1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright IBM Corp. 2006, 2023
4 * Author(s): Cornelia Huck <cornelia.huck@de.ibm.com>
5 * Martin Schwidefsky <schwidefsky@de.ibm.com>
6 * Ralph Wuerthner <rwuerthn@de.ibm.com>
7 * Felix Beck <felix.beck@de.ibm.com>
8 * Holger Dengler <hd@linux.vnet.ibm.com>
9 * Harald Freudenberger <freude@linux.ibm.com>
10 *
11 * Adjunct processor bus.
12 */
13
14 #define pr_fmt(fmt) "ap: " fmt
15
16 #include <linux/kernel_stat.h>
17 #include <linux/moduleparam.h>
18 #include <linux/export.h>
19 #include <linux/hex.h>
20 #include <linux/init.h>
21 #include <linux/delay.h>
22 #include <linux/err.h>
23 #include <linux/freezer.h>
24 #include <linux/interrupt.h>
25 #include <linux/workqueue.h>
26 #include <linux/slab.h>
27 #include <linux/notifier.h>
28 #include <linux/kthread.h>
29 #include <linux/mutex.h>
30 #include <asm/machine.h>
31 #include <asm/airq.h>
32 #include <asm/tpi.h>
33 #include <linux/atomic.h>
34 #include <asm/isc.h>
35 #include <linux/hrtimer.h>
36 #include <linux/ktime.h>
37 #include <asm/facility.h>
38 #include <linux/crypto.h>
39 #include <linux/mod_devicetable.h>
40 #include <linux/debugfs.h>
41 #include <linux/ctype.h>
42 #include <linux/module.h>
43 #include <asm/uv.h>
44 #include <asm/chsc.h>
45 #include <linux/mempool.h>
46
47 #include "ap_bus.h"
48 #include "ap_debug.h"
49
50 MODULE_AUTHOR("IBM Corporation");
51 MODULE_DESCRIPTION("Adjunct Processor Bus driver");
52 MODULE_LICENSE("GPL");
53
54 int ap_domain_index = -1; /* Adjunct Processor Domain Index */
55 static DEFINE_SPINLOCK(ap_domain_lock);
56 module_param_named(domain, ap_domain_index, int, 0444);
57 MODULE_PARM_DESC(domain, "domain index for ap devices");
58 EXPORT_SYMBOL(ap_domain_index);
59
60 static int ap_thread_flag;
61 module_param_named(poll_thread, ap_thread_flag, int, 0444);
62 MODULE_PARM_DESC(poll_thread, "Turn on/off poll thread, default is 0 (off).");
63
64 static char *apm_str;
65 module_param_named(apmask, apm_str, charp, 0444);
66 MODULE_PARM_DESC(apmask, "AP bus adapter mask.");
67
68 static char *aqm_str;
69 module_param_named(aqmask, aqm_str, charp, 0444);
70 MODULE_PARM_DESC(aqmask, "AP bus domain mask.");
71
72 static int ap_useirq = 1;
73 module_param_named(useirq, ap_useirq, int, 0444);
74 MODULE_PARM_DESC(useirq, "Use interrupt if available, default is 1 (on).");
75
76 atomic_t ap_max_msg_size = ATOMIC_INIT(AP_DEFAULT_MAX_MSG_SIZE);
77 EXPORT_SYMBOL(ap_max_msg_size);
78
79 static struct device *ap_root_device;
80
81 /* Hashtable of all queue devices on the AP bus */
82 DEFINE_HASHTABLE(ap_queues, 8);
83 /* lock used for the ap_queues hashtable */
84 DEFINE_SPINLOCK(ap_queues_lock);
85
86 /* Default permissions (ioctl, card and domain masking) */
87 struct ap_perms ap_perms;
88 EXPORT_SYMBOL(ap_perms);
89 /* true if apmask and/or aqmask are NOT default */
90 bool ap_apmask_aqmask_in_use;
91 /* counter for how many driver_overrides are currently active */
92 int ap_driver_override_ctr;
93 /*
94 * Mutex for consistent read and write of the ap_perms struct,
95 * ap_apmask_aqmask_in_use, ap_driver_override_ctr
96 * and the ap bus sysfs attributes apmask and aqmask.
97 */
98 DEFINE_MUTEX(ap_attr_mutex);
99 EXPORT_SYMBOL(ap_attr_mutex);
100
101 /* # of bindings complete since init */
102 static atomic64_t ap_bindings_complete_count = ATOMIC64_INIT(0);
103
104 /* completion for APQN bindings complete */
105 static DECLARE_COMPLETION(ap_apqn_bindings_complete);
106
107 static struct ap_config_info qci[2];
108 static struct ap_config_info *const ap_qci_info = &qci[0];
109 static struct ap_config_info *const ap_qci_info_old = &qci[1];
110
111 /*
112 * AP bus related debug feature things.
113 */
114 debug_info_t *ap_dbf_info;
115
116 /*
117 * There is a need for a do-not-allocate-memory path through the AP bus
118 * layer. The pkey layer may be triggered via the in-kernel interface from
119 * a protected key crypto algorithm (namely PAES) to convert a secure key
120 * into a protected key. This happens in a workqueue context, so sleeping
121 * is allowed but memory allocations causing IO operations are not permitted.
122 * To accomplish this, an AP message memory pool with pre-allocated space
123 * is established. When ap_init_apmsg() with use_mempool set to true is
124 * called, instead of kmalloc() the ap message buffer is allocated from
125 * the ap_msg_pool. This pool only holds a limited amount of buffers:
126 * ap_msg_pool_min_items with the item size AP_DEFAULT_MAX_MSG_SIZE and
127 * exactly one of these items (if available) is returned if ap_init_apmsg()
128 * with the use_mempool arg set to true is called. When this pool is exhausted
129 * and use_mempool is set true, ap_init_apmsg() returns -ENOMEM without
130 * any attempt to allocate memory and the caller has to deal with that.
131 */
132 static mempool_t *ap_msg_pool;
133 static unsigned int ap_msg_pool_min_items = 8;
134 module_param_named(msgpool_min_items, ap_msg_pool_min_items, uint, 0400);
135 MODULE_PARM_DESC(msgpool_min_items, "AP message pool minimal items");
136
137 /*
138 * AP bus rescan related things.
139 */
140 static bool ap_scan_bus(void);
141 static bool ap_scan_bus_result; /* result of last ap_scan_bus() */
142 static DEFINE_MUTEX(ap_scan_bus_mutex); /* mutex ap_scan_bus() invocations */
143 static struct task_struct *ap_scan_bus_task; /* thread holding the scan mutex */
144 static atomic64_t ap_scan_bus_count; /* counter ap_scan_bus() invocations */
145 static int ap_scan_bus_time = AP_CONFIG_TIME;
146 static struct timer_list ap_scan_bus_timer;
147 static void ap_scan_bus_wq_callback(struct work_struct *);
148 static DECLARE_WORK(ap_scan_bus_work, ap_scan_bus_wq_callback);
149
150 /*
151 * Tasklet & timer for AP request polling and interrupts
152 */
153 static void ap_tasklet_fn(unsigned long);
154 static DECLARE_TASKLET_OLD(ap_tasklet, ap_tasklet_fn);
155 static DECLARE_WAIT_QUEUE_HEAD(ap_poll_wait);
156 static struct task_struct *ap_poll_kthread;
157 static DEFINE_MUTEX(ap_poll_thread_mutex);
158 static DEFINE_SPINLOCK(ap_poll_timer_lock);
159 static struct hrtimer ap_poll_timer;
160 /*
161 * In LPAR poll with 4kHz frequency. Poll every 250000 nanoseconds.
162 * If z/VM change to 1500000 nanoseconds to adjust to z/VM polling.
163 */
164 static unsigned long poll_high_timeout = 250000UL;
165
166 /*
167 * Some state machine states only require a low frequency polling.
168 * We use 25 Hz frequency for these.
169 */
170 static unsigned long poll_low_timeout = 40000000UL;
171
172 /* Maximum domain id, if not given via qci */
173 static int ap_max_domain_id = 15;
174 /* Maximum adapter id, if not given via qci */
175 static int ap_max_adapter_id = 63;
176
177 static const struct bus_type ap_bus_type;
178
179 /* Adapter interrupt definitions */
180 static void ap_interrupt_handler(struct airq_struct *airq,
181 struct tpi_info *tpi_info);
182
183 static bool ap_irq_flag;
184
185 static struct airq_struct ap_airq = {
186 .handler = ap_interrupt_handler,
187 .isc = AP_ISC,
188 };
189
190 /**
191 * ap_airq_ptr() - Get the address of the adapter interrupt indicator
192 *
193 * Returns the address of the local-summary-indicator of the adapter
194 * interrupt handler for AP, or NULL if adapter interrupts are not
195 * available.
196 */
ap_airq_ptr(void)197 void *ap_airq_ptr(void)
198 {
199 if (ap_irq_flag)
200 return ap_airq.lsi_ptr;
201 return NULL;
202 }
203
204 /**
205 * ap_interrupts_available(): Test if AP interrupts are available.
206 *
207 * Returns 1 if AP interrupts are available.
208 */
ap_interrupts_available(void)209 static int ap_interrupts_available(void)
210 {
211 return test_facility(65);
212 }
213
214 /**
215 * ap_qci_available(): Test if AP configuration
216 * information can be queried via QCI subfunction.
217 *
218 * Returns 1 if subfunction PQAP(QCI) is available.
219 */
ap_qci_available(void)220 static int ap_qci_available(void)
221 {
222 return test_facility(12);
223 }
224
225 /**
226 * ap_apft_available(): Test if AP facilities test (APFT)
227 * facility is available.
228 *
229 * Returns 1 if APFT is available.
230 */
ap_apft_available(void)231 static int ap_apft_available(void)
232 {
233 return test_facility(15);
234 }
235
236 /*
237 * ap_qact_available(): Test if the PQAP(QACT) subfunction is available.
238 *
239 * Returns 1 if the QACT subfunction is available.
240 */
ap_qact_available(void)241 static inline int ap_qact_available(void)
242 {
243 return ap_qci_info->qact;
244 }
245
246 /*
247 * ap_sb_available(): Test if the AP secure binding facility is available.
