irqchip/zevio: Use irq_data_get_chip_type() helper
[linux/fpc-iii.git] / drivers / staging / octeon / ethernet-tx.c
blobc053c4a47a7eb4b87d2bb6f2d8d541f02f90c274
1 /*
2 * This file is based on code from OCTEON SDK by Cavium Networks.
4 * Copyright (c) 2003-2010 Cavium Networks
6 * This file is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License, Version 2, as
8 * published by the Free Software Foundation.
9 */
11 #include <linux/module.h>
12 #include <linux/kernel.h>
13 #include <linux/netdevice.h>
14 #include <linux/etherdevice.h>
15 #include <linux/ip.h>
16 #include <linux/ratelimit.h>
17 #include <linux/string.h>
18 #include <linux/interrupt.h>
19 #include <net/dst.h>
20 #ifdef CONFIG_XFRM
21 #include <linux/xfrm.h>
22 #include <net/xfrm.h>
23 #endif /* CONFIG_XFRM */
25 #include <linux/atomic.h>
27 #include <asm/octeon/octeon.h>
29 #include "ethernet-defines.h"
30 #include "octeon-ethernet.h"
31 #include "ethernet-tx.h"
32 #include "ethernet-util.h"
34 #include <asm/octeon/cvmx-wqe.h>
35 #include <asm/octeon/cvmx-fau.h>
36 #include <asm/octeon/cvmx-pip.h>
37 #include <asm/octeon/cvmx-pko.h>
38 #include <asm/octeon/cvmx-helper.h>
40 #include <asm/octeon/cvmx-gmxx-defs.h>
42 #define CVM_OCT_SKB_CB(skb) ((u64 *)((skb)->cb))
45 * You can define GET_SKBUFF_QOS() to override how the skbuff output
46 * function determines which output queue is used. The default
47 * implementation always uses the base queue for the port. If, for
48 * example, you wanted to use the skb->priority field, define
49 * GET_SKBUFF_QOS as: #define GET_SKBUFF_QOS(skb) ((skb)->priority)
51 #ifndef GET_SKBUFF_QOS
52 #define GET_SKBUFF_QOS(skb) 0
53 #endif
55 static void cvm_oct_tx_do_cleanup(unsigned long arg);
56 static DECLARE_TASKLET(cvm_oct_tx_cleanup_tasklet, cvm_oct_tx_do_cleanup, 0);
58 /* Maximum number of SKBs to try to free per xmit packet. */
59 #define MAX_SKB_TO_FREE (MAX_OUT_QUEUE_DEPTH * 2)
61 static inline int32_t cvm_oct_adjust_skb_to_free(int32_t skb_to_free, int fau)
63 int32_t undo;
65 undo = skb_to_free > 0 ? MAX_SKB_TO_FREE : skb_to_free +
66 MAX_SKB_TO_FREE;
67 if (undo > 0)
68 cvmx_fau_atomic_add32(fau, -undo);
69 skb_to_free = -skb_to_free > MAX_SKB_TO_FREE ? MAX_SKB_TO_FREE :
70 -skb_to_free;
71 return skb_to_free;
74 static void cvm_oct_kick_tx_poll_watchdog(void)
76 union cvmx_ciu_timx ciu_timx;
78 ciu_timx.u64 = 0;
79 ciu_timx.s.one_shot = 1;
80 ciu_timx.s.len = cvm_oct_tx_poll_interval;
81 cvmx_write_csr(CVMX_CIU_TIMX(1), ciu_timx.u64);
84 static void cvm_oct_free_tx_skbs(struct net_device *dev)
86 int32_t skb_to_free;
87 int qos, queues_per_port;
88 int total_freed = 0;
89 int total_remaining = 0;
90 unsigned long flags;
91 struct octeon_ethernet *priv = netdev_priv(dev);
93 queues_per_port = cvmx_pko_get_num_queues(priv->port);
94 /* Drain any pending packets in the free list */
