sc_type >= WM_T_PCH_SPT)
ICH8_FLASH_WRITE32(sc, ICH_FLASH_HSFSTS,
hsfsts & 0xffffUL);
else
ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS, hsfsts);
error = 0;
} else {
for (i = 0; i < ICH_FLASH_COMMAND_TIMEOUT; i++) {
if (sc->sc_type >= WM_T_PCH_SPT)
hsfsts = ICH8_FLASH_READ32(sc,
ICH_FLASH_HSFSTS) & 0xffffUL;
else
hsfsts = ICH8_FLASH_READ16(sc,
ICH_FLASH_HSFSTS);
if ((hsfsts & HSFSTS_FLINPRO) == 0) {
error = 0;
break;
}
delay(1);
}
if (error == 0) {
hsfsts |= HSFSTS_DONE;
if (sc->sc_type >= WM_T_PCH_SPT)
ICH8_FLASH_WRITE32(sc, ICH_FLASH_HSFSTS,
hsfsts & 0xffffUL);
else
ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS,
hsfsts);
}
}
return error;
}
static int32_t
wm_ich8_flash_cycle(struct wm_softc *sc, uint32_t timeout)
{
uint16_t hsflctl;
uint16_t hsfsts;
int32_t error = 1;
uint32_t i = 0;
if (sc->sc_type >= WM_T_PCH_SPT)
hsflctl = ICH8_FLASH_READ32(sc, ICH_FLASH_HSFSTS) >> 16;
else
hsflctl = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFCTL);
hsflctl |= HSFCTL_GO;
if (sc->sc_type >= WM_T_PCH_SPT)
ICH8_FLASH_WRITE32(sc, ICH_FLASH_HSFSTS,
(uint32_t)hsflctl << 16);
else
ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFCTL, hsflctl);
do {
if (sc->sc_type >= WM_T_PCH_SPT)
hsfsts = ICH8_FLASH_READ32(sc, ICH_FLASH_HSFSTS)
& 0xffffUL;
else
hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
if (hsfsts & HSFSTS_DONE)
break;
delay(1);
i++;
} while (i < timeout);
if ((hsfsts & HSFSTS_DONE) == 1 && (hsfsts & HSFSTS_ERR) == 0)
error = 0;
return error;
}
static int32_t
wm_read_ich8_data(struct wm_softc *sc, uint32_t index,
uint32_t size, uint32_t *data)
{
uint16_t hsfsts;
uint16_t hsflctl;
uint32_t flash_linear_address;
uint32_t flash_data = 0;
int32_t error = 1;
int32_t count = 0;
if (size < 1 || size > 4 || data == 0x0 ||
index > ICH_FLASH_LINEAR_ADDR_MASK)
return error;
flash_linear_address = (ICH_FLASH_LINEAR_ADDR_MASK & index) +
sc->sc_ich8_flash_base;
do {
delay(1);
error = wm_ich8_cycle_init(sc);
if (error)
break;
if (sc->sc_type >= WM_T_PCH_SPT)
hsflctl = ICH8_FLASH_READ32(sc, ICH_FLASH_HSFSTS)
>> 16;
else
hsflctl = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFCTL);
hsflctl |= ((size - 1) << HSFCTL_BCOUNT_SHIFT)
& HSFCTL_BCOUNT_MASK;
hsflctl |= ICH_CYCLE_READ << HSFCTL_CYCLE_SHIFT;
if (sc->sc_type >= WM_T_PCH_SPT) {
ICH8_FLASH_WRITE32(sc, ICH_FLASH_HSFSTS,
(uint32_t)hsflctl << 16);
} else
ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFCTL, hsflctl);
ICH8_FLASH_WRITE32(sc, ICH_FLASH_FADDR, flash_linear_address);
error = wm_ich8_flash_cycle(sc, ICH_FLASH_COMMAND_TIMEOUT);
if (error == 0) {
flash_data = ICH8_FLASH_READ32(sc, ICH_FLASH_FDATA0);
if (size == 1)
*data = (uint8_t)(flash_data & 0x000000FF);
else if (size == 2)
*data = (uint16_t)(flash_data & 0x0000FFFF);
else if (size == 4)
*data = (uint32_t)flash_data;
break;
} else {
if (sc->sc_type >= WM_T_PCH_SPT)
hsfsts = ICH8_FLASH_READ32(sc,
ICH_FLASH_HSFSTS) & 0xffffUL;
else
hsfsts = ICH8_FLASH_READ16(sc,
ICH_FLASH_HSFSTS);
if (hsfsts & HSFSTS_ERR) {
continue;
} else if ((hsfsts & HSFSTS_DONE) == 0)
break;
}
} while (count++ < ICH_FLASH_CYCLE_REPEAT_COUNT);
return error;
}
static int32_t
wm_read_ich8_byte(struct wm_softc *sc, uint32_t index, uint8_t* data)
{
int32_t status;
uint32_t word = 0;
status = wm_read_ich8_data(sc, index, 1, &word);
if (status == 0)
*data = (uint8_t)word;
else
*data = 0;
return status;
}
static int32_t
wm_read_ich8_word(struct wm_softc *sc, uint32_t index, uint16_t *data)
{
int32_t status;
uint32_t word = 0;
status = wm_read_ich8_data(sc, index, 2, &word);
if (status == 0)
*data = (uint16_t)word;
else
*data = 0;
return status;
}
static int32_t
wm_read_ich8_dword(struct wm_softc *sc, uint32_t index, uint32_t *data)
{
int32_t status;
status = wm_read_ich8_data(sc, index, 4, data);
return status;
}
static int
wm_nvm_read_ich8(struct wm_softc *sc, int offset, int words, uint16_t *data)
{
int rv;
uint32_t flash_bank = 0;
uint32_t act_offset = 0;
uint32_t bank_offset = 0;
uint16_t word = 0;
uint16_t i = 0;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
rv = wm_nvm_valid_bank_detect_ich8lan(sc, &flash_bank);
if (rv) {
DPRINTF(sc, WM_DEBUG_NVM, ("%s: failed to detect NVM bank\n",
device_xname(sc->sc_dev)));
flash_bank = 0;
}
bank_offset = flash_bank * (sc->sc_ich8_flash_bank_size * 2);
for (i = 0; i < words; i++) {
act_offset = bank_offset + ((offset + i) * 2);
rv = wm_read_ich8_word(sc, act_offset, &word);
if (rv) {
aprint_error_dev(sc->sc_dev,
"%s: failed to read NVM\n", __func__);
break;
}
data[i] = word;
}
sc->nvm.release(sc);
return rv;
}
static int
wm_nvm_read_spt(struct wm_softc *sc, int offset, int words, uint16_t *data)
{
int rv;
uint32_t flash_bank = 0;
uint32_t act_offset = 0;
uint32_t bank_offset = 0;
uint32_t dword = 0;
uint16_t i = 0;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
rv = wm_nvm_valid_bank_detect_ich8lan(sc, &flash_bank);
if (rv) {
DPRINTF(sc, WM_DEBUG_NVM, ("%s: failed to detect NVM bank\n",
device_xname(sc->sc_dev)));
flash_bank = 0;
}
bank_offset = flash_bank * (sc->sc_ich8_flash_bank_size * 2);
for (i = 0; i < words; i++) {
act_offset = bank_offset + ((offset + i) * 2);
rv = wm_read_ich8_dword(sc, act_offset & ~0x3, &dword);
if (rv) {
aprint_error_dev(sc->sc_dev,
"%s: failed to read NVM\n", __func__);
break;
}
if ((act_offset & 0x2) == 0)
data[i] = (uint16_t)(dword & 0xFFFF);
else
data[i] = (uint16_t)((dword >> 16) & 0xFFFF);
}
sc->nvm.release(sc);
return rv;
}
static int
wm_nvm_read_word_invm(struct wm_softc *sc, uint16_t address, uint16_t *data)
{
int32_t rv = 0;
uint32_t invm_dword;
uint16_t i;
uint8_t record_type, word_address;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
for (i = 0; i < INVM_SIZE; i++) {
invm_dword = CSR_READ(sc, WM_INVM_DATA_REG(i));
record_type = INVM_DWORD_TO_RECORD_TYPE(invm_dword);
if (record_type == INVM_UNINITIALIZED_STRUCTURE)
break;
if (record_type == INVM_CSR_AUTOLOAD_STRUCTURE)
i += INVM_CSR_AUTOLOAD_DATA_SIZE_IN_DWORDS;
if (record_type == INVM_RSA_KEY_SHA256_STRUCTURE)
i += INVM_RSA_KEY_SHA256_DATA_SIZE_IN_DWORDS;
if (record_type == INVM_WORD_AUTOLOAD_STRUCTURE) {
word_address = INVM_DWORD_TO_WORD_ADDRESS(invm_dword);
if (word_address == address) {
*data = INVM_DWORD_TO_WORD_DATA(invm_dword);
rv = 0;
break;
}
}
}
return rv;
}
static int
wm_nvm_read_invm(struct wm_softc *sc, int offset, int words, uint16_t *data)
{
int i, rv;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->nvm.acquire(sc);
if (rv != 0)
return rv;
for (i = 0; i < words; i++) {
switch (offset + i) {
case NVM_OFF_MACADDR:
case NVM_OFF_MACADDR1:
case NVM_OFF_MACADDR2:
rv = wm_nvm_read_word_invm(sc, offset + i, &data[i]);
if (rv != 0) {
data[i] = 0xffff;
rv = -1;
}
break;
case NVM_OFF_CFG1:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = INVM_DEFAULT_AL;
rv = 0;
}
break;
case NVM_OFF_CFG2:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = NVM_INIT_CTRL_2_DEFAULT_I211;
rv = 0;
}
break;
case NVM_OFF_CFG4:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = NVM_INIT_CTRL_4_DEFAULT_I211;
rv = 0;
}
break;
case NVM_OFF_LED_1_CFG:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = NVM_LED_1_CFG_DEFAULT_I211;
rv = 0;
}
break;
case NVM_OFF_LED_0_2_CFG:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = NVM_LED_0_2_CFG_DEFAULT_I211;
rv = 0;
}
break;
case NVM_OFF_ID_LED_SETTINGS:
rv = wm_nvm_read_word_invm(sc, offset, data);
if (rv != 0) {
*data = ID_LED_RESERVED_FFFF;
rv = 0;
}
break;
default:
DPRINTF(sc, WM_DEBUG_NVM,
("NVM word 0x%02x is not mapped.\n", offset));
*data = NVM_RESERVED_WORD;
break;
}
}
sc->nvm.release(sc);
return rv;
}
static int
wm_nvm_is_onboard_eeprom(struct wm_softc *sc)
{
uint32_t eecd = 0;
if (sc->sc_type == WM_T_82573 || sc->sc_type == WM_T_82574
|| sc->sc_type == WM_T_82583) {
eecd = CSR_READ(sc, WMREG_EECD);
eecd = ((eecd >> 15) & 0x03);
if (eecd == 0x03)
return 0;
}
return 1;
}
static int
wm_nvm_flash_presence_i210(struct wm_softc *sc)
{
uint32_t eec;
eec = CSR_READ(sc, WMREG_EEC);
