#include <sys/cdefs.h>
__FBSDID("$FreeBSD: head/sys/dev/netmap/netmap.c 257666 2013-11-05 01:06:22Z luigi $");
#include <sys/types.h>
#include <sys/errno.h>
#include <sys/malloc.h>
#include <sys/lock.h>
#include <sys/socket.h>
#include <sys/event.h>
#include <net/if.h>
#include <net/if_var.h>
#include <sys/bus.h>
#include <net/netmap/netmap.h>
#include <net/netmap/netmap_kern.h>
#include <net/netmap/netmap_mem2.h>
#define rtnl_lock() D("rtnl_lock called");
#define rtnl_unlock() D("rtnl_lock called");
#define MBUF_TXQ(m) ((m)->m_pkthdr.hash)
#define smp_mb()
#define netmap_get_mbuf(len) m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR)
#define SET_MBUF_DESTRUCTOR(m, fn) do { \
(m)->m_ext.ext_free = (void *)fn; \
\
} while (0)
#define GET_MBUF_REFCNT(m) ((m)->m_ext.ref_cnt ? *(m)->m_ext.ref_cnt : -1)
#ifdef RATE
#define IFRATE(x) x
struct rate_stats {
unsigned long txpkt;
unsigned long txsync;
unsigned long txirq;
unsigned long rxpkt;
unsigned long rxirq;
unsigned long rxsync;
};
struct rate_context {
unsigned refcount;
struct timer_list timer;
struct rate_stats new;
struct rate_stats old;
};
#define RATE_PRINTK(_NAME_) \
printk( #_NAME_ " = %lu Hz\n", (cur._NAME_ - ctx->old._NAME_)/RATE_PERIOD);
#define RATE_PERIOD 2
static void rate_callback(unsigned long arg)
{
struct rate_context * ctx = (struct rate_context *)arg;
struct rate_stats cur = ctx->new;
int r;
RATE_PRINTK(txpkt);
RATE_PRINTK(txsync);
RATE_PRINTK(txirq);
RATE_PRINTK(rxpkt);
RATE_PRINTK(rxsync);
RATE_PRINTK(rxirq);
printk("\n");
ctx->old = cur;
r = mod_timer(&ctx->timer, jiffies +
msecs_to_jiffies(RATE_PERIOD * 1000));
if (unlikely(r))
D("[v1000] Error: mod_timer()");
}
static struct rate_context rate_ctx;
#else
#define IFRATE(x)
#endif
#define GENERIC_BUF_SIZE netmap_buf_size
static int
netmap_generic_irq(struct ifnet *ifp, u_int q, u_int *work_done)
{
if (unlikely(!(ifp->if_capenable & IFCAP_NETMAP)))
return 0;
return netmap_common_irq(ifp, q, work_done);
}
int generic_netmap_register(struct netmap_adapter *na, int enable)
{
struct ifnet *ifp = na->ifp;
struct netmap_generic_adapter *gna = (struct netmap_generic_adapter *)na;
struct mbuf *m;
int error;
int i, r;
#ifdef REG_RESET
error = ifp->netdev_ops->ndo_stop(ifp);
if (error) {
return error;
}
#endif
if (enable) {
for (r=0; r<na->num_rx_rings; r++) {
mbq_safe_init(&na->rx_rings[r].rx_queue);
na->rx_rings[r].nr_ntc = 0;
}
netmap_mitigation_init(gna);
for (r=0; r<na->num_tx_rings; r++) {
na->tx_rings[r].nr_ntc = 0;
na->tx_rings[r].tx_pool = kmalloc(na->num_tx_desc * sizeof(struct mbuf *),
M_DEVBUF, M_NOWAIT | M_ZERO);
if (!na->tx_rings[r].tx_pool) {
D("tx_pool allocation failed");
error = ENOMEM;
goto free_tx_pool;
}
for (i=0; i<na->num_tx_desc; i++) {
m = netmap_get_mbuf(GENERIC_BUF_SIZE);
if (!m) {
D("tx_pool[%d] allocation failed", i);
error = ENOMEM;
goto free_mbufs;
}
na->tx_rings[r].tx_pool[i] = m;
}
}
rtnl_lock();