95 for (qos = 0; qos < queues_per_port; qos++) {
96 if (skb_queue_len(&priv->tx_free_list[qos]) == 0)
97 continue;
98 skb_to_free = cvmx_fau_fetch_and_add32(priv->fau+qos*4,
99 MAX_SKB_TO_FREE);
100 skb_to_free = cvm_oct_adjust_skb_to_free(skb_to_free,
101 priv->fau+qos*4);
104 total_freed += skb_to_free;
105 if (skb_to_free > 0) {
106 struct sk_buff *to_free_list = NULL;
108 spin_lock_irqsave(&priv->tx_free_list[qos].lock, flags);
109 while (skb_to_free > 0) {
110 struct sk_buff *t;
112 t = __skb_dequeue(&priv->tx_free_list[qos]);
113 t->next = to_free_list;
114 to_free_list = t;
115 skb_to_free--;
117 spin_unlock_irqrestore(&priv->tx_free_list[qos].lock,
118 flags);
119 /* Do the actual freeing outside of the lock. */
120 while (to_free_list) {
121 struct sk_buff *t = to_free_list;
123 to_free_list = to_free_list->next;
124 dev_kfree_skb_any(t);
127 total_remaining += skb_queue_len(&priv->tx_free_list[qos]);
129 if (total_freed >= 0 && netif_queue_stopped(dev))
130 netif_wake_queue(dev);
131 if (total_remaining)
132 cvm_oct_kick_tx_poll_watchdog();
136 * cvm_oct_xmit - transmit a packet
137 * @skb: Packet to send
138 * @dev: Device info structure
140 * Returns Always returns NETDEV_TX_OK
142 int cvm_oct_xmit(struct sk_buff *skb, struct net_device *dev)
144 cvmx_pko_command_word0_t pko_command;
145 union cvmx_buf_ptr hw_buffer;
146 u64 old_scratch;
147 u64 old_scratch2;
148 int qos;
149 int i;
150 enum {QUEUE_CORE, QUEUE_HW, QUEUE_DROP} queue_type;
151 struct octeon_ethernet *priv = netdev_priv(dev);
152 struct sk_buff *to_free_list;
153 int32_t skb_to_free;
154 int32_t buffers_to_free;
155 u32 total_to_clean;
156 unsigned long flags;
157 #if REUSE_SKBUFFS_WITHOUT_FREE
158 unsigned char *fpa_head;
159 #endif
162 * Prefetch the private data structure. It is larger than the
163 * one cache line.
165 prefetch(priv);
168 * The check on CVMX_PKO_QUEUES_PER_PORT_* is designed to
169 * completely remove "qos" in the event neither interface
170 * supports multiple queues per port.
172 if ((CVMX_PKO_QUEUES_PER_PORT_INTERFACE0 > 1) ||
173 (CVMX_PKO_QUEUES_PER_PORT_INTERFACE1 > 1)) {
174 qos = GET_SKBUFF_QOS(skb);
175 if (qos <= 0)
176 qos = 0;
177 else if (qos >= cvmx_pko_get_num_queues(priv->port))
178 qos = 0;
179 } else
180 qos = 0;
182 if (USE_ASYNC_IOBDMA) {
183 /* Save scratch in case userspace is using it */
184 CVMX_SYNCIOBDMA;
185 old_scratch = cvmx_scratch_read64(CVMX_SCR_SCRATCH);
186 old_scratch2 = cvmx_scratch_read64(CVMX_SCR_SCRATCH + 8);
189 * Fetch and increment the number of packets to be
190 * freed.
192 cvmx_fau_async_fetch_and_add32(CVMX_SCR_SCRATCH + 8,
193 FAU_NUM_PACKET_BUFFERS_TO_FREE,
195 cvmx_fau_async_fetch_and_add32(CVMX_SCR_SCRATCH,
196 priv->fau + qos * 4,
197 MAX_SKB_TO_FREE);
201 * We have space for 6 segment pointers, If there will be more
202 * than that, we must linearize.