248 *
249 * Returns 1 if secure binding facility is available.
250 */
ap_sb_available(void)251 int ap_sb_available(void)
252 {
253 return ap_qci_info->apsb;
254 }
255
256 /*
257 * ap_is_se_guest(): Check for SE guest with AP pass-through support.
258 */
ap_is_se_guest(void)259 bool ap_is_se_guest(void)
260 {
261 return is_prot_virt_guest() && ap_sb_available();
262 }
263 EXPORT_SYMBOL(ap_is_se_guest);
264
265 /**
266 * ap_init_qci_info(): Allocate and query qci config info.
267 * Does also update the static variables ap_max_domain_id
268 * and ap_max_adapter_id if this info is available.
269 */
ap_init_qci_info(void)270 static void __init ap_init_qci_info(void)
271 {
272 if (!ap_qci_available() ||
273 ap_qci(ap_qci_info)) {
274 AP_DBF_INFO("%s QCI not supported\n", __func__);
275 return;
276 }
277 memcpy(ap_qci_info_old, ap_qci_info, sizeof(*ap_qci_info));
278 AP_DBF_INFO("%s successful fetched initial qci info\n", __func__);
279
280 if (ap_qci_info->apxa) {
281 if (ap_qci_info->na) {
282 ap_max_adapter_id = ap_qci_info->na;
283 AP_DBF_INFO("%s new ap_max_adapter_id is %d\n",
284 __func__, ap_max_adapter_id);
285 }
286 if (ap_qci_info->nd) {
287 ap_max_domain_id = ap_qci_info->nd;
288 AP_DBF_INFO("%s new ap_max_domain_id is %d\n",
289 __func__, ap_max_domain_id);
290 }
291 }
292 }
293
294 /*
295 * ap_test_config(): helper function to extract the nrth bit
296 * within the unsigned int array field.
297 */
ap_test_config(unsigned int * field,unsigned int nr)298 static inline int ap_test_config(unsigned int *field, unsigned int nr)
299 {
300 return ap_test_bit((field + (nr >> 5)), (nr & 0x1f));
301 }
302
303 /*
304 * ap_test_config_card_id(): Test, whether an AP card ID is configured.
305 *
306 * Returns 0 if the card is not configured
307 * 1 if the card is configured or
308 * if the configuration information is not available
309 */
ap_test_config_card_id(unsigned int id)310 static inline int ap_test_config_card_id(unsigned int id)
311 {
312 if (id > ap_max_adapter_id)
313 return 0;
314 if (ap_qci_info->flags)
315 return ap_test_config(ap_qci_info->apm, id);
316 return 1;
317 }
318
319 /*
320 * ap_test_config_usage_domain(): Test, whether an AP usage domain
321 * is configured.
322 *
323 * Returns 0 if the usage domain is not configured
324 * 1 if the usage domain is configured or
325 * if the configuration information is not available
326 */
ap_test_config_usage_domain(unsigned int domain)327 int ap_test_config_usage_domain(unsigned int domain)
328 {
329 if (domain > ap_max_domain_id)
330 return 0;
331 if (ap_qci_info->flags)
332 return ap_test_config(ap_qci_info->aqm, domain);
333 return 1;
334 }
335 EXPORT_SYMBOL(ap_test_config_usage_domain);
336
337 /*
338 * ap_test_config_ctrl_domain(): Test, whether an AP control domain
339 * is configured.
340 * @domain AP control domain ID
341 *
342 * Returns 1 if the control domain is configured
343 * 0 in all other cases
344 */
ap_test_config_ctrl_domain(unsigned int domain)345 int ap_test_config_ctrl_domain(unsigned int domain)
346 {
347 if (!ap_qci_info || domain > ap_max_domain_id)
348 return 0;
349 return ap_test_config(ap_qci_info->adm, domain);
350 }
351 EXPORT_SYMBOL(ap_test_config_ctrl_domain);
352
353 /*
354 * ap_queue_info(): Check and get AP queue info.
355 * Returns: 1 if APQN exists and info is filled,
356 * 0 if APQN seems to exist but there is no info
357 * available (eg. caused by an asynch pending error)
358 * -1 invalid APQN, TAPQ error or AP queue status which
359 * indicates there is no APQN.
360 */
ap_queue_info(ap_qid_t qid,struct ap_tapq_hwinfo * hwinfo,bool * decfg,bool * cstop)361 static int ap_queue_info(ap_qid_t qid, struct ap_tapq_hwinfo *hwinfo,
362 bool *decfg, bool *cstop)
363 {
364 struct ap_queue_status status;
365
366 hwinfo->value = 0;
367
368 /* make sure we don't run into a specifiation exception */
369 if (AP_QID_CARD(qid) > ap_max_adapter_id ||
370 AP_QID_QUEUE(qid) > ap_max_domain_id)
371 return -1;
372
373 /* call TAPQ on this APQN */
374 status = ap_test_queue(qid, ap_apft_available(), hwinfo);
375
376 switch (status.response_code) {
377 case AP_RESPONSE_NORMAL:
378 case AP_RESPONSE_RESET_IN_PROGRESS:
379 case AP_RESPONSE_DECONFIGURED:
380 case AP_RESPONSE_CHECKSTOPPED:
381 case AP_RESPONSE_BUSY:
382 /* For all these RCs the tapq info should be available */
383 break;
384 default:
385 /* On a pending async error the info should be available */
386 if (!status.async)
387 return -1;
388 break;
389 }
390
391 /* There should be at least one of the mode bits set */
392 if (WARN_ON_ONCE(!hwinfo->value))
393 return 0;
394
395 *decfg = status.response_code == AP_RESPONSE_DECONFIGURED;
396 *cstop = status.response_code == AP_RESPONSE_CHECKSTOPPED;
397
398 return 1;
399 }
400
ap_wait(enum ap_sm_wait wait)401 void ap_wait(enum ap_sm_wait wait)
402 {
403 ktime_t hr_time;
404
405 switch (wait) {
406 case AP_SM_WAIT_AGAIN:
407 case AP_SM_WAIT_INTERRUPT:
408 if (ap_irq_flag)
409 break;
410 if (ap_poll_kthread) {
411 wake_up(&ap_poll_wait);
412 break;
413 }
414 fallthrough;
415 case AP_SM_WAIT_LOW_TIMEOUT:
416 case AP_SM_WAIT_HIGH_TIMEOUT:
417 spin_lock_bh(&ap_poll_timer_lock);
418 if (!hrtimer_is_queued(&ap_poll_timer)) {
419 hr_time =
420 wait == AP_SM_WAIT_LOW_TIMEOUT ?
421 poll_low_timeout : poll_high_timeout;
422 hrtimer_forward_now(&ap_poll_timer, hr_time);
423 hrtimer_restart(&ap_poll_timer);
424 }
425 spin_unlock_bh(&ap_poll_timer_lock);
426 break;
427 case AP_SM_WAIT_NONE:
428 default:
429 break;
430 }
431 }
432
433 /**
434 * ap_request_timeout(): Handling of request timeouts
435 * @t: timer making this callback
436 *
437 * Handles request timeouts.
438 */
ap_request_timeout(struct timer_list * t)439 void ap_request_timeout(struct timer_list *t)
440 {
441 struct ap_queue *aq = timer_container_of(aq, t, timeout);
442
443 spin_lock_bh(&aq->lock);
444 ap_wait(ap_sm_event(aq, AP_SM_EVENT_TIMEOUT));
445 spin_unlock_bh(&aq->lock);
446 }
447
448 /**
449 * ap_poll_timeout(): AP receive polling for finished AP requests.
450 * @unused: Unused pointer.
451 *
452 * Schedules the AP tasklet using a high resolution timer.
453 */
ap_poll_timeout(struct hrtimer * unused)454 static enum hrtimer_restart ap_poll_timeout(struct hrtimer *unused)
455 {
456 tasklet_schedule(&ap_tasklet);
457 return HRTIMER_NORESTART;
458 }
459
460 /**
461 * ap_interrupt_handler() - Schedule ap_tasklet on interrupt
462 * @airq: pointer to adapter interrupt descriptor
463 * @tpi_info: ignored
464 */
ap_interrupt_handler(struct airq_struct * airq,struct tpi_info * tpi_info)465 static void ap_interrupt_handler(struct airq_struct *airq,
466 struct tpi_info *tpi_info)
467 {
468 inc_irq_stat(IRQIO_APB);
469 tasklet_schedule(&ap_tasklet);
470 }
471
472 /**
473 * ap_tasklet_fn(): Tasklet to poll all AP devices.
474 * @dummy: Unused variable
475 *
476 * Poll all AP devices on the bus.
477 */
ap_tasklet_fn(unsigned long dummy)478 static void ap_tasklet_fn(unsigned long dummy)
479 {
480 int bkt;
481 struct ap_queue *aq;
482 enum ap_sm_wait wait = AP_SM_WAIT_NONE;
483
484 /* Reset the indicator if interrupts are used. Thus new interrupts can
485 * be received. Doing it in the beginning of the tasklet is therefore
486 * important that no requests on any AP get lost.
487 */
488 if (ap_irq_flag)
489 WRITE_ONCE(*ap_airq.lsi_ptr, 0);
490
491 spin_lock_bh(&ap_queues_lock);
492 hash_for_each(ap_queues, bkt, aq, hnode) {
493 spin_lock_bh(&aq->lock);
494 wait = min(wait, ap_sm_event_loop(aq, AP_SM_EVENT_POLL));
495 spin_unlock_bh(&aq->lock);
496 }
497 spin_unlock_bh(&ap_queues_lock);
498
499 ap_wait(wait);
500 }
501
ap_pending_requests(void)502 static int ap_pending_requests(void)
503 {
504 int bkt;
505 struct ap_queue *aq;
506
507 spin_lock_bh(&ap_queues_lock);
508 hash_for_each(ap_queues, bkt, aq, hnode) {
509 if (aq->queue_count == 0)
510 continue;
511 spin_unlock_bh(&ap_queues_lock);
512 return 1;
513 }
514 spin_unlock_bh(&ap_queues_lock);
515 return 0;
516 }
517
518 /**
519 * ap_poll_thread(): Thread that polls for finished requests.