if ((eec & EEC_FLASH_DETECTED) != 0)
return 1;
return 0;
}
static int
wm_nvm_validate_checksum(struct wm_softc *sc)
{
uint16_t checksum;
uint16_t eeprom_data;
#ifdef WM_DEBUG
uint16_t csum_wordaddr, valid_checksum;
#endif
int i;
checksum = 0;
if (sc->sc_type == WM_T_I211)
return 0;
#ifdef WM_DEBUG
if ((sc->sc_type == WM_T_PCH_LPT) || (sc->sc_type == WM_T_PCH_SPT) ||
(sc->sc_type == WM_T_PCH_CNP) || (sc->sc_type == WM_T_PCH_TGP)) {
csum_wordaddr = NVM_OFF_COMPAT;
valid_checksum = NVM_COMPAT_VALID_CHECKSUM;
} else {
csum_wordaddr = NVM_OFF_FUTURE_INIT_WORD1;
valid_checksum = NVM_FUTURE_INIT_WORD1_VALID_CHECKSUM;
}
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)) {
wm_nvm_read(sc, csum_wordaddr, 1, &eeprom_data);
if ((eeprom_data & valid_checksum) == 0)
DPRINTF(sc, WM_DEBUG_NVM,
("%s: NVM need to be updated (%04x != %04x)\n",
device_xname(sc->sc_dev), eeprom_data,
valid_checksum));
}
if ((sc->sc_debug & WM_DEBUG_NVM) != 0) {
printf("%s: NVM dump:\n", device_xname(sc->sc_dev));
for (i = 0; i < NVM_SIZE; i++) {
if (wm_nvm_read(sc, i, 1, &eeprom_data))
printf("XXXX ");
else
printf("%04hx ", eeprom_data);
if (i % 8 == 7)
printf("\n");
}
}
#endif
for (i = 0; i < NVM_SIZE; i++) {
if (wm_nvm_read(sc, i, 1, &eeprom_data))
return -1;
checksum += eeprom_data;
}
if (checksum != (uint16_t) NVM_CHECKSUM) {
#ifdef WM_DEBUG
printf("%s: NVM checksum mismatch (%04x != %04x)\n",
device_xname(sc->sc_dev), checksum, NVM_CHECKSUM);
#endif
}
return 0;
}
static void
wm_nvm_version_invm(struct wm_softc *sc)
{
uint32_t dword;
dword = CSR_READ(sc, WM_INVM_DATA_REG(61));
dword = __SHIFTOUT(dword, INVM_VER_1);
sc->sc_nvm_ver_major = __SHIFTOUT(dword, INVM_MAJOR);
sc->sc_nvm_ver_minor = __SHIFTOUT(dword, INVM_MINOR);
}
static void
wm_nvm_version(struct wm_softc *sc)
{
uint16_t major, minor, build, patch;
uint16_t uid0, uid1;
uint16_t nvm_data;
uint16_t off;
bool check_version = false;
bool check_optionrom = false;
bool have_build = false;
bool have_uid = true;
if ((sc->sc_nvm_wordsize < NVM_OFF_IMAGE_UID1)
|| (wm_nvm_read(sc, NVM_OFF_IMAGE_UID1, 1, &uid1) != 0))
have_uid = false;
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
case WM_T_82574:
case WM_T_82583:
check_version = true;
check_optionrom = true;
have_build = true;
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
check_version = true;
have_build = true;
have_uid = false;
break;
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
if (have_uid && (uid1 & NVM_MAJOR_MASK) != NVM_UID_VALID)
check_version = true;
break;
case WM_T_I211:
wm_nvm_version_invm(sc);
have_uid = false;
goto printver;
case WM_T_I210:
if (!wm_nvm_flash_presence_i210(sc)) {
wm_nvm_version_invm(sc);
have_uid = false;
goto printver;
}
case WM_T_I350:
case WM_T_I354:
check_version = true;
check_optionrom = true;
break;
default:
return;
}
if (check_version
&& (wm_nvm_read(sc, NVM_OFF_VERSION, 1, &nvm_data) == 0)) {
major = (nvm_data & NVM_MAJOR_MASK) >> NVM_MAJOR_SHIFT;
if (have_build || ((nvm_data & 0x0f00) != 0x0000)) {
minor = (nvm_data & NVM_MINOR_MASK) >> NVM_MINOR_SHIFT;
build = nvm_data & NVM_BUILD_MASK;
have_build = true;
} else
minor = nvm_data & 0x00ff;
minor = (minor / 16) * 10 + (minor % 16);
sc->sc_nvm_ver_major = major;
sc->sc_nvm_ver_minor = minor;
printver:
aprint_verbose(", version %d.%d", sc->sc_nvm_ver_major,
sc->sc_nvm_ver_minor);
if (have_build) {
sc->sc_nvm_ver_build = build;
aprint_verbose(".%d", build);
}
}
if ((sc->sc_nvm_wordsize > NVM_SIZE) && check_optionrom
&& (wm_nvm_read(sc, NVM_OFF_COMB_VER_PTR, 1, &off) == 0)) {
if ((off != 0x0000) && (off != 0xffff)) {
int rv;
uint16_t oid0, oid1;
off += NVM_COMBO_VER_OFF;
rv = wm_nvm_read(sc, off + 1, 1, &oid1);
rv |= wm_nvm_read(sc, off, 1, &oid0);
if ((rv == 0) && (oid0 != 0) && (oid0 != 0xffff)
&& (oid1 != 0) && (oid1 != 0xffff)) {
major = oid0 >> 8;
build = (oid0 << 8) | (oid1 >> 8);
patch = oid1 & 0x00ff;
aprint_verbose(", option ROM Version %d.%d.%d",
major, build, patch);
}
}
}
if (have_uid && (wm_nvm_read(sc, NVM_OFF_IMAGE_UID0, 1, &uid0) == 0))
aprint_verbose(", Image Unique ID %08x",
((uint32_t)uid1 << 16) | uid0);
}
static int
wm_nvm_read(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
{
int rv;
DPRINTF(sc, WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_flags & WM_F_EEPROM_INVALID)
return -1;
rv = sc->nvm.read(sc, word, wordcnt, data);
return rv;
}
static int
wm_get_null(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
return 0;
}
static void
wm_put_null(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
return;
}
static int
wm_get_eecd(struct wm_softc *sc)
{
uint32_t reg;
int x;
DPRINTF(sc, WM_DEBUG_LOCK | WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
reg = CSR_READ(sc, WMREG_EECD);
reg |= EECD_EE_REQ;
CSR_WRITE(sc, WMREG_EECD, reg);
for (x = 0; x < 1000; x++) {
reg = CSR_READ(sc, WMREG_EECD);
if (reg & EECD_EE_GNT)
break;
delay(5);
}
if ((reg & EECD_EE_GNT) == 0) {
aprint_error_dev(sc->sc_dev,
"could not acquire EEPROM GNT\n");
reg &= ~EECD_EE_REQ;
CSR_WRITE(sc, WMREG_EECD, reg);
return -1;
}
return 0;
}
static void
wm_nvm_eec_clock_raise(struct wm_softc *sc, uint32_t *eecd)
{
*eecd |= EECD_SK;
CSR_WRITE(sc, WMREG_EECD, *eecd);
CSR_WRITE_FLUSH(sc);
if ((sc->sc_flags & WM_F_EEPROM_SPI) != 0)
delay(1);
else
delay(50);
}
static void
wm_nvm_eec_clock_lower(struct wm_softc *sc, uint32_t *eecd)
{
*eecd &= ~EECD_SK;
CSR_WRITE(sc, WMREG_EECD, *eecd);
CSR_WRITE_FLUSH(sc);
if ((sc->sc_flags & WM_F_EEPROM_SPI) != 0)
delay(1);
else
delay(50);
}
static void
wm_put_eecd(struct wm_softc *sc)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
reg = CSR_READ(sc, WMREG_EECD);
if ((sc->sc_flags & WM_F_EEPROM_SPI) != 0) {
reg |= EECD_CS;
wm_nvm_eec_clock_lower(sc, ®);
} else {
reg &= ~(EECD_CS | EECD_DI);
CSR_WRITE(sc, WMREG_EECD, reg);
wm_nvm_eec_clock_raise(sc, ®);
wm_nvm_eec_clock_lower(sc, ®);
}
reg = CSR_READ(sc, WMREG_EECD);
reg &= ~EECD_EE_REQ;
CSR_WRITE(sc, WMREG_EECD, reg);
return;
}
static int
wm_get_swsm_semaphore(struct wm_softc *sc)
{
int32_t timeout;
uint32_t swsm;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(sc->sc_nvm_wordsize > 0);
retry:
timeout = sc->sc_nvm_wordsize + 1;
while (timeout) {
swsm = CSR_READ(sc, WMREG_SWSM);
if ((swsm & SWSM_SMBI) == 0)
break;
delay(50);
timeout--;
}
if (timeout == 0) {
if ((sc->sc_flags & WM_F_WA_I210_CLSEM) != 0) {
sc->sc_flags &= ~WM_F_WA_I210_CLSEM;
wm_put_swsm_semaphore(sc);
goto retry;
}
aprint_error_dev(sc->sc_dev, "could not acquire SWSM SMBI\n");
return -1;
}
timeout = sc->sc_nvm_wordsize + 1;
while (timeout) {
swsm = CSR_READ(sc, WMREG_SWSM);
swsm |= SWSM_SWESMBI;
CSR_WRITE(sc, WMREG_SWSM, swsm);
swsm = CSR_READ(sc, WMREG_SWSM);
if (swsm & SWSM_SWESMBI)
break;
delay(50);
timeout--;
}
if (timeout == 0) {
aprint_error_dev(sc->sc_dev,
"could not acquire SWSM SWESMBI\n");
wm_put_swsm_semaphore(sc);
return -1;
}
return 0;
}
static void
wm_put_swsm_semaphore(struct wm_softc *sc)
{
uint32_t swsm;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
swsm = CSR_READ(sc, WMREG_SWSM);
swsm &= ~(SWSM_SMBI | SWSM_SWESMBI);
CSR_WRITE(sc, WMREG_SWSM, swsm);
}
static int
wm_get_swfw_semaphore(struct wm_softc *sc, uint16_t mask)
{
uint32_t swfw_sync;
uint32_t swmask = mask << SWFW_SOFT_SHIFT;
uint32_t fwmask = mask << SWFW_FIRM_SHIFT;
int timeout;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_type == WM_T_80003)
timeout = 50;
else
timeout = 200;
while (timeout) {
if (wm_get_swsm_semaphore(sc)) {
aprint_error_dev(sc->sc_dev,
"%s: failed to get semaphore\n",
__func__);
return -1;
}
swfw_sync = CSR_READ(sc, WMREG_SW_FW_SYNC);
if ((swfw_sync & (swmask | fwmask)) == 0) {
swfw_sync |= swmask;
CSR_WRITE(sc, WMREG_SW_FW_SYNC, swfw_sync);
wm_put_swsm_semaphore(sc);
return 0;
}
wm_put_swsm_semaphore(sc);
delay(5000);
timeout--;
}
device_printf(sc->sc_dev,
"failed to get swfw semaphore mask 0x%x swfw 0x%x\n",
mask, swfw_sync);
return -1;
}
static void
wm_put_swfw_semaphore(struct wm_softc *sc, uint16_t mask)
{
uint32_t swfw_sync;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
