GenWQE: Ensure rc is not returning an uninitialized value
[deliverable/linux.git] / drivers / misc / genwqe / card_ddcb.c
1 /**
2 * IBM Accelerator Family 'GenWQE'
3 *
4 * (C) Copyright IBM Corp. 2013
5 *
6 * Author: Frank Haverkamp <haver@linux.vnet.ibm.com>
7 * Author: Joerg-Stephan Vogt <jsvogt@de.ibm.com>
8 * Author: Michael Jung <mijung@de.ibm.com>
9 * Author: Michael Ruettger <michael@ibmra.de>
10 *
11 * This program is free software; you can redistribute it and/or modify
12 * it under the terms of the GNU General Public License (version 2 only)
13 * as published by the Free Software Foundation.
14 *
15 * This program is distributed in the hope that it will be useful,
16 * but WITHOUT ANY WARRANTY; without even the implied warranty of
17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 * GNU General Public License for more details.
19 */
20
21 /*
22 * Device Driver Control Block (DDCB) queue support. Definition of
23 * interrupt handlers for queue support as well as triggering the
24 * health monitor code in case of problems. The current hardware uses
25 * an MSI interrupt which is shared between error handling and
26 * functional code.
27 */
28
29 #include <linux/types.h>
30 #include <linux/module.h>
31 #include <linux/sched.h>
32 #include <linux/wait.h>
33 #include <linux/pci.h>
34 #include <linux/string.h>
35 #include <linux/dma-mapping.h>
36 #include <linux/delay.h>
37 #include <linux/module.h>
38 #include <linux/interrupt.h>
39 #include <linux/crc-itu-t.h>
40
41 #include "card_base.h"
42 #include "card_ddcb.h"
43
44 /*
45 * N: next DDCB, this is where the next DDCB will be put.
46 * A: active DDCB, this is where the code will look for the next completion.
47 * x: DDCB is enqueued, we are waiting for its completion.
48
49 * Situation (1): Empty queue
50 * +---+---+---+---+---+---+---+---+
51 * | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
52 * | | | | | | | | |
53 * +---+---+---+---+---+---+---+---+
54 * A/N
55 * enqueued_ddcbs = A - N = 2 - 2 = 0
56 *
57 * Situation (2): Wrapped, N > A
58 * +---+---+---+---+---+---+---+---+
59 * | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
60 * | | | x | x | | | | |
61 * +---+---+---+---+---+---+---+---+
62 * A N
63 * enqueued_ddcbs = N - A = 4 - 2 = 2
64 *
65 * Situation (3): Queue wrapped, A > N
66 * +---+---+---+---+---+---+---+---+
67 * | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
68 * | x | x | | | x | x | x | x |
69 * +---+---+---+---+---+---+---+---+
70 * N A
71 * enqueued_ddcbs = queue_max - (A - N) = 8 - (4 - 2) = 6
72 *
73 * Situation (4a): Queue full N > A
74 * +---+---+---+---+---+---+---+---+
75 * | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
76 * | x | x | x | x | x | x | x | |
77 * +---+---+---+---+---+---+---+---+
78 * A N
79 *
80 * enqueued_ddcbs = N - A = 7 - 0 = 7
81 *
82 * Situation (4a): Queue full A > N
83 * +---+---+---+---+---+---+---+---+
84 * | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
85 * | x | x | x | | x | x | x | x |
86 * +---+---+---+---+---+---+---+---+
87 * N A
88 * enqueued_ddcbs = queue_max - (A - N) = 8 - (4 - 3) = 7
89 */
90
91 static int queue_empty(struct ddcb_queue *queue)
92 {
93 return queue->ddcb_next == queue->ddcb_act;
94 }
95
96 static int queue_enqueued_ddcbs(struct ddcb_queue *queue)
97 {
98 if (queue->ddcb_next >= queue->ddcb_act)
99 return queue->ddcb_next - queue->ddcb_act;
100
101 return queue->ddcb_max - (queue->ddcb_act - queue->ddcb_next);
102 }
103
104 static int queue_free_ddcbs(struct ddcb_queue *queue)
105 {
106 int free_ddcbs = queue->ddcb_max - queue_enqueued_ddcbs(queue) - 1;
107
108 if (WARN_ON_ONCE(free_ddcbs < 0)) { /* must never ever happen! */
109 return 0;
110 }
111 return free_ddcbs;
112 }
113
114 /*
115 * Use of the PRIV field in the DDCB for queue debugging:
116 *
117 * (1) Trying to get rid of a DDCB which saw a timeout:
118 * pddcb->priv[6] = 0xcc; # cleared
119 *
120 * (2) Append a DDCB via NEXT bit:
121 * pddcb->priv[7] = 0xaa; # appended
122 *
123 * (3) DDCB needed tapping:
124 * pddcb->priv[7] = 0xbb; # tapped
125 *
126 * (4) DDCB marked as correctly finished:
127 * pddcb->priv[6] = 0xff; # finished
128 */
129
130 static inline void ddcb_mark_tapped(struct ddcb *pddcb)
131 {
132 pddcb->priv[7] = 0xbb; /* tapped */
133 }
134
135 static inline void ddcb_mark_appended(struct ddcb *pddcb)
136 {
137 pddcb->priv[7] = 0xaa; /* appended */
138 }
139
140 static inline void ddcb_mark_cleared(struct ddcb *pddcb)
141 {
142 pddcb->priv[6] = 0xcc; /* cleared */
143 }
144
145 static inline void ddcb_mark_finished(struct ddcb *pddcb)
146 {
147 pddcb->priv[6] = 0xff; /* finished */
148 }
149
150 static inline void ddcb_mark_unused(struct ddcb *pddcb)
151 {
152 pddcb->priv_64 = cpu_to_be64(0); /* not tapped */
153 }
154
155 /**
156 * genwqe_crc16() - Generate 16-bit crc as required for DDCBs
157 * @buff: pointer to data buffer
158 * @len: length of data for calculation
159 * @init: initial crc (0xffff at start)
160 *
161 * Polynomial = x^16 + x^12 + x^5 + 1 (0x1021)
162 * Example: 4 bytes 0x01 0x02 0x03 0x04 with init = 0xffff
163 * should result in a crc16 of 0x89c3
164 *
165 * Return: crc16 checksum in big endian format !
