1 /**********************************************************************
2 * Author: Cavium, Inc.
3 *
4 * Contact: support@cavium.com
5 * Please include "LiquidIO" in the subject.
6 *
7 * Copyright (c) 2003-2016 Cavium, Inc.
8 *
9 * This file is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License, Version 2, as
11 * published by the Free Software Foundation.
12 *
13 * This file is distributed in the hope that it will be useful, but
14 * AS-IS and WITHOUT ANY WARRANTY; without even the implied warranty
15 * of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE, TITLE, or
16 * NONINFRINGEMENT. See the GNU General Public License for more
17 * details.
18 **********************************************************************/
19
20 /*! \file octeon_network.h
21 * \brief Host NIC Driver: Structure and Macro definitions used by NIC Module.
22 */
23
24 #ifndef __OCTEON_NETWORK_H__
25 #define __OCTEON_NETWORK_H__
26 #include <linux/ptp_clock_kernel.h>
27
28 #define LIO_MAX_MTU_SIZE (OCTNET_MAX_FRM_SIZE - OCTNET_FRM_HEADER_SIZE)
29 #define LIO_MIN_MTU_SIZE ETH_MIN_MTU
30
31 /* Bit mask values for lio->ifstate */
32 #define LIO_IFSTATE_DROQ_OPS 0x01
33 #define LIO_IFSTATE_REGISTERED 0x02
34 #define LIO_IFSTATE_RUNNING 0x04
35 #define LIO_IFSTATE_RX_TIMESTAMP_ENABLED 0x08
36 #define LIO_IFSTATE_RESETTING 0x10
37
38 struct liquidio_if_cfg_context {
39 u32 octeon_id;
40 wait_queue_head_t wc;
41 int cond;
42 };
43
44 struct liquidio_if_cfg_resp {
45 u64 rh;
46 struct liquidio_if_cfg_info cfg_info;
47 u64 status;
48 };
49
50 #define LIO_IFCFG_WAIT_TIME 3000 /* In milli seconds */
51
52 /* Structure of a node in list of gather components maintained by
53 * NIC driver for each network device.
54 */
55 struct octnic_gather {
56 /* List manipulation. Next and prev pointers. */
57 struct list_head list;
58
59 /* Size of the gather component at sg in bytes. */
60 int sg_size;
61
62 /* Number of bytes that sg was adjusted to make it 8B-aligned. */
63 int adjust;
64
65 /* Gather component that can accommodate max sized fragment list
66 * received from the IP layer.
67 */
68 struct octeon_sg_entry *sg;
69
70 dma_addr_t sg_dma_ptr;
71 };
72
73 struct oct_nic_stats_resp {
74 u64 rh;
75 struct oct_link_stats stats;
76 u64 status;
77 };
78
79 struct oct_nic_stats_ctrl {
80 struct completion complete;
81 struct net_device *netdev;
82 };
83
84 struct oct_nic_seapi_resp {
85 u64 rh;
86 u32 speed;
87 u64 status;
88 };
89
90 struct liquidio_nic_seapi_ctl_context {
91 int octeon_id;
92 u32 status;
93 struct completion complete;
94 };
95
96 /** LiquidIO per-interface network private data */
97 struct lio {
98 /** State of the interface. Rx/Tx happens only in the RUNNING state. */
99 atomic_t ifstate;
100
101 /** Octeon Interface index number. This device will be represented as
102 * oct<ifidx> in the system.
103 */
104 int ifidx;
105
106 /** Octeon Input queue to use to transmit for this network interface. */
107 int txq;
108
109 /** Octeon Output queue from which pkts arrive
110 * for this network interface.
111 */
112 int rxq;
113
114 /** Guards each glist */
115 spinlock_t *glist_lock;
116
117 /** Array of gather component linked lists */
118 struct list_head *glist;
119 void **glists_virt_base;
120 dma_addr_t *glists_dma_base;
121 u32 glist_entry_size;
122
123 /** Pointer to the NIC properties for the Octeon device this network
124 * interface is associated with.
