[S390] zcrypt: Fix possible dead lock in AP bus module.
[deliverable/linux.git] / drivers / s390 / crypto / ap_bus.c
1 /*
2 * linux/drivers/s390/crypto/ap_bus.c
3 *
4 * Copyright (C) 2006 IBM Corporation
5 * Author(s): Cornelia Huck <cornelia.huck@de.ibm.com>
6 * Martin Schwidefsky <schwidefsky@de.ibm.com>
7 * Ralph Wuerthner <rwuerthn@de.ibm.com>
8 *
9 * Adjunct processor bus.
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 as published by
13 * the Free Software Foundation; either version 2, or (at your option)
14 * any later version.
15 *
16 * This program is distributed in the hope that it will be useful,
17 * but WITHOUT ANY WARRANTY; without even the implied warranty of
18 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 * GNU General Public License for more details.
20 *
21 * You should have received a copy of the GNU General Public License
22 * along with this program; if not, write to the Free Software
23 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
24 */
25
26 #include <linux/module.h>
27 #include <linux/init.h>
28 #include <linux/delay.h>
29 #include <linux/err.h>
30 #include <linux/interrupt.h>
31 #include <linux/workqueue.h>
32 #include <linux/notifier.h>
33 #include <linux/kthread.h>
34 #include <linux/mutex.h>
35 #include <asm/s390_rdev.h>
36 #include <asm/reset.h>
37
38 #include "ap_bus.h"
39
40 /* Some prototypes. */
41 static void ap_scan_bus(struct work_struct *);
42 static void ap_poll_all(unsigned long);
43 static void ap_poll_timeout(unsigned long);
44 static int ap_poll_thread_start(void);
45 static void ap_poll_thread_stop(void);
46
47 /**
48 * Module description.
49 */
50 MODULE_AUTHOR("IBM Corporation");
51 MODULE_DESCRIPTION("Adjunct Processor Bus driver, "
52 "Copyright 2006 IBM Corporation");
53 MODULE_LICENSE("GPL");
54
55 /**
56 * Module parameter
57 */
58 int ap_domain_index = -1; /* Adjunct Processor Domain Index */
59 module_param_named(domain, ap_domain_index, int, 0000);
60 MODULE_PARM_DESC(domain, "domain index for ap devices");
61 EXPORT_SYMBOL(ap_domain_index);
62
63 static int ap_thread_flag = 1;
64 module_param_named(poll_thread, ap_thread_flag, int, 0000);
65 MODULE_PARM_DESC(poll_thread, "Turn on/off poll thread, default is 1 (on).");
66
67 static struct device *ap_root_device = NULL;
68 static DEFINE_SPINLOCK(ap_device_lock);
69 static LIST_HEAD(ap_device_list);
70
71 /**
72 * Workqueue & timer for bus rescan.
73 */
74 static struct workqueue_struct *ap_work_queue;
75 static struct timer_list ap_config_timer;
76 static int ap_config_time = AP_CONFIG_TIME;
77 static DECLARE_WORK(ap_config_work, ap_scan_bus);
78
79 /**
80 * Tasklet & timer for AP request polling.
81 */
82 static struct timer_list ap_poll_timer = TIMER_INITIALIZER(ap_poll_timeout,0,0);
83 static DECLARE_TASKLET(ap_tasklet, ap_poll_all, 0);
84 static atomic_t ap_poll_requests = ATOMIC_INIT(0);
85 static DECLARE_WAIT_QUEUE_HEAD(ap_poll_wait);
86 static struct task_struct *ap_poll_kthread = NULL;
87 static DEFINE_MUTEX(ap_poll_thread_mutex);
88
89 /**
90 * Test if ap instructions are available.
91 *
92 * Returns 0 if the ap instructions are installed.
93 */
94 static inline int ap_instructions_available(void)
95 {
96 register unsigned long reg0 asm ("0") = AP_MKQID(0,0);
97 register unsigned long reg1 asm ("1") = -ENODEV;
98 register unsigned long reg2 asm ("2") = 0UL;
99
100 asm volatile(
101 " .long 0xb2af0000\n" /* PQAP(TAPQ) */
102 "0: la %1,0\n"
103 "1:\n"
104 EX_TABLE(0b, 1b)
105 : "+d" (reg0), "+d" (reg1), "+d" (reg2) : : "cc" );
106 return reg1;
107 }
108
109 /**
110 * Test adjunct processor queue.
111 * @qid: the ap queue number
112 * @queue_depth: pointer to queue depth value
113 * @device_type: pointer to device type value
114 *
115 * Returns ap queue status structure.
116 */
117 static inline struct ap_queue_status
118 ap_test_queue(ap_qid_t qid, int *queue_depth, int *device_type)
119 {
120 register unsigned long reg0 asm ("0") = qid;
121 register struct ap_queue_status reg1 asm ("1");
122 register unsigned long reg2 asm ("2") = 0UL;
123
124 asm volatile(".long 0xb2af0000" /* PQAP(TAPQ) */
125 : "+d" (reg0), "=d" (reg1), "+d" (reg2) : : "cc");
126 *device_type = (int) (reg2 >> 24);
127 *queue_depth = (int) (reg2 & 0xff);
128 return reg1;
129 }
130
131 /**
132 * Reset adjunct processor queue.
133 * @qid: the ap queue number
134 *
135 * Returns ap queue status structure.
136 */
137 static inline struct ap_queue_status ap_reset_queue(ap_qid_t qid)
138 {
139 register unsigned long reg0 asm ("0") = qid | 0x01000000UL;
140 register struct ap_queue_status reg1 asm ("1");
141 register unsigned long reg2 asm ("2") = 0UL;
142
143 asm volatile(
144 ".long 0xb2af0000" /* PQAP(RAPQ) */
145 : "+d" (reg0), "=d" (reg1), "+d" (reg2) : : "cc");
146 return reg1;
147 }
148
149 /**
150 * Send message to adjunct processor queue.
151 * @qid: the ap queue number
152 * @psmid: the program supplied message identifier
153 * @msg: the message text
154 * @length: the message length
155 *
156 * Returns ap queue status structure.