while (wm_get_swsm_semaphore(sc) != 0)
continue;
swfw_sync = CSR_READ(sc, WMREG_SW_FW_SYNC);
swfw_sync &= ~(mask << SWFW_SOFT_SHIFT);
CSR_WRITE(sc, WMREG_SW_FW_SYNC, swfw_sync);
wm_put_swsm_semaphore(sc);
}
static int
wm_get_nvm_80003(struct wm_softc *sc)
{
int rv;
DPRINTF(sc, WM_DEBUG_LOCK | WM_DEBUG_NVM, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((rv = wm_get_swfw_semaphore(sc, SWFW_EEP_SM)) != 0) {
aprint_error_dev(sc->sc_dev,
"%s: failed to get semaphore(SWFW)\n", __func__);
return rv;
}
if (((sc->sc_flags & WM_F_LOCK_EECD) != 0)
&& (rv = wm_get_eecd(sc)) != 0) {
aprint_error_dev(sc->sc_dev,
"%s: failed to get semaphore(EECD)\n", __func__);
wm_put_swfw_semaphore(sc, SWFW_EEP_SM);
return rv;
}
return 0;
}
static void
wm_put_nvm_80003(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((sc->sc_flags & WM_F_LOCK_EECD) != 0)
wm_put_eecd(sc);
wm_put_swfw_semaphore(sc, SWFW_EEP_SM);
}
static int
wm_get_nvm_82571(struct wm_softc *sc)
{
int rv;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((rv = wm_get_swsm_semaphore(sc)) != 0)
return rv;
switch (sc->sc_type) {
case WM_T_82573:
break;
default:
if ((sc->sc_flags & WM_F_LOCK_EECD) != 0)
rv = wm_get_eecd(sc);
break;
}
if (rv != 0) {
aprint_error_dev(sc->sc_dev,
"%s: failed to get semaphore\n",
__func__);
wm_put_swsm_semaphore(sc);
}
return rv;
}
static void
wm_put_nvm_82571(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (sc->sc_type) {
case WM_T_82573:
break;
default:
if ((sc->sc_flags & WM_F_LOCK_EECD) != 0)
wm_put_eecd(sc);
break;
}
wm_put_swsm_semaphore(sc);
}
static int
wm_get_phy_82575(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
return wm_get_swfw_semaphore(sc, swfwphysem[sc->sc_funcid]);
}
static void
wm_put_phy_82575(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
wm_put_swfw_semaphore(sc, swfwphysem[sc->sc_funcid]);
}
static int
wm_get_swfwhw_semaphore(struct wm_softc *sc)
{
uint32_t ext_ctrl;
int timeout = 200;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
mutex_enter(sc->sc_ich_phymtx);
for (timeout = 0; timeout < 200; timeout++) {
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
ext_ctrl |= EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
if (ext_ctrl & EXTCNFCTR_MDIO_SW_OWNERSHIP)
return 0;
delay(5000);
}
device_printf(sc->sc_dev,
"failed to get swfwhw semaphore ext_ctrl 0x%x\n", ext_ctrl);
mutex_exit(sc->sc_ich_phymtx);
return -1;
}
static void
wm_put_swfwhw_semaphore(struct wm_softc *sc)
{
uint32_t ext_ctrl;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
ext_ctrl &= ~EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
mutex_exit(sc->sc_ich_phymtx);
}
static int
wm_get_swflag_ich8lan(struct wm_softc *sc)
{
uint32_t ext_ctrl;
int timeout;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
mutex_enter(sc->sc_ich_phymtx);
for (timeout = 0; timeout < WM_PHY_CFG_TIMEOUT; timeout++) {
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
if ((ext_ctrl & EXTCNFCTR_MDIO_SW_OWNERSHIP) == 0)
break;
delay(1000);
}
if (timeout >= WM_PHY_CFG_TIMEOUT) {
device_printf(sc->sc_dev,
"SW has already locked the resource\n");
goto out;
}
ext_ctrl |= EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
for (timeout = 0; timeout < 1000; timeout++) {
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
if (ext_ctrl & EXTCNFCTR_MDIO_SW_OWNERSHIP)
break;
delay(1000);
}
if (timeout >= 1000) {
device_printf(sc->sc_dev, "failed to acquire semaphore\n");
ext_ctrl &= ~EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
goto out;
}
return 0;
out:
mutex_exit(sc->sc_ich_phymtx);
return -1;
}
static void
wm_put_swflag_ich8lan(struct wm_softc *sc)
{
uint32_t ext_ctrl;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
if (ext_ctrl & EXTCNFCTR_MDIO_SW_OWNERSHIP) {
ext_ctrl &= ~EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
} else
device_printf(sc->sc_dev, "Semaphore unexpectedly released\n");
mutex_exit(sc->sc_ich_phymtx);
}
static int
wm_get_nvm_ich8lan(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
mutex_enter(sc->sc_ich_nvmmtx);
return 0;
}
static void
wm_put_nvm_ich8lan(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
mutex_exit(sc->sc_ich_nvmmtx);
}
static int
wm_get_hw_semaphore_82573(struct wm_softc *sc)
{
int i = 0;
uint32_t reg;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
reg = CSR_READ(sc, WMREG_EXTCNFCTR);
do {
CSR_WRITE(sc, WMREG_EXTCNFCTR,
reg | EXTCNFCTR_MDIO_SW_OWNERSHIP);
reg = CSR_READ(sc, WMREG_EXTCNFCTR);
if ((reg & EXTCNFCTR_MDIO_SW_OWNERSHIP) != 0)
break;
delay(2*1000);
i++;
} while (i < WM_MDIO_OWNERSHIP_TIMEOUT);
if (i == WM_MDIO_OWNERSHIP_TIMEOUT) {
wm_put_hw_semaphore_82573(sc);
log(LOG_ERR, "%s: Driver can't access the PHY\n",
device_xname(sc->sc_dev));
return -1;
}
return 0;
}
static void
wm_put_hw_semaphore_82573(struct wm_softc *sc)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
reg = CSR_READ(sc, WMREG_EXTCNFCTR);
reg &= ~EXTCNFCTR_MDIO_SW_OWNERSHIP;
CSR_WRITE(sc, WMREG_EXTCNFCTR, reg);
}
#ifdef WM_WOL
static int
wm_check_mng_mode(struct wm_softc *sc)
{
int rv;
switch (sc->sc_type) {
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
rv = wm_check_mng_mode_ich8lan(sc);
break;
case WM_T_82574:
case WM_T_82583:
rv = wm_check_mng_mode_82574(sc);
break;
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_80003:
rv = wm_check_mng_mode_generic(sc);
break;
default:
rv = 0;
break;
}
return rv;
}
static int
wm_check_mng_mode_ich8lan(struct wm_softc *sc)
{
uint32_t fwsm;
fwsm = CSR_READ(sc, WMREG_FWSM);
if (((fwsm & FWSM_FW_VALID) != 0)
&& (__SHIFTOUT(fwsm, FWSM_MODE) == MNG_ICH_IAMT_MODE))
return 1;
return 0;
}
static int
wm_check_mng_mode_82574(struct wm_softc *sc)
{
uint16_t data;
wm_nvm_read(sc, NVM_OFF_CFG2, 1, &data);
if ((data & NVM_CFG2_MNGM_MASK) != 0)
return 1;
return 0;
}
static int
wm_check_mng_mode_generic(struct wm_softc *sc)
{
uint32_t fwsm;
fwsm = CSR_READ(sc, WMREG_FWSM);
if (__SHIFTOUT(fwsm, FWSM_MODE) == MNG_IAMT_MODE)
return 1;
return 0;
}
#endif
static int
wm_enable_mng_pass_thru(struct wm_softc *sc)
{
uint32_t manc, fwsm, factps;
if ((sc->sc_flags & WM_F_ASF_FIRMWARE_PRES) == 0)
return 0;
manc = CSR_READ(sc, WMREG_MANC);
DPRINTF(sc, WM_DEBUG_MANAGE, ("%s: MANC (%08x)\n",
device_xname(sc->sc_dev), manc));
if ((manc & MANC_RECV_TCO_EN) == 0)
return 0;
if ((sc->sc_flags & WM_F_ARC_SUBSYS_VALID) != 0) {
fwsm = CSR_READ(sc, WMREG_FWSM);
factps = CSR_READ(sc, WMREG_FACTPS);
if (((factps & FACTPS_MNGCG) == 0)
&& (__SHIFTOUT(fwsm, FWSM_MODE) == MNG_ICH_IAMT_MODE))
return 1;
} else if ((sc->sc_type == WM_T_82574) || (sc->sc_type == WM_T_82583)){
uint16_t data;
factps = CSR_READ(sc, WMREG_FACTPS);
wm_nvm_read(sc, NVM_OFF_CFG2, 1, &data);
DPRINTF(sc, WM_DEBUG_MANAGE, ("%s: FACTPS = %08x, CFG2=%04x\n",
device_xname(sc->sc_dev), factps, data));
if (((factps & FACTPS_MNGCG) == 0)
&& ((data & NVM_CFG2_MNGM_MASK)
== (NVM_CFG2_MNGM_PT << NVM_CFG2_MNGM_SHIFT)))
return 1;
} else if (((manc & MANC_SMBUS_EN) != 0)
&& ((manc & MANC_ASF_EN) == 0))
return 1;
return 0;
}
static bool
wm_phy_resetisblocked(struct wm_softc *sc)
{
bool blocked = false;
uint32_t reg;
int i = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
switch (sc->sc_type) {
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
do {
reg = CSR_READ(sc, WMREG_FWSM);
if ((reg & FWSM_RSPCIPHY) == 0) {
blocked = true;
delay(10*1000);
continue;
}
blocked = false;
} while (blocked && (i++ < 30));
return blocked;
break;
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
case WM_T_80003:
reg = CSR_READ(sc, WMREG_MANC);
if ((reg & MANC_BLK_PHY_RST_ON_IDE) != 0)
return true;
else
return false;
break;
default:
break;
}
return false;
}
static void
wm_get_hw_control(struct wm_softc *sc)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_type == WM_T_82573) {
reg = CSR_READ(sc, WMREG_SWSM);
CSR_WRITE(sc, WMREG_SWSM, reg | SWSM_DRV_LOAD);
} else if (sc->sc_type >= WM_T_82571) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg | CTRL_EXT_DRV_LOAD);