125 */
126 struct octdev_props *octprops;
127
128 /** Pointer to the octeon device structure. */
129 struct octeon_device *oct_dev;
130
131 struct net_device *netdev;
132
133 /** Link information sent by the core application for this interface. */
134 struct oct_link_info linfo;
135
136 /** counter of link changes */
137 u64 link_changes;
138
139 /** Size of Tx queue for this octeon device. */
140 u32 tx_qsize;
141
142 /** Size of Rx queue for this octeon device. */
143 u32 rx_qsize;
144
145 /** Size of MTU this octeon device. */
146 u32 mtu;
147
148 /** msg level flag per interface. */
149 u32 msg_enable;
150
151 /** Copy of Interface capabilities: TSO, TSO6, LRO, Chescksums . */
152 u64 dev_capability;
153
154 /* Copy of transmit encapsulation capabilities:
155 * TSO, TSO6, Checksums for this device for Kernel
156 * 3.10.0 onwards
157 */
158 u64 enc_dev_capability;
159
160 /** Copy of beacaon reg in phy */
161 u32 phy_beacon_val;
162
163 /** Copy of ctrl reg in phy */
164 u32 led_ctrl_val;
165
166 /* PTP clock information */
167 struct ptp_clock_info ptp_info;
168 struct ptp_clock *ptp_clock;
169 s64 ptp_adjust;
170
171 /* for atomic access to Octeon PTP reg and data struct */
172 spinlock_t ptp_lock;
173
174 /* Interface info */
175 u32 intf_open;
176
177 /* work queue for txq status */
178 struct cavium_wq txq_status_wq;
179
180 /* work queue for rxq oom status */
181 struct cavium_wq rxq_status_wq;
182
183 /* work queue for link status */
184 struct cavium_wq link_status_wq;
185
186 /* work queue to regularly send local time to octeon firmware */
187 struct cavium_wq sync_octeon_time_wq;
188
189 int netdev_uc_count;
190 };
191
192 #define LIO_SIZE (sizeof(struct lio))
193 #define GET_LIO(netdev) ((struct lio *)netdev_priv(netdev))
194
195 #define LIO_MAX_CORES 16
196
197 /**
198 * \brief Enable or disable feature
199 * @param netdev pointer to network device
200 * @param cmd Command that just requires acknowledgment
201 * @param param1 Parameter to command
202 */
203 int liquidio_set_feature(struct net_device *netdev, int cmd, u16 param1);
204
205 int setup_rx_oom_poll_fn(struct net_device *netdev);
206
207 void cleanup_rx_oom_poll_fn(struct net_device *netdev);
208
209 /**
210 * \brief Link control command completion callback
211 * @param nctrl_ptr pointer to control packet structure
212 *
213 * This routine is called by the callback function when a ctrl pkt sent to
214 * core app completes. The nctrl_ptr contains a copy of the command type
215 * and data sent to the core app. This routine is only called if the ctrl
216 * pkt was sent successfully to the core app.
217 */
218 void liquidio_link_ctrl_cmd_completion(void *nctrl_ptr);
219
220 int liquidio_setup_io_queues(struct octeon_device *octeon_dev, int ifidx,
221 u32 num_iqs, u32 num_oqs);
222
223 irqreturn_t liquidio_msix_intr_handler(int irq __attribute__((unused)),
224 void *dev);
225
226 int octeon_setup_interrupt(struct octeon_device *oct, u32 num_ioqs);
227
228 int octnet_get_link_stats(struct net_device *netdev);
229
230 int lio_wait_for_clean_oq(struct octeon_device *oct);
231 /**
232 * \brief Register ethtool operations
233 * @param netdev pointer to network device
234 */
235 void liquidio_set_ethtool_ops(struct net_device *netdev);
236
237 void lio_if_cfg_callback(struct octeon_device *oct,
238 u32 status __attribute__((unused)),
239 void *buf);
240
241 void lio_delete_glists(struct lio *lio);
242
243 int lio_setup_glists(struct octeon_device *oct, struct lio *lio, int num_qs);
244
245 int liquidio_get_speed(struct lio *lio);
