#include <sys/cdefs.h>
__KERNEL_RCSID(0, "$NetBSD: cxgb_l2t.c,v 1.5 2018/12/22 14:28:56 maxv Exp $");
#include <sys/param.h>
#include <sys/systm.h>
#include <sys/kernel.h>
#include <sys/lock.h>
#include <sys/mutex.h>
#include <sys/socket.h>
#include <sys/socketvar.h>
#include <net/if.h>
#include <netinet/in.h>
#include <netinet/in_var.h>
#include <netinet/if_inarp.h>
#include <net/if_dl.h>
#include <net/route.h>
#include <netinet/in.h>
#ifdef CONFIG_DEFINED
#include <cxgb_include.h>
#else
#include "cxgb_include.h"
#endif
#define VLAN_NONE 0xfff
#define SDL(s) ((struct sockaddr_dl *)s)
#define RT_ENADDR(rt) ((u_char *)LLADDR(SDL((rt))))
#define rt_expire rt_rmx.rmx_expire
static inline unsigned int
vlan_prio(const struct l2t_entry *e)
{
return e->vlan >> 13;
}
static inline unsigned int
arp_hash(u32 key, int ifindex, const struct l2t_data *d)
{
return jhash_2words(key, ifindex, 0) & (d->nentries - 1);
}
static inline void
neigh_replace(struct l2t_entry *e, struct rtentry *rt)
{
RT_LOCK(rt);
RT_ADDREF(rt);
RT_UNLOCK(rt);
if (e->neigh) {
RT_LOCK(e->neigh);
RT_REMREF(e->neigh);
RT_UNLOCK(e->neigh);
}
e->neigh = rt;
}
static int
setup_l2e_send_pending(struct toedev *dev, struct mbuf *m,
struct l2t_entry *e)
{
struct cpl_l2t_write_req *req;
if (!m) {
if ((m = m_gethdr(M_NOWAIT, MT_DATA)) == NULL)
return (ENOMEM);
}
req = mtod(m, struct cpl_l2t_write_req *);
req->wr.wr_hi = htonl(V_WR_OP(FW_WROPCODE_FORWARD));
OPCODE_TID(req) = htonl(MK_OPCODE_TID(CPL_L2T_WRITE_REQ, e->idx));
req->params = htonl(V_L2T_W_IDX(e->idx) | V_L2T_W_IFF(e->smt_idx) |
V_L2T_W_VLAN(e->vlan & EVL_VLID_MASK) |
V_L2T_W_PRIO(vlan_prio(e)));
memcpy(e->dmac, RT_ENADDR(e->neigh), sizeof(e->dmac));
memcpy(req->dst_mac, e->dmac, sizeof(req->dst_mac));
m_set_priority(m, CPL_PRIORITY_CONTROL);
while (e->arpq_head) {
m = e->arpq_head;
e->arpq_head = m->m_next;
m->m_next = NULL;
}
e->arpq_tail = NULL;
e->state = L2T_STATE_VALID;
return 0;
}
static inline void
arpq_enqueue(struct l2t_entry *e, struct mbuf *m)
{
m->m_next = NULL;
if (e->arpq_head)
e->arpq_tail->m_next = m;
else
e->arpq_head = m;
e->arpq_tail = m;
}
int
t3_l2t_send_slow(struct toedev *dev, struct mbuf *m,
struct l2t_entry *e)
{
struct rtentry *rt;
struct mbuf *m0;
if ((m0 = m_gethdr(M_NOWAIT, MT_DATA)) == NULL)
return (ENOMEM);
rt = e->neigh;
again:
switch (e->state) {
case L2T_STATE_STALE:
arpresolve(rt->rt_ifp, rt, m0, rt->rt_gateway, RT_ENADDR(rt));
mtx_lock(&e->lock);
if (e->state == L2T_STATE_STALE)
e->state = L2T_STATE_VALID;
mtx_unlock(&e->lock);
case L2T_STATE_VALID:
case L2T_STATE_RESOLVING:
mtx_lock(&e->lock);
if (e->state != L2T_STATE_RESOLVING) {
mtx_unlock(&e->lock);
goto again;
}
arpq_enqueue(e, m);
mtx_unlock(&e->lock);
if ((m0 = m_gethdr(M_NOWAIT, MT_DATA)) == NULL)
return (ENOMEM);
if (arpresolve(rt->rt_ifp, rt, m0, rt->rt_gateway, RT_ENADDR(rt)) == 0) {
mtx_lock(&e->lock);