}
}
static void
wm_release_hw_control(struct wm_softc *sc)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_LOCK, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_type == WM_T_82573) {
reg = CSR_READ(sc, WMREG_SWSM);
CSR_WRITE(sc, WMREG_SWSM, reg & ~SWSM_DRV_LOAD);
} else if (sc->sc_type >= WM_T_82571) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg & ~CTRL_EXT_DRV_LOAD);
}
}
static void
wm_gate_hw_phy_config_ich8lan(struct wm_softc *sc, bool gate)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_type < WM_T_PCH2)
return;
reg = CSR_READ(sc, WMREG_EXTCNFCTR);
if (gate)
reg |= EXTCNFCTR_GATE_PHY_CFG;
else
reg &= ~EXTCNFCTR_GATE_PHY_CFG;
CSR_WRITE(sc, WMREG_EXTCNFCTR, reg);
}
static int
wm_init_phy_workarounds_pchlan(struct wm_softc *sc)
{
uint32_t fwsm, reg;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
wm_gate_hw_phy_config_ich8lan(sc, true);
wm_ulp_disable(sc);
rv = sc->phy.acquire(sc);
if (rv != 0) {
DPRINTF(sc, WM_DEBUG_INIT,
("%s: %s: failed\n", device_xname(sc->sc_dev), __func__));
return rv;
}
fwsm = CSR_READ(sc, WMREG_FWSM);
switch (sc->sc_type) {
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
if (wm_phy_is_accessible_pchlan(sc))
break;
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_FORCE_SMBUS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
#if 0
CSR_WRITE_FLUSH(sc);
#endif
delay(50 * 1000);
case WM_T_PCH2:
if (wm_phy_is_accessible_pchlan(sc) == true)
break;
case WM_T_PCH:
if (sc->sc_type == WM_T_PCH)
if ((fwsm & FWSM_FW_VALID) != 0)
break;
if (wm_phy_resetisblocked(sc) == true) {
device_printf(sc->sc_dev, "XXX reset is blocked(2)\n");
break;
}
wm_toggle_lanphypc_pch_lpt(sc);
if (sc->sc_type >= WM_T_PCH_LPT) {
if (wm_phy_is_accessible_pchlan(sc) == true)
break;
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_FORCE_SMBUS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
if (wm_phy_is_accessible_pchlan(sc) == true)
break;
rv = -1;
}
break;
default:
break;
}
sc->phy.release(sc);
if (rv == 0) {
if (wm_phy_resetisblocked(sc)) {
device_printf(sc->sc_dev, "XXX reset is blocked(3)\n");
goto out;
}
if (wm_reset_phy(sc) != 0)
goto out;
if (wm_phy_resetisblocked(sc))
device_printf(sc->sc_dev, "XXX reset is blocked(4)\n");
}
out:
if ((sc->sc_type == WM_T_PCH2) && ((fwsm & FWSM_FW_VALID) == 0)) {
delay(10*1000);
wm_gate_hw_phy_config_ich8lan(sc, false);
}
return 0;
}
static void
wm_init_manageability(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(IFNET_LOCKED(&sc->sc_ethercom.ec_if));
if (sc->sc_flags & WM_F_HAS_MANAGE) {
uint32_t manc2h = CSR_READ(sc, WMREG_MANC2H);
uint32_t manc = CSR_READ(sc, WMREG_MANC);
manc &= ~MANC_ARP_EN;
if (sc->sc_type >= WM_T_82571) {
manc |= MANC_EN_MNG2HOST;
manc2h |= MANC2H_PORT_623 | MANC2H_PORT_624;
CSR_WRITE(sc, WMREG_MANC2H, manc2h);
}
CSR_WRITE(sc, WMREG_MANC, manc);
}
}
static void
wm_release_manageability(struct wm_softc *sc)
{
if (sc->sc_flags & WM_F_HAS_MANAGE) {
uint32_t manc = CSR_READ(sc, WMREG_MANC);
manc |= MANC_ARP_EN;
if (sc->sc_type >= WM_T_82571)
manc &= ~MANC_EN_MNG2HOST;
CSR_WRITE(sc, WMREG_MANC, manc);
}
}
static void
wm_get_wakeup(struct wm_softc *sc)
{
switch (sc->sc_type) {
case WM_T_82573:
case WM_T_82583:
sc->sc_flags |= WM_F_HAS_AMT;
case WM_T_80003:
case WM_T_82575:
case WM_T_82576:
case WM_T_82580:
case WM_T_I350:
case WM_T_I354:
if ((CSR_READ(sc, WMREG_FWSM) & FWSM_MODE) != 0)
sc->sc_flags |= WM_F_ARC_SUBSYS_VALID;
case WM_T_82541:
case WM_T_82541_2:
case WM_T_82547:
case WM_T_82547_2:
case WM_T_82571:
case WM_T_82572:
case WM_T_82574:
sc->sc_flags |= WM_F_ASF_FIRMWARE_PRES;
break;
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
sc->sc_flags |= WM_F_HAS_AMT;
sc->sc_flags |= WM_F_ASF_FIRMWARE_PRES;
break;
default:
break;
}
if (wm_enable_mng_pass_thru(sc) != 0)
sc->sc_flags |= WM_F_HAS_MANAGE;
}
static int
wm_ulp_disable(struct wm_softc *sc)
{
uint32_t reg;
uint16_t phyreg;
int i = 0, rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((sc->sc_type < WM_T_PCH_LPT)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_I217_LM)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_I217_V)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_LM2)
|| (sc->sc_pcidevid == PCI_PRODUCT_INTEL_I218_V2))
return 0;
if ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID) != 0) {
reg = CSR_READ(sc, WMREG_H2ME);
reg &= ~H2ME_ULP;
reg |= H2ME_ENFORCE_SETTINGS;
CSR_WRITE(sc, WMREG_H2ME, reg);
while ((CSR_READ(sc, WMREG_FWSM) & FWSM_ULP_CFG_DONE) != 0) {
if (i++ == 30) {
device_printf(sc->sc_dev, "%s timed out\n",
__func__);
return -1;
}
delay(10 * 1000);
}
reg = CSR_READ(sc, WMREG_H2ME);
reg &= ~H2ME_ENFORCE_SETTINGS;
CSR_WRITE(sc, WMREG_H2ME, reg);
return 0;
}
rv = sc->phy.acquire(sc);
if (rv != 0) {
DPRINTF(sc, WM_DEBUG_INIT,
("%s: %s: failed\n", device_xname(sc->sc_dev), __func__));
return rv;
}
wm_toggle_lanphypc_pch_lpt(sc);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, CV_SMB_CTRL, &phyreg);
if (rv != 0) {
uint32_t reg2;
aprint_debug_dev(sc->sc_dev, "%s: Force SMBus first.\n",
__func__);
reg2 = CSR_READ(sc, WMREG_CTRL_EXT);
reg2 |= CTRL_EXT_FORCE_SMBUS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg2);
delay(50 * 1000);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, CV_SMB_CTRL,
&phyreg);
if (rv != 0)
goto release;
}
phyreg &= ~CV_SMB_CTRL_FORCE_SMBUS;
wm_gmii_hv_writereg_locked(sc->sc_dev, 2, CV_SMB_CTRL, phyreg);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_FORCE_SMBUS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, HV_PM_CTRL, &phyreg);
if (rv != 0)
goto release;
phyreg |= HV_PM_CTRL_K1_ENA;
wm_gmii_hv_writereg_locked(sc->sc_dev, 2, HV_PM_CTRL, phyreg);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, I218_ULP_CONFIG1,
&phyreg);
if (rv != 0)
goto release;
phyreg &= ~(I218_ULP_CONFIG1_IND
| I218_ULP_CONFIG1_STICKY_ULP
| I218_ULP_CONFIG1_RESET_TO_SMBUS
| I218_ULP_CONFIG1_WOL_HOST
| I218_ULP_CONFIG1_INBAND_EXIT
| I218_ULP_CONFIG1_EN_ULP_LANPHYPC
| I218_ULP_CONFIG1_DIS_CLR_STICKY_ON_PERST
| I218_ULP_CONFIG1_DIS_SMB_PERST);
wm_gmii_hv_writereg_locked(sc->sc_dev, 2, I218_ULP_CONFIG1, phyreg);
phyreg |= I218_ULP_CONFIG1_START;
wm_gmii_hv_writereg_locked(sc->sc_dev, 2, I218_ULP_CONFIG1, phyreg);
reg = CSR_READ(sc, WMREG_FEXTNVM7);
reg &= ~FEXTNVM7_DIS_SMB_PERST;
CSR_WRITE(sc, WMREG_FEXTNVM7, reg);
release:
sc->phy.release(sc);
wm_gmii_reset(sc);
delay(50 * 1000);
return rv;
}
static int
wm_enable_phy_wakeup(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
uint32_t mreg, moff;
uint16_t wuce, wuc, wufc, preg;
int i, rv;
KASSERT(sc->sc_type >= WM_T_PCH);
wm_copy_rx_addrs_to_phy_ich8lan(sc);
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to acquire semaphore\n",
__func__);
return rv;
}
rv = wm_enable_phy_wakeup_reg_access_bm(dev, &wuce);
if (rv != 0) {
device_printf(dev,
"%s: Could not enable PHY wakeup reg access\n", __func__);
goto release;
}
for (i = 0; i < WM_ICH8_MC_TABSIZE; i++) {
uint16_t lo, hi;
mreg = CSR_READ(sc, WMREG_CORDOVA_MTA + (i * 4));
lo = (uint16_t)(mreg & 0xffff);
hi = (uint16_t)((mreg >> 16) & 0xffff);
wm_access_phy_wakeup_reg_bm(dev, BM_MTA(i), &lo, 0, true);
wm_access_phy_wakeup_reg_bm(dev, BM_MTA(i) + 1, &hi, 0, true);
}
wm_access_phy_wakeup_reg_bm(dev, BM_RCTL, &preg, 1, true);
mreg = CSR_READ(sc, WMREG_RCTL);
if (mreg & RCTL_UPE)
preg |= BM_RCTL_UPE;
if (mreg & RCTL_MPE)
preg |= BM_RCTL_MPE;
preg &= ~(BM_RCTL_MO_MASK);
moff = __SHIFTOUT(mreg, RCTL_MO);
if (moff != 0)
preg |= moff << BM_RCTL_MO_SHIFT;
if (mreg & RCTL_BAM)
preg |= BM_RCTL_BAM;
if (mreg & RCTL_PMCF)
preg |= BM_RCTL_PMCF;
mreg = CSR_READ(sc, WMREG_CTRL);
if (mreg & CTRL_RFCE)
preg |= BM_RCTL_RFCE;
wm_access_phy_wakeup_reg_bm(dev, BM_RCTL, &preg, 0, true);
wuc = WUC_APME | WUC_PME_EN;
wufc = WUFC_MAG;
CSR_WRITE(sc, WMREG_WUC,
WUC_PHY_WAKE | WUC_PME_STATUS | WUC_APMPME | wuc);
CSR_WRITE(sc, WMREG_WUFC, wufc);
wm_access_phy_wakeup_reg_bm(dev, BM_WUC, &wuc, 0, true);
wm_access_phy_wakeup_reg_bm(dev, BM_WUFC, &wufc, 0, true);
wuce |= BM_WUC_ENABLE_BIT | BM_WUC_HOST_WU_BIT;