246 int liquidio_set_speed(struct lio *lio, int speed);
247
248 /**
249 * \brief Net device change_mtu
250 * @param netdev network device
251 */
252 int liquidio_change_mtu(struct net_device *netdev, int new_mtu);
253 #define LIO_CHANGE_MTU_SUCCESS 1
254 #define LIO_CHANGE_MTU_FAIL 2
255
256 #define SKB_ADJ_MASK 0x3F
257 #define SKB_ADJ (SKB_ADJ_MASK + 1)
258
259 #define MIN_SKB_SIZE 256 /* 8 bytes and more - 8 bytes for PTP */
260 #define LIO_RXBUFFER_SZ 2048
261
262 static inline void
recv_buffer_alloc(struct octeon_device * oct,struct octeon_skb_page_info * pg_info)263 *recv_buffer_alloc(struct octeon_device *oct,
264 struct octeon_skb_page_info *pg_info)
265 {
266 struct page *page;
267 struct sk_buff *skb;
268 struct octeon_skb_page_info *skb_pg_info;
269
270 page = alloc_page(GFP_ATOMIC);
271 if (unlikely(!page))
272 return NULL;
273
274 skb = dev_alloc_skb(MIN_SKB_SIZE + SKB_ADJ);
275 if (unlikely(!skb)) {
276 __free_page(page);
277 pg_info->page = NULL;
278 return NULL;
279 }
280
281 if ((unsigned long)skb->data & SKB_ADJ_MASK) {
282 u32 r = SKB_ADJ - ((unsigned long)skb->data & SKB_ADJ_MASK);
283
284 skb_reserve(skb, r);
285 }
286
287 skb_pg_info = ((struct octeon_skb_page_info *)(skb->cb));
288 /* Get DMA info */
289 pg_info->dma = dma_map_page(&oct->pci_dev->dev, page, 0,
290 PAGE_SIZE, DMA_FROM_DEVICE);
291
292 /* Mapping failed!! */
293 if (dma_mapping_error(&oct->pci_dev->dev, pg_info->dma)) {
294 __free_page(page);
295 dev_kfree_skb_any((struct sk_buff *)skb);
296 pg_info->page = NULL;
297 return NULL;
298 }
299
300 pg_info->page = page;
301 pg_info->page_offset = 0;
302 skb_pg_info->page = page;
303 skb_pg_info->page_offset = 0;
304 skb_pg_info->dma = pg_info->dma;
305
306 return (void *)skb;
307 }
308
309 static inline void
recv_buffer_fast_alloc(u32 size)310 *recv_buffer_fast_alloc(u32 size)
311 {
312 struct sk_buff *skb;
313 struct octeon_skb_page_info *skb_pg_info;
314
315 skb = dev_alloc_skb(size + SKB_ADJ);
316 if (unlikely(!skb))
317 return NULL;
318
319 if ((unsigned long)skb->data & SKB_ADJ_MASK) {
320 u32 r = SKB_ADJ - ((unsigned long)skb->data & SKB_ADJ_MASK);
321
322 skb_reserve(skb, r);
323 }
324
325 skb_pg_info = ((struct octeon_skb_page_info *)(skb->cb));
326 skb_pg_info->page = NULL;
327 skb_pg_info->page_offset = 0;
328 skb_pg_info->dma = 0;
329
330 return skb;
331 }
332
333 static inline int
recv_buffer_recycle(struct octeon_device * oct,void * buf)334 recv_buffer_recycle(struct octeon_device *oct, void *buf)
335 {
336 struct octeon_skb_page_info *pg_info = buf;
337
338 if (!pg_info->page) {
339 dev_err(&oct->pci_dev->dev, "%s: pg_info->page NULL\n",
340 __func__);
341 return -ENOMEM;
342 }
343
344 if (unlikely(page_count(pg_info->page) != 1) ||
345 unlikely(page_to_nid(pg_info->page) != numa_node_id())) {
346 dma_unmap_page(&oct->pci_dev->dev,
347 pg_info->dma, (PAGE_SIZE << 0),
348 DMA_FROM_DEVICE);
349 pg_info->dma = 0;
350 pg_info->page = NULL;
351 pg_info->page_offset = 0;
352 return -ENOMEM;
353 }
354
355 /* Flip to other half of the buffer */
356 if (pg_info->page_offset == 0)
357 pg_info->page_offset = LIO_RXBUFFER_SZ;
358 else
359 pg_info->page_offset = 0;
360 page_ref_inc(pg_info->page);
361
362 return 0;
363 }
364
365 static inline void
recv_buffer_reuse(struct octeon_device * oct,void * buf)366 *recv_buffer_reuse(struct octeon_device *oct, void *buf)
367 {
368 struct octeon_skb_page_info *pg_info = buf, *skb_pg_info;
369 struct sk_buff *skb;
370
371 skb = dev_alloc_skb(MIN_SKB_SIZE + SKB_ADJ);
372 if (unlikely(!skb)) {