157 *
158 * Condition code 1 on NQAP can't happen because the L bit is 1.
159 *
160 * Condition code 2 on NQAP also means the send is incomplete,
161 * because a segment boundary was reached. The NQAP is repeated.
162 */
163 static inline struct ap_queue_status
164 __ap_send(ap_qid_t qid, unsigned long long psmid, void *msg, size_t length)
165 {
166 typedef struct { char _[length]; } msgblock;
167 register unsigned long reg0 asm ("0") = qid | 0x40000000UL;
168 register struct ap_queue_status reg1 asm ("1");
169 register unsigned long reg2 asm ("2") = (unsigned long) msg;
170 register unsigned long reg3 asm ("3") = (unsigned long) length;
171 register unsigned long reg4 asm ("4") = (unsigned int) (psmid >> 32);
172 register unsigned long reg5 asm ("5") = (unsigned int) psmid;
173
174 asm volatile (
175 "0: .long 0xb2ad0042\n" /* DQAP */
176 " brc 2,0b"
177 : "+d" (reg0), "=d" (reg1), "+d" (reg2), "+d" (reg3)
178 : "d" (reg4), "d" (reg5), "m" (*(msgblock *) msg)
179 : "cc" );
180 return reg1;
181 }
182
183 int ap_send(ap_qid_t qid, unsigned long long psmid, void *msg, size_t length)
184 {
185 struct ap_queue_status status;
186
187 status = __ap_send(qid, psmid, msg, length);
188 switch (status.response_code) {
189 case AP_RESPONSE_NORMAL:
190 return 0;
191 case AP_RESPONSE_Q_FULL:
192 return -EBUSY;
193 default: /* Device is gone. */
194 return -ENODEV;
195 }
196 }
197 EXPORT_SYMBOL(ap_send);
198
199 /*
200 * Receive message from adjunct processor queue.
201 * @qid: the ap queue number
202 * @psmid: pointer to program supplied message identifier
203 * @msg: the message text
204 * @length: the message length
205 *
206 * Returns ap queue status structure.
207 *
208 * Condition code 1 on DQAP means the receive has taken place
209 * but only partially. The response is incomplete, hence the
210 * DQAP is repeated.
211 *
212 * Condition code 2 on DQAP also means the receive is incomplete,
213 * this time because a segment boundary was reached. Again, the
214 * DQAP is repeated.
215 *
216 * Note that gpr2 is used by the DQAP instruction to keep track of
217 * any 'residual' length, in case the instruction gets interrupted.
218 * Hence it gets zeroed before the instruction.
219 */
220 static inline struct ap_queue_status
221 __ap_recv(ap_qid_t qid, unsigned long long *psmid, void *msg, size_t length)
222 {
223 typedef struct { char _[length]; } msgblock;
224 register unsigned long reg0 asm("0") = qid | 0x80000000UL;
225 register struct ap_queue_status reg1 asm ("1");
226 register unsigned long reg2 asm("2") = 0UL;
227 register unsigned long reg4 asm("4") = (unsigned long) msg;
228 register unsigned long reg5 asm("5") = (unsigned long) length;
229 register unsigned long reg6 asm("6") = 0UL;
230 register unsigned long reg7 asm("7") = 0UL;
231
232
233 asm volatile(
234 "0: .long 0xb2ae0064\n"
235 " brc 6,0b\n"
236 : "+d" (reg0), "=d" (reg1), "+d" (reg2),
237 "+d" (reg4), "+d" (reg5), "+d" (reg6), "+d" (reg7),
238 "=m" (*(msgblock *) msg) : : "cc" );
239 *psmid = (((unsigned long long) reg6) << 32) + reg7;
240 return reg1;
241 }
242
243 int ap_recv(ap_qid_t qid, unsigned long long *psmid, void *msg, size_t length)
244 {
245 struct ap_queue_status status;
246
247 status = __ap_recv(qid, psmid, msg, length);
248 switch (status.response_code) {
249 case AP_RESPONSE_NORMAL:
250 return 0;
251 case AP_RESPONSE_NO_PENDING_REPLY:
252 if (status.queue_empty)
253 return -ENOENT;
254 return -EBUSY;
255 default:
256 return -ENODEV;
257 }
258 }
259 EXPORT_SYMBOL(ap_recv);
260
261 /**
262 * Check if an AP queue is available. The test is repeated for
263 * AP_MAX_RESET times.
264 * @qid: the ap queue number
265 * @queue_depth: pointer to queue depth value
266 * @device_type: pointer to device type value
267 */
268 static int ap_query_queue(ap_qid_t qid, int *queue_depth, int *device_type)
269 {
270 struct ap_queue_status status;
271 int t_depth, t_device_type, rc, i;
272
273 rc = -EBUSY;
274 for (i = 0; i < AP_MAX_RESET; i++) {
275 status = ap_test_queue(qid, &t_depth, &t_device_type);
276 switch (status.response_code) {
277 case AP_RESPONSE_NORMAL:
278 *queue_depth = t_depth + 1;
279 *device_type = t_device_type;
280 rc = 0;
281 break;
282 case AP_RESPONSE_Q_NOT_AVAIL:
283 rc = -ENODEV;
284 break;
285 case AP_RESPONSE_RESET_IN_PROGRESS:
286 break;
287 case AP_RESPONSE_DECONFIGURED:
288 rc = -ENODEV;
289 break;
290 case AP_RESPONSE_CHECKSTOPPED:
291 rc = -ENODEV;
292 break;
293 case AP_RESPONSE_BUSY:
294 break;
295 default:
296 BUG();
297 }
298 if (rc != -EBUSY)
299 break;
300 if (i < AP_MAX_RESET - 1)
301 udelay(5);
302 }
303 return rc;
304 }
305
306 /**
307 * Reset an AP queue and wait for it to become available again.