wm_disable_phy_wakeup_reg_access_bm(dev, &wuce);
release:
sc->phy.release(sc);
return 0;
}
static void
wm_igp3_phy_powerdown_workaround_ich8lan(struct wm_softc *sc)
{
uint32_t reg;
uint16_t phyreg;
int i;
for (i = 0; i < 2; i++) {
reg = CSR_READ(sc, WMREG_PHY_CTRL);
reg |= PHY_CTRL_GBE_DIS | PHY_CTRL_NOND0A_GBE_DIS;
CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
if (sc->sc_type == WM_T_ICH8)
wm_gig_downshift_workaround_ich8lan(sc);
sc->sc_mii.mii_readreg(sc->sc_dev, 1, IGP3_VR_CTRL, &phyreg);
phyreg &= ~IGP3_VR_CTRL_DEV_POWERDOWN_MODE_MASK;
phyreg |= IGP3_VR_CTRL_MODE_SHUTDOWN;
sc->sc_mii.mii_writereg(sc->sc_dev, 1, IGP3_VR_CTRL, phyreg);
sc->sc_mii.mii_readreg(sc->sc_dev, 1, IGP3_VR_CTRL, &phyreg);
phyreg &= IGP3_VR_CTRL_DEV_POWERDOWN_MODE_MASK;
if ((phyreg == IGP3_VR_CTRL_MODE_SHUTDOWN) || (i != 0))
break;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
}
}
static void
wm_suspend_workarounds_ich8lan(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
struct ethercom *ec = &sc->sc_ethercom;
uint32_t phy_ctrl;
int rv;
phy_ctrl = CSR_READ(sc, WMREG_PHY_CTRL);
phy_ctrl |= PHY_CTRL_GBE_DIS;
KASSERT((sc->sc_type >= WM_T_ICH8) && (sc->sc_type <= WM_T_PCH_TGP));
if (sc->sc_phytype == WMPHY_I217) {
uint16_t devid = sc->sc_pcidevid;
if ((devid == PCI_PRODUCT_INTEL_I218_LM) ||
(devid == PCI_PRODUCT_INTEL_I218_V) ||
(devid == PCI_PRODUCT_INTEL_I218_LM3) ||
(devid == PCI_PRODUCT_INTEL_I218_V3) ||
(sc->sc_type >= WM_T_PCH_SPT))
CSR_WRITE(sc, WMREG_FEXTNVM6,
CSR_READ(sc, WMREG_FEXTNVM6)
& ~FEXTNVM6_REQ_PLL_CLK);
if (sc->phy.acquire(sc) != 0)
goto out;
if ((ec->ec_capenable & ETHERCAP_EEE) != 0) {
uint16_t eee_advert;
rv = wm_read_emi_reg_locked(dev,
I217_EEE_ADVERTISEMENT, &eee_advert);
if (rv)
goto release;
if ((eee_advert & AN_EEEADVERT_100_TX) &&
(sc->eee_lp_ability & AN_EEEADVERT_100_TX)) {
uint16_t anar, phy_reg;
sc->phy.readreg_locked(dev, 2, MII_ANAR,
&anar);
if (anar & ANAR_TX_FD) {
phy_ctrl &= ~(PHY_CTRL_D0A_LPLU |
PHY_CTRL_NOND0A_LPLU);
sc->phy.readreg_locked(dev, 2,
I217_LPI_GPIO_CTRL, &phy_reg);
phy_reg |= I217_LPI_GPIO_CTRL_AUTO_EN_LPI;
sc->phy.writereg_locked(dev, 2,
I217_LPI_GPIO_CTRL, phy_reg);
}
}
}
release:
sc->phy.release(sc);
}
out:
CSR_WRITE(sc, WMREG_PHY_CTRL, phy_ctrl);
if (sc->sc_type == WM_T_ICH8)
wm_gig_downshift_workaround_ich8lan(sc);
if (sc->sc_type >= WM_T_PCH) {
wm_oem_bits_config_ich8lan(sc, false);
if (sc->sc_type == WM_T_PCH)
wm_reset_phy(sc);
if (sc->phy.acquire(sc) != 0)
return;
wm_write_smbus_addr(sc);
sc->phy.release(sc);
}
}
static int
wm_resume_workarounds_pchlan(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
int rv;
if (sc->sc_type < WM_T_PCH2)
return 0;
rv = wm_init_phy_workarounds_pchlan(sc);
if (rv != 0)
return rv;
if (sc->sc_phytype == WMPHY_I217) {
uint16_t phy_reg;
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
sc->phy.readreg_locked(dev, 1, I217_LPI_GPIO_CTRL, &phy_reg);
phy_reg &= ~I217_LPI_GPIO_CTRL_AUTO_EN_LPI;
sc->phy.writereg_locked(dev, 1, I217_LPI_GPIO_CTRL, phy_reg);
if ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID) == 0) {
rv = sc->phy.readreg_locked(dev, 1, I217_MEMPWR,
&phy_reg);
if (rv != 0)
goto release;
phy_reg |= I217_MEMPWR_DISABLE_SMB_RELEASE;
sc->phy.writereg_locked(dev, 1, I217_MEMPWR, phy_reg);
sc->phy.writereg_locked(dev, 1, I217_PROXY_CTRL, 0);
}
sc->phy.readreg_locked(dev, 1, I217_CFGREG, &phy_reg);
if (rv != 0)
goto release;
phy_reg &= ~I217_CGFREG_ENABLE_MTA_RESET;
sc->phy.writereg_locked(dev, 1, I217_CFGREG, phy_reg);
release:
sc->phy.release(sc);
return rv;
}
return 0;
}
static void
wm_enable_wakeup(struct wm_softc *sc)
{
uint32_t reg, pmreg;
pcireg_t pmode;
int rv = 0;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (pci_get_capability(sc->sc_pc, sc->sc_pcitag, PCI_CAP_PWRMGMT,
&pmreg, NULL) == 0)
return;
if ((sc->sc_flags & WM_F_WOL) == 0)
goto pme;
CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_SWDPIN(2)
| CTRL_SWDPIN(3));
if ((sc->sc_mediatype == WM_MEDIATYPE_FIBER)
|| (sc->sc_mediatype == WM_MEDIATYPE_SERDES)) {
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_SWDPIN(3);
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
}
if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9) ||
(sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH) ||
(sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT) ||
(sc->sc_type == WM_T_PCH_SPT) || (sc->sc_type == WM_T_PCH_CNP) ||
(sc->sc_type == WM_T_PCH_TGP))
wm_suspend_workarounds_ich8lan(sc);
#if 0
reg = CSR_READ(sc, WMREG_WUFC) | WUFC_MAG;
reg |= WUFC_MC;
CSR_WRITE(sc, WMREG_RCTL, CSR_READ(sc, WMREG_RCTL) | RCTL_MPE);
#endif
if (sc->sc_type >= WM_T_PCH) {
rv = wm_enable_phy_wakeup(sc);
if (rv != 0)
goto pme;
} else {
CSR_WRITE(sc, WMREG_WUC, WUC_APME | WUC_PME_EN);
CSR_WRITE(sc, WMREG_WUFC, WUFC_MAG);
}
if (((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
|| (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
|| (sc->sc_type == WM_T_PCH2))
&& (sc->sc_phytype == WMPHY_IGP_3))
wm_igp3_phy_powerdown_workaround_ich8lan(sc);
pme:
pmode = pci_conf_read(sc->sc_pc, sc->sc_pcitag, pmreg + PCI_PMCSR);
pmode |= PCI_PMCSR_PME_STS;
if ((rv == 0) && (sc->sc_flags & WM_F_WOL) != 0) {
pmode |= PCI_PMCSR_PME_EN;
} else {
pmode &= ~PCI_PMCSR_PME_EN;
}
pci_conf_write(sc->sc_pc, sc->sc_pcitag, pmreg + PCI_PMCSR, pmode);
}
static void
wm_disable_aspm(struct wm_softc *sc)
{
pcireg_t reg, mask = 0;
unsigned const char *str = "";
if (((sc->sc_flags & WM_F_PCIE) == 0) || (sc->sc_pcixe_capoff == 0))
return;
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
mask = PCIE_LCSR_ASPM_L1;
str = "L1 is";
break;
case WM_T_82573:
case WM_T_82574:
case WM_T_82583:
mask = PCIE_LCSR_ASPM_L1 | PCIE_LCSR_ASPM_L0S;
str = "L0s and L1 are";
break;
default:
return;
}
reg = pci_conf_read(sc->sc_pc, sc->sc_pcitag,
sc->sc_pcixe_capoff + PCIE_LCSR);
reg &= ~mask;
pci_conf_write(sc->sc_pc, sc->sc_pcitag,
sc->sc_pcixe_capoff + PCIE_LCSR, reg);
if ((sc->sc_flags & WM_F_ATTACHED) == 0)
aprint_verbose_dev(sc->sc_dev,
"ASPM %s disabled to workaround the errata.\n", str);
}
static void
wm_lplu_d0_disable(struct wm_softc *sc)
{
struct mii_data *mii = &sc->sc_mii;
uint32_t reg;
uint16_t phyval;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->sc_phytype == WMPHY_IFE)
return;
switch (sc->sc_type) {
case WM_T_82571:
case WM_T_82572:
case WM_T_82573:
case WM_T_82575:
case WM_T_82576:
mii->mii_readreg(sc->sc_dev, 1, IGPHY_POWER_MGMT, &phyval);
phyval &= ~PMR_D0_LPLU;
mii->mii_writereg(sc->sc_dev, 1, IGPHY_POWER_MGMT, phyval);
break;
case WM_T_82580:
case WM_T_I350:
case WM_T_I210:
case WM_T_I211:
reg = CSR_READ(sc, WMREG_PHPM);
reg &= ~PHPM_D0A_LPLU;
CSR_WRITE(sc, WMREG_PHPM, reg);
break;
case WM_T_82574:
case WM_T_82583:
case WM_T_ICH8:
case WM_T_ICH9:
case WM_T_ICH10:
reg = CSR_READ(sc, WMREG_PHY_CTRL);
reg &= ~(PHY_CTRL_GBE_DIS | PHY_CTRL_D0A_LPLU);
CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
CSR_WRITE_FLUSH(sc);
break;
case WM_T_PCH:
case WM_T_PCH2:
case WM_T_PCH_LPT:
case WM_T_PCH_SPT:
case WM_T_PCH_CNP:
case WM_T_PCH_TGP:
wm_gmii_hv_readreg(sc->sc_dev, 1, HV_OEM_BITS, &phyval);
phyval &= ~(HV_OEM_BITS_A1KDIS | HV_OEM_BITS_LPLU);
if (wm_phy_resetisblocked(sc) == false)
phyval |= HV_OEM_BITS_ANEGNOW;
wm_gmii_hv_writereg(sc->sc_dev, 1, HV_OEM_BITS, phyval);
break;
default:
break;
}
}
static int
wm_set_eee_i350(struct wm_softc *sc)
{
struct ethercom *ec = &sc->sc_ethercom;
uint32_t ipcnfg, eeer;
uint32_t ipcnfg_mask
= IPCNFG_EEE_1G_AN | IPCNFG_EEE_100M_AN | IPCNFG_10BASE_TE;
uint32_t eeer_mask = EEER_TX_LPI_EN | EEER_RX_LPI_EN | EEER_LPI_FC;
KASSERT(sc->sc_mediatype == WM_MEDIATYPE_COPPER);
ipcnfg = CSR_READ(sc, WMREG_IPCNFG);
eeer = CSR_READ(sc, WMREG_EEER);
if ((ec->ec_capenable & ETHERCAP_EEE) != 0) {
ipcnfg |= ipcnfg_mask;
eeer |= eeer_mask;
} else {
ipcnfg &= ~ipcnfg_mask;
eeer &= ~eeer_mask;
}
CSR_WRITE(sc, WMREG_IPCNFG, ipcnfg);
CSR_WRITE(sc, WMREG_EEER, eeer);
CSR_READ(sc, WMREG_IPCNFG);
CSR_READ(sc, WMREG_EEER);
return 0;