if (e->arpq_head)
setup_l2e_send_pending(dev, m, e);
else
m_freem(m);
mtx_unlock(&e->lock);
}
}
return 0;
}
void
t3_l2t_send_event(struct toedev *dev, struct l2t_entry *e)
{
struct rtentry *rt;
struct mbuf *m0;
if ((m0 = m_gethdr(M_NOWAIT, MT_DATA)) == NULL)
return;
rt = e->neigh;
again:
switch (e->state) {
case L2T_STATE_STALE:
arpresolve(rt->rt_ifp, rt, m0, rt->rt_gateway, RT_ENADDR(rt));
mtx_lock(&e->lock);
if (e->state == L2T_STATE_STALE) {
e->state = L2T_STATE_VALID;
}
mtx_unlock(&e->lock);
return;
case L2T_STATE_VALID:
return;
case L2T_STATE_RESOLVING:
mtx_lock(&e->lock);
if (e->state != L2T_STATE_RESOLVING) {
mtx_unlock(&e->lock);
goto again;
}
mtx_unlock(&e->lock);
if ((m0 = m_gethdr(M_NOWAIT, MT_DATA)) == NULL)
return;
arpresolve(rt->rt_ifp, rt, m0, rt->rt_gateway, RT_ENADDR(rt));
}
return;
}
static struct l2t_entry *
alloc_l2e(struct l2t_data *d)
{
struct l2t_entry *end, *e, **p;
if (!atomic_load_acq_int(&d->nfree))
return NULL;
for (e = d->rover, end = &d->l2tab[d->nentries]; e != end; ++e)
if (atomic_load_acq_int(&e->refcnt) == 0)
goto found;
for (e = &d->l2tab[1]; atomic_load_acq_int(&e->refcnt); ++e) ;
found:
d->rover = e + 1;
atomic_add_int(&d->nfree, -1);
if (e->state != L2T_STATE_UNUSED) {
int hash = arp_hash(e->addr, e->ifindex, d);
for (p = &d->l2tab[hash].first; *p; p = &(*p)->next)
if (*p == e) {
*p = e->next;
break;
}
e->state = L2T_STATE_UNUSED;
}
return e;
}
void
t3_l2e_free(struct l2t_data *d, struct l2t_entry *e)
{
mtx_lock(&e->lock);
if (atomic_load_acq_int(&e->refcnt) == 0) {
if (e->neigh) {
RT_LOCK(e->neigh);
RT_REMREF(e->neigh);
RT_UNLOCK(e->neigh);
e->neigh = NULL;
}
}
mtx_unlock(&e->lock);
atomic_add_int(&d->nfree, 1);
}
static inline void
reuse_entry(struct l2t_entry *e, struct rtentry *neigh)
{
struct llinfo_arp *la;
la = (struct llinfo_arp *)neigh->rt_llinfo;
mtx_lock(&e->lock);
if (neigh != e->neigh)
neigh_replace(e, neigh);
if (memcmp(e->dmac, RT_ENADDR(neigh), sizeof(e->dmac)) ||
(neigh->rt_expire > time_uptime))
e->state = L2T_STATE_RESOLVING;
else if (la->la_hold == NULL)
e->state = L2T_STATE_VALID;
else
e->state = L2T_STATE_STALE;
mtx_unlock(&e->lock);
}
struct l2t_entry *
t3_l2t_get(struct toedev *dev, struct rtentry *neigh,
unsigned int smt_idx)
{
struct l2t_entry *e;
struct l2t_data *d = L2DATA(dev);
u32 addr = ((struct sockaddr_in *)rt_getkey(neigh))->sin_addr.s_addr;
int ifidx = neigh->rt_ifp->if_index;
int hash = arp_hash(addr, ifidx, d);
rw_wlock(&d->lock);
for (e = d->l2tab[hash].first; e; e = e->next)
if (e->addr == addr && e->ifindex == ifidx &&
e->smt_idx == smt_idx) {
l2t_hold(d, e);
if (atomic_load_acq_int(&e->refcnt) == 1)
reuse_entry(e, neigh);
goto done;
}
e = alloc_l2e(d);
if (e) {
mtx_lock(&e->lock);
e->next = d->l2tab[hash].first;
d->l2tab[hash].first = e;
e->state = L2T_STATE_RESOLVING;
e->addr = addr;
e->ifindex = ifidx;
e->smt_idx = smt_idx;