308 * @qid: the ap queue number
309 */
310 static int ap_init_queue(ap_qid_t qid)
311 {
312 struct ap_queue_status status;
313 int rc, dummy, i;
314
315 rc = -ENODEV;
316 status = ap_reset_queue(qid);
317 for (i = 0; i < AP_MAX_RESET; i++) {
318 switch (status.response_code) {
319 case AP_RESPONSE_NORMAL:
320 if (status.queue_empty)
321 rc = 0;
322 break;
323 case AP_RESPONSE_Q_NOT_AVAIL:
324 case AP_RESPONSE_DECONFIGURED:
325 case AP_RESPONSE_CHECKSTOPPED:
326 i = AP_MAX_RESET; /* return with -ENODEV */
327 break;
328 case AP_RESPONSE_RESET_IN_PROGRESS:
329 case AP_RESPONSE_BUSY:
330 default:
331 break;
332 }
333 if (rc != -ENODEV)
334 break;
335 if (i < AP_MAX_RESET - 1) {
336 udelay(5);
337 status = ap_test_queue(qid, &dummy, &dummy);
338 }
339 }
340 return rc;
341 }
342
343 /**
344 * AP device related attributes.
345 */
346 static ssize_t ap_hwtype_show(struct device *dev,
347 struct device_attribute *attr, char *buf)
348 {
349 struct ap_device *ap_dev = to_ap_dev(dev);
350 return snprintf(buf, PAGE_SIZE, "%d\n", ap_dev->device_type);
351 }
352 static DEVICE_ATTR(hwtype, 0444, ap_hwtype_show, NULL);
353
354 static ssize_t ap_depth_show(struct device *dev, struct device_attribute *attr,
355 char *buf)
356 {
357 struct ap_device *ap_dev = to_ap_dev(dev);
358 return snprintf(buf, PAGE_SIZE, "%d\n", ap_dev->queue_depth);
359 }
360 static DEVICE_ATTR(depth, 0444, ap_depth_show, NULL);
361
362 static ssize_t ap_request_count_show(struct device *dev,
363 struct device_attribute *attr,
364 char *buf)
365 {
366 struct ap_device *ap_dev = to_ap_dev(dev);
367 int rc;
368
369 spin_lock_bh(&ap_dev->lock);
370 rc = snprintf(buf, PAGE_SIZE, "%d\n", ap_dev->total_request_count);
371 spin_unlock_bh(&ap_dev->lock);
372 return rc;
373 }
374
375 static DEVICE_ATTR(request_count, 0444, ap_request_count_show, NULL);
376
377 static ssize_t ap_modalias_show(struct device *dev,
378 struct device_attribute *attr, char *buf)
379 {
380 return sprintf(buf, "ap:t%02X", to_ap_dev(dev)->device_type);
381 }
382
383 static DEVICE_ATTR(modalias, 0444, ap_modalias_show, NULL);
384
385 static struct attribute *ap_dev_attrs[] = {
386 &dev_attr_hwtype.attr,
387 &dev_attr_depth.attr,
388 &dev_attr_request_count.attr,
389 &dev_attr_modalias.attr,
390 NULL
391 };
392 static struct attribute_group ap_dev_attr_group = {
393 .attrs = ap_dev_attrs
394 };
395
396 /**
397 * AP bus driver registration/unregistration.
398 */
399 static int ap_bus_match(struct device *dev, struct device_driver *drv)
400 {
401 struct ap_device *ap_dev = to_ap_dev(dev);
402 struct ap_driver *ap_drv = to_ap_drv(drv);
403 struct ap_device_id *id;
404
405 /**
406 * Compare device type of the device with the list of
407 * supported types of the device_driver.
408 */
409 for (id = ap_drv->ids; id->match_flags; id++) {
410 if ((id->match_flags & AP_DEVICE_ID_MATCH_DEVICE_TYPE) &&
411 (id->dev_type != ap_dev->device_type))
412 continue;
413 return 1;
414 }
415 return 0;
416 }
417
418 /**
419 * uevent function for AP devices. It sets up a single environment
420 * variable DEV_TYPE which contains the hardware device type.
421 */
422 static int ap_uevent (struct device *dev, char **envp, int num_envp,
423 char *buffer, int buffer_size)
424 {
425 struct ap_device *ap_dev = to_ap_dev(dev);
426 int length;
427
428 if (!ap_dev)
429 return -ENODEV;
430
431 /* Set up DEV_TYPE environment variable. */
432 envp[0] = buffer;
433 length = scnprintf(buffer, buffer_size, "DEV_TYPE=%04X",
434 ap_dev->device_type);
435 if (buffer_size - length <= 0)
436 return -ENOMEM;
437 buffer += length;
438 buffer_size -= length;
439 /* Add MODALIAS= */
440 envp[1] = buffer;
441 length = scnprintf(buffer, buffer_size, "MODALIAS=ap:t%02X",
442 ap_dev->device_type);
443 if (buffer_size - length <= 0)
444 return -ENOMEM;
445 envp[2] = NULL;
446 return 0;
447 }
448
449 static struct bus_type ap_bus_type = {
450 .name = "ap",
451 .match = &ap_bus_match,
452 .uevent = &ap_uevent,
453 };
454
455 static int ap_device_probe(struct device *dev)
456 {
457 struct ap_device *ap_dev = to_ap_dev(dev);
458 struct ap_driver *ap_drv = to_ap_drv(dev->driver);
459 int rc;
460
461 ap_dev->drv = ap_drv;
462 spin_lock_bh(&ap_device_lock);
463 list_add(&ap_dev->list, &ap_device_list);
464 spin_unlock_bh(&ap_device_lock);
465 rc = ap_drv->probe ? ap_drv->probe(ap_dev) : -ENODEV;
466 return rc;
467 }
468
469 /**
470 * Flush all requests from the request/pending queue of an AP device.
471 * @ap_dev: pointer to the AP device.