}
static int
wm_set_eee_pchlan(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
struct ethercom *ec = &sc->sc_ethercom;
uint16_t lpa, pcs_status, adv_addr, adv, lpi_ctrl, data;
int rv;
switch (sc->sc_phytype) {
case WMPHY_82579:
lpa = I82579_EEE_LP_ABILITY;
pcs_status = I82579_EEE_PCS_STATUS;
adv_addr = I82579_EEE_ADVERTISEMENT;
break;
case WMPHY_I217:
lpa = I217_EEE_LP_ABILITY;
pcs_status = I217_EEE_PCS_STATUS;
adv_addr = I217_EEE_ADVERTISEMENT;
break;
default:
return 0;
}
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(dev, "%s: failed to get semaphore\n", __func__);
return rv;
}
rv = sc->phy.readreg_locked(dev, 1, I82579_LPI_CTRL, &lpi_ctrl);
if (rv != 0)
goto release;
lpi_ctrl &= ~I82579_LPI_CTRL_ENABLE;
if ((ec->ec_capenable & ETHERCAP_EEE) != 0) {
rv = wm_read_emi_reg_locked(dev, lpa, &sc->eee_lp_ability);
if (rv != 0)
goto release;
if ((rv = wm_read_emi_reg_locked(dev, adv_addr, &adv)) != 0)
goto release;
if (adv & sc->eee_lp_ability & AN_EEEADVERT_1000_T)
lpi_ctrl |= I82579_LPI_CTRL_EN_1000;
if (adv & sc->eee_lp_ability & AN_EEEADVERT_100_TX) {
sc->phy.readreg_locked(dev, 2, MII_ANLPAR, &data);
if ((data & ANLPAR_TX_FD) != 0)
lpi_ctrl |= I82579_LPI_CTRL_EN_100;
else {
sc->eee_lp_ability
&= ~AN_EEEADVERT_100_TX;
}
}
}
if (sc->sc_phytype == WMPHY_82579) {
rv = wm_read_emi_reg_locked(dev, I82579_LPI_PLL_SHUT, &data);
if (rv != 0)
goto release;
data &= ~I82579_LPI_PLL_SHUT_100;
rv = wm_write_emi_reg_locked(dev, I82579_LPI_PLL_SHUT, data);
}
if ((rv = wm_read_emi_reg_locked(dev, pcs_status, &data)) != 0)
goto release;
rv = sc->phy.writereg_locked(dev, 1, I82579_LPI_CTRL, lpi_ctrl);
release:
sc->phy.release(sc);
return rv;
}
static int
wm_set_eee(struct wm_softc *sc)
{
struct ethercom *ec = &sc->sc_ethercom;
if ((ec->ec_capabilities & ETHERCAP_EEE) == 0)
return 0;
if (sc->sc_type == WM_T_I354) {
return 0;
} else if ((sc->sc_type >= WM_T_I350) && (sc->sc_type <= WM_T_I211))
return wm_set_eee_i350(sc);
else if (sc->sc_type >= WM_T_PCH2)
return wm_set_eee_pchlan(sc);
return 0;
}
static int
wm_kmrn_lock_loss_workaround_ich8lan(struct wm_softc *sc)
{
struct mii_data *mii = &sc->sc_mii;
uint32_t status = CSR_READ(sc, WMREG_STATUS);
int i, reg, rv;
uint16_t phyreg;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if ((status & STATUS_LU) == 0)
return 0;
if (__SHIFTOUT(status, STATUS_SPEED) != STATUS_SPEED_1000)
return 0;
for (i = 0; i < 10; i++) {
rv = mii->mii_readreg(sc->sc_dev, 1, IGP3_KMRN_DIAG, &phyreg);
if (rv != 0)
return rv;
rv = mii->mii_readreg(sc->sc_dev, 1, IGP3_KMRN_DIAG, &phyreg);
if (rv != 0)
return rv;
if ((phyreg & IGP3_KMRN_DIAG_PCS_LOCK_LOSS) == 0)
goto out;
wm_reset_phy(sc);
delay(5*1000);
}
reg = CSR_READ(sc, WMREG_PHY_CTRL);
reg |= PHY_CTRL_GBE_DIS | PHY_CTRL_NOND0A_GBE_DIS;
CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
wm_gig_downshift_workaround_ich8lan(sc);
out:
return 0;
}
static void
wm_gig_downshift_workaround_ich8lan(struct wm_softc *sc)
{
uint16_t kmreg;
if (sc->sc_phytype == WMPHY_IGP_3) {
if (wm_kmrn_readreg(sc, KUMCTRLSTA_OFFSET_DIAG, &kmreg) != 0)
return;
kmreg |= KUMCTRLSTA_DIAG_NELPBK;
if (wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_DIAG, kmreg) != 0)
return;
kmreg &= ~KUMCTRLSTA_DIAG_NELPBK;
wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_DIAG, kmreg);
}
}
static int
wm_hv_phy_workarounds_ich8lan(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
struct mii_data *mii = &sc->sc_mii;
struct mii_softc *child;
uint16_t phy_data, phyrev = 0;
int phytype = sc->sc_phytype;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
KASSERT(sc->sc_type == WM_T_PCH);
if (phytype == WMPHY_82577)
if ((rv = wm_set_mdio_slow_mode_hv(sc)) != 0)
return rv;
child = LIST_FIRST(&mii->mii_phys);
if (child != NULL)
phyrev = child->mii_mpd_rev;
if ((child != NULL) &&
(((phytype == WMPHY_82577) && ((phyrev == 1) || (phyrev == 2))) ||
((phytype == WMPHY_82578) && (phyrev == 1)))) {
rv = mii->mii_readreg(dev, 2, BM_RATE_ADAPTATION_CTRL,
&phy_data);
if (rv != 0)
return rv;
phy_data &= ~(BM_RATE_ADAPTATION_CTRL_RX_RXDV_PRE |
BM_RATE_ADAPTATION_CTRL_RX_CRS_PRE);
rv = mii->mii_writereg(dev, 2, BM_RATE_ADAPTATION_CTRL,
phy_data);
if (rv != 0)
return rv;
rv = mii->mii_writereg(dev, 2, HV_KMRN_FIFO_CTRLSTA, 0xa204);
if (rv != 0)
return rv;
}
if (phytype == WMPHY_82578) {
if ((child != NULL) && (phyrev < 2)) {
PHY_RESET(child);
rv = mii->mii_writereg(dev, 2, MII_BMCR, 0x3140);
if (rv != 0)
return rv;
}
}
if ((rv = sc->phy.acquire(sc)) != 0)
return rv;
rv = wm_gmii_mdic_writereg(dev, 1, IGPHY_PAGE_SELECT, 0);
sc->phy.release(sc);
if (rv != 0)
return rv;
if ((rv = wm_k1_gig_workaround_hv(sc, 1)) != 0)
return rv;
rv = sc->phy.acquire(sc);
if (rv)
return rv;
rv = sc->phy.readreg_locked(dev, 2, BM_PORT_GEN_CFG, &phy_data);
if (rv)
goto release;
rv = sc->phy.writereg_locked(dev, 2, BM_PORT_GEN_CFG,
phy_data & 0x00ff);
if (rv)
goto release;
rv = wm_write_emi_reg_locked(dev, I82577_MSE_THRESHOLD, 0x0034);
release:
sc->phy.release(sc);
return rv;
}
static void
wm_copy_rx_addrs_to_phy_ich8lan(struct wm_softc *sc)
{
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (sc->phy.acquire(sc) != 0)
return;
wm_copy_rx_addrs_to_phy_ich8lan_locked(sc);
sc->phy.release(sc);
}
static void
wm_copy_rx_addrs_to_phy_ich8lan_locked(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
uint32_t mac_reg;
uint16_t i, wuce;
int count;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
if (wm_enable_phy_wakeup_reg_access_bm(dev, &wuce) != 0)
return;
count = wm_rar_count(sc);
for (i = 0; i < count; i++) {
uint16_t lo, hi;
mac_reg = CSR_READ(sc, WMREG_CORDOVA_RAL(i));
lo = (uint16_t)(mac_reg & 0xffff);
hi = (uint16_t)((mac_reg >> 16) & 0xffff);
wm_access_phy_wakeup_reg_bm(dev, BM_RAR_L(i), &lo, 0, true);
wm_access_phy_wakeup_reg_bm(dev, BM_RAR_M(i), &hi, 0, true);
mac_reg = CSR_READ(sc, WMREG_CORDOVA_RAH(i));
lo = (uint16_t)(mac_reg & 0xffff);
hi = (uint16_t)((mac_reg & RAL_AV) >> 16);
wm_access_phy_wakeup_reg_bm(dev, BM_RAR_H(i), &lo, 0, true);
wm_access_phy_wakeup_reg_bm(dev, BM_RAR_CTRL(i), &hi, 0, true);
}
wm_disable_phy_wakeup_reg_access_bm(dev, &wuce);
}
static int
wm_lv_jumbo_workaround_ich8lan(struct wm_softc *sc, bool enable)
{
device_t dev = sc->sc_dev;
int rar_count;
int rv;
uint32_t mac_reg;
uint16_t dft_ctrl, data;
uint16_t i;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
if (sc->sc_type < WM_T_PCH2)
return 0;
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
rv = sc->phy.readreg_locked(dev, 2, I82579_DFT_CTRL, &dft_ctrl);
if (rv != 0)
goto out;
rv = sc->phy.writereg_locked(dev, 2, I82579_DFT_CTRL,
dft_ctrl | (1 << 14));
if (rv != 0)
goto out;
if (enable) {
rar_count = wm_rar_count(sc);
for (i = 0; i < rar_count; i++) {
uint8_t mac_addr[ETHER_ADDR_LEN] = {0};
uint32_t addr_high, addr_low;
addr_high = CSR_READ(sc, WMREG_CORDOVA_RAH(i));
if (!(addr_high & RAL_AV))
continue;
addr_low = CSR_READ(sc, WMREG_CORDOVA_RAL(i));
mac_addr[0] = (addr_low & 0xFF);
mac_addr[1] = ((addr_low >> 8) & 0xFF);
mac_addr[2] = ((addr_low >> 16) & 0xFF);
mac_addr[3] = ((addr_low >> 24) & 0xFF);
mac_addr[4] = (addr_high & 0xFF);
mac_addr[5] = ((addr_high >> 8) & 0xFF);
CSR_WRITE(sc, WMREG_PCH_RAICC(i),
~ether_crc32_le(mac_addr, ETHER_ADDR_LEN));
}
wm_copy_rx_addrs_to_phy_ich8lan_locked(sc);
}
mac_reg = CSR_READ(sc, WMREG_FFLT_DBG);
if (enable) {
mac_reg &= ~(1 << 14);
mac_reg |= (7 << 15);
} else
mac_reg &= ~(0xf << 14);
CSR_WRITE(sc, WMREG_FFLT_DBG, mac_reg);
mac_reg = CSR_READ(sc, WMREG_RCTL);
if (enable) {
mac_reg |= RCTL_SECRC;
sc->sc_rctl |= RCTL_SECRC;
sc->sc_flags |= WM_F_CRC_STRIP;
} else {
mac_reg &= ~RCTL_SECRC;
sc->sc_rctl &= ~RCTL_SECRC;
sc->sc_flags &= ~WM_F_CRC_STRIP;
}
CSR_WRITE(sc, WMREG_RCTL, mac_reg);
rv = wm_kmrn_readreg_locked(sc, KUMCTRLSTA_OFFSET_CTRL, &data);
if (rv != 0)
goto out;
if (enable)
data |= 1 << 0;
else
data &= ~(1 << 0);
rv = wm_kmrn_writereg_locked(sc, KUMCTRLSTA_OFFSET_CTRL, data);
if (rv != 0)
goto out;
rv = wm_kmrn_readreg_locked(sc, KUMCTRLSTA_OFFSET_HD_CTRL, &data);