atomic_store_rel_int(&e->refcnt, 1);
neigh_replace(e, neigh);
#ifdef notyet
if (neigh->rt_ifp->if_vlantrunk)
e->vlan = VLAN_DEV_INFO(neigh->dev)->vlan_id;
else
#endif
e->vlan = VLAN_NONE;
mtx_unlock(&e->lock);
}
done:
rw_wunlock(&d->lock);
return e;
}
static void
handle_failed_resolution(struct toedev *dev, struct mbuf *arpq)
{
while (arpq) {
struct mbuf *m = arpq;
#ifdef notyet
struct l2t_mbuf_cb *cb = L2T_MBUF_CB(m);
#endif
arpq = m->m_next;
m->m_next = NULL;
#ifdef notyet
if (cb->arp_failure_handler)
cb->arp_failure_handler(dev, m);
else
#endif
}
}
#if defined(NETEVENT) || !defined(CONFIG_CHELSIO_T3_MODULE)
void
t3_l2t_update(struct toedev *dev, struct rtentry *neigh)
{
struct l2t_entry *e;
struct mbuf *arpq = NULL;
struct l2t_data *d = L2DATA(dev);
u32 addr = ((struct sockaddr_in *)rt_getkey(neigh))->sin_addr.s_addr;
int ifidx = neigh->rt_ifp->if_index;
int hash = arp_hash(addr, ifidx, d);
struct llinfo_arp *la;
rw_rlock(&d->lock);
for (e = d->l2tab[hash].first; e; e = e->next)
if (e->addr == addr && e->ifindex == ifidx) {
mtx_lock(&e->lock);
goto found;
}
rw_runlock(&d->lock);
return;
found:
rw_runlock(&d->lock);
if (atomic_load_acq_int(&e->refcnt)) {
if (neigh != e->neigh)
neigh_replace(e, neigh);
la = (struct llinfo_arp *)neigh->rt_llinfo;
if (e->state == L2T_STATE_RESOLVING) {
if (la->la_asked >= 5 ) {
arpq = e->arpq_head;
e->arpq_head = e->arpq_tail = NULL;
} else if (la->la_hold == NULL)
setup_l2e_send_pending(dev, NULL, e);
} else {
e->state = (la->la_hold == NULL) ?
L2T_STATE_VALID : L2T_STATE_STALE;
if (memcmp(e->dmac, RT_ENADDR(neigh), 6))
setup_l2e_send_pending(dev, NULL, e);
}
}
mtx_unlock(&e->lock);
if (arpq)
handle_failed_resolution(dev, arpq);
}
#else
void
t3_l2t_update(struct toedev *dev, struct rtentry *neigh)
{
struct l2t_entry *e;
struct l2t_data *d = L2DATA(dev);
u32 addr = *(u32 *) rt_key(neigh);
int ifidx = neigh->dev->ifindex;
int hash = arp_hash(addr, ifidx, d);
rw_rlock(&d->lock);
for (e = d->l2tab[hash].first; e; e = e->next)
if (e->addr == addr && e->ifindex == ifidx) {
mtx_lock(&e->lock);
if (atomic_load_acq_int(&e->refcnt)) {
if (neigh != e->neigh)
neigh_replace(e, neigh);
e->tdev = dev;
mod_timer(&e->update_timer, jiffies + 1);
}
mtx_unlock(&e->lock);
break;
}
rw_runlock(&d->lock);
}
static void
update_timer_cb(unsigned long data)
{
struct mbuf *arpq = NULL;
struct l2t_entry *e = (struct l2t_entry *)data;
struct rtentry *neigh = e->neigh;
struct toedev *dev = e->tdev;
barrier();
if (!atomic_load_acq_int(&e->refcnt))
return;
rw_rlock(&neigh->lock);
mtx_lock(&e->lock);
if (atomic_load_acq_int(&e->refcnt)) {
if (e->state == L2T_STATE_RESOLVING) {
if (neigh->nud_state & NUD_FAILED) {
arpq = e->arpq_head;
e->arpq_head = e->arpq_tail = NULL;
} else if (neigh_is_connected(neigh) && e->arpq_head)
setup_l2e_send_pending(dev, NULL, e);
} else {
e->state = neigh_is_connected(neigh) ?