472 */
473 static void __ap_flush_queue(struct ap_device *ap_dev)
474 {
475 struct ap_message *ap_msg, *next;
476
477 list_for_each_entry_safe(ap_msg, next, &ap_dev->pendingq, list) {
478 list_del_init(&ap_msg->list);
479 ap_dev->pendingq_count--;
480 ap_dev->drv->receive(ap_dev, ap_msg, ERR_PTR(-ENODEV));
481 }
482 list_for_each_entry_safe(ap_msg, next, &ap_dev->requestq, list) {
483 list_del_init(&ap_msg->list);
484 ap_dev->requestq_count--;
485 ap_dev->drv->receive(ap_dev, ap_msg, ERR_PTR(-ENODEV));
486 }
487 }
488
489 void ap_flush_queue(struct ap_device *ap_dev)
490 {
491 spin_lock_bh(&ap_dev->lock);
492 __ap_flush_queue(ap_dev);
493 spin_unlock_bh(&ap_dev->lock);
494 }
495 EXPORT_SYMBOL(ap_flush_queue);
496
497 static int ap_device_remove(struct device *dev)
498 {
499 struct ap_device *ap_dev = to_ap_dev(dev);
500 struct ap_driver *ap_drv = ap_dev->drv;
501
502 ap_flush_queue(ap_dev);
503 if (ap_drv->remove)
504 ap_drv->remove(ap_dev);
505 spin_lock_bh(&ap_device_lock);
506 list_del_init(&ap_dev->list);
507 spin_unlock_bh(&ap_device_lock);
508 return 0;
509 }
510
511 int ap_driver_register(struct ap_driver *ap_drv, struct module *owner,
512 char *name)
513 {
514 struct device_driver *drv = &ap_drv->driver;
515
516 drv->bus = &ap_bus_type;
517 drv->probe = ap_device_probe;
518 drv->remove = ap_device_remove;
519 drv->owner = owner;
520 drv->name = name;
521 return driver_register(drv);
522 }
523 EXPORT_SYMBOL(ap_driver_register);
524
525 void ap_driver_unregister(struct ap_driver *ap_drv)
526 {
527 driver_unregister(&ap_drv->driver);
528 }
529 EXPORT_SYMBOL(ap_driver_unregister);
530
531 /**
532 * AP bus attributes.
533 */
534 static ssize_t ap_domain_show(struct bus_type *bus, char *buf)
535 {
536 return snprintf(buf, PAGE_SIZE, "%d\n", ap_domain_index);
537 }
538
539 static BUS_ATTR(ap_domain, 0444, ap_domain_show, NULL);
540
541 static ssize_t ap_config_time_show(struct bus_type *bus, char *buf)
542 {
543 return snprintf(buf, PAGE_SIZE, "%d\n", ap_config_time);
544 }
545
546 static ssize_t ap_config_time_store(struct bus_type *bus,
547 const char *buf, size_t count)
548 {
549 int time;
550
551 if (sscanf(buf, "%d\n", &time) != 1 || time < 5 || time > 120)
552 return -EINVAL;
553 ap_config_time = time;
554 if (!timer_pending(&ap_config_timer) ||
555 !mod_timer(&ap_config_timer, jiffies + ap_config_time * HZ)) {
556 ap_config_timer.expires = jiffies + ap_config_time * HZ;
557 add_timer(&ap_config_timer);
558 }
559 return count;
560 }
561
562 static BUS_ATTR(config_time, 0644, ap_config_time_show, ap_config_time_store);
563
564 static ssize_t ap_poll_thread_show(struct bus_type *bus, char *buf)
565 {
566 return snprintf(buf, PAGE_SIZE, "%d\n", ap_poll_kthread ? 1 : 0);
567 }
568
569 static ssize_t ap_poll_thread_store(struct bus_type *bus,
570 const char *buf, size_t count)
571 {
572 int flag, rc;
573
574 if (sscanf(buf, "%d\n", &flag) != 1)
575 return -EINVAL;
576 if (flag) {
577 rc = ap_poll_thread_start();
578 if (rc)
579 return rc;
580 }
581 else
582 ap_poll_thread_stop();
583 return count;
584 }
585
586 static BUS_ATTR(poll_thread, 0644, ap_poll_thread_show, ap_poll_thread_store);
587
588 static struct bus_attribute *const ap_bus_attrs[] = {
589 &bus_attr_ap_domain,
590 &bus_attr_config_time,
591 &bus_attr_poll_thread,
592 NULL
593 };
594
595 /**
596 * Pick one of the 16 ap domains.
597 */
598 static int ap_select_domain(void)
599 {
600 int queue_depth, device_type, count, max_count, best_domain;
601 int rc, i, j;
602
603 /**
604 * We want to use a single domain. Either the one specified with
605 * the "domain=" parameter or the domain with the maximum number
606 * of devices.
607 */
608 if (ap_domain_index >= 0 && ap_domain_index < AP_DOMAINS)
609 /* Domain has already been selected. */
610 return 0;
611 best_domain = -1;
612 max_count = 0;
613 for (i = 0; i < AP_DOMAINS; i++) {
614 count = 0;
615 for (j = 0; j < AP_DEVICES; j++) {
616 ap_qid_t qid = AP_MKQID(j, i);
617 rc = ap_query_queue(qid, &queue_depth, &device_type);
618 if (rc)
619 continue;
620 count++;
621 }
622 if (count > max_count) {
623 max_count = count;
624 best_domain = i;
625 }
626 }
627 if (best_domain >= 0){
628 ap_domain_index = best_domain;
629 return 0;
630 }
631 return -ENODEV;
632 }
633
634 /**
635 * Find the device type if query queue returned a device type of 0.
636 * @ap_dev: pointer to the AP device.