520 * @data: Unused pointer
521 *
522 * AP bus poll thread. The purpose of this thread is to poll for
523 * finished requests in a loop if there is a "free" cpu - that is
524 * a cpu that doesn't have anything better to do. The polling stops
525 * as soon as there is another task or if all messages have been
526 * delivered.
527 */
ap_poll_thread(void * data)528 static int ap_poll_thread(void *data)
529 {
530 DECLARE_WAITQUEUE(wait, current);
531
532 set_user_nice(current, MAX_NICE);
533 set_freezable();
534 while (!kthread_should_stop()) {
535 add_wait_queue(&ap_poll_wait, &wait);
536 set_current_state(TASK_INTERRUPTIBLE);
537 if (!ap_pending_requests()) {
538 schedule();
539 try_to_freeze();
540 }
541 set_current_state(TASK_RUNNING);
542 remove_wait_queue(&ap_poll_wait, &wait);
543 if (need_resched()) {
544 schedule();
545 try_to_freeze();
546 continue;
547 }
548 ap_tasklet_fn(0);
549 }
550
551 return 0;
552 }
553
ap_poll_thread_start(void)554 static int ap_poll_thread_start(void)
555 {
556 int rc;
557
558 if (ap_irq_flag || ap_poll_kthread)
559 return 0;
560 mutex_lock(&ap_poll_thread_mutex);
561 ap_poll_kthread = kthread_run(ap_poll_thread, NULL, "appoll");
562 rc = PTR_ERR_OR_ZERO(ap_poll_kthread);
563 if (rc)
564 ap_poll_kthread = NULL;
565 mutex_unlock(&ap_poll_thread_mutex);
566 return rc;
567 }
568
ap_poll_thread_stop(void)569 static void ap_poll_thread_stop(void)
570 {
571 if (!ap_poll_kthread)
572 return;
573 mutex_lock(&ap_poll_thread_mutex);
574 kthread_stop(ap_poll_kthread);
575 ap_poll_kthread = NULL;
576 mutex_unlock(&ap_poll_thread_mutex);
577 }
578
579 #define is_card_dev(x) ((x)->parent == ap_root_device)
580 #define is_queue_dev(x) ((x)->parent != ap_root_device)
581
582 /*
583 * ap_init_apmsg() - Initialize ap_message.
584 */
ap_init_apmsg(struct ap_message * ap_msg,u32 flags)585 int ap_init_apmsg(struct ap_message *ap_msg, u32 flags)
586 {
587 unsigned int maxmsgsize;
588
589 memset(ap_msg, 0, sizeof(*ap_msg));
590 ap_msg->flags = flags;
591
592 if (flags & AP_MSG_FLAG_MEMPOOL) {
593 ap_msg->msg = mempool_alloc_preallocated(ap_msg_pool);
594 if (!ap_msg->msg)
595 return -ENOMEM;
596 ap_msg->bufsize = AP_DEFAULT_MAX_MSG_SIZE;
597 return 0;
598 }
599
600 maxmsgsize = atomic_read(&ap_max_msg_size);
601 ap_msg->msg = kmalloc(maxmsgsize, GFP_KERNEL);
602 if (!ap_msg->msg)
603 return -ENOMEM;
604 ap_msg->bufsize = maxmsgsize;
605
606 return 0;
607 }
608 EXPORT_SYMBOL(ap_init_apmsg);
609
610 /*
611 * ap_release_apmsg() - Release ap_message.
612 */
ap_release_apmsg(struct ap_message * ap_msg)613 void ap_release_apmsg(struct ap_message *ap_msg)
614 {
615 if (ap_msg->flags & AP_MSG_FLAG_MEMPOOL) {
616 memzero_explicit(ap_msg->msg, ap_msg->bufsize);
617 mempool_free(ap_msg->msg, ap_msg_pool);
618 } else {
619 kfree_sensitive(ap_msg->msg);
620 }
621 }
622 EXPORT_SYMBOL(ap_release_apmsg);
623
624 /**
625 * ap_bus_match()
626 * @dev: Pointer to device
627 * @drv: Pointer to device_driver
628 *
629 * AP bus driver registration/unregistration.
630 */
ap_bus_match(struct device * dev,const struct device_driver * drv)631 static int ap_bus_match(struct device *dev, const struct device_driver *drv)
632 {
633 const struct ap_driver *ap_drv = to_ap_drv(drv);
634 struct ap_device_id *id;
635
636 /*
637 * Compare device type of the device with the list of
638 * supported types of the device_driver.
639 */
640 for (id = ap_drv->ids; id->match_flags; id++) {
641 if (is_card_dev(dev) &&
642 id->match_flags & AP_DEVICE_ID_MATCH_CARD_TYPE &&
643 id->dev_type == to_ap_dev(dev)->device_type)
644 return 1;
645 if (is_queue_dev(dev) &&
646 id->match_flags & AP_DEVICE_ID_MATCH_QUEUE_TYPE &&
647 id->dev_type == to_ap_dev(dev)->device_type)
648 return 1;
649 }
650 return 0;
651 }
652
653 /**
654 * ap_uevent(): Uevent function for AP devices.
655 * @dev: Pointer to device
656 * @env: Pointer to kobj_uevent_env
657 *
658 * It sets up a single environment variable DEV_TYPE which contains the
659 * hardware device type.
660 */
ap_uevent(const struct device * dev,struct kobj_uevent_env * env)661 static int ap_uevent(const struct device *dev, struct kobj_uevent_env *env)
662 {
663 int rc = 0;
664 const struct ap_device *ap_dev = to_ap_dev(dev);
665
666 /* Uevents from ap bus core don't need extensions to the env */
667 if (dev == ap_root_device)
668 return 0;
669
670 if (is_card_dev(dev)) {
671 struct ap_card *ac = to_ap_card(&ap_dev->device);
672
673 /* Set up DEV_TYPE environment variable. */
674 rc = add_uevent_var(env, "DEV_TYPE=%04X", ap_dev->device_type);
675 if (rc)
676 return rc;
677 /* Add MODALIAS= */
678 rc = add_uevent_var(env, "MODALIAS=ap:t%02X", ap_dev->device_type);
679 if (rc)
680 return rc;
681
682 /* Add MODE=<accel|cca|ep11> */
683 if (ac->hwinfo.accel)
684 rc = add_uevent_var(env, "MODE=accel");
685 else if (ac->hwinfo.cca)
686 rc = add_uevent_var(env, "MODE=cca");
687 else if (ac->hwinfo.ep11)
688 rc = add_uevent_var(env, "MODE=ep11");
689 if (rc)
690 return rc;
691 } else {
692 struct ap_queue *aq = to_ap_queue(&ap_dev->device);
693
694 /* Add MODE=<accel|cca|ep11> */
695 if (aq->card->hwinfo.accel)
696 rc = add_uevent_var(env, "MODE=accel");
697 else if (aq->card->hwinfo.cca)
698 rc = add_uevent_var(env, "MODE=cca");
699 else if (aq->card->hwinfo.ep11)
700 rc = add_uevent_var(env, "MODE=ep11");
701 if (rc)
702 return rc;
703 }
704
705 return 0;
706 }
707
ap_send_init_scan_done_uevent(void)708 static void ap_send_init_scan_done_uevent(void)
709 {
710 char *envp[] = { "INITSCAN=done", NULL };
711
712 kobject_uevent_env(&ap_root_device->kobj, KOBJ_CHANGE, envp);
713 }
714
ap_send_bindings_complete_uevent(void)715 static void ap_send_bindings_complete_uevent(void)
716 {
717 char buf[32];
718 char *envp[] = { "BINDINGS=complete", buf, NULL };
719
720 snprintf(buf, sizeof(buf), "COMPLETECOUNT=%llu",
721 atomic64_inc_return(&ap_bindings_complete_count));
722 kobject_uevent_env(&ap_root_device->kobj, KOBJ_CHANGE, envp);
723 }
724
ap_send_config_uevent(struct ap_device * ap_dev,bool cfg)725 void ap_send_config_uevent(struct ap_device *ap_dev, bool cfg)
726 {
727 char buf[16];
728 char *envp[] = { buf, NULL };
729
730 snprintf(buf, sizeof(buf), "CONFIG=%d", cfg ? 1 : 0);
731
732 kobject_uevent_env(&ap_dev->device.kobj, KOBJ_CHANGE, envp);
733 }
734 EXPORT_SYMBOL(ap_send_config_uevent);
735
ap_send_online_uevent(struct ap_device * ap_dev,int online)736 void ap_send_online_uevent(struct ap_device *ap_dev, int online)
737 {
738 char buf[16];
739 char *envp[] = { buf, NULL };
740
741 snprintf(buf, sizeof(buf), "ONLINE=%d", online ? 1 : 0);
742
743 kobject_uevent_env(&ap_dev->device.kobj, KOBJ_CHANGE, envp);
744 }
745 EXPORT_SYMBOL(ap_send_online_uevent);
746
ap_send_mask_changed_uevent(unsigned long * newapm,unsigned long * newaqm)747 static void ap_send_mask_changed_uevent(unsigned long *newapm,
748 unsigned long *newaqm)
749 {
750 char buf[100];
751 char *envp[] = { buf, NULL };
752
753 if (newapm)
754 snprintf(buf, sizeof(buf),
755 "APMASK=0x%016lx%016lx%016lx%016lx\n",
756 newapm[0], newapm[1], newapm[2], newapm[3]);
757 else
758 snprintf(buf, sizeof(buf),
759 "AQMASK=0x%016lx%016lx%016lx%016lx\n",
760 newaqm[0], newaqm[1], newaqm[2], newaqm[3]);
761
762 kobject_uevent_env(&ap_root_device->kobj, KOBJ_CHANGE, envp);
763 }
764
765 /*
766 * calc # of bound APQNs
767 */
768
769 struct __ap_calc_ctrs {
770 unsigned int apqns;
771 unsigned int bound;
772 };
773
__ap_calc_helper(struct device * dev,void * arg)774 static int __ap_calc_helper(struct device *dev, void *arg)
775 {
776 struct __ap_calc_ctrs *pctrs = (struct __ap_calc_ctrs *)arg;
777
778 if (is_queue_dev(dev)) {
779 pctrs->apqns++;
780 if (dev->driver)
781 pctrs->bound++;
782 }
783
784 return 0;
785 }
786
ap_calc_bound_apqns(unsigned int * apqns,unsigned int * bound)787 static void ap_calc_bound_apqns(unsigned int *apqns, unsigned int *bound)
788 {
789 struct __ap_calc_ctrs ctrs;
790
791 memset(&ctrs, 0, sizeof(ctrs));
792 bus_for_each_dev(&ap_bus_type, NULL, (void *)&ctrs, __ap_calc_helper);
793
794 *apqns = ctrs.apqns;
795 *bound = ctrs.bound;
796 }
797
798 /*
799 * After ap bus scan do check if all existing APQNs are
800 * bound to device drivers.