L2T_STATE_VALID : L2T_STATE_STALE;
if (memcmp(e->dmac, RT_ENADDR(neigh), sizeof(e->dmac)))
setup_l2e_send_pending(dev, NULL, e);
}
}
mtx_unlock(&e->lock);
rw_runlock(&neigh->lock);
if (arpq)
handle_failed_resolution(dev, arpq);
}
#endif
struct l2t_data *
t3_init_l2t(unsigned int l2t_capacity)
{
struct l2t_data *d;
int i, size = sizeof(*d) + l2t_capacity * sizeof(struct l2t_entry);
d = cxgb_alloc_mem(size);
if (!d)
return NULL;
d->nentries = l2t_capacity;
d->rover = &d->l2tab[1];
atomic_store_rel_int(&d->nfree, l2t_capacity - 1);
rw_init(&d->lock, "L2T");
for (i = 0; i < l2t_capacity; ++i) {
d->l2tab[i].idx = i;
d->l2tab[i].state = L2T_STATE_UNUSED;
mtx_init(&d->l2tab[i].lock, "L2TAB", NULL, MTX_DEF);
atomic_store_rel_int(&d->l2tab[i].refcnt, 0);
#ifndef NETEVENT
#ifdef CONFIG_CHELSIO_T3_MODULE
setup_timer(&d->l2tab[i].update_timer, update_timer_cb,
(unsigned long)&d->l2tab[i]);
#endif
#endif
}
return d;
}
void
t3_free_l2t(struct l2t_data *d)
{
#ifndef NETEVENT
#ifdef CONFIG_CHELSIO_T3_MODULE
int i;
for (i = 0; i < d->nentries; ++i)
del_timer_sync(&d->l2tab[i].update_timer);
#endif
#endif
cxgb_free_mem(d);
}
#ifdef CONFIG_PROC_FS
#include <linux/module.h>
#include <linux/proc_fs.h>
#include <linux/seq_file.h>
static inline void *
l2t_get_idx(struct seq_file *seq, loff_t pos)
{
struct l2t_data *d = seq->private;
return pos >= d->nentries ? NULL : &d->l2tab[pos];
}
static void *
l2t_seq_start(struct seq_file *seq, loff_t *pos)
{
return *pos ? l2t_get_idx(seq, *pos) : SEQ_START_TOKEN;
}
static void *
l2t_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
v = l2t_get_idx(seq, *pos + 1);
if (v)
++*pos;
return v;
}
static void
l2t_seq_stop(struct seq_file *seq, void *v)
{
}
static char
l2e_state(const struct l2t_entry *e)
{
switch (e->state) {
case L2T_STATE_VALID: return 'V';
case L2T_STATE_STALE: return 'S';
case L2T_STATE_RESOLVING:
return e->arpq_head ? 'A' : 'R';
default:
return 'U';
}
}
static int
l2t_seq_show(struct seq_file *seq, void *v)
{
if (v == SEQ_START_TOKEN)
seq_puts(seq, "Index IP address Ethernet address VLAN "
"Prio State Users SMTIDX Port\n");
else {
char ip[20];
struct l2t_entry *e = v;
mtx_lock(&e->lock);
snprintf(ip, sizeof(ip), "%u.%u.%u.%u", NIPQUAD(e->addr));
seq_printf(seq, "%-5u %-15s %02x:%02x:%02x:%02x:%02x:%02x %4d"
" %3u %c %7u %4u %s\n",
e->idx, ip, e->dmac[0], e->dmac[1], e->dmac[2],
e->dmac[3], e->dmac[4], e->dmac[5],
e->vlan & EVL_VLID_MASK, vlan_prio(e),
l2e_state(e), atomic_load_acq_int(&e->refcnt), e->smt_idx,
e->neigh ? e->neigh->dev->name : "");
mtx_unlock(&e->lock);
}
return 0;
}
#endif