637 */
638 static int ap_probe_device_type(struct ap_device *ap_dev)
639 {
640 static unsigned char msg[] = {
641 0x00,0x06,0x00,0x00,0x00,0x00,0x00,0x00,
642 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
643 0x00,0x00,0x00,0x58,0x00,0x00,0x00,0x00,
644 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
645 0x01,0x00,0x43,0x43,0x41,0x2d,0x41,0x50,
646 0x50,0x4c,0x20,0x20,0x20,0x01,0x01,0x01,
647 0x00,0x00,0x00,0x00,0x50,0x4b,0x00,0x00,
648 0x00,0x00,0x01,0x1c,0x00,0x00,0x00,0x00,
649 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
650 0x00,0x00,0x05,0xb8,0x00,0x00,0x00,0x00,
651 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
652 0x70,0x00,0x41,0x00,0x00,0x00,0x00,0x00,
653 0x00,0x00,0x54,0x32,0x01,0x00,0xa0,0x00,
654 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
655 0x00,0x00,0x00,0x00,0xb8,0x05,0x00,0x00,
656 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
657 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
658 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
659 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
660 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
661 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
662 0x00,0x00,0x0a,0x00,0x00,0x00,0x00,0x00,
663 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
664 0x00,0x00,0x00,0x00,0x00,0x00,0x08,0x00,
665 0x49,0x43,0x53,0x46,0x20,0x20,0x20,0x20,
666 0x50,0x4b,0x0a,0x00,0x50,0x4b,0x43,0x53,
667 0x2d,0x31,0x2e,0x32,0x37,0x00,0x11,0x22,
668 0x33,0x44,0x55,0x66,0x77,0x88,0x99,0x00,
669 0x11,0x22,0x33,0x44,0x55,0x66,0x77,0x88,
670 0x99,0x00,0x11,0x22,0x33,0x44,0x55,0x66,
671 0x77,0x88,0x99,0x00,0x11,0x22,0x33,0x44,
672 0x55,0x66,0x77,0x88,0x99,0x00,0x11,0x22,
673 0x33,0x44,0x55,0x66,0x77,0x88,0x99,0x00,
674 0x11,0x22,0x33,0x5d,0x00,0x5b,0x00,0x77,
675 0x88,0x1e,0x00,0x00,0x57,0x00,0x00,0x00,
676 0x00,0x04,0x00,0x00,0x4f,0x00,0x00,0x00,
677 0x03,0x02,0x00,0x00,0x40,0x01,0x00,0x01,
678 0xce,0x02,0x68,0x2d,0x5f,0xa9,0xde,0x0c,
679 0xf6,0xd2,0x7b,0x58,0x4b,0xf9,0x28,0x68,
680 0x3d,0xb4,0xf4,0xef,0x78,0xd5,0xbe,0x66,
681 0x63,0x42,0xef,0xf8,0xfd,0xa4,0xf8,0xb0,
682 0x8e,0x29,0xc2,0xc9,0x2e,0xd8,0x45,0xb8,
683 0x53,0x8c,0x6f,0x4e,0x72,0x8f,0x6c,0x04,
684 0x9c,0x88,0xfc,0x1e,0xc5,0x83,0x55,0x57,
685 0xf7,0xdd,0xfd,0x4f,0x11,0x36,0x95,0x5d,
686 };
687 struct ap_queue_status status;
688 unsigned long long psmid;
689 char *reply;
690 int rc, i;
691
692 reply = (void *) get_zeroed_page(GFP_KERNEL);
693 if (!reply) {
694 rc = -ENOMEM;
695 goto out;
696 }
697
698 status = __ap_send(ap_dev->qid, 0x0102030405060708ULL,
699 msg, sizeof(msg));
700 if (status.response_code != AP_RESPONSE_NORMAL) {
701 rc = -ENODEV;
702 goto out_free;
703 }
704
705 /* Wait for the test message to complete. */
706 for (i = 0; i < 6; i++) {
707 mdelay(300);
708 status = __ap_recv(ap_dev->qid, &psmid, reply, 4096);
709 if (status.response_code == AP_RESPONSE_NORMAL &&
710 psmid == 0x0102030405060708ULL)
711 break;
712 }
713 if (i < 6) {
714 /* Got an answer. */
715 if (reply[0] == 0x00 && reply[1] == 0x86)
716 ap_dev->device_type = AP_DEVICE_TYPE_PCICC;
717 else
718 ap_dev->device_type = AP_DEVICE_TYPE_PCICA;
719 rc = 0;
720 } else
721 rc = -ENODEV;
722
723 out_free:
724 free_page((unsigned long) reply);
725 out:
726 return rc;
727 }
728
729 /**
730 * Scan the ap bus for new devices.
731 */
732 static int __ap_scan_bus(struct device *dev, void *data)
733 {
734 return to_ap_dev(dev)->qid == (ap_qid_t)(unsigned long) data;
735 }
736
737 static void ap_device_release(struct device *dev)
738 {
739 struct ap_device *ap_dev = to_ap_dev(dev);
740
741 kfree(ap_dev);
742 }
743
744 static void ap_scan_bus(struct work_struct *unused)
745 {
746 struct ap_device *ap_dev;
747 struct device *dev;
748 ap_qid_t qid;
749 int queue_depth, device_type;
750 int rc, i;
751
752 if (ap_select_domain() != 0)
753 return;
754 for (i = 0; i < AP_DEVICES; i++) {
755 qid = AP_MKQID(i, ap_domain_index);
756 dev = bus_find_device(&ap_bus_type, NULL,
757 (void *)(unsigned long)qid,
758 __ap_scan_bus);
759 rc = ap_query_queue(qid, &queue_depth, &device_type);
760 if (dev) {
761 ap_dev = to_ap_dev(dev);
762 spin_lock_bh(&ap_dev->lock);
763 if (rc || ap_dev->unregistered) {
764 spin_unlock_bh(&ap_dev->lock);
765 put_device(dev);
766 device_unregister(dev);
767 continue;
768 } else
769 spin_unlock_bh(&ap_dev->lock);
770 }
771 if (dev) {
772 put_device(dev);
773 continue;
774 }
775 if (rc)
776 continue;
777 rc = ap_init_queue(qid);
778 if (rc)
779 continue;
780 ap_dev = kzalloc(sizeof(*ap_dev), GFP_KERNEL);
781 if (!ap_dev)
782 break;
783 ap_dev->qid = qid;
784 ap_dev->queue_depth = queue_depth;
785 ap_dev->unregistered = 1;
786 spin_lock_init(&ap_dev->lock);
787 INIT_LIST_HEAD(&ap_dev->pendingq);
788 INIT_LIST_HEAD(&ap_dev->requestq);
789 INIT_LIST_HEAD(&ap_dev->list);
790 if (device_type == 0)
791 ap_probe_device_type(ap_dev);
792 else
793 ap_dev->device_type = device_type;
794
795 ap_dev->device.bus = &ap_bus_type;
796 ap_dev->device.parent = ap_root_device;
797 snprintf(ap_dev->device.bus_id, BUS_ID_SIZE, "card%02x",
798 AP_QID_DEVICE(ap_dev->qid));
799 ap_dev->device.release = ap_device_release;
800 rc = device_register(&ap_dev->device);
801 if (rc) {
802 kfree(ap_dev);
803 continue;
804 }
805 /* Add device attributes. */
806 rc = sysfs_create_group(&ap_dev->device.kobj,
807 &ap_dev_attr_group);
808 if (!rc) {
809 spin_lock_bh(&ap_dev->lock);
810 ap_dev->unregistered = 0;
811 spin_unlock_bh(&ap_dev->lock);
812 }
813 else
814 device_unregister(&ap_dev->device);
815 }
816 }
817
818 static void
819 ap_config_timeout(unsigned long ptr)
820 {
821 queue_work(ap_work_queue, &ap_config_work);
822 ap_config_timer.expires = jiffies + ap_config_time * HZ;
823 add_timer(&ap_config_timer);
824 }
825
826 /**
827 * Set up the timer to run the poll tasklet
828 */
829 static inline void ap_schedule_poll_timer(void)
830 {
831 if (timer_pending(&ap_poll_timer))
832 return;
833 mod_timer(&ap_poll_timer, jiffies + AP_POLL_TIME);
834 }
835
836 /**
837 * Receive pending reply messages from an AP device.