204 if (unlikely(skb_shinfo(skb)->nr_frags > 5)) {
205 if (unlikely(__skb_linearize(skb))) {
206 queue_type = QUEUE_DROP;
207 if (USE_ASYNC_IOBDMA) {
209 * Get the number of skbuffs in use
210 * by the hardware
212 CVMX_SYNCIOBDMA;
213 skb_to_free =
214 cvmx_scratch_read64(CVMX_SCR_SCRATCH);
215 } else {
217 * Get the number of skbuffs in use
218 * by the hardware
220 skb_to_free = cvmx_fau_fetch_and_add32(
221 priv->fau + qos * 4, MAX_SKB_TO_FREE);
223 skb_to_free = cvm_oct_adjust_skb_to_free(skb_to_free,
224 priv->fau + qos * 4);
225 spin_lock_irqsave(&priv->tx_free_list[qos].lock, flags);
226 goto skip_xmit;
231 * The CN3XXX series of parts has an errata (GMX-401) which
232 * causes the GMX block to hang if a collision occurs towards
233 * the end of a <68 byte packet. As a workaround for this, we
234 * pad packets to be 68 bytes whenever we are in half duplex
235 * mode. We don't handle the case of having a small packet but
236 * no room to add the padding. The kernel should always give
237 * us at least a cache line
239 if ((skb->len < 64) && OCTEON_IS_MODEL(OCTEON_CN3XXX)) {
240 union cvmx_gmxx_prtx_cfg gmx_prt_cfg;
241 int interface = INTERFACE(priv->port);
242 int index = INDEX(priv->port);
244 if (interface < 2) {
245 /* We only need to pad packet in half duplex mode */
246 gmx_prt_cfg.u64 =
247 cvmx_read_csr(CVMX_GMXX_PRTX_CFG(index, interface));
248 if (gmx_prt_cfg.s.duplex == 0) {
249 int add_bytes = 64 - skb->len;
251 if ((skb_tail_pointer(skb) + add_bytes) <=
252 skb_end_pointer(skb))
253 memset(__skb_put(skb, add_bytes), 0,
254 add_bytes);
259 /* Build the PKO command */
260 pko_command.u64 = 0;
261 #ifdef __LITTLE_ENDIAN
262 pko_command.s.le = 1;
263 #endif
264 pko_command.s.n2 = 1; /* Don't pollute L2 with the outgoing packet */
265 pko_command.s.segs = 1;
266 pko_command.s.total_bytes = skb->len;
267 pko_command.s.size0 = CVMX_FAU_OP_SIZE_32;
268 pko_command.s.subone0 = 1;
270 pko_command.s.dontfree = 1;
272 /* Build the PKO buffer pointer */
273 hw_buffer.u64 = 0;
274 if (skb_shinfo(skb)->nr_frags == 0) {
275 hw_buffer.s.addr = XKPHYS_TO_PHYS((u64)skb->data);
276 hw_buffer.s.pool = 0;
277 hw_buffer.s.size = skb->len;
278 } else {
279 hw_buffer.s.addr = XKPHYS_TO_PHYS((u64)skb->data);
280 hw_buffer.s.pool = 0;
281 hw_buffer.s.size = skb_headlen(skb);
282 CVM_OCT_SKB_CB(skb)[0] = hw_buffer.u64;
283 for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
284 struct skb_frag_struct *fs = skb_shinfo(skb)->frags + i;
286 hw_buffer.s.addr = XKPHYS_TO_PHYS(
287 (u64)(page_address(fs->page.p) +
288 fs->page_offset));
289 hw_buffer.s.size = fs->size;
290 CVM_OCT_SKB_CB(skb)[i + 1] = hw_buffer.u64;
292 hw_buffer.s.addr = XKPHYS_TO_PHYS((u64)CVM_OCT_SKB_CB(skb));
293 hw_buffer.s.size = skb_shinfo(skb)->nr_frags + 1;
294 pko_command.s.segs = skb_shinfo(skb)->nr_frags + 1;
295 pko_command.s.gather = 1;
296 goto dont_put_skbuff_in_hw;
300 * See if we can put this skb in the FPA pool. Any strange
301 * behavior from the Linux networking stack will most likely
302 * be caused by a bug in the following code. If some field is
303 * in use by the network stack and gets carried over when a
304 * buffer is reused, bad things may happen. If in doubt and
305 * you dont need the absolute best performance, disable the
306 * define REUSE_SKBUFFS_WITHOUT_FREE. The reuse of buffers has
307 * shown a 25% increase in performance under some loads.