801 */
ap_check_bindings_complete(void)802 static void ap_check_bindings_complete(void)
803 {
804 unsigned int apqns, bound;
805
806 if (atomic64_read(&ap_scan_bus_count) >= 1) {
807 ap_calc_bound_apqns(&apqns, &bound);
808 if (bound == apqns) {
809 if (!completion_done(&ap_apqn_bindings_complete)) {
810 complete_all(&ap_apqn_bindings_complete);
811 ap_send_bindings_complete_uevent();
812 pr_debug("all apqn bindings complete\n");
813 }
814 }
815 }
816 }
817
818 /*
819 * Interface to wait for the AP bus to have done one initial ap bus
820 * scan and all detected APQNs have been bound to device drivers.
821 * If these both conditions are not fulfilled, this function blocks
822 * on a condition with wait_for_completion_interruptible_timeout().
823 * If these both conditions are fulfilled (before the timeout hits)
824 * the return value is 0. If the timeout (in jiffies) hits instead
825 * -ETIME is returned. On failures negative return values are
826 * returned to the caller.
827 */
ap_wait_apqn_bindings_complete(unsigned long timeout)828 int ap_wait_apqn_bindings_complete(unsigned long timeout)
829 {
830 int rc = 0;
831 long l;
832
833 if (completion_done(&ap_apqn_bindings_complete))
834 return 0;
835
836 if (timeout)
837 l = wait_for_completion_interruptible_timeout(
838 &ap_apqn_bindings_complete, timeout);
839 else
840 l = wait_for_completion_interruptible(
841 &ap_apqn_bindings_complete);
842 if (l < 0)
843 rc = l == -ERESTARTSYS ? -EINTR : l;
844 else if (l == 0 && timeout)
845 rc = -ETIME;
846
847 pr_debug("rc=%d\n", rc);
848 return rc;
849 }
850 EXPORT_SYMBOL(ap_wait_apqn_bindings_complete);
851
__ap_queue_devices_with_id_unregister(struct device * dev,void * data)852 static int __ap_queue_devices_with_id_unregister(struct device *dev, void *data)
853 {
854 if (is_queue_dev(dev) &&
855 AP_QID_CARD(to_ap_queue(dev)->qid) == (int)(long)data)
856 device_unregister(dev);
857 return 0;
858 }
859
__ap_revise_reserved(struct device * dev,void * dummy)860 static int __ap_revise_reserved(struct device *dev, void *dummy)
861 {
862 int rc, card, queue, devres, drvres;
863
864 if (is_queue_dev(dev)) {
865 struct ap_driver *ap_drv = to_ap_drv(dev->driver);
866 struct ap_queue *aq = to_ap_queue(dev);
867 struct ap_device *ap_dev = &aq->ap_dev;
868
869 card = AP_QID_CARD(aq->qid);
870 queue = AP_QID_QUEUE(aq->qid);
871
872 if (ap_dev->driver_override) {
873 if (strcmp(ap_dev->driver_override,
874 ap_drv->driver.name)) {
875 pr_debug("reprobing queue=%02x.%04x\n", card, queue);
876 rc = device_reprobe(dev);
877 if (rc) {
878 AP_DBF_WARN("%s reprobing queue=%02x.%04x failed\n",
879 __func__, card, queue);
880 }
881 }
882 } else {
883 mutex_lock(&ap_attr_mutex);
884 devres = test_bit_inv(card, ap_perms.apm) &&
885 test_bit_inv(queue, ap_perms.aqm);
886 mutex_unlock(&ap_attr_mutex);
887 drvres = to_ap_drv(dev->driver)->flags
888 & AP_DRIVER_FLAG_DEFAULT;
889 if (!!devres != !!drvres) {
890 pr_debug("reprobing queue=%02x.%04x\n", card, queue);
891 rc = device_reprobe(dev);
892 if (rc) {
893 AP_DBF_WARN("%s reprobing queue=%02x.%04x failed\n",
894 __func__, card, queue);
895 }
896 }
897 }
898 }
899
900 return 0;
901 }
902
ap_bus_revise_bindings(void)903 static void ap_bus_revise_bindings(void)
904 {
905 bus_for_each_dev(&ap_bus_type, NULL, NULL, __ap_revise_reserved);
906 }
907
908 /**
909 * ap_owned_by_def_drv: indicates whether an AP adapter is reserved for the
910 * default host driver or not.
911 * @card: the APID of the adapter card to check
912 * @queue: the APQI of the queue to check
913 *
914 * Note: the ap_attr_mutex must be locked by the caller of this function.
915 *
916 * Return: an int specifying whether the AP adapter is reserved for the host (1)
917 * or not (0).
918 */
ap_owned_by_def_drv(int card,int queue)919 int ap_owned_by_def_drv(int card, int queue)
920 {
921 struct ap_queue *aq;
922 int rc = 0;
923
924 if (card < 0 || card >= AP_DEVICES || queue < 0 || queue >= AP_DOMAINS)
925 return -EINVAL;
926
927 aq = ap_get_qdev(AP_MKQID(card, queue));
928 if (aq) {
929 const struct device_driver *drv = aq->ap_dev.device.driver;
930 const struct ap_driver *ap_drv = to_ap_drv(drv);
931 bool override = !!aq->ap_dev.driver_override;
932
933 if (override && drv && ap_drv->flags & AP_DRIVER_FLAG_DEFAULT)
934 rc = 1;
935 put_device(&aq->ap_dev.device);
936 if (override)
937 goto out;
938 }
939
940 if (test_bit_inv(card, ap_perms.apm) &&
941 test_bit_inv(queue, ap_perms.aqm))
942 rc = 1;
943
944 out:
945 return rc;
946 }
947 EXPORT_SYMBOL(ap_owned_by_def_drv);
948
949 /**
950 * ap_apqn_in_matrix_owned_by_def_drv: indicates whether every APQN contained in
951 * a set is reserved for the host drivers
952 * or not.
953 * @apm: a bitmap specifying a set of APIDs comprising the APQNs to check
954 * @aqm: a bitmap specifying a set of APQIs comprising the APQNs to check
955 *
956 * Note: the ap_attr_mutex must be locked by the caller of this function.
957 *
958 * Return: an int specifying whether each APQN is reserved for the host (1) or
959 * not (0)
960 */
ap_apqn_in_matrix_owned_by_def_drv(unsigned long * apm,unsigned long * aqm)961 int ap_apqn_in_matrix_owned_by_def_drv(unsigned long *apm,
962 unsigned long *aqm)
963 {
964 int card, queue, rc = 0;
965
966 for (card = 0; !rc && card < AP_DEVICES; card++)
967 if (test_bit_inv(card, apm))
968 for (queue = 0; !rc && queue < AP_DOMAINS; queue++)
969 if (test_bit_inv(queue, aqm))
970 rc = ap_owned_by_def_drv(card, queue);
971
972 return rc;
973 }
974 EXPORT_SYMBOL(ap_apqn_in_matrix_owned_by_def_drv);
975
ap_device_probe(struct device * dev)976 static int ap_device_probe(struct device *dev)
977 {
978 struct ap_device *ap_dev = to_ap_dev(dev);
979 struct ap_driver *ap_drv = to_ap_drv(dev->driver);
980 int card, queue, devres, drvres, rc = -ENODEV;
981
982 if (!get_device(dev))
983 return rc;
984
985 if (is_queue_dev(dev)) {
986 /*
987 * If the apqn is marked as reserved/used by ap bus and
988 * default drivers, only probe with drivers with the default
989 * flag set. If it is not marked, only probe with drivers
990 * with the default flag not set.