838 * @ap_dev: pointer to the AP device
839 * @flags: pointer to control flags, bit 2^0 is set if another poll is
840 * required, bit 2^1 is set if the poll timer needs to get armed
841 * Returns 0 if the device is still present, -ENODEV if not.
842 */
843 static int ap_poll_read(struct ap_device *ap_dev, unsigned long *flags)
844 {
845 struct ap_queue_status status;
846 struct ap_message *ap_msg;
847
848 if (ap_dev->queue_count <= 0)
849 return 0;
850 status = __ap_recv(ap_dev->qid, &ap_dev->reply->psmid,
851 ap_dev->reply->message, ap_dev->reply->length);
852 switch (status.response_code) {
853 case AP_RESPONSE_NORMAL:
854 atomic_dec(&ap_poll_requests);
855 ap_dev->queue_count--;
856 list_for_each_entry(ap_msg, &ap_dev->pendingq, list) {
857 if (ap_msg->psmid != ap_dev->reply->psmid)
858 continue;
859 list_del_init(&ap_msg->list);
860 ap_dev->pendingq_count--;
861 ap_dev->drv->receive(ap_dev, ap_msg, ap_dev->reply);
862 break;
863 }
864 if (ap_dev->queue_count > 0)
865 *flags |= 1;
866 break;
867 case AP_RESPONSE_NO_PENDING_REPLY:
868 if (status.queue_empty) {
869 /* The card shouldn't forget requests but who knows. */
870 ap_dev->queue_count = 0;
871 list_splice_init(&ap_dev->pendingq, &ap_dev->requestq);
872 ap_dev->requestq_count += ap_dev->pendingq_count;
873 ap_dev->pendingq_count = 0;
874 } else
875 *flags |= 2;
876 break;
877 default:
878 return -ENODEV;
879 }
880 return 0;
881 }
882
883 /**
884 * Send messages from the request queue to an AP device.
885 * @ap_dev: pointer to the AP device
886 * @flags: pointer to control flags, bit 2^0 is set if another poll is
887 * required, bit 2^1 is set if the poll timer needs to get armed
888 * Returns 0 if the device is still present, -ENODEV if not.
889 */
890 static int ap_poll_write(struct ap_device *ap_dev, unsigned long *flags)
891 {
892 struct ap_queue_status status;
893 struct ap_message *ap_msg;
894
895 if (ap_dev->requestq_count <= 0 ||
896 ap_dev->queue_count >= ap_dev->queue_depth)
897 return 0;
898 /* Start the next request on the queue. */
899 ap_msg = list_entry(ap_dev->requestq.next, struct ap_message, list);
900 status = __ap_send(ap_dev->qid, ap_msg->psmid,
901 ap_msg->message, ap_msg->length);
902 switch (status.response_code) {
903 case AP_RESPONSE_NORMAL:
904 atomic_inc(&ap_poll_requests);
905 ap_dev->queue_count++;
906 list_move_tail(&ap_msg->list, &ap_dev->pendingq);
907 ap_dev->requestq_count--;
908 ap_dev->pendingq_count++;
909 if (ap_dev->queue_count < ap_dev->queue_depth &&
910 ap_dev->requestq_count > 0)
911 *flags |= 1;
912 *flags |= 2;
913 break;
914 case AP_RESPONSE_Q_FULL:
915 *flags |= 2;
916 break;
917 case AP_RESPONSE_MESSAGE_TOO_BIG:
918 return -EINVAL;
919 default:
920 return -ENODEV;
921 }
922 return 0;
923 }
924
925 /**
926 * Poll AP device for pending replies and send new messages. If either
927 * ap_poll_read or ap_poll_write returns -ENODEV unregister the device.
928 * @ap_dev: pointer to the bus device
929 * @flags: pointer to control flags, bit 2^0 is set if another poll is
930 * required, bit 2^1 is set if the poll timer needs to get armed
931 * Returns 0.
932 */
933 static inline int ap_poll_queue(struct ap_device *ap_dev, unsigned long *flags)
934 {
935 int rc;
936
937 rc = ap_poll_read(ap_dev, flags);
938 if (rc)
939 return rc;
940 return ap_poll_write(ap_dev, flags);
941 }
942
943 /**
944 * Queue a message to a device.