166 */
167 static inline u16 genwqe_crc16(const u8 *buff, size_t len, u16 init)
168 {
169 return crc_itu_t(init, buff, len);
170 }
171
172 static void print_ddcb_info(struct genwqe_dev *cd, struct ddcb_queue *queue)
173 {
174 int i;
175 struct ddcb *pddcb;
176 unsigned long flags;
177 struct pci_dev *pci_dev = cd->pci_dev;
178
179 spin_lock_irqsave(&cd->print_lock, flags);
180
181 dev_info(&pci_dev->dev,
182 "DDCB list for card #%d (ddcb_act=%d / ddcb_next=%d):\n",
183 cd->card_idx, queue->ddcb_act, queue->ddcb_next);
184
185 pddcb = queue->ddcb_vaddr;
186 for (i = 0; i < queue->ddcb_max; i++) {
187 dev_err(&pci_dev->dev,
188 " %c %-3d: RETC=%03x SEQ=%04x "
189 "HSI=%02X SHI=%02x PRIV=%06llx CMD=%03x\n",
190 i == queue->ddcb_act ? '>' : ' ',
191 i,
192 be16_to_cpu(pddcb->retc_16),
193 be16_to_cpu(pddcb->seqnum_16),
194 pddcb->hsi,
195 pddcb->shi,
196 be64_to_cpu(pddcb->priv_64),
197 pddcb->cmd);
198 pddcb++;
199 }
200 spin_unlock_irqrestore(&cd->print_lock, flags);
201 }
202
203 struct genwqe_ddcb_cmd *ddcb_requ_alloc(void)
204 {
205 struct ddcb_requ *req;
206
207 req = kzalloc(sizeof(*req), GFP_ATOMIC);
208 if (!req)
209 return NULL;
210
211 return &req->cmd;
212 }
213
214 void ddcb_requ_free(struct genwqe_ddcb_cmd *cmd)
215 {
216 struct ddcb_requ *req = container_of(cmd, struct ddcb_requ, cmd);
217 kfree(req);
218 }
219
220 static inline enum genwqe_requ_state ddcb_requ_get_state(struct ddcb_requ *req)
221 {
222 return req->req_state;
223 }
224
225 static inline void ddcb_requ_set_state(struct ddcb_requ *req,
226 enum genwqe_requ_state new_state)
227 {
228 req->req_state = new_state;
229 }
230
231 static inline int ddcb_requ_collect_debug_data(struct ddcb_requ *req)
232 {
233 return req->cmd.ddata_addr != 0x0;
234 }
235
236 /**
237 * ddcb_requ_finished() - Returns the hardware state of the associated DDCB
238 * @cd: pointer to genwqe device descriptor
239 * @req: DDCB work request
240 *
241 * Status of ddcb_requ mirrors this hardware state, but is copied in
242 * the ddcb_requ on interrupt/polling function. The lowlevel code
243 * should check the hardware state directly, the higher level code
244 * should check the copy.
245 *
246 * This function will also return true if the state of the queue is
247 * not GENWQE_CARD_USED. This enables us to purge all DDCBs in the
248 * shutdown case.
249 */
250 static int ddcb_requ_finished(struct genwqe_dev *cd, struct ddcb_requ *req)
251 {
252 return (ddcb_requ_get_state(req) == GENWQE_REQU_FINISHED) ||
253 (cd->card_state != GENWQE_CARD_USED);
254 }
255
256 /**
257 * enqueue_ddcb() - Enqueue a DDCB
258 * @cd: pointer to genwqe device descriptor
259 * @queue: queue this operation should be done on
260 * @ddcb_no: pointer to ddcb number being tapped
261 *
262 * Start execution of DDCB by tapping or append to queue via NEXT
263 * bit. This is done by an atomic 'compare and swap' instruction and
264 * checking SHI and HSI of the previous DDCB.
265 *
266 * This function must only be called with ddcb_lock held.
267 *
268 * Return: 1 if new DDCB is appended to previous
269 * 2 if DDCB queue is tapped via register/simulation
270 */
271 #define RET_DDCB_APPENDED 1
272 #define RET_DDCB_TAPPED 2
273
274 static int enqueue_ddcb(struct genwqe_dev *cd, struct ddcb_queue *queue,
275 struct ddcb *pddcb, int ddcb_no)
276 {
277 unsigned int try;
278 int prev_no;
279 struct ddcb *prev_ddcb;
280 __be32 old, new, icrc_hsi_shi;
281 u64 num;
282
283 /*
284 * For performance checks a Dispatch Timestamp can be put into
285 * DDCB It is supposed to use the SLU's free running counter,
286 * but this requires PCIe cycles.
287 */
288 ddcb_mark_unused(pddcb);
289
290 /* check previous DDCB if already fetched */
291 prev_no = (ddcb_no == 0) ? queue->ddcb_max - 1 : ddcb_no - 1;
292 prev_ddcb = &queue->ddcb_vaddr[prev_no];
293
294 /*
295 * It might have happened that the HSI.FETCHED bit is
296 * set. Retry in this case. Therefore I expect maximum 2 times
297 * trying.
298 */
299 ddcb_mark_appended(pddcb);
300 for (try = 0; try < 2; try++) {
301 old = prev_ddcb->icrc_hsi_shi_32; /* read SHI/HSI in BE32 */
302
303 /* try to append via NEXT bit if prev DDCB is not completed */
304 if ((old & DDCB_COMPLETED_BE32) != 0x00000000)
305 break;
306
307 new = (old | DDCB_NEXT_BE32);
308
309 wmb();
310 icrc_hsi_shi = cmpxchg(&prev_ddcb->icrc_hsi_shi_32, old, new);
311
312 if (icrc_hsi_shi == old)
313 return RET_DDCB_APPENDED; /* appended to queue */
314 }
315
316 /* Queue must be re-started by updating QUEUE_OFFSET */
317 ddcb_mark_tapped(pddcb);
318 num = (u64)ddcb_no << 8;
319
320 wmb();
321 __genwqe_writeq(cd, queue->IO_QUEUE_OFFSET, num); /* start queue */
322
323 return RET_DDCB_TAPPED;
324 }
325
326 /**
327 * copy_ddcb_results() - Copy output state from real DDCB to request
328 *
329 * Copy DDCB ASV to request struct. There is no endian
330 * conversion made, since data structure in ASV is still
331 * unknown here.
332 *
333 * This is needed by:
334 * - genwqe_purge_ddcb()
335 * - genwqe_check_ddcb_queue()
336 */
337 static void copy_ddcb_results(struct ddcb_requ *req, int ddcb_no)
338 {
339 struct ddcb_queue *queue = req->queue;
340 struct ddcb *pddcb = &queue->ddcb_vaddr[req->num];
341
342 memcpy(&req->cmd.asv[0], &pddcb->asv[0], DDCB_ASV_LENGTH);
343
344 /* copy status flags of the variant part */
345 req->cmd.vcrc = be16_to_cpu(pddcb->vcrc_16);
346 req->cmd.deque_ts = be64_to_cpu(pddcb->deque_ts_64);
347 req->cmd.cmplt_ts = be64_to_cpu(pddcb->cmplt_ts_64);
348
349 req->cmd.attn = be16_to_cpu(pddcb->attn_16);
350 req->cmd.progress = be32_to_cpu(pddcb->progress_32);
351 req->cmd.retc = be16_to_cpu(pddcb->retc_16);
352
353 if (ddcb_requ_collect_debug_data(req)) {
354 int prev_no = (ddcb_no == 0) ?