991 */
992 card = AP_QID_CARD(to_ap_queue(dev)->qid);
993 queue = AP_QID_QUEUE(to_ap_queue(dev)->qid);
994 if (ap_dev->driver_override) {
995 if (strcmp(ap_dev->driver_override,
996 ap_drv->driver.name))
997 goto out;
998 } else {
999 mutex_lock(&ap_attr_mutex);
1000 devres = test_bit_inv(card, ap_perms.apm) &&
1001 test_bit_inv(queue, ap_perms.aqm);
1002 mutex_unlock(&ap_attr_mutex);
1003 drvres = ap_drv->flags & AP_DRIVER_FLAG_DEFAULT;
1004 if (!!devres != !!drvres)
1005 goto out;
1006 }
1007 }
1008
1009 /*
1010 * Rearm the bindings complete completion to trigger
1011 * bindings complete when all devices are bound again
1012 */
1013 reinit_completion(&ap_apqn_bindings_complete);
1014
1015 /* Add queue/card to list of active queues/cards */
1016 spin_lock_bh(&ap_queues_lock);
1017 if (is_queue_dev(dev))
1018 hash_add(ap_queues, &to_ap_queue(dev)->hnode,
1019 to_ap_queue(dev)->qid);
1020 spin_unlock_bh(&ap_queues_lock);
1021
1022 rc = ap_drv->probe ? ap_drv->probe(ap_dev) : -ENODEV;
1023
1024 if (rc) {
1025 spin_lock_bh(&ap_queues_lock);
1026 if (is_queue_dev(dev))
1027 hash_del(&to_ap_queue(dev)->hnode);
1028 spin_unlock_bh(&ap_queues_lock);
1029 }
1030
1031 out:
1032 if (rc) {
1033 put_device(dev);
1034 } else {
1035 if (is_queue_dev(dev)) {
1036 pr_debug("queue=%02x.%04x new driver=%s\n",
1037 card, queue, ap_drv->driver.name);
1038 } else {
1039 pr_debug("card=%02x new driver=%s\n",
1040 to_ap_card(dev)->id, ap_drv->driver.name);
1041 }
1042 }
1043 return rc;
1044 }
1045
ap_device_remove(struct device * dev)1046 static void ap_device_remove(struct device *dev)
1047 {
1048 struct ap_device *ap_dev = to_ap_dev(dev);
1049 struct ap_driver *ap_drv = to_ap_drv(dev->driver);
1050
1051 /* prepare ap queue device removal */
1052 if (is_queue_dev(dev))
1053 ap_queue_prepare_remove(to_ap_queue(dev));
1054
1055 /* driver's chance to clean up gracefully */
1056 if (ap_drv->remove)
1057 ap_drv->remove(ap_dev);
1058
1059 /* now do the ap queue device remove */
1060 if (is_queue_dev(dev))
1061 ap_queue_remove(to_ap_queue(dev));
1062
1063 /* Remove queue/card from list of active queues/cards */
1064 spin_lock_bh(&ap_queues_lock);
1065 if (is_queue_dev(dev))
1066 hash_del(&to_ap_queue(dev)->hnode);
1067 spin_unlock_bh(&ap_queues_lock);
1068
1069 put_device(dev);
1070 }
1071
ap_get_qdev(ap_qid_t qid)1072 struct ap_queue *ap_get_qdev(ap_qid_t qid)
1073 {
1074 int bkt;
1075 struct ap_queue *aq;
1076
1077 spin_lock_bh(&ap_queues_lock);
1078 hash_for_each(ap_queues, bkt, aq, hnode) {
1079 if (aq->qid == qid) {
1080 get_device(&aq->ap_dev.device);
1081 spin_unlock_bh(&ap_queues_lock);
1082 return aq;
1083 }
1084 }
1085 spin_unlock_bh(&ap_queues_lock);
1086
1087 return NULL;
1088 }
1089 EXPORT_SYMBOL(ap_get_qdev);
1090
ap_driver_register(struct ap_driver * ap_drv,struct module * owner,char * name)1091 int ap_driver_register(struct ap_driver *ap_drv, struct module *owner,
1092 char *name)
1093 {
1094 struct device_driver *drv = &ap_drv->driver;
1095 int rc;
1096
1097 drv->bus = &ap_bus_type;
1098 drv->owner = owner;
1099 drv->name = name;
1100 rc = driver_register(drv);
1101
1102 ap_check_bindings_complete();
1103
1104 return rc;
1105 }
1106 EXPORT_SYMBOL(ap_driver_register);
1107
ap_driver_unregister(struct ap_driver * ap_drv)1108 void ap_driver_unregister(struct ap_driver *ap_drv)
1109 {
1110 driver_unregister(&ap_drv->driver);
1111 }
1112 EXPORT_SYMBOL(ap_driver_unregister);
1113
1114 /*
1115 * Enforce a synchronous AP bus rescan.
1116 * Returns true if the bus scan finds a change in the AP configuration
1117 * and AP devices have been added or deleted when this function returns.
1118 */
ap_bus_force_rescan(void)1119 bool ap_bus_force_rescan(void)
1120 {
1121 unsigned long scan_counter = atomic64_read(&ap_scan_bus_count);
1122 bool rc = false;
1123
1124 pr_debug("> scan counter=%lu\n", scan_counter);
1125
1126 /* Only trigger AP bus scans after the initial scan is done */
1127 if (scan_counter <= 0)
1128 goto out;
1129
1130 /*
1131 * There is one unlikely but nevertheless valid scenario where the
1132 * thread holding the mutex may try to send some crypto load but
1133 * all cards are offline so a rescan is triggered which causes
1134 * a recursive call of ap_bus_force_rescan(). A simple return if
1135 * the mutex is already locked by this thread solves this.
1136 */
1137 if (mutex_is_locked(&ap_scan_bus_mutex)) {
1138 if (ap_scan_bus_task == current)
1139 goto out;
1140 }
1141
1142 /* Try to acquire the AP scan bus mutex */
1143 if (mutex_trylock(&ap_scan_bus_mutex)) {
1144 /* mutex acquired, run the AP bus scan */
1145 ap_scan_bus_task = current;
1146 ap_scan_bus_result = ap_scan_bus();
1147 rc = ap_scan_bus_result;
1148 ap_scan_bus_task = NULL;
1149 mutex_unlock(&ap_scan_bus_mutex);
1150 goto out;
1151 }
1152
1153 /*
1154 * Mutex acquire failed. So there is currently another task
1155 * already running the AP bus scan. Then let's simple wait
1156 * for the lock which means the other task has finished and
1157 * stored the result in ap_scan_bus_result.
1158 */
1159 if (mutex_lock_interruptible(&ap_scan_bus_mutex)) {
1160 /* some error occurred, ignore and go out */
1161 goto out;
1162 }
1163 rc = ap_scan_bus_result;
1164 mutex_unlock(&ap_scan_bus_mutex);
1165
1166 out:
1167 pr_debug("rc=%d\n", rc);
1168 return rc;
1169 }
1170 EXPORT_SYMBOL(ap_bus_force_rescan);
1171
1172 /*
1173 * A config change has happened, force an ap bus rescan.
1174 */
ap_bus_cfg_chg(struct notifier_block * nb,unsigned long action,void * data)1175 static int ap_bus_cfg_chg(struct notifier_block *nb,
1176 unsigned long action, void *data)
1177 {
1178 if (action != CHSC_NOTIFY_AP_CFG)
1179 return NOTIFY_DONE;
1180
1181 pr_debug("config change, forcing bus rescan\n");
1182
1183 ap_bus_force_rescan();
1184
1185 return NOTIFY_OK;
1186 }
1187
1188 static struct notifier_block ap_bus_nb = {
1189 .notifier_call = ap_bus_cfg_chg,
1190 };
1191
ap_hex2bitmap(const char * str,unsigned long * bitmap,int bits)1192 int ap_hex2bitmap(const char *str, unsigned long *bitmap, int bits)
1193 {
1194 int i, n, b;
1195
1196 /* bits needs to be a multiple of 8 */
1197 if (bits & 0x07)
1198 return -EINVAL;
1199
1200 if (str[0] == '0' && str[1] == 'x')
1201 str++;
1202 if (*str == 'x')
1203 str++;
1204
1205 for (i = 0; isxdigit(*str) && i < bits; str++) {
1206 b = hex_to_bin(*str);
1207 for (n = 0; n < 4; n++)
1208 if (b & (0x08 >> n))
1209 set_bit_inv(i + n, bitmap);
1210 i += 4;
1211 }
1212
1213 if (*str == '\n')
1214 str++;
1215 if (*str)
1216 return -EINVAL;
1217 return 0;
1218 }
1219 EXPORT_SYMBOL(ap_hex2bitmap);
1220
1221 /*
1222 * modify_bitmap() - parse bitmask argument and modify an existing
1223 * bit mask accordingly. A concatenation (done with ',') of these
1224 * terms is recognized:
1225 * +<bitnr>[-<bitnr>] or -<bitnr>[-<bitnr>]
1226 * <bitnr> may be any valid number (hex, decimal or octal) in the range
1227 * 0...bits-1; the leading + or - is required. Here are some examples:
1228 * +0-15,+32,-128,-0xFF
1229 * -0-255,+1-16,+0x128
1230 * +1,+2,+3,+4,-5,-7-10
1231 * Returns the new bitmap after all changes have been applied. Every
1232 * positive value in the string will set a bit and every negative value
1233 * in the string will clear a bit. As a bit may be touched more than once,
1234 * the last 'operation' wins:
1235 * +0-255,-128 = first bits 0-255 will be set, then bit 128 will be
1236 * cleared again. All other bits are unmodified.
1237 */
modify_bitmap(const char * str,unsigned long * bitmap,int bits)1238 static int modify_bitmap(const char *str, unsigned long *bitmap, int bits)
1239 {
1240 unsigned long a, i, z;
1241 char *np, sign;
1242
1243 /* bits needs to be a multiple of 8 */
1244 if (bits & 0x07)
1245 return -EINVAL;
1246
1247 while (*str) {
1248 sign = *str++;
1249 if (sign != '+' && sign != '-')
1250 return -EINVAL;
1251 a = z = simple_strtoul(str, &np, 0);
1252 if (str == np || a >= bits)
1253 return -EINVAL;
1254 str = np;
1255 if (*str == '-') {
1256 z = simple_strtoul(++str, &np, 0);
1257 if (str == np || a > z || z >= bits)
1258 return -EINVAL;
1259 str = np;
1260 }
1261 for (i = a; i <= z; i++)
1262 if (sign == '+')
1263 set_bit_inv(i, bitmap);
1264 else
1265 clear_bit_inv(i, bitmap);
1266 while (*str == ',' || *str == '\n')
1267 str++;
1268 }
1269
1270 return 0;
1271 }
1272
ap_parse_bitmap_str(const char * str,unsigned long * bitmap,int bits,unsigned long * newmap)1273 static int ap_parse_bitmap_str(const char *str, unsigned long *bitmap, int bits,
1274 unsigned long *newmap)
1275 {
1276 unsigned long size;
1277 int rc;
1278
1279 size = BITS_TO_LONGS(bits) * sizeof(unsigned long);
1280 if (*str == '+' || *str == '-') {
1281 memcpy(newmap, bitmap, size);
1282 rc = modify_bitmap(str, newmap, bits);
1283 } else {
1284 memset(newmap, 0, size);
1285 rc = ap_hex2bitmap(str, newmap, bits);
1286 }
1287 return rc;
1288 }
1289
ap_parse_mask_str(const char * str,unsigned long * bitmap,int bits,struct mutex * lock)1290 int ap_parse_mask_str(const char *str,
1291 unsigned long *bitmap, int bits,
1292 struct mutex *lock)
1293 {
1294 unsigned long *newmap, size;
1295 int rc;
1296
1297 /* bits needs to be a multiple of 8 */
1298 if (bits & 0x07)
1299 return -EINVAL;
1300
1301 size = BITS_TO_LONGS(bits) * sizeof(unsigned long);
1302 newmap = kmalloc(size, GFP_KERNEL);
1303 if (!newmap)
1304 return -ENOMEM;
1305 if (mutex_lock_interruptible(lock)) {
1306 kfree(newmap);
1307 return -ERESTARTSYS;
1308 }
1309 rc = ap_parse_bitmap_str(str, bitmap, bits, newmap);
1310 if (rc == 0)
1311 memcpy(bitmap, newmap, size);
1312 mutex_unlock(lock);
1313 kfree(newmap);
1314 return rc;
1315 }
1316 EXPORT_SYMBOL(ap_parse_mask_str);
1317
1318 /*
1319 * AP bus attributes.