945 * @ap_dev: pointer to the AP device
946 * @ap_msg: the message to be queued
947 */
948 static int __ap_queue_message(struct ap_device *ap_dev, struct ap_message *ap_msg)
949 {
950 struct ap_queue_status status;
951
952 if (list_empty(&ap_dev->requestq) &&
953 ap_dev->queue_count < ap_dev->queue_depth) {
954 status = __ap_send(ap_dev->qid, ap_msg->psmid,
955 ap_msg->message, ap_msg->length);
956 switch (status.response_code) {
957 case AP_RESPONSE_NORMAL:
958 list_add_tail(&ap_msg->list, &ap_dev->pendingq);
959 atomic_inc(&ap_poll_requests);
960 ap_dev->pendingq_count++;
961 ap_dev->queue_count++;
962 ap_dev->total_request_count++;
963 break;
964 case AP_RESPONSE_Q_FULL:
965 list_add_tail(&ap_msg->list, &ap_dev->requestq);
966 ap_dev->requestq_count++;
967 ap_dev->total_request_count++;
968 return -EBUSY;
969 case AP_RESPONSE_MESSAGE_TOO_BIG:
970 ap_dev->drv->receive(ap_dev, ap_msg, ERR_PTR(-EINVAL));
971 return -EINVAL;
972 default: /* Device is gone. */
973 ap_dev->drv->receive(ap_dev, ap_msg, ERR_PTR(-ENODEV));
974 return -ENODEV;
975 }
976 } else {
977 list_add_tail(&ap_msg->list, &ap_dev->requestq);
978 ap_dev->requestq_count++;
979 ap_dev->total_request_count++;
980 return -EBUSY;
981 }
982 ap_schedule_poll_timer();
983 return 0;
984 }
985
986 void ap_queue_message(struct ap_device *ap_dev, struct ap_message *ap_msg)
987 {
988 unsigned long flags;
989 int rc;
990
991 spin_lock_bh(&ap_dev->lock);
992 if (!ap_dev->unregistered) {
993 /* Make room on the queue by polling for finished requests. */
994 rc = ap_poll_queue(ap_dev, &flags);
995 if (!rc)
996 rc = __ap_queue_message(ap_dev, ap_msg);
997 if (!rc)
998 wake_up(&ap_poll_wait);
999 if (rc == -ENODEV)
1000 ap_dev->unregistered = 1;
1001 } else {
1002 ap_dev->drv->receive(ap_dev, ap_msg, ERR_PTR(-ENODEV));
1003 rc = -ENODEV;
1004 }
1005 spin_unlock_bh(&ap_dev->lock);
1006 if (rc == -ENODEV)
1007 device_unregister(&ap_dev->device);
1008 }
1009 EXPORT_SYMBOL(ap_queue_message);
1010
1011 /**
1012 * Cancel a crypto request. This is done by removing the request
1013 * from the devive pendingq or requestq queue. Note that the
1014 * request stays on the AP queue. When it finishes the message
1015 * reply will be discarded because the psmid can't be found.
1016 * @ap_dev: AP device that has the message queued
1017 * @ap_msg: the message that is to be removed
1018 */
1019 void ap_cancel_message(struct ap_device *ap_dev, struct ap_message *ap_msg)
1020 {
1021 struct ap_message *tmp;
1022
1023 spin_lock_bh(&ap_dev->lock);
1024 if (!list_empty(&ap_msg->list)) {
1025 list_for_each_entry(tmp, &ap_dev->pendingq, list)
1026 if (tmp->psmid == ap_msg->psmid) {
1027 ap_dev->pendingq_count--;
1028 goto found;
1029 }
1030 ap_dev->requestq_count--;
1031 found:
1032 list_del_init(&ap_msg->list);
1033 }
1034 spin_unlock_bh(&ap_dev->lock);
1035 }
1036 EXPORT_SYMBOL(ap_cancel_message);
1037
1038 /**
1039 * AP receive polling for finished AP requests
1040 */
1041 static void ap_poll_timeout(unsigned long unused)
1042 {
1043 tasklet_schedule(&ap_tasklet);
1044 }
1045
1046 /**
1047 * Poll all AP devices on the bus in a round robin fashion. Continue
1048 * polling until bit 2^0 of the control flags is not set. If bit 2^1
1049 * of the control flags has been set arm the poll timer.
1050 */
1051 static int __ap_poll_all(struct ap_device *ap_dev, unsigned long *flags)
1052 {
1053 spin_lock(&ap_dev->lock);
1054 if (!ap_dev->unregistered) {
1055 if (ap_poll_queue(ap_dev, flags))
1056 ap_dev->unregistered = 1;
1057 }
1058 spin_unlock(&ap_dev->lock);
1059 return 0;
1060 }
1061
1062 static void ap_poll_all(unsigned long dummy)
1063 {
1064 unsigned long flags;
1065 struct ap_device *ap_dev;
1066
1067 do {
1068 flags = 0;
1069 spin_lock(&ap_device_lock);
1070 list_for_each_entry(ap_dev, &ap_device_list, list) {
1071 __ap_poll_all(ap_dev, &flags);
1072 }
1073 spin_unlock(&ap_device_lock);
1074 } while (flags & 1);
1075 if (flags & 2)
1076 ap_schedule_poll_timer();
1077 }
1078
1079 /**
1080 * AP bus poll thread. The purpose of this thread is to poll for
1081 * finished requests in a loop if there is a "free" cpu - that is
1082 * a cpu that doesn't have anything better to do. The polling stops
1083 * as soon as there is another task or if all messages have been
1084 * delivered.