309 #if REUSE_SKBUFFS_WITHOUT_FREE
310 fpa_head = skb->head + 256 - ((unsigned long)skb->head & 0x7f);
311 if (unlikely(skb->data < fpa_head)) {
313 * printk("TX buffer beginning can't meet FPA
314 * alignment constraints\n");
316 goto dont_put_skbuff_in_hw;
318 if (unlikely
319 ((skb_end_pointer(skb) - fpa_head) < CVMX_FPA_PACKET_POOL_SIZE)) {
321 printk("TX buffer isn't large enough for the FPA\n");
323 goto dont_put_skbuff_in_hw;
325 if (unlikely(skb_shared(skb))) {
327 printk("TX buffer sharing data with someone else\n");
329 goto dont_put_skbuff_in_hw;
331 if (unlikely(skb_cloned(skb))) {
333 printk("TX buffer has been cloned\n");
335 goto dont_put_skbuff_in_hw;
337 if (unlikely(skb_header_cloned(skb))) {
339 printk("TX buffer header has been cloned\n");
341 goto dont_put_skbuff_in_hw;
343 if (unlikely(skb->destructor)) {
345 printk("TX buffer has a destructor\n");
347 goto dont_put_skbuff_in_hw;
349 if (unlikely(skb_shinfo(skb)->nr_frags)) {
351 printk("TX buffer has fragments\n");
353 goto dont_put_skbuff_in_hw;
355 if (unlikely
356 (skb->truesize !=
357 sizeof(*skb) + skb_end_offset(skb))) {
359 printk("TX buffer truesize has been changed\n");
361 goto dont_put_skbuff_in_hw;
365 * We can use this buffer in the FPA. We don't need the FAU
366 * update anymore
368 pko_command.s.dontfree = 0;
370 hw_buffer.s.back = ((unsigned long)skb->data >> 7) -
371 ((unsigned long)fpa_head >> 7);
373 *(struct sk_buff **)(fpa_head - sizeof(void *)) = skb;
376 * The skbuff will be reused without ever being freed. We must
377 * cleanup a bunch of core things.
379 dst_release(skb_dst(skb));
380 skb_dst_set(skb, NULL);
381 #ifdef CONFIG_XFRM
382 secpath_put(skb->sp);
383 skb->sp = NULL;
384 #endif
385 nf_reset(skb);
387 #ifdef CONFIG_NET_SCHED
388 skb->tc_index = 0;
389 #ifdef CONFIG_NET_CLS_ACT
390 skb->tc_verd = 0;
391 #endif /* CONFIG_NET_CLS_ACT */
392 #endif /* CONFIG_NET_SCHED */
393 #endif /* REUSE_SKBUFFS_WITHOUT_FREE */
395 dont_put_skbuff_in_hw:
397 /* Check if we can use the hardware checksumming */
398 if ((skb->protocol == htons(ETH_P_IP)) &&
399 (ip_hdr(skb)->version == 4) &&
400 (ip_hdr(skb)->ihl == 5) &&
401 ((ip_hdr(skb)->frag_off == 0) ||
402 (ip_hdr(skb)->frag_off == htons(1 << 14))) &&
403 ((ip_hdr(skb)->protocol == IPPROTO_TCP) ||
404 (ip_hdr(skb)->protocol == IPPROTO_UDP))) {
405 /* Use hardware checksum calc */
406 pko_command.s.ipoffp1 = sizeof(struct ethhdr) + 1;
409 if (USE_ASYNC_IOBDMA) {
410 /* Get the number of skbuffs in use by the hardware */
411 CVMX_SYNCIOBDMA;
412 skb_to_free = cvmx_scratch_read64(CVMX_SCR_SCRATCH);
413 buffers_to_free = cvmx_scratch_read64(CVMX_SCR_SCRATCH + 8);
414 } else {
415 /* Get the number of skbuffs in use by the hardware */
416 skb_to_free = cvmx_fau_fetch_and_add32(priv->fau + qos * 4,
417 MAX_SKB_TO_FREE);
418 buffers_to_free =
419 cvmx_fau_fetch_and_add32(FAU_NUM_PACKET_BUFFERS_TO_FREE, 0);
422 skb_to_free = cvm_oct_adjust_skb_to_free(skb_to_free, priv->fau+qos*4);
425 * If we're sending faster than the receive can free them then
426 * don't do the HW free.