355 queue->ddcb_max - 1 : ddcb_no - 1;
356 struct ddcb *prev_pddcb = &queue->ddcb_vaddr[prev_no];
357
358 memcpy(&req->debug_data.ddcb_finished, pddcb,
359 sizeof(req->debug_data.ddcb_finished));
360 memcpy(&req->debug_data.ddcb_prev, prev_pddcb,
361 sizeof(req->debug_data.ddcb_prev));
362 }
363 }
364
365 /**
366 * genwqe_check_ddcb_queue() - Checks DDCB queue for completed work equests.
367 * @cd: pointer to genwqe device descriptor
368 *
369 * Return: Number of DDCBs which were finished
370 */
371 static int genwqe_check_ddcb_queue(struct genwqe_dev *cd,
372 struct ddcb_queue *queue)
373 {
374 unsigned long flags;
375 int ddcbs_finished = 0;
376 struct pci_dev *pci_dev = cd->pci_dev;
377
378 spin_lock_irqsave(&queue->ddcb_lock, flags);
379
380 /* FIXME avoid soft locking CPU */
381 while (!queue_empty(queue) && (ddcbs_finished < queue->ddcb_max)) {
382
383 struct ddcb *pddcb;
384 struct ddcb_requ *req;
385 u16 vcrc, vcrc_16, retc_16;
386
387 pddcb = &queue->ddcb_vaddr[queue->ddcb_act];
388
389 if ((pddcb->icrc_hsi_shi_32 & DDCB_COMPLETED_BE32) ==
390 0x00000000)
391 goto go_home; /* not completed, continue waiting */
392
393 /* Note: DDCB could be purged */
394
395 req = queue->ddcb_req[queue->ddcb_act];
396 if (req == NULL) {
397 /* this occurs if DDCB is purged, not an error */
398 /* Move active DDCB further; Nothing to do anymore. */
399 goto pick_next_one;
400 }
401
402 /*
403 * HSI=0x44 (fetched and completed), but RETC is
404 * 0x101, or even worse 0x000.
405 *
406 * In case of seeing the queue in inconsistent state
407 * we read the errcnts and the queue status to provide
408 * a trigger for our PCIe analyzer stop capturing.
409 */
410 retc_16 = be16_to_cpu(pddcb->retc_16);
411 if ((pddcb->hsi == 0x44) && (retc_16 <= 0x101)) {
412 u64 errcnts, status;
413 u64 ddcb_offs = (u64)pddcb - (u64)queue->ddcb_vaddr;
414
415 errcnts = __genwqe_readq(cd, queue->IO_QUEUE_ERRCNTS);
416 status = __genwqe_readq(cd, queue->IO_QUEUE_STATUS);
417
418 dev_err(&pci_dev->dev,
419 "[%s] SEQN=%04x HSI=%02x RETC=%03x "
420 " Q_ERRCNTS=%016llx Q_STATUS=%016llx\n"
421 " DDCB_DMA_ADDR=%016llx\n",
422 __func__, be16_to_cpu(pddcb->seqnum_16),
423 pddcb->hsi, retc_16, errcnts, status,
424 queue->ddcb_daddr + ddcb_offs);
425 }
426
427 copy_ddcb_results(req, queue->ddcb_act);
428 queue->ddcb_req[queue->ddcb_act] = NULL; /* take from queue */
429
430 dev_dbg(&pci_dev->dev, "FINISHED DDCB#%d\n", req->num);
431 genwqe_hexdump(pci_dev, pddcb, sizeof(*pddcb));
432
433 ddcb_mark_finished(pddcb);
434
435 /* calculate CRC_16 to see if VCRC is correct */
436 vcrc = genwqe_crc16(pddcb->asv,
437 VCRC_LENGTH(req->cmd.asv_length),
438 0xffff);
439 vcrc_16 = be16_to_cpu(pddcb->vcrc_16);
440 if (vcrc != vcrc_16) {
441 printk_ratelimited(KERN_ERR
442 "%s %s: err: wrong VCRC pre=%02x vcrc_len=%d "
443 "bytes vcrc_data=%04x is not vcrc_card=%04x\n",
444 GENWQE_DEVNAME, dev_name(&pci_dev->dev),
445 pddcb->pre, VCRC_LENGTH(req->cmd.asv_length),
446 vcrc, vcrc_16);
447 }
448
449 ddcb_requ_set_state(req, GENWQE_REQU_FINISHED);
450 queue->ddcbs_completed++;
451 queue->ddcbs_in_flight--;
452
453 /* wake up process waiting for this DDCB */
454 wake_up_interruptible(&queue->ddcb_waitqs[queue->ddcb_act]);
455
456 pick_next_one:
457 queue->ddcb_act = (queue->ddcb_act + 1) % queue->ddcb_max;
458 ddcbs_finished++;
459 }
460
461 go_home:
462 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
463 return ddcbs_finished;
464 }
465
466 /**
467 * __genwqe_wait_ddcb(): Waits until DDCB is completed
468 * @cd: pointer to genwqe device descriptor
469 * @req: pointer to requsted DDCB parameters
470 *
471 * The Service Layer will update the RETC in DDCB when processing is
472 * pending or done.
473 *
474 * Return: > 0 remaining jiffies, DDCB completed
475 * -ETIMEDOUT when timeout
476 * -ERESTARTSYS when ^C
477 * -EINVAL when unknown error condition
478 *
479 * When an error is returned the called needs to ensure that
480 * purge_ddcb() is being called to get the &req removed from the
481 * queue.
482 */
483 int __genwqe_wait_ddcb(struct genwqe_dev *cd, struct ddcb_requ *req)
484 {
485 int rc;
486 unsigned int ddcb_no;
487 struct ddcb_queue *queue;
488 struct pci_dev *pci_dev = cd->pci_dev;
489
490 if (req == NULL)
491 return -EINVAL;
492
493 queue = req->queue;
494 if (queue == NULL)
495 return -EINVAL;
496
497 ddcb_no = req->num;
498 if (ddcb_no >= queue->ddcb_max)
499 return -EINVAL;
500
501 rc = wait_event_interruptible_timeout(queue->ddcb_waitqs[ddcb_no],
502 ddcb_requ_finished(cd, req),
503 genwqe_ddcb_software_timeout * HZ);
504
505 /*
506 * We need to distinguish 3 cases here:
507 * 1. rc == 0 timeout occured
508 * 2. rc == -ERESTARTSYS signal received
509 * 3. rc > 0 remaining jiffies condition is true
510 */
511 if (rc == 0) {
512 struct ddcb_queue *queue = req->queue;
513 struct ddcb *pddcb;
514
515 /*
516 * Timeout may be caused by long task switching time.
517 * When timeout happens, check if the request has
518 * meanwhile completed.