1320 */
1321
ap_domain_show(const struct bus_type * bus,char * buf)1322 static ssize_t ap_domain_show(const struct bus_type *bus, char *buf)
1323 {
1324 return sysfs_emit(buf, "%d\n", ap_domain_index);
1325 }
1326
ap_domain_store(const struct bus_type * bus,const char * buf,size_t count)1327 static ssize_t ap_domain_store(const struct bus_type *bus,
1328 const char *buf, size_t count)
1329 {
1330 int domain;
1331
1332 if (sscanf(buf, "%i\n", &domain) != 1 ||
1333 domain < 0 || domain > ap_max_domain_id ||
1334 !test_bit_inv(domain, ap_perms.aqm))
1335 return -EINVAL;
1336
1337 spin_lock_bh(&ap_domain_lock);
1338 ap_domain_index = domain;
1339 spin_unlock_bh(&ap_domain_lock);
1340
1341 AP_DBF_INFO("%s stored new default domain=%d\n",
1342 __func__, domain);
1343
1344 return count;
1345 }
1346
1347 static BUS_ATTR_RW(ap_domain);
1348
ap_control_domain_mask_show(const struct bus_type * bus,char * buf)1349 static ssize_t ap_control_domain_mask_show(const struct bus_type *bus, char *buf)
1350 {
1351 if (!ap_qci_info->flags) /* QCI not supported */
1352 return sysfs_emit(buf, "not supported\n");
1353
1354 return sysfs_emit(buf, "0x%08x%08x%08x%08x%08x%08x%08x%08x\n",
1355 ap_qci_info->adm[0], ap_qci_info->adm[1],
1356 ap_qci_info->adm[2], ap_qci_info->adm[3],
1357 ap_qci_info->adm[4], ap_qci_info->adm[5],
1358 ap_qci_info->adm[6], ap_qci_info->adm[7]);
1359 }
1360
1361 static BUS_ATTR_RO(ap_control_domain_mask);
1362
ap_usage_domain_mask_show(const struct bus_type * bus,char * buf)1363 static ssize_t ap_usage_domain_mask_show(const struct bus_type *bus, char *buf)
1364 {
1365 if (!ap_qci_info->flags) /* QCI not supported */
1366 return sysfs_emit(buf, "not supported\n");
1367
1368 return sysfs_emit(buf, "0x%08x%08x%08x%08x%08x%08x%08x%08x\n",
1369 ap_qci_info->aqm[0], ap_qci_info->aqm[1],
1370 ap_qci_info->aqm[2], ap_qci_info->aqm[3],
1371 ap_qci_info->aqm[4], ap_qci_info->aqm[5],
1372 ap_qci_info->aqm[6], ap_qci_info->aqm[7]);
1373 }
1374
1375 static BUS_ATTR_RO(ap_usage_domain_mask);
1376
ap_adapter_mask_show(const struct bus_type * bus,char * buf)1377 static ssize_t ap_adapter_mask_show(const struct bus_type *bus, char *buf)
1378 {
1379 if (!ap_qci_info->flags) /* QCI not supported */
1380 return sysfs_emit(buf, "not supported\n");
1381
1382 return sysfs_emit(buf, "0x%08x%08x%08x%08x%08x%08x%08x%08x\n",
1383 ap_qci_info->apm[0], ap_qci_info->apm[1],
1384 ap_qci_info->apm[2], ap_qci_info->apm[3],
1385 ap_qci_info->apm[4], ap_qci_info->apm[5],
1386 ap_qci_info->apm[6], ap_qci_info->apm[7]);
1387 }
1388
1389 static BUS_ATTR_RO(ap_adapter_mask);
1390
ap_interrupts_show(const struct bus_type * bus,char * buf)1391 static ssize_t ap_interrupts_show(const struct bus_type *bus, char *buf)
1392 {
1393 return sysfs_emit(buf, "%d\n", ap_irq_flag ? 1 : 0);
1394 }
1395
1396 static BUS_ATTR_RO(ap_interrupts);
1397
config_time_show(const struct bus_type * bus,char * buf)1398 static ssize_t config_time_show(const struct bus_type *bus, char *buf)
1399 {
1400 return sysfs_emit(buf, "%d\n", ap_scan_bus_time);
1401 }
1402
config_time_store(const struct bus_type * bus,const char * buf,size_t count)1403 static ssize_t config_time_store(const struct bus_type *bus,
1404 const char *buf, size_t count)
1405 {
1406 int time;
1407
1408 if (sscanf(buf, "%d\n", &time) != 1 || time < 5 || time > 120)
1409 return -EINVAL;
1410 ap_scan_bus_time = time;
1411 mod_timer(&ap_scan_bus_timer, jiffies + ap_scan_bus_time * HZ);
1412 return count;
1413 }
1414
1415 static BUS_ATTR_RW(config_time);
1416
poll_thread_show(const struct bus_type * bus,char * buf)1417 static ssize_t poll_thread_show(const struct bus_type *bus, char *buf)
1418 {
1419 return sysfs_emit(buf, "%d\n", ap_poll_kthread ? 1 : 0);
1420 }
1421
poll_thread_store(const struct bus_type * bus,const char * buf,size_t count)1422 static ssize_t poll_thread_store(const struct bus_type *bus,
1423 const char *buf, size_t count)
1424 {
1425 bool value;
1426 int rc;
1427
1428 rc = kstrtobool(buf, &value);
1429 if (rc)
1430 return rc;
1431
1432 if (value) {
1433 rc = ap_poll_thread_start();
1434 if (rc)
1435 count = rc;
1436 } else {
1437 ap_poll_thread_stop();
1438 }
1439 return count;
1440 }
1441
1442 static BUS_ATTR_RW(poll_thread);
1443
poll_timeout_show(const struct bus_type * bus,char * buf)1444 static ssize_t poll_timeout_show(const struct bus_type *bus, char *buf)
1445 {
1446 return sysfs_emit(buf, "%lu\n", poll_high_timeout);
1447 }
1448
poll_timeout_store(const struct bus_type * bus,const char * buf,size_t count)1449 static ssize_t poll_timeout_store(const struct bus_type *bus, const char *buf,
1450 size_t count)
1451 {
1452 unsigned long value;
1453 ktime_t hr_time;
1454 int rc;
1455
1456 rc = kstrtoul(buf, 0, &value);
1457 if (rc)
1458 return rc;
1459
1460 /* 120 seconds = maximum poll interval */
1461 if (value > 120000000000UL)
1462 return -EINVAL;
1463 poll_high_timeout = value;
1464 hr_time = poll_high_timeout;
1465
1466 spin_lock_bh(&ap_poll_timer_lock);
1467 hrtimer_cancel(&ap_poll_timer);
1468 hrtimer_set_expires(&ap_poll_timer, hr_time);
1469 hrtimer_start_expires(&ap_poll_timer, HRTIMER_MODE_ABS);
1470 spin_unlock_bh(&ap_poll_timer_lock);
1471
1472 return count;
1473 }
1474
1475 static BUS_ATTR_RW(poll_timeout);
1476
ap_max_domain_id_show(const struct bus_type * bus,char * buf)1477 static ssize_t ap_max_domain_id_show(const struct bus_type *bus, char *buf)
1478 {
1479 return sysfs_emit(buf, "%d\n", ap_max_domain_id);
1480 }
1481
1482 static BUS_ATTR_RO(ap_max_domain_id);
1483
ap_max_adapter_id_show(const struct bus_type * bus,char * buf)1484 static ssize_t ap_max_adapter_id_show(const struct bus_type *bus, char *buf)
1485 {
1486 return sysfs_emit(buf, "%d\n", ap_max_adapter_id);
1487 }
1488
1489 static BUS_ATTR_RO(ap_max_adapter_id);
1490
apmask_show(const struct bus_type * bus,char * buf)1491 static ssize_t apmask_show(const struct bus_type *bus, char *buf)
1492 {
1493 int rc;
1494
1495 if (mutex_lock_interruptible(&ap_attr_mutex))
1496 return -ERESTARTSYS;
1497 rc = sysfs_emit(buf, "0x%016lx%016lx%016lx%016lx\n",
1498 ap_perms.apm[0], ap_perms.apm[1],
1499 ap_perms.apm[2], ap_perms.apm[3]);
1500 mutex_unlock(&ap_attr_mutex);
1501
1502 return rc;
1503 }
1504
__verify_card_reservations(struct device_driver * drv,void * data)1505 static int __verify_card_reservations(struct device_driver *drv, void *data)
1506 {
1507 int rc = 0;
1508 struct ap_driver *ap_drv = to_ap_drv(drv);
1509 unsigned long *newapm = (unsigned long *)data;
1510 unsigned long aqm_any[BITS_TO_LONGS(AP_DOMAINS)];
1511
1512 /*
1513 * increase the driver's module refcounter to be sure it is not
1514 * going away when we invoke the callback function.
1515 */
1516 if (!try_module_get(drv->owner))
1517 return 0;
1518
1519 if (ap_drv->in_use) {
1520 bitmap_fill(aqm_any, AP_DOMAINS);
1521 rc = ap_drv->in_use(newapm, aqm_any);
1522 if (rc)
1523 rc = -EBUSY;
1524 }
1525
1526 /* release the driver's module */
1527 module_put(drv->owner);
1528
1529 return rc;
1530 }
1531
apmask_commit(unsigned long * newapm)1532 static int apmask_commit(unsigned long *newapm)
1533 {
1534 int rc;
1535 unsigned long reserved[BITS_TO_LONGS(AP_DEVICES)];
1536
1537 /*
1538 * Check if any bits in the apmask have been set which will
1539 * result in queues being removed from non-default drivers
1540 */
1541 if (bitmap_andnot(reserved, newapm, ap_perms.apm, AP_DEVICES)) {
1542 rc = bus_for_each_drv(&ap_bus_type, NULL, reserved,
1543 __verify_card_reservations);
1544 if (rc)
1545 return rc;
1546 }
1547
1548 memcpy(ap_perms.apm, newapm, APMASKSIZE);
1549
1550 /*
1551 * Update ap_apmask_aqmask_in_use. Note that the
1552 * ap_attr_mutex has to be obtained here.