373 dma_unmap_page(&oct->pci_dev->dev,
374 pg_info->dma, (PAGE_SIZE << 0),
375 DMA_FROM_DEVICE);
376 return NULL;
377 }
378
379 if ((unsigned long)skb->data & SKB_ADJ_MASK) {
380 u32 r = SKB_ADJ - ((unsigned long)skb->data & SKB_ADJ_MASK);
381
382 skb_reserve(skb, r);
383 }
384
385 skb_pg_info = ((struct octeon_skb_page_info *)(skb->cb));
386 skb_pg_info->page = pg_info->page;
387 skb_pg_info->page_offset = pg_info->page_offset;
388 skb_pg_info->dma = pg_info->dma;
389
390 return skb;
391 }
392
393 static inline void
recv_buffer_destroy(void * buffer,struct octeon_skb_page_info * pg_info)394 recv_buffer_destroy(void *buffer, struct octeon_skb_page_info *pg_info)
395 {
396 struct sk_buff *skb = (struct sk_buff *)buffer;
397
398 put_page(pg_info->page);
399 pg_info->dma = 0;
400 pg_info->page = NULL;
401 pg_info->page_offset = 0;
402
403 if (skb)
404 dev_kfree_skb_any(skb);
405 }
406
recv_buffer_free(void * buffer)407 static inline void recv_buffer_free(void *buffer)
408 {
409 struct sk_buff *skb = (struct sk_buff *)buffer;
410 struct octeon_skb_page_info *pg_info;
411
412 pg_info = ((struct octeon_skb_page_info *)(skb->cb));
413
414 if (pg_info->page) {
415 put_page(pg_info->page);
416 pg_info->dma = 0;
417 pg_info->page = NULL;
418 pg_info->page_offset = 0;
419 }
420
421 dev_kfree_skb_any((struct sk_buff *)buffer);
422 }
423
424 static inline void
recv_buffer_fast_free(void * buffer)425 recv_buffer_fast_free(void *buffer)
426 {
427 dev_kfree_skb_any((struct sk_buff *)buffer);
428 }
429
tx_buffer_free(void * buffer)430 static inline void tx_buffer_free(void *buffer)
431 {
432 dev_kfree_skb_any((struct sk_buff *)buffer);
433 }
434
435 #define lio_dma_alloc(oct, size, dma_addr) \
436 dma_alloc_coherent(&(oct)->pci_dev->dev, size, dma_addr, GFP_KERNEL)
437 #define lio_dma_free(oct, size, virt_addr, dma_addr) \
438 dma_free_coherent(&(oct)->pci_dev->dev, size, virt_addr, dma_addr)
439
440 static inline
get_rbd(struct sk_buff * skb)441 void *get_rbd(struct sk_buff *skb)
442 {
443 struct octeon_skb_page_info *pg_info;
444 unsigned char *va;
445
446 pg_info = ((struct octeon_skb_page_info *)(skb->cb));
447 va = page_address(pg_info->page) + pg_info->page_offset;
448
449 return va;
450 }
451
452 static inline u64
lio_map_ring(void * buf)453 lio_map_ring(void *buf)
454 {
455 dma_addr_t dma_addr;
456
457 struct sk_buff *skb = (struct sk_buff *)buf;
458 struct octeon_skb_page_info *pg_info;
459
460 pg_info = ((struct octeon_skb_page_info *)(skb->cb));
461 if (!pg_info->page) {
462 pr_err("%s: pg_info->page NULL\n", __func__);
463 WARN_ON(1);
464 }
465
466 /* Get DMA info */
467 dma_addr = pg_info->dma;
468 if (!pg_info->dma) {
469 pr_err("%s: ERROR it should be already available\n",
470 __func__);
471 WARN_ON(1);
472 }
473 dma_addr += pg_info->page_offset;
474
475 return (u64)dma_addr;
476 }
477
478 static inline void
lio_unmap_ring(struct pci_dev * pci_dev,u64 buf_ptr)479 lio_unmap_ring(struct pci_dev *pci_dev,
480 u64 buf_ptr)
481
482 {
483 dma_unmap_page(&pci_dev->dev,
484 buf_ptr, (PAGE_SIZE << 0),
485 DMA_FROM_DEVICE);
486 }
487
octeon_fast_packet_alloc(u32 size)488 static inline void *octeon_fast_packet_alloc(u32 size)
489 {
490 return recv_buffer_fast_alloc(size);
491 }
492
octeon_fast_packet_next(struct octeon_droq * droq,struct sk_buff * nicbuf,int copy_len,int idx)493 static inline void octeon_fast_packet_next(struct octeon_droq *droq,
494 struct sk_buff *nicbuf,
495 int copy_len,
496 int idx)
497 {
498 skb_put_data(nicbuf, get_rbd(droq->recv_buf_list[idx].buffer),
499 copy_len);