519 */
520 genwqe_check_ddcb_queue(cd, req->queue);
521 if (ddcb_requ_finished(cd, req))
522 return rc;
523
524 dev_err(&pci_dev->dev,
525 "[%s] err: DDCB#%d timeout rc=%d state=%d req @ %p\n",
526 __func__, req->num, rc, ddcb_requ_get_state(req),
527 req);
528 dev_err(&pci_dev->dev,
529 "[%s] IO_QUEUE_STATUS=0x%016llx\n", __func__,
530 __genwqe_readq(cd, queue->IO_QUEUE_STATUS));
531
532 pddcb = &queue->ddcb_vaddr[req->num];
533 genwqe_hexdump(pci_dev, pddcb, sizeof(*pddcb));
534
535 print_ddcb_info(cd, req->queue);
536 return -ETIMEDOUT;
537
538 } else if (rc == -ERESTARTSYS) {
539 return rc;
540 /*
541 * EINTR: Stops the application
542 * ERESTARTSYS: Restartable systemcall; called again
543 */
544
545 } else if (rc < 0) {
546 dev_err(&pci_dev->dev,
547 "[%s] err: DDCB#%d unknown result (rc=%d) %d!\n",
548 __func__, req->num, rc, ddcb_requ_get_state(req));
549 return -EINVAL;
550 }
551
552 /* Severe error occured. Driver is forced to stop operation */
553 if (cd->card_state != GENWQE_CARD_USED) {
554 dev_err(&pci_dev->dev,
555 "[%s] err: DDCB#%d forced to stop (rc=%d)\n",
556 __func__, req->num, rc);
557 return -EIO;
558 }
559 return rc;
560 }
561
562 /**
563 * get_next_ddcb() - Get next available DDCB
564 * @cd: pointer to genwqe device descriptor
565 *
566 * DDCB's content is completely cleared but presets for PRE and
567 * SEQNUM. This function must only be called when ddcb_lock is held.
568 *
569 * Return: NULL if no empty DDCB available otherwise ptr to next DDCB.
570 */
571 static struct ddcb *get_next_ddcb(struct genwqe_dev *cd,
572 struct ddcb_queue *queue,
573 int *num)
574 {
575 u64 *pu64;
576 struct ddcb *pddcb;
577
578 if (queue_free_ddcbs(queue) == 0) /* queue is full */
579 return NULL;
580
581 /* find new ddcb */
582 pddcb = &queue->ddcb_vaddr[queue->ddcb_next];
583
584 /* if it is not completed, we are not allowed to use it */
585 /* barrier(); */
586 if ((pddcb->icrc_hsi_shi_32 & DDCB_COMPLETED_BE32) == 0x00000000)
587 return NULL;
588
589 *num = queue->ddcb_next; /* internal DDCB number */
590 queue->ddcb_next = (queue->ddcb_next + 1) % queue->ddcb_max;
591
592 /* clear important DDCB fields */
593 pu64 = (u64 *)pddcb;
594 pu64[0] = 0ULL; /* offs 0x00 (ICRC,HSI,SHI,...) */
595 pu64[1] = 0ULL; /* offs 0x01 (ACFUNC,CMD...) */
596
597 /* destroy previous results in ASV */
598 pu64[0x80/8] = 0ULL; /* offs 0x80 (ASV + 0) */
599 pu64[0x88/8] = 0ULL; /* offs 0x88 (ASV + 0x08) */
600 pu64[0x90/8] = 0ULL; /* offs 0x90 (ASV + 0x10) */
601 pu64[0x98/8] = 0ULL; /* offs 0x98 (ASV + 0x18) */
602 pu64[0xd0/8] = 0ULL; /* offs 0xd0 (RETC,ATTN...) */
603
604 pddcb->pre = DDCB_PRESET_PRE; /* 128 */
605 pddcb->seqnum_16 = cpu_to_be16(queue->ddcb_seq++);
606 return pddcb;
607 }
608
609 /**
610 * __genwqe_purge_ddcb() - Remove a DDCB from the workqueue
611 * @cd: genwqe device descriptor
612 * @req: DDCB request
613 *
614 * This will fail when the request was already FETCHED. In this case
615 * we need to wait until it is finished. Else the DDCB can be
616 * reused. This function also ensures that the request data structure
617 * is removed from ddcb_req[].
618 *
619 * Do not forget to call this function when genwqe_wait_ddcb() fails,
620 * such that the request gets really removed from ddcb_req[].
621 *
622 * Return: 0 success
623 */
624 int __genwqe_purge_ddcb(struct genwqe_dev *cd, struct ddcb_requ *req)
625 {
626 struct ddcb *pddcb = NULL;
627 unsigned int t;
628 unsigned long flags;
629 struct ddcb_queue *queue = req->queue;
630 struct pci_dev *pci_dev = cd->pci_dev;
631 u64 queue_status;
632 __be32 icrc_hsi_shi = 0x0000;
633 __be32 old, new;
634
635 /* unsigned long flags; */
636 if (genwqe_ddcb_software_timeout <= 0) {
637 dev_err(&pci_dev->dev,
638 "[%s] err: software timeout is not set!\n", __func__);
639 return -EFAULT;
640 }
641
642 pddcb = &queue->ddcb_vaddr[req->num];
643
644 for (t = 0; t < genwqe_ddcb_software_timeout * 10; t++) {
645
646 spin_lock_irqsave(&queue->ddcb_lock, flags);
647
648 /* Check if req was meanwhile finished */
649 if (ddcb_requ_get_state(req) == GENWQE_REQU_FINISHED)
650 goto go_home;
651
652 /* try to set PURGE bit if FETCHED/COMPLETED are not set */
653 old = pddcb->icrc_hsi_shi_32; /* read SHI/HSI in BE32 */
654 if ((old & DDCB_FETCHED_BE32) == 0x00000000) {
655
656 new = (old | DDCB_PURGE_BE32);
657 icrc_hsi_shi = cmpxchg(&pddcb->icrc_hsi_shi_32,
658 old, new);
659 if (icrc_hsi_shi == old)
660 goto finish_ddcb;
661 }
662
663 /* normal finish with HSI bit */
664 barrier();
665 icrc_hsi_shi = pddcb->icrc_hsi_shi_32;
666 if (icrc_hsi_shi & DDCB_COMPLETED_BE32)
667 goto finish_ddcb;
668
669 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
670
671 /*
672 * Here the check_ddcb() function will most likely
673 * discover this DDCB to be finished some point in
674 * time. It will mark the req finished and free it up
675 * in the list.
676 */
677
678 copy_ddcb_results(req, req->num); /* for the failing case */
679 msleep(100); /* sleep for 1/10 second and try again */
680 continue;
681
682 finish_ddcb:
683 copy_ddcb_results(req, req->num);
684 ddcb_requ_set_state(req, GENWQE_REQU_FINISHED);
685 queue->ddcbs_in_flight--;
686 queue->ddcb_req[req->num] = NULL; /* delete from array */
687 ddcb_mark_cleared(pddcb);
688
689 /* Move active DDCB further; Nothing to do here anymore. */
690
691 /*
692 * We need to ensure that there is at least one free
693 * DDCB in the queue. To do that, we must update
694 * ddcb_act only if the COMPLETED bit is set for the
695 * DDCB we are working on else we treat that DDCB even
696 * if we PURGED it as occupied (hardware is supposed
697 * to set the COMPLETED bit yet!).