1553 */
1554 ap_apmask_aqmask_in_use =
1555 bitmap_full(ap_perms.apm, AP_DEVICES) &&
1556 bitmap_full(ap_perms.aqm, AP_DOMAINS) ?
1557 false : true;
1558
1559 return 0;
1560 }
1561
apmask_store(const struct bus_type * bus,const char * buf,size_t count)1562 static ssize_t apmask_store(const struct bus_type *bus, const char *buf,
1563 size_t count)
1564 {
1565 DECLARE_BITMAP(newapm, AP_DEVICES);
1566 int rc = -EINVAL, changes = 0;
1567
1568 if (mutex_lock_interruptible(&ap_attr_mutex))
1569 return -ERESTARTSYS;
1570
1571 /* Do not allow apmask/aqmask if driver override is active */
1572 if (ap_driver_override_ctr)
1573 goto done;
1574
1575 rc = ap_parse_bitmap_str(buf, ap_perms.apm, AP_DEVICES, newapm);
1576 if (rc)
1577 goto done;
1578
1579 changes = memcmp(ap_perms.apm, newapm, APMASKSIZE);
1580 if (changes)
1581 rc = apmask_commit(newapm);
1582
1583 done:
1584 mutex_unlock(&ap_attr_mutex);
1585 if (rc)
1586 return rc;
1587
1588 if (changes) {
1589 ap_bus_revise_bindings();
1590 ap_send_mask_changed_uevent(newapm, NULL);
1591 }
1592
1593 return count;
1594 }
1595
1596 static BUS_ATTR_RW(apmask);
1597
aqmask_show(const struct bus_type * bus,char * buf)1598 static ssize_t aqmask_show(const struct bus_type *bus, char *buf)
1599 {
1600 int rc;
1601
1602 if (mutex_lock_interruptible(&ap_attr_mutex))
1603 return -ERESTARTSYS;
1604 rc = sysfs_emit(buf, "0x%016lx%016lx%016lx%016lx\n",
1605 ap_perms.aqm[0], ap_perms.aqm[1],
1606 ap_perms.aqm[2], ap_perms.aqm[3]);
1607 mutex_unlock(&ap_attr_mutex);
1608
1609 return rc;
1610 }
1611
__verify_queue_reservations(struct device_driver * drv,void * data)1612 static int __verify_queue_reservations(struct device_driver *drv, void *data)
1613 {
1614 int rc = 0;
1615 struct ap_driver *ap_drv = to_ap_drv(drv);
1616 unsigned long *newaqm = (unsigned long *)data;
1617 unsigned long apm_any[BITS_TO_LONGS(AP_DEVICES)];
1618
1619 /*
1620 * increase the driver's module refcounter to be sure it is not
1621 * going away when we invoke the callback function.
1622 */
1623 if (!try_module_get(drv->owner))
1624 return 0;
1625
1626 if (ap_drv->in_use) {
1627 bitmap_fill(apm_any, AP_DEVICES);
1628 rc = ap_drv->in_use(apm_any, newaqm);
1629 if (rc)
1630 rc = -EBUSY;
1631 }
1632
1633 /* release the driver's module */
1634 module_put(drv->owner);
1635
1636 return rc;
1637 }
1638
aqmask_commit(unsigned long * newaqm)1639 static int aqmask_commit(unsigned long *newaqm)
1640 {
1641 int rc;
1642 unsigned long reserved[BITS_TO_LONGS(AP_DOMAINS)];
1643
1644 /*
1645 * Check if any bits in the aqmask have been set which will
1646 * result in queues being removed from non-default drivers
1647 */
1648 if (bitmap_andnot(reserved, newaqm, ap_perms.aqm, AP_DOMAINS)) {
1649 rc = bus_for_each_drv(&ap_bus_type, NULL, reserved,
1650 __verify_queue_reservations);
1651 if (rc)
1652 return rc;
1653 }
1654
1655 memcpy(ap_perms.aqm, newaqm, AQMASKSIZE);
1656
1657 /*
1658 * Update ap_apmask_aqmask_in_use. Note that the
1659 * ap_attr_mutex has to be obtained here.
1660 */
1661 ap_apmask_aqmask_in_use =
1662 bitmap_full(ap_perms.apm, AP_DEVICES) &&
1663 bitmap_full(ap_perms.aqm, AP_DOMAINS) ?
1664 false : true;
1665
1666 return 0;
1667 }
1668
aqmask_store(const struct bus_type * bus,const char * buf,size_t count)1669 static ssize_t aqmask_store(const struct bus_type *bus, const char *buf,
1670 size_t count)
1671 {
1672 DECLARE_BITMAP(newaqm, AP_DOMAINS);
1673 int rc = -EINVAL, changes = 0;
1674
1675 if (mutex_lock_interruptible(&ap_attr_mutex))
1676 return -ERESTARTSYS;
1677
1678 /* Do not allow apmask/aqmask if driver override is active */
1679 if (ap_driver_override_ctr)
1680 goto done;
1681
1682 rc = ap_parse_bitmap_str(buf, ap_perms.aqm, AP_DOMAINS, newaqm);
1683 if (rc)
1684 goto done;
1685
1686 changes = memcmp(ap_perms.aqm, newaqm, APMASKSIZE);
1687 if (changes)
1688 rc = aqmask_commit(newaqm);
1689
1690 done:
1691 mutex_unlock(&ap_attr_mutex);
1692 if (rc)
1693 return rc;
1694
1695 if (changes) {
1696 ap_bus_revise_bindings();
1697 ap_send_mask_changed_uevent(NULL, newaqm);
1698 }
1699
1700 return count;
1701 }
1702
1703 static BUS_ATTR_RW(aqmask);
1704
scans_show(const struct bus_type * bus,char * buf)1705 static ssize_t scans_show(const struct bus_type *bus, char *buf)
1706 {
1707 return sysfs_emit(buf, "%llu\n", atomic64_read(&ap_scan_bus_count));
1708 }
1709
scans_store(const struct bus_type * bus,const char * buf,size_t count)1710 static ssize_t scans_store(const struct bus_type *bus, const char *buf,
1711 size_t count)
1712 {
1713 AP_DBF_INFO("%s force AP bus rescan\n", __func__);
1714
1715 ap_bus_force_rescan();
1716
1717 return count;
1718 }
1719
1720 static BUS_ATTR_RW(scans);
1721
bindings_show(const struct bus_type * bus,char * buf)1722 static ssize_t bindings_show(const struct bus_type *bus, char *buf)
1723 {
1724 int rc;
1725 unsigned int apqns, n;
1726
1727 ap_calc_bound_apqns(&apqns, &n);
1728 if (atomic64_read(&ap_scan_bus_count) >= 1 && n == apqns)
1729 rc = sysfs_emit(buf, "%u/%u (complete)\n", n, apqns);
1730 else
1731 rc = sysfs_emit(buf, "%u/%u\n", n, apqns);
1732
1733 return rc;
1734 }
1735
1736 static BUS_ATTR_RO(bindings);
1737
bindings_complete_count_show(const struct bus_type * bus,char * buf)1738 static ssize_t bindings_complete_count_show(const struct bus_type *bus,
1739 char *buf)
1740 {
1741 return sysfs_emit(buf, "%llu\n",
1742 atomic64_read(&ap_bindings_complete_count));
1743 }
1744
1745 static BUS_ATTR_RO(bindings_complete_count);
1746
features_show(const struct bus_type * bus,char * buf)1747 static ssize_t features_show(const struct bus_type *bus, char *buf)
1748 {
1749 int n = 0;
1750
1751 if (!ap_qci_info->flags) /* QCI not supported */
1752 return sysfs_emit(buf, "-\n");
1753
1754 if (ap_qci_info->apsc)
1755 n += sysfs_emit_at(buf, n, "APSC ");
1756 if (ap_qci_info->apxa)
1757 n += sysfs_emit_at(buf, n, "APXA ");
1758 if (ap_qci_info->qact)
1759 n += sysfs_emit_at(buf, n, "QACT ");
1760 if (ap_qci_info->rc8a)
1761 n += sysfs_emit_at(buf, n, "RC8A ");
1762 if (ap_qci_info->apsb)
1763 n += sysfs_emit_at(buf, n, "APSB ");
1764
1765 sysfs_emit_at(buf, n == 0 ? 0 : n - 1, "\n");
1766
1767 return n;
1768 }
1769
1770 static BUS_ATTR_RO(features);
1771
1772 static struct attribute *ap_bus_attrs[] = {
1773 &bus_attr_ap_domain.attr,
1774 &bus_attr_ap_control_domain_mask.attr,
1775 &bus_attr_ap_usage_domain_mask.attr,
1776 &bus_attr_ap_adapter_mask.attr,
1777 &bus_attr_config_time.attr,
1778 &bus_attr_poll_thread.attr,
1779 &bus_attr_ap_interrupts.attr,
1780 &bus_attr_poll_timeout.attr,
1781 &bus_attr_ap_max_domain_id.attr,
1782 &bus_attr_ap_max_adapter_id.attr,
1783 &bus_attr_apmask.attr,
1784 &bus_attr_aqmask.attr,
1785 &bus_attr_scans.attr,
1786 &bus_attr_bindings.attr,
1787 &bus_attr_bindings_complete_count.attr,
1788 &bus_attr_features.attr,
1789 NULL,
1790 };
1791 ATTRIBUTE_GROUPS(ap_bus);
1792
1793 static const struct bus_type ap_bus_type = {
1794 .name = "ap",
1795 .bus_groups = ap_bus_groups,
1796 .match = &ap_bus_match,
1797 .uevent = &ap_uevent,
1798 .probe = ap_device_probe,
1799 .remove = ap_device_remove,
1800 };
1801
1802 /**
1803 * ap_select_domain(): Select an AP domain if possible and we haven't
1804 * already done so before.