428 if ((buffers_to_free < -100) && !pko_command.s.dontfree)
429 pko_command.s.dontfree = 1;
431 if (pko_command.s.dontfree) {
432 queue_type = QUEUE_CORE;
433 pko_command.s.reg0 = priv->fau+qos*4;
434 } else {
435 queue_type = QUEUE_HW;
437 if (USE_ASYNC_IOBDMA)
438 cvmx_fau_async_fetch_and_add32(
439 CVMX_SCR_SCRATCH, FAU_TOTAL_TX_TO_CLEAN, 1);
441 spin_lock_irqsave(&priv->tx_free_list[qos].lock, flags);
443 /* Drop this packet if we have too many already queued to the HW */
444 if (unlikely(skb_queue_len(&priv->tx_free_list[qos]) >=
445 MAX_OUT_QUEUE_DEPTH)) {
447 if (dev->tx_queue_len != 0) {
448 /* Drop the lock when notifying the core. */
449 spin_unlock_irqrestore(&priv->tx_free_list[qos].lock,
450 flags);
451 netif_stop_queue(dev);
452 spin_lock_irqsave(&priv->tx_free_list[qos].lock,
453 flags);
454 } else {
455 /* If not using normal queueing. */
456 queue_type = QUEUE_DROP;
457 goto skip_xmit;
461 cvmx_pko_send_packet_prepare(priv->port, priv->queue + qos,
462 CVMX_PKO_LOCK_NONE);
464 /* Send the packet to the output queue */
465 if (unlikely(cvmx_pko_send_packet_finish(priv->port,
466 priv->queue + qos,
467 pko_command, hw_buffer,
468 CVMX_PKO_LOCK_NONE))) {
469 printk_ratelimited("%s: Failed to send the packet\n",
470 dev->name);
471 queue_type = QUEUE_DROP;
473 skip_xmit:
474 to_free_list = NULL;
476 switch (queue_type) {
477 case QUEUE_DROP:
478 skb->next = to_free_list;
479 to_free_list = skb;
480 priv->stats.tx_dropped++;
481 break;
482 case QUEUE_HW:
483 cvmx_fau_atomic_add32(FAU_NUM_PACKET_BUFFERS_TO_FREE, -1);
484 break;
485 case QUEUE_CORE:
486 __skb_queue_tail(&priv->tx_free_list[qos], skb);
487 break;
488 default:
489 BUG();
492 while (skb_to_free > 0) {
493 struct sk_buff *t = __skb_dequeue(&priv->tx_free_list[qos]);
495 t->next = to_free_list;
496 to_free_list = t;
497 skb_to_free--;
500 spin_unlock_irqrestore(&priv->tx_free_list[qos].lock, flags);
502 /* Do the actual freeing outside of the lock. */
503 while (to_free_list) {
504 struct sk_buff *t = to_free_list;
506 to_free_list = to_free_list->next;
507 dev_kfree_skb_any(t);
510 if (USE_ASYNC_IOBDMA) {
511 CVMX_SYNCIOBDMA;
512 total_to_clean = cvmx_scratch_read64(CVMX_SCR_SCRATCH);
513 /* Restore the scratch area */
514 cvmx_scratch_write64(CVMX_SCR_SCRATCH, old_scratch);
515 cvmx_scratch_write64(CVMX_SCR_SCRATCH + 8, old_scratch2);
516 } else {
517 total_to_clean = cvmx_fau_fetch_and_add32(
518 FAU_TOTAL_TX_TO_CLEAN, 1);
521 if (total_to_clean & 0x3ff) {
523 * Schedule the cleanup tasklet every 1024 packets for
524 * the pathological case of high traffic on one port
525 * delaying clean up of packets on a different port
526 * that is blocked waiting for the cleanup.