error = netmap_catch_rx(na, 1);
if (error) {
D("netdev_rx_handler_register() failed");
goto register_handler;
}
ifp->if_capenable |= IFCAP_NETMAP;
netmap_catch_packet_steering(gna, 1);
rtnl_unlock();
#ifdef RATE
if (rate_ctx.refcount == 0) {
D("setup_timer()");
memset(&rate_ctx, 0, sizeof(rate_ctx));
setup_timer(&rate_ctx.timer, &rate_callback, (unsigned long)&rate_ctx);
if (mod_timer(&rate_ctx.timer, jiffies + msecs_to_jiffies(1500))) {
D("Error: mod_timer()");
}
}
rate_ctx.refcount++;
#endif
} else {
rtnl_lock();
ifp->if_capenable &= ~IFCAP_NETMAP;
netmap_catch_packet_steering(gna, 0);
netmap_catch_rx(na, 0);
rtnl_unlock();
for (r=0; r<na->num_rx_rings; r++) {
mbq_safe_purge(&na->rx_rings[r].rx_queue);
mbq_safe_destroy(&na->rx_rings[r].rx_queue);
}
netmap_mitigation_cleanup(gna);
for (r=0; r<na->num_tx_rings; r++) {
for (i=0; i<na->num_tx_desc; i++) {
m_freem(na->tx_rings[r].tx_pool[i]);
}
kfree(na->tx_rings[r].tx_pool, M_DEVBUF);
}
#ifdef RATE
if (--rate_ctx.refcount == 0) {
D("del_timer()");
del_timer(&rate_ctx.timer);
}
#endif
}
#ifdef REG_RESET
error = ifp->netdev_ops->ndo_open(ifp);
if (error) {
goto alloc_tx_pool;
}
#endif
return 0;
register_handler:
rtnl_unlock();
free_tx_pool:
r--;
i = na->num_tx_desc;
free_mbufs:
i--;
for (; r>=0; r--) {
for (; i>=0; i--) {
m_freem(na->tx_rings[r].tx_pool[i]);
}
kfree(na->tx_rings[r].tx_pool, M_DEVBUF);
i = na->num_tx_desc - 1;
}
return error;
}
static void
generic_mbuf_destructor(struct mbuf *m)
{
if (netmap_verbose)
D("Tx irq (%p) queue %d", m, MBUF_TXQ(m));
netmap_generic_irq(MBUF_IFP(m), MBUF_TXQ(m), NULL);
#if 0
m->m_ext.ext_type = EXT_PACKET;
#endif
m->m_ext.ext_free = NULL;
#if 0
if (*(m->m_ext.ref_cnt) == 0)
*(m->m_ext.ref_cnt) = 1;
uma_zfree(zone_pack, m);
#endif
IFRATE(rate_ctx.new.txirq++);
}
static int
generic_netmap_tx_clean(struct netmap_kring *kring)
{
u_int num_slots = kring->nkr_num_slots;
u_int ntc = kring->nr_ntc;
u_int hwcur = kring->nr_hwcur;
u_int n = 0;
struct mbuf **tx_pool = kring->tx_pool;
while (ntc != hwcur) {
struct mbuf *m = tx_pool[ntc];
if (unlikely(m == NULL)) {
tx_pool[ntc] = m = netmap_get_mbuf(GENERIC_BUF_SIZE);
if (unlikely(m == NULL)) {
D("mbuf allocation failed, XXX error");
return -ENOMEM;
}
#if 0
} else if (GET_MBUF_REFCNT(m) != 1) {
break;
#endif
}
if (unlikely(++ntc == num_slots)) {
ntc = 0;
}
n++;
}
kring->nr_ntc = ntc;
kring->nr_hwavail += n;
ND("tx completed [%d] -> hwavail %d", n, kring->nr_hwavail);
return n;
}
static inline u_int
generic_tx_event_middle(struct netmap_kring *kring, u_int hwcur)
{
u_int n = kring->nkr_num_slots;
u_int ntc = kring->nr_ntc;
u_int e;
if (hwcur >= ntc) {
e = (hwcur + ntc) / 2;
} else {
e = (hwcur + n + ntc) / 2;
if (e >= n) {
e -= n;
}
}
if (unlikely(e >= n)) {
D("This cannot happen");
e = 0;
}
return e;
}
static void
generic_set_tx_event(struct netmap_kring *kring, u_int hwcur)
{
struct mbuf *m;
u_int e;
if (kring->nr_ntc == hwcur) {
return;
}