1085 */
1086 static int ap_poll_thread(void *data)
1087 {
1088 DECLARE_WAITQUEUE(wait, current);
1089 unsigned long flags;
1090 int requests;
1091 struct ap_device *ap_dev;
1092
1093 set_user_nice(current, 19);
1094 while (1) {
1095 if (need_resched()) {
1096 schedule();
1097 continue;
1098 }
1099 add_wait_queue(&ap_poll_wait, &wait);
1100 set_current_state(TASK_INTERRUPTIBLE);
1101 if (kthread_should_stop())
1102 break;
1103 requests = atomic_read(&ap_poll_requests);
1104 if (requests <= 0)
1105 schedule();
1106 set_current_state(TASK_RUNNING);
1107 remove_wait_queue(&ap_poll_wait, &wait);
1108
1109 flags = 0;
1110 spin_lock_bh(&ap_device_lock);
1111 list_for_each_entry(ap_dev, &ap_device_list, list) {
1112 __ap_poll_all(ap_dev, &flags);
1113 }
1114 spin_unlock_bh(&ap_device_lock);
1115 }
1116 set_current_state(TASK_RUNNING);
1117 remove_wait_queue(&ap_poll_wait, &wait);
1118 return 0;
1119 }
1120
1121 static int ap_poll_thread_start(void)
1122 {
1123 int rc;
1124
1125 mutex_lock(&ap_poll_thread_mutex);
1126 if (!ap_poll_kthread) {
1127 ap_poll_kthread = kthread_run(ap_poll_thread, NULL, "appoll");
1128 rc = IS_ERR(ap_poll_kthread) ? PTR_ERR(ap_poll_kthread) : 0;
1129 if (rc)
1130 ap_poll_kthread = NULL;
1131 }
1132 else
1133 rc = 0;
1134 mutex_unlock(&ap_poll_thread_mutex);
1135 return rc;
1136 }
1137
1138 static void ap_poll_thread_stop(void)
1139 {
1140 mutex_lock(&ap_poll_thread_mutex);
1141 if (ap_poll_kthread) {
1142 kthread_stop(ap_poll_kthread);
1143 ap_poll_kthread = NULL;
1144 }
1145 mutex_unlock(&ap_poll_thread_mutex);
1146 }
1147
1148 static void ap_reset_domain(void)
1149 {
1150 int i;
1151
1152 for (i = 0; i < AP_DEVICES; i++)
1153 ap_reset_queue(AP_MKQID(i, ap_domain_index));
1154 }
1155
1156 static void ap_reset_all(void)
1157 {
1158 int i, j;
1159
1160 for (i = 0; i < AP_DOMAINS; i++)
1161 for (j = 0; j < AP_DEVICES; j++)
1162 ap_reset_queue(AP_MKQID(j, i));
1163 }
1164
1165 static struct reset_call ap_reset_call = {
1166 .fn = ap_reset_all,
1167 };
1168
1169 /**
1170 * The module initialization code.
1171 */
1172 int __init ap_module_init(void)
1173 {
1174 int rc, i;
1175
1176 if (ap_domain_index < -1 || ap_domain_index >= AP_DOMAINS) {
1177 printk(KERN_WARNING "Invalid param: domain = %d. "
1178 " Not loading.\n", ap_domain_index);
1179 return -EINVAL;
1180 }
1181 if (ap_instructions_available() != 0) {
1182 printk(KERN_WARNING "AP instructions not installed.\n");
1183 return -ENODEV;
1184 }
1185 register_reset_call(&ap_reset_call);
1186
1187 /* Create /sys/bus/ap. */
1188 rc = bus_register(&ap_bus_type);
1189 if (rc)
1190 goto out;
1191 for (i = 0; ap_bus_attrs[i]; i++) {
1192 rc = bus_create_file(&ap_bus_type, ap_bus_attrs[i]);
1193 if (rc)
1194 goto out_bus;
1195 }
1196
1197 /* Create /sys/devices/ap. */
1198 ap_root_device = s390_root_dev_register("ap");
1199 rc = IS_ERR(ap_root_device) ? PTR_ERR(ap_root_device) : 0;
1200 if (rc)
1201 goto out_bus;
1202
1203 ap_work_queue = create_singlethread_workqueue("kapwork");
1204 if (!ap_work_queue) {
1205 rc = -ENOMEM;
1206 goto out_root;
1207 }
1208
1209 if (ap_select_domain() == 0)
1210 ap_scan_bus(NULL);
1211
1212 /* Setup the ap bus rescan timer. */
1213 init_timer(&ap_config_timer);
1214 ap_config_timer.function = ap_config_timeout;
1215 ap_config_timer.data = 0;
1216 ap_config_timer.expires = jiffies + ap_config_time * HZ;
1217 add_timer(&ap_config_timer);
1218
1219 /* Start the low priority AP bus poll thread. */
1220 if (ap_thread_flag) {
1221 rc = ap_poll_thread_start();
1222 if (rc)
1223 goto out_work;
1224 }
1225
1226 return 0;
1227
1228 out_work:
1229 del_timer_sync(&ap_config_timer);
1230 del_timer_sync(&ap_poll_timer);
1231 destroy_workqueue(ap_work_queue);
1232 out_root:
1233 s390_root_dev_unregister(ap_root_device);
1234 out_bus:
1235 while (i--)
1236 bus_remove_file(&ap_bus_type, ap_bus_attrs[i]);
1237 bus_unregister(&ap_bus_type);
1238 out:
1239 unregister_reset_call(&ap_reset_call);
1240 return rc;
1241 }
1242
1243 static int __ap_match_all(struct device *dev, void *data)
1244 {
1245 return 1;
1246 }
1247
1248 /**
1249 * The module termination code
1250 */
1251 void ap_module_exit(void)
1252 {
1253 int i;
1254 struct device *dev;
1255
1256 ap_reset_domain();
1257 ap_poll_thread_stop();
1258 del_timer_sync(&ap_config_timer);
1259 del_timer_sync(&ap_poll_timer);
1260 destroy_workqueue(ap_work_queue);
1261 tasklet_kill(&ap_tasklet);
1262 s390_root_dev_unregister(ap_root_device);
1263 while ((dev = bus_find_device(&ap_bus_type, NULL, NULL,
1264 __ap_match_all)))
1265 {
1266 device_unregister(dev);
1267 put_device(dev);
1268 }
1269 for (i = 0; ap_bus_attrs[i]; i++)
1270 bus_remove_file(&ap_bus_type, ap_bus_attrs[i]);
1271 bus_unregister(&ap_bus_type);
1272 unregister_reset_call(&ap_reset_call);
1273 }
1274
1275 #ifndef CONFIG_ZCRYPT_MONOLITHIC
1276 module_init(ap_module_init);
1277 module_exit(ap_module_exit);
1278 #endif
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