528 tasklet_schedule(&cvm_oct_tx_cleanup_tasklet);
531 cvm_oct_kick_tx_poll_watchdog();
533 return NETDEV_TX_OK;
537 * cvm_oct_xmit_pow - transmit a packet to the POW
538 * @skb: Packet to send
539 * @dev: Device info structure
541 * Returns Always returns zero
543 int cvm_oct_xmit_pow(struct sk_buff *skb, struct net_device *dev)
545 struct octeon_ethernet *priv = netdev_priv(dev);
546 void *packet_buffer;
547 void *copy_location;
549 /* Get a work queue entry */
550 cvmx_wqe_t *work = cvmx_fpa_alloc(CVMX_FPA_WQE_POOL);
552 if (unlikely(!work)) {
553 printk_ratelimited("%s: Failed to allocate a work queue entry\n",
554 dev->name);
555 priv->stats.tx_dropped++;
556 dev_kfree_skb_any(skb);
557 return 0;
560 /* Get a packet buffer */
561 packet_buffer = cvmx_fpa_alloc(CVMX_FPA_PACKET_POOL);
562 if (unlikely(packet_buffer == NULL)) {
563 printk_ratelimited("%s: Failed to allocate a packet buffer\n",
564 dev->name);
565 cvmx_fpa_free(work, CVMX_FPA_WQE_POOL, 1);
566 priv->stats.tx_dropped++;
567 dev_kfree_skb_any(skb);
568 return 0;
572 * Calculate where we need to copy the data to. We need to
573 * leave 8 bytes for a next pointer (unused). We also need to
574 * include any configure skip. Then we need to align the IP
575 * packet src and dest into the same 64bit word. The below
576 * calculation may add a little extra, but that doesn't
577 * hurt.
579 copy_location = packet_buffer + sizeof(u64);
580 copy_location += ((CVMX_HELPER_FIRST_MBUFF_SKIP + 7) & 0xfff8) + 6;
583 * We have to copy the packet since whoever processes this
584 * packet will free it to a hardware pool. We can't use the
585 * trick of counting outstanding packets like in
586 * cvm_oct_xmit.
588 memcpy(copy_location, skb->data, skb->len);
591 * Fill in some of the work queue fields. We may need to add
592 * more if the software at the other end needs them.
594 if (!OCTEON_IS_MODEL(OCTEON_CN68XX))
595 work->word0.pip.cn38xx.hw_chksum = skb->csum;
596 work->word1.len = skb->len;
597 cvmx_wqe_set_port(work, priv->port);
598 cvmx_wqe_set_qos(work, priv->port & 0x7);
599 cvmx_wqe_set_grp(work, pow_send_group);
600 work->word1.tag_type = CVMX_HELPER_INPUT_TAG_TYPE;
601 work->word1.tag = pow_send_group; /* FIXME */
602 /* Default to zero. Sets of zero later are commented out */
603 work->word2.u64 = 0;
604 work->word2.s.bufs = 1;
605 work->packet_ptr.u64 = 0;
606 work->packet_ptr.s.addr = cvmx_ptr_to_phys(copy_location);
607 work->packet_ptr.s.pool = CVMX_FPA_PACKET_POOL;
608 work->packet_ptr.s.size = CVMX_FPA_PACKET_POOL_SIZE;
609 work->packet_ptr.s.back = (copy_location - packet_buffer) >> 7;
611 if (skb->protocol == htons(ETH_P_IP)) {
612 work->word2.s.ip_offset = 14;
613 #if 0
614 work->word2.s.vlan_valid = 0; /* FIXME */
615 work->word2.s.vlan_cfi = 0; /* FIXME */
616 work->word2.s.vlan_id = 0; /* FIXME */
617 work->word2.s.dec_ipcomp = 0; /* FIXME */
618 #endif
619 work->word2.s.tcp_or_udp =
620 (ip_hdr(skb)->protocol == IPPROTO_TCP)
621 || (ip_hdr(skb)->protocol == IPPROTO_UDP);
622 #if 0
623 /* FIXME */
624 work->word2.s.dec_ipsec = 0;
625 /* We only support IPv4 right now */
626 work->word2.s.is_v6 = 0;
627 /* Hardware would set to zero */
628 work->word2.s.software = 0;
629 /* No error, packet is internal */
630 work->word2.s.L4_error = 0;
631 #endif
632 work->word2.s.is_frag = !((ip_hdr(skb)->frag_off == 0)
633 || (ip_hdr(skb)->frag_off ==
634 1 << 14));
635 #if 0
636 /* Assume Linux is sending a good packet */
637 work->word2.s.IP_exc = 0;
638 #endif
639 work->word2.s.is_bcast = (skb->pkt_type == PACKET_BROADCAST);
640 work->word2.s.is_mcast = (skb->pkt_type == PACKET_MULTICAST);
641 #if 0
642 /* This is an IP packet */
643 work->word2.s.not_IP = 0;
644 /* No error, packet is internal */
645 work->word2.s.rcv_error = 0;
646 /* No error, packet is internal */
647 work->word2.s.err_code = 0;
648 #endif
651 * When copying the data, include 4 bytes of the
652 * ethernet header to align the same way hardware
653 * does.