698 */
699 icrc_hsi_shi = pddcb->icrc_hsi_shi_32;
700 if ((icrc_hsi_shi & DDCB_COMPLETED_BE32) &&
701 (queue->ddcb_act == req->num)) {
702 queue->ddcb_act = ((queue->ddcb_act + 1) %
703 queue->ddcb_max);
704 }
705 go_home:
706 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
707 return 0;
708 }
709
710 /*
711 * If the card is dead and the queue is forced to stop, we
712 * might see this in the queue status register.
713 */
714 queue_status = __genwqe_readq(cd, queue->IO_QUEUE_STATUS);
715
716 dev_dbg(&pci_dev->dev, "UN/FINISHED DDCB#%d\n", req->num);
717 genwqe_hexdump(pci_dev, pddcb, sizeof(*pddcb));
718
719 dev_err(&pci_dev->dev,
720 "[%s] err: DDCB#%d not purged and not completed "
721 "after %d seconds QSTAT=%016llx!!\n",
722 __func__, req->num, genwqe_ddcb_software_timeout,
723 queue_status);
724
725 print_ddcb_info(cd, req->queue);
726
727 return -EFAULT;
728 }
729
730 int genwqe_init_debug_data(struct genwqe_dev *cd, struct genwqe_debug_data *d)
731 {
732 int len;
733 struct pci_dev *pci_dev = cd->pci_dev;
734
735 if (d == NULL) {
736 dev_err(&pci_dev->dev,
737 "[%s] err: invalid memory for debug data!\n",
738 __func__);
739 return -EFAULT;
740 }
741
742 len = sizeof(d->driver_version);
743 snprintf(d->driver_version, len, "%s", DRV_VERS_STRING);
744 d->slu_unitcfg = cd->slu_unitcfg;
745 d->app_unitcfg = cd->app_unitcfg;
746 return 0;
747 }
748
749 /**
750 * __genwqe_enqueue_ddcb() - Enqueue a DDCB
751 * @cd: pointer to genwqe device descriptor
752 * @req: pointer to DDCB execution request
753 *
754 * Return: 0 if enqueuing succeeded
755 * -EIO if card is unusable/PCIe problems
756 * -EBUSY if enqueuing failed
757 */
758 int __genwqe_enqueue_ddcb(struct genwqe_dev *cd, struct ddcb_requ *req)
759 {
760 struct ddcb *pddcb;
761 unsigned long flags;
762 struct ddcb_queue *queue;
763 struct pci_dev *pci_dev = cd->pci_dev;
764 u16 icrc;
765
766 if (cd->card_state != GENWQE_CARD_USED) {
767 printk_ratelimited(KERN_ERR
768 "%s %s: [%s] Card is unusable/PCIe problem Req#%d\n",
769 GENWQE_DEVNAME, dev_name(&pci_dev->dev),
770 __func__, req->num);
771 return -EIO;
772 }
773
774 queue = req->queue = &cd->queue;
775
776 /* FIXME circumvention to improve performance when no irq is
777 * there.
778 */
779 if (genwqe_polling_enabled)
780 genwqe_check_ddcb_queue(cd, queue);
781
782 /*
783 * It must be ensured to process all DDCBs in successive
784 * order. Use a lock here in order to prevent nested DDCB
785 * enqueuing.
786 */
787 spin_lock_irqsave(&queue->ddcb_lock, flags);
788
789 pddcb = get_next_ddcb(cd, queue, &req->num); /* get ptr and num */
790 if (pddcb == NULL) {
791 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
792 queue->busy++;
793 return -EBUSY;
794 }
795
796 if (queue->ddcb_req[req->num] != NULL) {
797 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
798
799 dev_err(&pci_dev->dev,
800 "[%s] picked DDCB %d with req=%p still in use!!\n",
801 __func__, req->num, req);
802 return -EFAULT;
803 }
804 ddcb_requ_set_state(req, GENWQE_REQU_ENQUEUED);
805 queue->ddcb_req[req->num] = req;
806
807 pddcb->cmdopts_16 = cpu_to_be16(req->cmd.cmdopts);
808 pddcb->cmd = req->cmd.cmd;
809 pddcb->acfunc = req->cmd.acfunc; /* functional unit */
810
811 /*
812 * We know that we can get retc 0x104 with CRC error, do not
813 * stop the queue in those cases for this command. XDIR = 1
814 * does not work for old SLU versions.
815 *
816 * Last bitstream with the old XDIR behavior had SLU_ID
817 * 0x34199.
818 */
819 if ((cd->slu_unitcfg & 0xFFFF0ull) > 0x34199ull)
820 pddcb->xdir = 0x1;
821 else
822 pddcb->xdir = 0x0;
823
824
825 pddcb->psp = (((req->cmd.asiv_length / 8) << 4) |
826 ((req->cmd.asv_length / 8)));
827 pddcb->disp_ts_64 = cpu_to_be64(req->cmd.disp_ts);
828
829 /*
830 * If copying the whole DDCB_ASIV_LENGTH is impacting
831 * performance we need to change it to
832 * req->cmd.asiv_length. But simulation benefits from some
833 * non-architectured bits behind the architectured content.
834 *
835 * How much data is copied depends on the availability of the
836 * ATS field, which was introduced late. If the ATS field is
837 * supported ASIV is 8 bytes shorter than it used to be. Since
838 * the ATS field is copied too, the code should do exactly
839 * what it did before, but I wanted to make copying of the ATS
840 * field very explicit.
841 */
842 if (genwqe_get_slu_id(cd) <= 0x2) {
843 memcpy(&pddcb->__asiv[0], /* destination */
844 &req->cmd.__asiv[0], /* source */
845 DDCB_ASIV_LENGTH); /* req->cmd.asiv_length */
846 } else {
847 pddcb->n.ats_64 = cpu_to_be64(req->cmd.ats);
848 memcpy(&pddcb->n.asiv[0], /* destination */
849 &req->cmd.asiv[0], /* source */
850 DDCB_ASIV_LENGTH_ATS); /* req->cmd.asiv_length */
851 }
852
853 pddcb->icrc_hsi_shi_32 = cpu_to_be32(0x00000000); /* for crc */
854
855 /*
856 * Calculate CRC_16 for corresponding range PSP(7:4). Include
857 * empty 4 bytes prior to the data.