e = generic_tx_event_middle(kring, hwcur);
m = kring->tx_pool[e];
if (m == NULL) {
return;
}
ND("Event at %d mbuf %p refcnt %d", e, m, GET_MBUF_REFCNT(m));
kring->tx_pool[e] = NULL;
SET_MBUF_DESTRUCTOR(m, generic_mbuf_destructor);
m_freem(m);
smp_mb();
}
static int
generic_netmap_txsync(struct netmap_adapter *na, u_int ring_nr, int flags)
{
struct ifnet *ifp = na->ifp;
struct netmap_kring *kring = &na->tx_rings[ring_nr];
struct netmap_ring *ring = kring->ring;
u_int j, k, num_slots = kring->nkr_num_slots;
int new_slots, ntx;
IFRATE(rate_ctx.new.txsync++);
generic_netmap_tx_clean(kring);
k = ring->cur;
if (unlikely(k >= num_slots)) {
return netmap_ring_reinit(kring);
}
rmb();
j = kring->nr_hwcur;
new_slots = k - j - kring->nr_hwreserved;
if (new_slots < 0) {
new_slots += num_slots;
}
ntx = 0;
if (j != k) {
while (j != k) {
struct netmap_slot *slot = &ring->slot[j];
void *addr = NMB(slot);
u_int len = slot->len;
struct mbuf *m;
int tx_ret;
if (unlikely(addr == netmap_buffer_base || len > NETMAP_BUF_SIZE)) {
return netmap_ring_reinit(kring);
}
m = kring->tx_pool[j];
if (unlikely(!m)) {
RD(5, "This should never happen");
kring->tx_pool[j] = m = netmap_get_mbuf(GENERIC_BUF_SIZE);
if (unlikely(m == NULL)) {
D("mbuf allocation failed");
break;
}
}
tx_ret = generic_xmit_frame(ifp, m, addr, len, ring_nr);
if (unlikely(tx_ret)) {
RD(5, "start_xmit failed: err %d [%u,%u,%u,%u]",
tx_ret, kring->nr_ntc, j, k, kring->nr_hwavail);
generic_set_tx_event(kring, j);
if (generic_netmap_tx_clean(kring)) {
continue;
} else {
break;
}
}
slot->flags &= ~(NS_REPORT | NS_BUF_CHANGED);
if (unlikely(++j == num_slots))
j = 0;
ntx++;
}
kring->nr_hwcur = j;
kring->nr_hwavail -= new_slots;
kring->nr_hwreserved = k - j;
if (kring->nr_hwreserved < 0) {
kring->nr_hwreserved += num_slots;
}
IFRATE(rate_ctx.new.txpkt += ntx);
if (!kring->nr_hwavail) {
generic_set_tx_event(kring, j);
}
ND("tx #%d, hwavail = %d", n, kring->nr_hwavail);
}
ring->avail = kring->nr_hwavail;
ring->reserved = kring->nr_hwreserved;
return 0;
}
void generic_rx_handler(struct ifnet *ifp, struct mbuf *m,
const struct pktinfo *pi, int cpuid)
{
struct netmap_adapter *na = NA(ifp);
struct netmap_generic_adapter *gna = (struct netmap_generic_adapter *)na;
u_int work_done;
u_int rr = 0;
ND("called");
if (unlikely(mbq_len(&na->rx_rings[rr].rx_queue) > 1024)) {
m_freem(m);
} else {
mbq_safe_enqueue(&na->rx_rings[rr].rx_queue, m);
}
if (netmap_generic_mit < 32768) {
netmap_generic_irq(na->ifp, rr, &work_done);
IFRATE(rate_ctx.new.rxirq++);
} else {
if (likely(netmap_mitigation_active(gna))) {
gna->mit_pending = 1;
} else {
netmap_generic_irq(na->ifp, rr, &work_done);
IFRATE(rate_ctx.new.rxirq++);
netmap_mitigation_start(gna);
}
}
}
static int
generic_netmap_rxsync(struct netmap_adapter *na, u_int ring_nr, int flags)
{
struct netmap_kring *kring = &na->rx_rings[ring_nr];
struct netmap_ring *ring = kring->ring;
u_int j, n, lim = kring->nkr_num_slots - 1;