if (rv != 0)
goto out;
data &= ~(0xf << 8);
data |= (0xb << 8);
rv = wm_kmrn_writereg_locked(sc, KUMCTRLSTA_OFFSET_HD_CTRL, data);
if (rv != 0)
goto out;
rv = sc->phy.readreg_locked(dev, 2, BME1000_REG(769, 23), &data);
if (rv != 0)
goto out;
data &= ~(0x7F << 5);
if (enable)
data |= (0x37 << 5);
rv = sc->phy.writereg_locked(dev, 2, BME1000_REG(769, 23), data);
if (rv != 0)
goto out;
rv = sc->phy.readreg_locked(dev, 2, BME1000_REG(769, 16), &data);
if (rv != 0)
goto out;
if (enable)
data &= ~(1 << 13);
else
data |= (1 << 13);
rv = sc->phy.writereg_locked(dev, 2, BME1000_REG(769, 16), data);
if (rv != 0)
goto out;
rv = sc->phy.readreg_locked(dev, 2, I82579_UNKNOWN1, &data);
if (rv != 0)
goto out;
data &= ~(0x3FF << 2);
if (enable)
data |= (I82579_TX_PTR_GAP << 2);
else
data |= (0x8 << 2);
rv = sc->phy.writereg_locked(dev, 2, I82579_UNKNOWN1, data);
if (rv != 0)
goto out;
rv = sc->phy.writereg_locked(dev, 2, BME1000_REG(776, 23),
enable ? 0xf100 : 0x7e00);
if (rv != 0)
goto out;
rv = sc->phy.readreg_locked(dev, 2, HV_PM_CTRL, &data);
if (rv != 0)
goto out;
if (enable)
data |= 1 << 10;
else
data &= ~(1 << 10);
rv = sc->phy.writereg_locked(dev, 2, HV_PM_CTRL, data);
if (rv != 0)
goto out;
rv = sc->phy.writereg_locked(dev, 2, I82579_DFT_CTRL,
dft_ctrl & ~(1 << 14));
out:
sc->phy.release(sc);
return rv;
}
static int
wm_lv_phy_workarounds_ich8lan(struct wm_softc *sc)
{
device_t dev = sc->sc_dev;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(dev), __func__));
KASSERT(sc->sc_type == WM_T_PCH2);
rv = wm_set_mdio_slow_mode_hv(sc);
if (rv != 0)
return rv;
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
rv = wm_write_emi_reg_locked(dev, I82579_MSE_THRESHOLD, 0x0034);
if (rv != 0)
goto release;
rv = wm_write_emi_reg_locked(dev, I82579_MSE_LINK_DOWN, 0x0005);
release:
sc->phy.release(sc);
return rv;
}
static int
wm_k1_workaround_lpt_lp(struct wm_softc *sc, bool link)
{
uint32_t fextnvm6 = CSR_READ(sc, WMREG_FEXTNVM6);
uint32_t status = CSR_READ(sc, WMREG_STATUS);
uint32_t speed = __SHIFTOUT(status, STATUS_SPEED);
uint16_t phyreg;
if (link && (speed == STATUS_SPEED_1000)) {
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
rv = wm_kmrn_readreg_locked(sc, KUMCTRLSTA_OFFSET_K1_CONFIG,
&phyreg);
if (rv != 0)
goto release;
rv = wm_kmrn_writereg_locked(sc, KUMCTRLSTA_OFFSET_K1_CONFIG,
phyreg & ~KUMCTRLSTA_K1_ENABLE);
if (rv != 0)
goto release;
delay(20);
CSR_WRITE(sc, WMREG_FEXTNVM6, fextnvm6 | FEXTNVM6_REQ_PLL_CLK);
rv = wm_kmrn_readreg_locked(sc, KUMCTRLSTA_OFFSET_K1_CONFIG,
&phyreg);
release:
sc->phy.release(sc);
return rv;
}
fextnvm6 &= ~FEXTNVM6_REQ_PLL_CLK;
struct mii_softc *child = LIST_FIRST(&sc->sc_mii.mii_phys);
if (((child != NULL) && (child->mii_mpd_rev > 5))
|| !link
|| ((speed == STATUS_SPEED_100) && (status & STATUS_FD)))
goto update_fextnvm6;
wm_gmii_hv_readreg(sc->sc_dev, 2, I217_INBAND_CTRL, &phyreg);
phyreg &= ~I217_INBAND_CTRL_LINK_STAT_TX_TIMEOUT_MASK;
if (speed == STATUS_SPEED_100) {
phyreg |= 5 << I217_INBAND_CTRL_LINK_STAT_TX_TIMEOUT_SHIFT;
fextnvm6 &= ~FEXTNVM6_ENABLE_K1_ENTRY_CONDITION;
} else {
phyreg |= 50 << I217_INBAND_CTRL_LINK_STAT_TX_TIMEOUT_SHIFT;
fextnvm6 |= FEXTNVM6_ENABLE_K1_ENTRY_CONDITION;
}
wm_gmii_hv_writereg(sc->sc_dev, 2, I217_INBAND_CTRL, phyreg);
update_fextnvm6:
CSR_WRITE(sc, WMREG_FEXTNVM6, fextnvm6);
return 0;
}
static int
wm_k1_gig_workaround_hv(struct wm_softc *sc, int link)
{
int k1_enable = sc->sc_nvm_k1_enabled;
int rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
rv = sc->phy.acquire(sc);
if (rv != 0)
return rv;
if (link) {
k1_enable = 0;
wm_gmii_hv_writereg_locked(sc->sc_dev, 1, IGP3_KMRN_DIAG,
0x0100);
} else {
wm_gmii_hv_writereg_locked(sc->sc_dev, 1, IGP3_KMRN_DIAG,
0x4100);
}
wm_configure_k1_ich8lan(sc, k1_enable);
sc->phy.release(sc);
return 0;
}
static int
wm_k1_workaround_lv(struct wm_softc *sc)
{
uint32_t reg;
uint16_t phyreg;
int rv;
if (sc->sc_type != WM_T_PCH2)
return 0;
rv = wm_gmii_hv_readreg(sc->sc_dev, 2, HV_M_STATUS, &phyreg);
if (rv != 0)
return rv;
if ((phyreg & (HV_M_STATUS_LINK_UP | HV_M_STATUS_AUTONEG_COMPLETE))
== (HV_M_STATUS_LINK_UP | HV_M_STATUS_AUTONEG_COMPLETE)) {
if (phyreg &
(HV_M_STATUS_SPEED_1000 | HV_M_STATUS_SPEED_100)) {
rv = wm_gmii_hv_readreg(sc->sc_dev, 1, HV_PM_CTRL,
&phyreg);
if (rv != 0)
return rv;
phyreg &= ~HV_PM_CTRL_K1_ENA;
rv = wm_gmii_hv_writereg(sc->sc_dev, 1, HV_PM_CTRL,
phyreg);
if (rv != 0)
return rv;
} else {
reg = CSR_READ(sc, WMREG_FEXTNVM4);
reg &= ~FEXTNVM4_BEACON_DURATION;
reg |= FEXTNVM4_BEACON_DURATION_16US;
CSR_WRITE(sc, WMREG_FEXTNVM4, reg);
}
}
return 0;
}
static int
wm_link_stall_workaround_hv(struct wm_softc *sc)
{
uint16_t phyreg;
if (sc->sc_phytype != WMPHY_82578)
return 0;
wm_gmii_hv_readreg(sc->sc_dev, 2, MII_BMCR, &phyreg);
if ((phyreg & BMCR_LOOP) != 0)
return 0;
wm_gmii_hv_readreg(sc->sc_dev, 2, BM_CS_STATUS, &phyreg);
phyreg &= BM_CS_STATUS_LINK_UP | BM_CS_STATUS_RESOLVED
| BM_CS_STATUS_SPEED_MASK;
if (phyreg != (BM_CS_STATUS_LINK_UP | BM_CS_STATUS_RESOLVED
| BM_CS_STATUS_SPEED_1000))
return 0;
delay(200 * 1000);
wm_gmii_hv_writereg(sc->sc_dev, 1, HV_MUX_DATA_CTRL,
HV_MUX_DATA_CTRL_GEN_TO_MAC | HV_MUX_DATA_CTRL_FORCE_SPEED);
wm_gmii_hv_writereg(sc->sc_dev, 1, HV_MUX_DATA_CTRL,
HV_MUX_DATA_CTRL_GEN_TO_MAC);
return 0;
}
static int
wm_set_mdio_slow_mode_hv(struct wm_softc *sc)
{
int rv;
rv = sc->phy.acquire(sc);
if (rv != 0) {
device_printf(sc->sc_dev, "%s: failed to get semaphore\n",
__func__);
return rv;
}
rv = wm_set_mdio_slow_mode_hv_locked(sc);
sc->phy.release(sc);
return rv;
}
static int
wm_set_mdio_slow_mode_hv_locked(struct wm_softc *sc)
{
int rv;
uint16_t reg;
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 1, HV_KMRN_MODE_CTRL, ®);
if (rv != 0)
return rv;
return wm_gmii_hv_writereg_locked(sc->sc_dev, 1, HV_KMRN_MODE_CTRL,
reg | HV_KMRN_MDIO_SLOW);
}
static void
wm_configure_k1_ich8lan(struct wm_softc *sc, int k1_enable)
{
uint32_t ctrl, ctrl_ext, tmp;
uint16_t kmreg;
int rv;
KASSERT(CSR_READ(sc, WMREG_EXTCNFCTR) & EXTCNFCTR_MDIO_SW_OWNERSHIP);
rv = wm_kmrn_readreg_locked(sc, KUMCTRLSTA_OFFSET_K1_CONFIG, &kmreg);
if (rv != 0)
return;
if (k1_enable)
kmreg |= KUMCTRLSTA_K1_ENABLE;
else
kmreg &= ~KUMCTRLSTA_K1_ENABLE;
rv = wm_kmrn_writereg_locked(sc, KUMCTRLSTA_OFFSET_K1_CONFIG, kmreg);
if (rv != 0)
return;
delay(20);
ctrl = CSR_READ(sc, WMREG_CTRL);
ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
tmp = ctrl & ~(CTRL_SPEED_1000 | CTRL_SPEED_100);
tmp |= CTRL_FRCSPD;
CSR_WRITE(sc, WMREG_CTRL, tmp);
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext | CTRL_EXT_SPD_BYPS);
CSR_WRITE_FLUSH(sc);
delay(20);
CSR_WRITE(sc, WMREG_CTRL, ctrl);
CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
CSR_WRITE_FLUSH(sc);
delay(20);
return;
}
static void
wm_reset_init_script_82575(struct wm_softc *sc)
{
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x00, 0x0c);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x01, 0x78);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x1b, 0x23);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x23, 0x15);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_CCMCTL, 0x14, 0x00);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_CCMCTL, 0x10, 0x00);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x00, 0xec);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x61, 0xdf);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x34, 0x05);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x2f, 0x81);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x02, 0x47);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x14, 0x00);
wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x10, 0x00);
}
static void
wm_reset_mdicnfg_82580(struct wm_softc *sc)
{
uint32_t reg;
uint16_t nvmword;
int rv;
if (sc->sc_type != WM_T_82580)
return;
if ((sc->sc_flags & WM_F_SGMII) == 0)
return;
rv = wm_nvm_read(sc, NVM_OFF_LAN_FUNC_82580(sc->sc_funcid)
+ NVM_OFF_CFG3_PORTA, 1, &nvmword);
if (rv != 0) {