500 }
501
502 /**
503 * \brief check interface state
504 * @param lio per-network private data
505 * @param state_flag flag state to check
506 */
ifstate_check(struct lio * lio,int state_flag)507 static inline int ifstate_check(struct lio *lio, int state_flag)
508 {
509 return atomic_read(&lio->ifstate) & state_flag;
510 }
511
512 /**
513 * \brief set interface state
514 * @param lio per-network private data
515 * @param state_flag flag state to set
516 */
ifstate_set(struct lio * lio,int state_flag)517 static inline void ifstate_set(struct lio *lio, int state_flag)
518 {
519 atomic_set(&lio->ifstate, (atomic_read(&lio->ifstate) | state_flag));
520 }
521
522 /**
523 * \brief clear interface state
524 * @param lio per-network private data
525 * @param state_flag flag state to clear
526 */
ifstate_reset(struct lio * lio,int state_flag)527 static inline void ifstate_reset(struct lio *lio, int state_flag)
528 {
529 atomic_set(&lio->ifstate, (atomic_read(&lio->ifstate) & ~(state_flag)));
530 }
531
532 /**
533 * \brief wait for all pending requests to complete
534 * @param oct Pointer to Octeon device
535 *
536 * Called during shutdown sequence
537 */
wait_for_pending_requests(struct octeon_device * oct)538 static inline int wait_for_pending_requests(struct octeon_device *oct)
539 {
540 int i, pcount = 0;
541
542 for (i = 0; i < MAX_IO_PENDING_PKT_COUNT; i++) {
543 pcount = atomic_read(
544 &oct->response_list[OCTEON_ORDERED_SC_LIST]
545 .pending_req_count);
546 if (pcount)
547 schedule_timeout_uninterruptible(HZ / 10);
548 else
549 break;
550 }
551
552 if (pcount)
553 return 1;
554
555 return 0;
556 }
557
558 /**
559 * \brief Stop Tx queues
560 * @param netdev network device
561 */
stop_txqs(struct net_device * netdev)562 static inline void stop_txqs(struct net_device *netdev)
563 {
564 int i;
565
566 for (i = 0; i < netdev->real_num_tx_queues; i++)
567 netif_stop_subqueue(netdev, i);
568 }
569
570 /**
571 * \brief Wake Tx queues
572 * @param netdev network device
573 */
wake_txqs(struct net_device * netdev)574 static inline void wake_txqs(struct net_device *netdev)
575 {
576 struct lio *lio = GET_LIO(netdev);
577 int i, qno;
578
579 for (i = 0; i < netdev->real_num_tx_queues; i++) {
580 qno = lio->linfo.txpciq[i % lio->oct_dev->num_iqs].s.q_no;
581
582 if (__netif_subqueue_stopped(netdev, i)) {
583 INCR_INSTRQUEUE_PKT_COUNT(lio->oct_dev, qno,
584 tx_restart, 1);
585 netif_wake_subqueue(netdev, i);
586 }
587 }
588 }
589
590 /**
591 * \brief Start Tx queues
592 * @param netdev network device
593 */
start_txqs(struct net_device * netdev)594 static inline void start_txqs(struct net_device *netdev)
595 {
596 struct lio *lio = GET_LIO(netdev);
597 int i;
598
599 if (lio->linfo.link.s.link_up) {
600 for (i = 0; i < netdev->real_num_tx_queues; i++)
601 netif_start_subqueue(netdev, i);
602 }
603 }
604
skb_iq(struct octeon_device * oct,struct sk_buff * skb)605 static inline int skb_iq(struct octeon_device *oct, struct sk_buff *skb)
606 {
607 return skb->queue_mapping % oct->num_iqs;
608 }
609
610 /**
611 * Remove the node at the head of the list. The list would be empty at
612 * the end of this call if there are no more nodes in the list.
613 */
lio_list_delete_head(struct list_head * root)614 static inline struct list_head *lio_list_delete_head(struct list_head *root)
615 {
616 struct list_head *node;
617
618 if (root->prev == root && root->next == root)
619 node = NULL;
620 else
621 node = root->next;
622
623 if (node)
624 list_del(node);
625
626 return node;
627 }
628
629 #endif
630