int force_update = (flags & NAF_FORCE_READ) || kring->nr_kflags & NKR_PENDINTR;
u_int k, resvd = ring->reserved;
if (ring->cur > lim)
return netmap_ring_reinit(kring);
if (netmap_no_pendintr || force_update) {
uint16_t slot_flags = kring->nkr_slot_flags;
struct mbuf *m;
n = 0;
j = kring->nr_ntc;
k = (kring->nr_hwcur) ? kring->nr_hwcur-1 : lim;
while (j != k) {
int len;
void *addr = NMB(&ring->slot[j]);
if (addr == netmap_buffer_base) {
return netmap_ring_reinit(kring);
}
m = mbq_safe_dequeue(&kring->rx_queue);
if (!m)
break;
len = MBUF_LEN(m);
m_copydata(m, 0, len, addr);
ring->slot[j].len = len;
ring->slot[j].flags = slot_flags;
m_freem(m);
if (unlikely(j++ == lim))
j = 0;
n++;
}
if (n) {
kring->nr_ntc = j;
kring->nr_hwavail += n;
IFRATE(rate_ctx.new.rxpkt += n);
}
kring->nr_kflags &= ~NKR_PENDINTR;
}
j = kring->nr_hwcur;
k = ring->cur;
if (resvd > 0) {
if (resvd + ring->avail >= lim + 1) {
D("XXX invalid reserve/avail %d %d", resvd, ring->avail);
ring->reserved = resvd = 0;
}
k = (k >= resvd) ? k - resvd : k + lim + 1 - resvd;
}
if (j != k) {
for (n = 0; j != k; n++) {
struct netmap_slot *slot = &ring->slot[j];
slot->flags &= ~NS_BUF_CHANGED;
if (unlikely(j++ == lim))
j = 0;
}
kring->nr_hwavail -= n;
kring->nr_hwcur = k;
}
ring->avail = kring->nr_hwavail - resvd;
IFRATE(rate_ctx.new.rxsync++);
return 0;
}
static void
generic_netmap_dtor(struct netmap_adapter *na)
{
struct ifnet *ifp = na->ifp;
struct netmap_generic_adapter *gna = (struct netmap_generic_adapter*)na;
struct netmap_adapter *prev_na = gna->prev;
if (prev_na != NULL) {
D("Released generic NA %p", gna);
#if 0
if_rele(na->ifp);
#endif
netmap_adapter_put(prev_na);
}
if (ifp != NULL) {
WNA(ifp) = prev_na;
D("Restored native NA %p", prev_na);
na->ifp = NULL;
}
}
int
generic_netmap_attach(struct ifnet *ifp)
{
struct netmap_adapter *na;
struct netmap_generic_adapter *gna;
int retval;
u_int num_tx_desc, num_rx_desc;
num_tx_desc = num_rx_desc = netmap_generic_ringsize;
generic_find_num_desc(ifp, &num_tx_desc, &num_rx_desc);
ND("Netmap ring size: TX = %d, RX = %d", num_tx_desc, num_rx_desc);
gna = kmalloc(sizeof(*gna), M_DEVBUF, M_NOWAIT | M_ZERO);
if (gna == NULL) {
D("no memory on attach, give up");
return ENOMEM;
}
na = (struct netmap_adapter *)gna;
na->ifp = ifp;
na->num_tx_desc = num_tx_desc;
na->num_rx_desc = num_rx_desc;
na->nm_register = &generic_netmap_register;
na->nm_txsync = &generic_netmap_txsync;
na->nm_rxsync = &generic_netmap_rxsync;
na->nm_dtor = &generic_netmap_dtor;
na->na_flags = NAF_SKIP_INTR;
ND("[GNA] num_tx_queues(%d), real_num_tx_queues(%d), len(%lu)",
ifp->num_tx_queues, ifp->real_num_tx_queues,
ifp->tx_queue_len);
ND("[GNA] num_rx_queues(%d), real_num_rx_queues(%d)",
ifp->num_rx_queues, ifp->real_num_rx_queues);
generic_find_num_queues(ifp, &na->num_tx_rings, &na->num_rx_rings);
retval = netmap_attach_common(na);
if (retval) {
kfree(gna, M_DEVBUF);
}
return retval;
}