aprint_error_dev(sc->sc_dev, "%s: failed to read NVM\n",
__func__);
return;
}
reg = CSR_READ(sc, WMREG_MDICNFG);
if (nvmword & NVM_CFG3_PORTA_EXT_MDIO)
reg |= MDICNFG_DEST;
if (nvmword & NVM_CFG3_PORTA_COM_MDIO)
reg |= MDICNFG_COM_MDIO;
CSR_WRITE(sc, WMREG_MDICNFG, reg);
}
#define MII_INVALIDID(x) (((x) == 0x0000) || ((x) == 0xffff))
static bool
wm_phy_is_accessible_pchlan(struct wm_softc *sc)
{
uint32_t reg;
uint16_t id1, id2;
int i, rv;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT(CSR_READ(sc, WMREG_EXTCNFCTR) & EXTCNFCTR_MDIO_SW_OWNERSHIP);
id1 = id2 = 0xffff;
for (i = 0; i < 2; i++) {
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, MII_PHYIDR1,
&id1);
if ((rv != 0) || MII_INVALIDID(id1))
continue;
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, MII_PHYIDR2,
&id2);
if ((rv != 0) || MII_INVALIDID(id2))
continue;
break;
}
if ((rv == 0) && !MII_INVALIDID(id1) && !MII_INVALIDID(id2))
goto out;
rv = 0;
if (sc->sc_type < WM_T_PCH_LPT) {
wm_set_mdio_slow_mode_hv_locked(sc);
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2, MII_PHYIDR1,
&id1);
rv |= wm_gmii_hv_readreg_locked(sc->sc_dev, 2, MII_PHYIDR2,
&id2);
}
if ((rv != 0) || MII_INVALIDID(id1) || MII_INVALIDID(id2)) {
device_printf(sc->sc_dev, "XXX return with false\n");
return false;
}
out:
if (sc->sc_type >= WM_T_PCH_LPT) {
if ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID) == 0) {
uint16_t phyreg;
rv = wm_gmii_hv_readreg_locked(sc->sc_dev, 2,
CV_SMB_CTRL, &phyreg);
phyreg &= ~CV_SMB_CTRL_FORCE_SMBUS;
wm_gmii_hv_writereg_locked(sc->sc_dev, 2,
CV_SMB_CTRL, phyreg);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg &= ~CTRL_EXT_FORCE_SMBUS;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
}
}
return true;
}
static void
wm_toggle_lanphypc_pch_lpt(struct wm_softc *sc)
{
uint32_t reg;
int i;
reg = CSR_READ(sc, WMREG_FEXTNVM3);
reg &= ~FEXTNVM3_PHY_CFG_COUNTER_MASK;
reg |= FEXTNVM3_PHY_CFG_COUNTER_50MS;
CSR_WRITE(sc, WMREG_FEXTNVM3, reg);
reg = CSR_READ(sc, WMREG_CTRL);
reg |= CTRL_LANPHYPC_OVERRIDE;
reg &= ~CTRL_LANPHYPC_VALUE;
CSR_WRITE(sc, WMREG_CTRL, reg);
CSR_WRITE_FLUSH(sc);
delay(1000);
reg &= ~CTRL_LANPHYPC_OVERRIDE;
CSR_WRITE(sc, WMREG_CTRL, reg);
CSR_WRITE_FLUSH(sc);
if (sc->sc_type < WM_T_PCH_LPT)
delay(50 * 1000);
else {
i = 20;
do {
delay(5 * 1000);
} while (((CSR_READ(sc, WMREG_CTRL_EXT) & CTRL_EXT_LPCD) == 0)
&& i--);
delay(30 * 1000);
}
}
static int
wm_platform_pm_pch_lpt(struct wm_softc *sc, bool link)
{
uint32_t reg = __SHIFTIN(link, LTRV_NONSNOOP_REQ)
| __SHIFTIN(link, LTRV_SNOOP_REQ) | LTRV_SEND;
uint32_t rxa;
uint16_t scale = 0, lat_enc = 0;
int32_t obff_hwm = 0;
int64_t lat_ns, value;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
if (link) {
uint16_t max_snoop, max_nosnoop, max_ltr_enc;
uint32_t status;
uint16_t speed;
pcireg_t preg;
status = CSR_READ(sc, WMREG_STATUS);
switch (__SHIFTOUT(status, STATUS_SPEED)) {
case STATUS_SPEED_10:
speed = 10;
break;
case STATUS_SPEED_100:
speed = 100;
break;
case STATUS_SPEED_1000:
speed = 1000;
break;
default:
device_printf(sc->sc_dev, "Unknown speed "
"(status = %08x)\n", status);
return -1;
}
rxa = CSR_READ(sc, WMREG_PBA) & PBA_RXA_MASK;
lat_ns = ((int64_t)rxa * 1024 -
(2 * ((int64_t)sc->sc_ethercom.ec_if.if_mtu
+ ETHER_HDR_LEN))) * 8 * 1000;
if (lat_ns < 0)
lat_ns = 0;
else
lat_ns /= speed;
value = lat_ns;
while (value > LTRV_VALUE) {
scale ++;
value = howmany(value, __BIT(5));
}
if (scale > LTRV_SCALE_MAX) {
device_printf(sc->sc_dev,
"Invalid LTR latency scale %d\n", scale);
return -1;
}
lat_enc = (uint16_t)(__SHIFTIN(scale, LTRV_SCALE) | value);
preg = pci_conf_read(sc->sc_pc, sc->sc_pcitag,
WM_PCI_LTR_CAP_LPT);
max_snoop = preg & 0xffff;
max_nosnoop = preg >> 16;
max_ltr_enc = MAX(max_snoop, max_nosnoop);
if (lat_enc > max_ltr_enc) {
lat_enc = max_ltr_enc;
lat_ns = __SHIFTOUT(lat_enc, PCI_LTR_MAXSNOOPLAT_VAL)
* PCI_LTR_SCALETONS(
__SHIFTOUT(lat_enc,
PCI_LTR_MAXSNOOPLAT_SCALE));
}
if (lat_ns) {
lat_ns *= speed * 1000;
lat_ns /= 8;
lat_ns /= 1000000000;
obff_hwm = (int32_t)(rxa - lat_ns);
}
if ((obff_hwm < 0) || (obff_hwm > SVT_OFF_HWM)) {
device_printf(sc->sc_dev, "Invalid high water mark %d"
"(rxa = %d, lat_ns = %d)\n",
obff_hwm, (int32_t)rxa, (int32_t)lat_ns);
return -1;
}
}
reg |= lat_enc | __SHIFTIN(lat_enc, LTRV_NONSNOOP);
CSR_WRITE(sc, WMREG_LTRV, reg);
reg = CSR_READ(sc, WMREG_SVT) & ~SVT_OFF_HWM;
reg |= obff_hwm;
CSR_WRITE(sc, WMREG_SVT, reg);
reg = CSR_READ(sc, WMREG_SVCR);
reg |= SVCR_OFF_EN | SVCR_OFF_MASKINT;
CSR_WRITE(sc, WMREG_SVCR, reg);
return 0;
}
static int
wm_pll_workaround_i210(struct wm_softc *sc)
{
uint32_t mdicnfg, wuc;
uint32_t reg;
pcireg_t pcireg;
uint32_t pmreg;
uint16_t nvmword, tmp_nvmword;
uint16_t phyval;
bool wa_done = false;
int i, rv = 0;
if (pci_get_capability(sc->sc_pc, sc->sc_pcitag, PCI_CAP_PWRMGMT,
&pmreg, NULL) == 0)
return -1;
wuc = CSR_READ(sc, WMREG_WUC);
mdicnfg = CSR_READ(sc, WMREG_MDICNFG);
reg = mdicnfg & ~MDICNFG_DEST;
CSR_WRITE(sc, WMREG_MDICNFG, reg);
if (wm_nvm_read(sc, INVM_AUTOLOAD, 1, &nvmword) != 0) {
nvmword = INVM_DEFAULT_AL;
}
tmp_nvmword = nvmword | INVM_PLL_WO_VAL;
for (i = 0; i < WM_MAX_PLL_TRIES; i++) {
wm_gmii_gs40g_readreg(sc->sc_dev, 1,
GS40G_PHY_PLL_FREQ_PAGE | GS40G_PHY_PLL_FREQ_REG, &phyval);
if ((phyval & GS40G_PHY_PLL_UNCONF) != GS40G_PHY_PLL_UNCONF) {
rv = 0;
break;
} else
rv = -1;
wa_done = true;
reg = CSR_READ(sc, WMREG_CTRL);
CSR_WRITE(sc, WMREG_CTRL, reg | CTRL_PHY_RESET);
reg = CSR_READ(sc, WMREG_CTRL_EXT);
reg |= CTRL_EXT_PHYPDEN | CTRL_EXT_SDLPE;
CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
CSR_WRITE(sc, WMREG_WUC, 0);
reg = (INVM_AUTOLOAD << 4) | (tmp_nvmword << 16);
CSR_WRITE(sc, WMREG_EEARBC_I210, reg);
pcireg = pci_conf_read(sc->sc_pc, sc->sc_pcitag,
pmreg + PCI_PMCSR);
pcireg |= PCI_PMCSR_STATE_D3;
pci_conf_write(sc->sc_pc, sc->sc_pcitag,
pmreg + PCI_PMCSR, pcireg);
delay(1000);
pcireg &= ~PCI_PMCSR_STATE_D3;
pci_conf_write(sc->sc_pc, sc->sc_pcitag,
pmreg + PCI_PMCSR, pcireg);
reg = (INVM_AUTOLOAD << 4) | (nvmword << 16);
CSR_WRITE(sc, WMREG_EEARBC_I210, reg);
CSR_WRITE(sc, WMREG_WUC, wuc);
}
CSR_WRITE(sc, WMREG_MDICNFG, mdicnfg);
if (wa_done)
aprint_verbose_dev(sc->sc_dev, "I210 workaround done\n");
return rv;
}
static void
wm_legacy_irq_quirk_spt(struct wm_softc *sc)
{
uint32_t reg;
DPRINTF(sc, WM_DEBUG_INIT, ("%s: %s called\n",
device_xname(sc->sc_dev), __func__));
KASSERT((sc->sc_type == WM_T_PCH_SPT)
|| (sc->sc_type == WM_T_PCH_CNP) || (sc->sc_type == WM_T_PCH_TGP));
reg = CSR_READ(sc, WMREG_FEXTNVM7);
reg |= FEXTNVM7_SIDE_CLK_UNGATE;
CSR_WRITE(sc, WMREG_FEXTNVM7, reg);
reg = CSR_READ(sc, WMREG_FEXTNVM9);
reg |= FEXTNVM9_IOSFSB_CLKGATE_DIS | FEXTNVM9_IOSFSB_CLKREQ_DIS;
CSR_WRITE(sc, WMREG_FEXTNVM9, reg);
}
static int
wm_sysctl_tdh_handler(SYSCTLFN_ARGS)
{
struct sysctlnode node = *rnode;
struct wm_txqueue *txq = (struct wm_txqueue *)node.sysctl_data;
struct wm_queue *wmq = container_of(txq, struct wm_queue, wmq_txq);
struct wm_softc *sc = txq->txq_sc;
uint32_t reg;
reg = CSR_READ(sc, WMREG_TDH(wmq->wmq_id));
node.sysctl_data = ®
return sysctl_lookup(SYSCTLFN_CALL(&node));
}
static int
wm_sysctl_tdt_handler(SYSCTLFN_ARGS)
{
struct sysctlnode node = *rnode;
struct wm_txqueue *txq = (struct wm_txqueue *)node.sysctl_data;
struct wm_queue *wmq = container_of(txq, struct wm_queue, wmq_txq);
struct wm_softc *sc = txq->txq_sc;
uint32_t reg;
reg = CSR_READ(sc, WMREG_TDT(wmq->wmq_id));
node.sysctl_data = ®
return sysctl_lookup(SYSCTLFN_CALL(&node));
}
#ifdef WM_DEBUG
static int
wm_sysctl_debug(SYSCTLFN_ARGS)
{
struct sysctlnode node = *rnode;
struct wm_softc *sc = (struct wm_softc *)node.sysctl_data;
uint32_t dflags;
int error;
dflags = sc->sc_debug;
node.sysctl_data = &dflags;
error = sysctl_lookup(SYSCTLFN_CALL(&node));
if (error || newp == NULL)
return error;
sc->sc_debug = dflags;
device_printf(sc->sc_dev, "TARC0: %08x\n", CSR_READ(sc, WMREG_TARC0));
device_printf(sc->sc_dev, "TDT0: %08x\n", CSR_READ(sc, WMREG_TDT(0)));
return 0;
}
#endif