858 */
859 icrc = genwqe_crc16((const u8 *)pddcb,
860 ICRC_LENGTH(req->cmd.asiv_length), 0xffff);
861 pddcb->icrc_hsi_shi_32 = cpu_to_be32((u32)icrc << 16);
862
863 /* enable DDCB completion irq */
864 if (!genwqe_polling_enabled)
865 pddcb->icrc_hsi_shi_32 |= DDCB_INTR_BE32;
866
867 dev_dbg(&pci_dev->dev, "INPUT DDCB#%d\n", req->num);
868 genwqe_hexdump(pci_dev, pddcb, sizeof(*pddcb));
869
870 if (ddcb_requ_collect_debug_data(req)) {
871 /* use the kernel copy of debug data. copying back to
872 user buffer happens later */
873
874 genwqe_init_debug_data(cd, &req->debug_data);
875 memcpy(&req->debug_data.ddcb_before, pddcb,
876 sizeof(req->debug_data.ddcb_before));
877 }
878
879 enqueue_ddcb(cd, queue, pddcb, req->num);
880 queue->ddcbs_in_flight++;
881
882 if (queue->ddcbs_in_flight > queue->ddcbs_max_in_flight)
883 queue->ddcbs_max_in_flight = queue->ddcbs_in_flight;
884
885 ddcb_requ_set_state(req, GENWQE_REQU_TAPPED);
886 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
887 wake_up_interruptible(&cd->queue_waitq);
888
889 return 0;
890 }
891
892 /**
893 * __genwqe_execute_raw_ddcb() - Setup and execute DDCB
894 * @cd: pointer to genwqe device descriptor
895 * @req: user provided DDCB request
896 */
897 int __genwqe_execute_raw_ddcb(struct genwqe_dev *cd,
898 struct genwqe_ddcb_cmd *cmd)
899 {
900 int rc = 0;
901 struct pci_dev *pci_dev = cd->pci_dev;
902 struct ddcb_requ *req = container_of(cmd, struct ddcb_requ, cmd);
903
904 if (cmd->asiv_length > DDCB_ASIV_LENGTH) {
905 dev_err(&pci_dev->dev, "[%s] err: wrong asiv_length of %d\n",
906 __func__, cmd->asiv_length);
907 return -EINVAL;
908 }
909 if (cmd->asv_length > DDCB_ASV_LENGTH) {
910 dev_err(&pci_dev->dev, "[%s] err: wrong asv_length of %d\n",
911 __func__, cmd->asiv_length);
912 return -EINVAL;
913 }
914 rc = __genwqe_enqueue_ddcb(cd, req);
915 if (rc != 0)
916 return rc;
917
918 rc = __genwqe_wait_ddcb(cd, req);
919 if (rc < 0) /* error or signal interrupt */
920 goto err_exit;
921
922 if (ddcb_requ_collect_debug_data(req)) {
923 if (copy_to_user((struct genwqe_debug_data __user *)
924 (unsigned long)cmd->ddata_addr,
925 &req->debug_data,
926 sizeof(struct genwqe_debug_data)))
927 return -EFAULT;
928 }
929
930 /*
931 * Higher values than 0x102 indicate completion with faults,
932 * lower values than 0x102 indicate processing faults. Note
933 * that DDCB might have been purged. E.g. Cntl+C.
934 */
935 if (cmd->retc != DDCB_RETC_COMPLETE) {
936 /* This might happen e.g. flash read, and needs to be
937 handled by the upper layer code. */
938 rc = -EBADMSG; /* not processed/error retc */
939 }
940
941 return rc;
942
943 err_exit:
944 __genwqe_purge_ddcb(cd, req);
945
946 if (ddcb_requ_collect_debug_data(req)) {
947 if (copy_to_user((struct genwqe_debug_data __user *)
948 (unsigned long)cmd->ddata_addr,
949 &req->debug_data,
950 sizeof(struct genwqe_debug_data)))
951 return -EFAULT;
952 }
953 return rc;
954 }
955
956 /**
957 * genwqe_next_ddcb_ready() - Figure out if the next DDCB is already finished
958 *
959 * We use this as condition for our wait-queue code.
960 */
961 static int genwqe_next_ddcb_ready(struct genwqe_dev *cd)
962 {
963 unsigned long flags;
964 struct ddcb *pddcb;
965 struct ddcb_queue *queue = &cd->queue;
966
967 spin_lock_irqsave(&queue->ddcb_lock, flags);
968
969 if (queue_empty(queue)) { /* emtpy queue */
970 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
971 return 0;
972 }
973
974 pddcb = &queue->ddcb_vaddr[queue->ddcb_act];
975 if (pddcb->icrc_hsi_shi_32 & DDCB_COMPLETED_BE32) { /* ddcb ready */
976 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
977 return 1;
978 }
979
980 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
981 return 0;
982 }
983
984 /**
985 * genwqe_ddcbs_in_flight() - Check how many DDCBs are in flight
986 *
987 * Keep track on the number of DDCBs which ware currently in the
988 * queue. This is needed for statistics as well as conditon if we want
989 * to wait or better do polling in case of no interrupts available.