655 memcpy(work->packet_data, skb->data + 10,
656 sizeof(work->packet_data));
657 } else {
658 #if 0
659 work->word2.snoip.vlan_valid = 0; /* FIXME */
660 work->word2.snoip.vlan_cfi = 0; /* FIXME */
661 work->word2.snoip.vlan_id = 0; /* FIXME */
662 work->word2.snoip.software = 0; /* Hardware would set to zero */
663 #endif
664 work->word2.snoip.is_rarp = skb->protocol == htons(ETH_P_RARP);
665 work->word2.snoip.is_arp = skb->protocol == htons(ETH_P_ARP);
666 work->word2.snoip.is_bcast =
667 (skb->pkt_type == PACKET_BROADCAST);
668 work->word2.snoip.is_mcast =
669 (skb->pkt_type == PACKET_MULTICAST);
670 work->word2.snoip.not_IP = 1; /* IP was done up above */
671 #if 0
672 /* No error, packet is internal */
673 work->word2.snoip.rcv_error = 0;
674 /* No error, packet is internal */
675 work->word2.snoip.err_code = 0;
676 #endif
677 memcpy(work->packet_data, skb->data, sizeof(work->packet_data));
680 /* Submit the packet to the POW */
681 cvmx_pow_work_submit(work, work->word1.tag, work->word1.tag_type,
682 cvmx_wqe_get_qos(work), cvmx_wqe_get_grp(work));
683 priv->stats.tx_packets++;
684 priv->stats.tx_bytes += skb->len;
685 dev_consume_skb_any(skb);
686 return 0;
690 * cvm_oct_tx_shutdown_dev - free all skb that are currently queued for TX.
691 * @dev: Device being shutdown
694 void cvm_oct_tx_shutdown_dev(struct net_device *dev)
696 struct octeon_ethernet *priv = netdev_priv(dev);
697 unsigned long flags;
698 int qos;
700 for (qos = 0; qos < 16; qos++) {
701 spin_lock_irqsave(&priv->tx_free_list[qos].lock, flags);
702 while (skb_queue_len(&priv->tx_free_list[qos]))
703 dev_kfree_skb_any(__skb_dequeue
704 (&priv->tx_free_list[qos]));
705 spin_unlock_irqrestore(&priv->tx_free_list[qos].lock, flags);
709 static void cvm_oct_tx_do_cleanup(unsigned long arg)
711 int port;
713 for (port = 0; port < TOTAL_NUMBER_OF_PORTS; port++) {
714 if (cvm_oct_device[port]) {
715 struct net_device *dev = cvm_oct_device[port];
717 cvm_oct_free_tx_skbs(dev);
722 static irqreturn_t cvm_oct_tx_cleanup_watchdog(int cpl, void *dev_id)
724 /* Disable the interrupt. */
725 cvmx_write_csr(CVMX_CIU_TIMX(1), 0);
726 /* Do the work in the tasklet. */
727 tasklet_schedule(&cvm_oct_tx_cleanup_tasklet);
728 return IRQ_HANDLED;
731 void cvm_oct_tx_initialize(void)
733 int i;
735 /* Disable the interrupt. */
736 cvmx_write_csr(CVMX_CIU_TIMX(1), 0);
737 /* Register an IRQ handler to receive CIU_TIMX(1) interrupts */
738 i = request_irq(OCTEON_IRQ_TIMER1,
739 cvm_oct_tx_cleanup_watchdog, 0,
740 "Ethernet", cvm_oct_device);
742 if (i)
743 panic("Could not acquire Ethernet IRQ %d\n", OCTEON_IRQ_TIMER1);
746 void cvm_oct_tx_shutdown(void)
748 /* Free the interrupt handler */
749 free_irq(OCTEON_IRQ_TIMER1, cvm_oct_device);