990 */
991 int genwqe_ddcbs_in_flight(struct genwqe_dev *cd)
992 {
993 unsigned long flags;
994 int ddcbs_in_flight = 0;
995 struct ddcb_queue *queue = &cd->queue;
996
997 spin_lock_irqsave(&queue->ddcb_lock, flags);
998 ddcbs_in_flight += queue->ddcbs_in_flight;
999 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
1000
1001 return ddcbs_in_flight;
1002 }
1003
1004 static int setup_ddcb_queue(struct genwqe_dev *cd, struct ddcb_queue *queue)
1005 {
1006 int rc, i;
1007 struct ddcb *pddcb;
1008 u64 val64;
1009 unsigned int queue_size;
1010 struct pci_dev *pci_dev = cd->pci_dev;
1011
1012 if (genwqe_ddcb_max < 2)
1013 return -EINVAL;
1014
1015 queue_size = roundup(genwqe_ddcb_max * sizeof(struct ddcb), PAGE_SIZE);
1016
1017 queue->ddcbs_in_flight = 0; /* statistics */
1018 queue->ddcbs_max_in_flight = 0;
1019 queue->ddcbs_completed = 0;
1020 queue->busy = 0;
1021
1022 queue->ddcb_seq = 0x100; /* start sequence number */
1023 queue->ddcb_max = genwqe_ddcb_max; /* module parameter */
1024 queue->ddcb_vaddr = __genwqe_alloc_consistent(cd, queue_size,
1025 &queue->ddcb_daddr);
1026 if (queue->ddcb_vaddr == NULL) {
1027 dev_err(&pci_dev->dev,
1028 "[%s] **err: could not allocate DDCB **\n", __func__);
1029 return -ENOMEM;
1030 }
1031 memset(queue->ddcb_vaddr, 0, queue_size);
1032
1033 queue->ddcb_req = kzalloc(sizeof(struct ddcb_requ *) *
1034 queue->ddcb_max, GFP_KERNEL);
1035 if (!queue->ddcb_req) {
1036 rc = -ENOMEM;
1037 goto free_ddcbs;
1038 }
1039
1040 queue->ddcb_waitqs = kzalloc(sizeof(wait_queue_head_t) *
1041 queue->ddcb_max, GFP_KERNEL);
1042 if (!queue->ddcb_waitqs) {
1043 rc = -ENOMEM;
1044 goto free_requs;
1045 }
1046
1047 for (i = 0; i < queue->ddcb_max; i++) {
1048 pddcb = &queue->ddcb_vaddr[i]; /* DDCBs */
1049 pddcb->icrc_hsi_shi_32 = DDCB_COMPLETED_BE32;
1050 pddcb->retc_16 = cpu_to_be16(0xfff);
1051
1052 queue->ddcb_req[i] = NULL; /* requests */
1053 init_waitqueue_head(&queue->ddcb_waitqs[i]); /* waitqueues */
1054 }
1055
1056 queue->ddcb_act = 0;
1057 queue->ddcb_next = 0; /* queue is empty */
1058
1059 spin_lock_init(&queue->ddcb_lock);
1060 init_waitqueue_head(&queue->ddcb_waitq);
1061
1062 val64 = ((u64)(queue->ddcb_max - 1) << 8); /* lastptr */
1063 __genwqe_writeq(cd, queue->IO_QUEUE_CONFIG, 0x07); /* iCRC/vCRC */
1064 __genwqe_writeq(cd, queue->IO_QUEUE_SEGMENT, queue->ddcb_daddr);
1065 __genwqe_writeq(cd, queue->IO_QUEUE_INITSQN, queue->ddcb_seq);
1066 __genwqe_writeq(cd, queue->IO_QUEUE_WRAP, val64);
1067 return 0;
1068
1069 free_requs:
1070 kfree(queue->ddcb_req);
1071 queue->ddcb_req = NULL;
1072 free_ddcbs:
1073 __genwqe_free_consistent(cd, queue_size, queue->ddcb_vaddr,
1074 queue->ddcb_daddr);
1075 queue->ddcb_vaddr = NULL;
1076 queue->ddcb_daddr = 0ull;
1077 return -ENODEV;
1078
1079 }
1080
1081 static int ddcb_queue_initialized(struct ddcb_queue *queue)
1082 {
1083 return queue->ddcb_vaddr != NULL;
1084 }
1085
1086 static void free_ddcb_queue(struct genwqe_dev *cd, struct ddcb_queue *queue)
1087 {
1088 unsigned int queue_size;
1089
1090 queue_size = roundup(queue->ddcb_max * sizeof(struct ddcb), PAGE_SIZE);
1091
1092 kfree(queue->ddcb_req);
1093 queue->ddcb_req = NULL;
1094
1095 if (queue->ddcb_vaddr) {
1096 __genwqe_free_consistent(cd, queue_size, queue->ddcb_vaddr,
1097 queue->ddcb_daddr);
1098 queue->ddcb_vaddr = NULL;
1099 queue->ddcb_daddr = 0ull;
1100 }
1101 }
1102
1103 static irqreturn_t genwqe_pf_isr(int irq, void *dev_id)
1104 {
1105 u64 gfir;
1106 struct genwqe_dev *cd = (struct genwqe_dev *)dev_id;
1107 struct pci_dev *pci_dev = cd->pci_dev;
1108
1109 /*
1110 * In case of fatal FIR error the queue is stopped, such that
1111 * we can safely check it without risking anything.
1112 */
1113 cd->irqs_processed++;
1114 wake_up_interruptible(&cd->queue_waitq);
1115
1116 /*
1117 * Checking for errors before kicking the queue might be
1118 * safer, but slower for the good-case ... See above.
1119 */
1120 gfir = __genwqe_readq(cd, IO_SLC_CFGREG_GFIR);
1121 if ((gfir & GFIR_ERR_TRIGGER) != 0x0) {
1122
1123 wake_up_interruptible(&cd->health_waitq);
1124
1125 /*
1126 * By default GFIRs causes recovery actions. This
1127 * count is just for debug when recovery is masked.
1128 */
1129 printk_ratelimited(KERN_ERR
1130 "%s %s: [%s] GFIR=%016llx\n",
1131 GENWQE_DEVNAME, dev_name(&pci_dev->dev),
1132 __func__, gfir);
1133 }
1134
1135 return IRQ_HANDLED;
1136 }
1137
1138 static irqreturn_t genwqe_vf_isr(int irq, void *dev_id)
1139 {
1140 struct genwqe_dev *cd = (struct genwqe_dev *)dev_id;
1141
1142 cd->irqs_processed++;
1143 wake_up_interruptible(&cd->queue_waitq);
1144
1145 return IRQ_HANDLED;
1146 }
1147
1148 /**
1149 * genwqe_card_thread() - Work thread for the DDCB queue
1150 *
1151 * The idea is to check if there are DDCBs in processing. If there are
1152 * some finished DDCBs, we process them and wakeup the
1153 * requestors. Otherwise we give other processes time using
1154 * cond_resched().
1155 */
1156 static int genwqe_card_thread(void *data)
1157 {
1158 int should_stop = 0, rc = 0;
1159 struct genwqe_dev *cd = (struct genwqe_dev *)data;
1160
1161 while (!kthread_should_stop()) {
1162
1163 genwqe_check_ddcb_queue(cd, &cd->queue);
1164
1165 if (genwqe_polling_enabled) {
1166 rc = wait_event_interruptible_timeout(
1167 cd->queue_waitq,
1168 genwqe_ddcbs_in_flight(cd) ||
1169 (should_stop = kthread_should_stop()), 1);
1170 } else {
1171 rc = wait_event_interruptible_timeout(
1172 cd->queue_waitq,
1173 genwqe_next_ddcb_ready(cd) ||
1174 (should_stop = kthread_should_stop()), HZ);
1175 }
1176 if (should_stop)
1177 break;
1178
1179 /*
1180 * Avoid soft lockups on heavy loads; we do not want
1181 * to disable our interrupts.
1182 */
1183 cond_resched();
1184 }
1185 return 0;
1186 }
1187
1188 /**
1189 * genwqe_setup_service_layer() - Setup DDCB queue
1190 * @cd: pointer to genwqe device descriptor
1191 *
1192 * Allocate DDCBs. Configure Service Layer Controller (SLC).
1193 *
1194 * Return: 0 success
1195 */
1196 int genwqe_setup_service_layer(struct genwqe_dev *cd)
1197 {
1198 int rc;
1199 struct ddcb_queue *queue;
1200 struct pci_dev *pci_dev = cd->pci_dev;
1201
1202 if (genwqe_is_privileged(cd)) {
1203 rc = genwqe_card_reset(cd);
1204 if (rc < 0) {
1205 dev_err(&pci_dev->dev,
1206 "[%s] err: reset failed.\n", __func__);
1207 return rc;
1208 }
1209 genwqe_read_softreset(cd);
1210 }
1211
1212 queue = &cd->queue;
1213 queue->IO_QUEUE_CONFIG = IO_SLC_QUEUE_CONFIG;
1214 queue->IO_QUEUE_STATUS = IO_SLC_QUEUE_STATUS;
1215 queue->IO_QUEUE_SEGMENT = IO_SLC_QUEUE_SEGMENT;
1216 queue->IO_QUEUE_INITSQN = IO_SLC_QUEUE_INITSQN;
1217 queue->IO_QUEUE_OFFSET = IO_SLC_QUEUE_OFFSET;
1218 queue->IO_QUEUE_WRAP = IO_SLC_QUEUE_WRAP;
1219 queue->IO_QUEUE_WTIME = IO_SLC_QUEUE_WTIME;
1220 queue->IO_QUEUE_ERRCNTS = IO_SLC_QUEUE_ERRCNTS;
1221 queue->IO_QUEUE_LRW = IO_SLC_QUEUE_LRW;
1222
1223 rc = setup_ddcb_queue(cd, queue);
1224 if (rc != 0) {
1225 rc = -ENODEV;
1226 goto err_out;
1227 }
1228
1229 init_waitqueue_head(&cd->queue_waitq);
1230 cd->card_thread = kthread_run(genwqe_card_thread, cd,
1231 GENWQE_DEVNAME "%d_thread",
1232 cd->card_idx);
1233 if (IS_ERR(cd->card_thread)) {
1234 rc = PTR_ERR(cd->card_thread);
1235 cd->card_thread = NULL;
1236 goto stop_free_queue;
1237 }
1238
1239 rc = genwqe_set_interrupt_capability(cd, GENWQE_MSI_IRQS);
1240 if (rc > 0)
1241 rc = genwqe_set_interrupt_capability(cd, rc);
1242 if (rc != 0) {
1243 rc = -ENODEV;
1244 goto stop_kthread;
1245 }
1246
1247 /*
1248 * We must have all wait-queues initialized when we enable the
1249 * interrupts. Otherwise we might crash if we get an early
1250 * irq.
1251 */
1252 init_waitqueue_head(&cd->health_waitq);
1253
1254 if (genwqe_is_privileged(cd)) {
1255 rc = request_irq(pci_dev->irq, genwqe_pf_isr, IRQF_SHARED,
1256 GENWQE_DEVNAME, cd);
1257 } else {
1258 rc = request_irq(pci_dev->irq, genwqe_vf_isr, IRQF_SHARED,
1259 GENWQE_DEVNAME, cd);
1260 }
1261 if (rc < 0) {
1262 dev_err(&pci_dev->dev, "irq %d not free.\n", pci_dev->irq);
1263 goto stop_irq_cap;
1264 }
1265
1266 cd->card_state = GENWQE_CARD_USED;
1267 return 0;
1268
1269 stop_irq_cap:
1270 genwqe_reset_interrupt_capability(cd);
1271 stop_kthread:
1272 kthread_stop(cd->card_thread);
1273 cd->card_thread = NULL;
1274 stop_free_queue:
1275 free_ddcb_queue(cd, queue);
1276 err_out:
1277 return rc;
1278 }
1279
1280 /**
1281 * queue_wake_up_all() - Handles fatal error case
1282 *
1283 * The PCI device got unusable and we have to stop all pending
1284 * requests as fast as we can. The code after this must purge the
1285 * DDCBs in question and ensure that all mappings are freed.
1286 */
1287 static int queue_wake_up_all(struct genwqe_dev *cd)
1288 {
1289 unsigned int i;
1290 unsigned long flags;
1291 struct ddcb_queue *queue = &cd->queue;
1292
1293 spin_lock_irqsave(&queue->ddcb_lock, flags);
1294
1295 for (i = 0; i < queue->ddcb_max; i++)
1296 wake_up_interruptible(&queue->ddcb_waitqs[queue->ddcb_act]);
1297
1298 spin_unlock_irqrestore(&queue->ddcb_lock, flags);
1299
1300 return 0;
1301 }
1302
1303 /**
1304 * genwqe_finish_queue() - Remove any genwqe devices and user-interfaces
1305 *
1306 * Relies on the pre-condition that there are no users of the card
1307 * device anymore e.g. with open file-descriptors.
1308 *
1309 * This function must be robust enough to be called twice.
1310 */
1311 int genwqe_finish_queue(struct genwqe_dev *cd)
1312 {
1313 int i, rc = 0, in_flight;
1314 int waitmax = genwqe_ddcb_software_timeout;
1315 struct pci_dev *pci_dev = cd->pci_dev;
1316 struct ddcb_queue *queue = &cd->queue;
1317
1318 if (!ddcb_queue_initialized(queue))
1319 return 0;
1320
1321 /* Do not wipe out the error state. */
1322 if (cd->card_state == GENWQE_CARD_USED)
1323 cd->card_state = GENWQE_CARD_UNUSED;
1324
1325 /* Wake up all requests in the DDCB queue such that they
1326 should be removed nicely. */
1327 queue_wake_up_all(cd);
1328
1329 /* We must wait to get rid of the DDCBs in flight */
1330 for (i = 0; i < waitmax; i++) {
1331 in_flight = genwqe_ddcbs_in_flight(cd);
1332
1333 if (in_flight == 0)
1334 break;
1335
1336 dev_dbg(&pci_dev->dev,
1337 " DEBUG [%d/%d] waiting for queue to get empty: "
1338 "%d requests!\n", i, waitmax, in_flight);
1339
1340 /*
1341 * Severe severe error situation: The card itself has
1342 * 16 DDCB queues, each queue has e.g. 32 entries,
1343 * each DDBC has a hardware timeout of currently 250
1344 * msec but the PFs have a hardware timeout of 8 sec
1345 * ... so I take something large.
1346 */
1347 msleep(1000);
1348 }
1349 if (i == waitmax) {
1350 dev_err(&pci_dev->dev, " [%s] err: queue is not empty!!\n",
1351 __func__);
1352 rc = -EIO;
1353 }
1354 return rc;
1355 }
1356
1357 /**
1358 * genwqe_release_service_layer() - Shutdown DDCB queue
1359 * @cd: genwqe device descriptor
1360 *
1361 * This function must be robust enough to be called twice.
1362 */
1363 int genwqe_release_service_layer(struct genwqe_dev *cd)
1364 {
1365 struct pci_dev *pci_dev = cd->pci_dev;
1366
1367 if (!ddcb_queue_initialized(&cd->queue))
1368 return 1;
1369
1370 free_irq(pci_dev->irq, cd);
1371 genwqe_reset_interrupt_capability(cd);
1372
1373 if (cd->card_thread != NULL) {
1374 kthread_stop(cd->card_thread);
1375 cd->card_thread = NULL;
1376 }
1377
1378 free_ddcb_queue(cd, &cd->queue);
1379 return 0;
1380 }
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