1805 */
ap_select_domain(void)1806 static void ap_select_domain(void)
1807 {
1808 struct ap_queue_status status;
1809 int card, dom;
1810
1811 /*
1812 * Choose the default domain. Either the one specified with
1813 * the "domain=" parameter or the first domain with at least
1814 * one valid APQN.
1815 */
1816 spin_lock_bh(&ap_domain_lock);
1817 if (ap_domain_index >= 0) {
1818 /* Domain has already been selected. */
1819 goto out;
1820 }
1821 for (dom = 0; dom <= ap_max_domain_id; dom++) {
1822 if (!ap_test_config_usage_domain(dom) ||
1823 !test_bit_inv(dom, ap_perms.aqm))
1824 continue;
1825 for (card = 0; card <= ap_max_adapter_id; card++) {
1826 if (!ap_test_config_card_id(card) ||
1827 !test_bit_inv(card, ap_perms.apm))
1828 continue;
1829 status = ap_test_queue(AP_MKQID(card, dom),
1830 ap_apft_available(),
1831 NULL);
1832 if (status.response_code == AP_RESPONSE_NORMAL)
1833 break;
1834 }
1835 if (card <= ap_max_adapter_id)
1836 break;
1837 }
1838 if (dom <= ap_max_domain_id) {
1839 ap_domain_index = dom;
1840 AP_DBF_INFO("%s new default domain is %d\n",
1841 __func__, ap_domain_index);
1842 }
1843 out:
1844 spin_unlock_bh(&ap_domain_lock);
1845 }
1846
1847 /*
1848 * This function checks the type and returns either 0 for not
1849 * supported or the highest compatible type value (which may
1850 * include the input type value).
1851 */
ap_get_compatible_type(ap_qid_t qid,int rawtype,unsigned int func)1852 static int ap_get_compatible_type(ap_qid_t qid, int rawtype, unsigned int func)
1853 {
1854 int comp_type = 0;
1855
1856 /* < CEX4 is not supported */
1857 if (rawtype < AP_DEVICE_TYPE_CEX4) {
1858 AP_DBF_WARN("%s queue=%02x.%04x unsupported type %d\n",
1859 __func__, AP_QID_CARD(qid),
1860 AP_QID_QUEUE(qid), rawtype);
1861 return 0;
1862 }
1863 /* up to CEX8 known and fully supported */
1864 if (rawtype <= AP_DEVICE_TYPE_CEX8)
1865 return rawtype;
1866 /*
1867 * unknown new type > CEX8, check for compatibility
1868 * to the highest known and supported type which is
1869 * currently CEX8 with the help of the QACT function.
1870 */
1871 if (ap_qact_available()) {
1872 struct ap_queue_status status;
1873 union ap_qact_ap_info apinfo = {0};
1874
1875 apinfo.mode = (func >> 26) & 0x07;
1876 apinfo.cat = AP_DEVICE_TYPE_CEX8;
1877 status = ap_qact(qid, 0, &apinfo);
1878 if (status.response_code == AP_RESPONSE_NORMAL &&
1879 apinfo.cat >= AP_DEVICE_TYPE_CEX4 &&
1880 apinfo.cat <= AP_DEVICE_TYPE_CEX8)
1881 comp_type = apinfo.cat;
1882 }
1883 if (!comp_type)
1884 AP_DBF_WARN("%s queue=%02x.%04x unable to map type %d\n",
1885 __func__, AP_QID_CARD(qid),
1886 AP_QID_QUEUE(qid), rawtype);
1887 else if (comp_type != rawtype)
1888 AP_DBF_INFO("%s queue=%02x.%04x map type %d to %d\n",
1889 __func__, AP_QID_CARD(qid), AP_QID_QUEUE(qid),
1890 rawtype, comp_type);
1891 return comp_type;
1892 }
1893
1894 /*
1895 * Helper function to be used with bus_find_dev
1896 * matches for the card device with the given id
1897 */
__match_card_device_with_id(struct device * dev,const void * data)1898 static int __match_card_device_with_id(struct device *dev, const void *data)
1899 {
1900 return is_card_dev(dev) && to_ap_card(dev)->id == (int)(long)(void *)data;
1901 }
1902
1903 /*
1904 * Helper function to be used with bus_find_dev
1905 * matches for the queue device with a given qid
1906 */
__match_queue_device_with_qid(struct device * dev,const void * data)1907 static int __match_queue_device_with_qid(struct device *dev, const void *data)
1908 {
1909 return is_queue_dev(dev) && to_ap_queue(dev)->qid == (int)(long)data;
1910 }
1911
1912 /*
1913 * Helper function to be used with bus_find_dev
1914 * matches any queue device with given queue id
1915 */
__match_queue_device_with_queue_id(struct device * dev,const void * data)1916 static int __match_queue_device_with_queue_id(struct device *dev, const void *data)
1917 {
1918 return is_queue_dev(dev) &&
1919 AP_QID_QUEUE(to_ap_queue(dev)->qid) == (int)(long)data;
1920 }
1921
1922 /* Helper function for notify_config_changed */
__drv_notify_config_changed(struct device_driver * drv,void * data)1923 static int __drv_notify_config_changed(struct device_driver *drv, void *data)
1924 {
1925 struct ap_driver *ap_drv = to_ap_drv(drv);
1926
1927 if (try_module_get(drv->owner)) {
1928 if (ap_drv->on_config_changed)
1929 ap_drv->on_config_changed(ap_qci_info, ap_qci_info_old);
1930 module_put(drv->owner);
1931 }
1932
1933 return 0;
1934 }
1935
1936 /* Notify all drivers about an qci config change */
notify_config_changed(void)1937 static inline void notify_config_changed(void)
1938 {
1939 bus_for_each_drv(&ap_bus_type, NULL, NULL,
1940 __drv_notify_config_changed);
1941 }
1942
1943 /* Helper function for notify_scan_complete */
__drv_notify_scan_complete(struct device_driver * drv,void * data)1944 static int __drv_notify_scan_complete(struct device_driver *drv, void *data)
1945 {
1946 struct ap_driver *ap_drv = to_ap_drv(drv);
1947
1948 if (try_module_get(drv->owner)) {
1949 if (ap_drv->on_scan_complete)
1950 ap_drv->on_scan_complete(ap_qci_info,
1951 ap_qci_info_old);
1952 module_put(drv->owner);
1953 }
1954
1955 return 0;
1956 }
1957
1958 /* Notify all drivers about bus scan complete */
notify_scan_complete(void)1959 static inline void notify_scan_complete(void)
1960 {
1961 bus_for_each_drv(&ap_bus_type, NULL, NULL,
1962 __drv_notify_scan_complete);
1963 }
1964
1965 /*
1966 * Helper function for ap_scan_bus().
1967 * Remove card device and associated queue devices.
1968 */
ap_scan_rm_card_dev_and_queue_devs(struct ap_card * ac)1969 static inline void ap_scan_rm_card_dev_and_queue_devs(struct ap_card *ac)
1970 {
1971 bus_for_each_dev(&ap_bus_type, NULL,
1972 (void *)(long)ac->id,
1973 __ap_queue_devices_with_id_unregister);
1974 device_unregister(&ac->ap_dev.device);
1975 }
1976
1977 /*
1978 * Helper function for ap_scan_bus().
1979 * Does the scan bus job for all the domains within
1980 * a valid adapter given by an ap_card ptr.
1981 */
ap_scan_domains(struct ap_card * ac)1982 static inline void ap_scan_domains(struct ap_card *ac)
1983 {
1984 struct ap_tapq_hwinfo hwinfo;
1985 bool decfg, chkstop;
1986 struct ap_queue *aq;
1987 struct device *dev;
1988 ap_qid_t qid;
1989 int rc, dom;
1990
1991 /*
1992 * Go through the configuration for the domains and compare them
1993 * to the existing queue devices. Also take care of the config
1994 * and error state for the queue devices.
1995 */
1996
1997 for (dom = 0; dom <= ap_max_domain_id; dom++) {
1998 qid = AP_MKQID(ac->id, dom);
1999 dev = bus_find_device(&ap_bus_type, NULL,
2000 (void *)(long)qid,
2001 __match_queue_device_with_qid);
2002 aq = dev ? to_ap_queue(dev) : NULL;
2003 if (!ap_test_config_usage_domain(dom)) {
2004 if (dev) {
2005 AP_DBF_INFO("%s(%d,%d) not in config anymore, rm queue dev\n",
2006 __func__, ac->id, dom);
2007 device_unregister(dev);
2008 }
2009 goto put_dev_and_continue;
2010 }
2011 /* domain is valid, get info from this APQN */
2012 rc = ap_queue_info(qid, &hwinfo, &decfg, &chkstop);
2013 switch (rc) {
2014 case -1:
2015 if (dev) {
2016 AP_DBF_INFO("%s(%d,%d) queue_info() failed, rm queue dev\n",
2017 __func__, ac->id, dom);
2018 device_unregister(dev);
2019 }
2020 fallthrough;
2021 case 0:
2022 goto put_dev_and_continue;
2023 default:
2024 break;
2025 }
2026 /* if no queue device exists, create a new one */
2027 if (!aq) {
2028 aq = ap_queue_create(qid, ac);
2029 if (!aq) {
2030 AP_DBF_WARN("%s(%d,%d) ap_queue_create() failed\n",
2031 __func__, ac->id, dom);
2032 continue;
2033 }
2034 aq->config = !decfg;
2035 aq->chkstop = chkstop;
2036 aq->se_bstate = hwinfo.bs;
2037 dev = &aq->ap_dev.device;
2038 dev->bus = &ap_bus_type;
2039 dev->parent = &ac->ap_dev.device;
2040 dev_set_name(dev, "%02x.%04x", ac->id, dom);
2041 /* register queue device */
2042 rc = device_register(dev);
2043 if (rc) {
2044 AP_DBF_WARN("%s(%d,%d) device_register() failed\n",
2045 __func__, ac->id, dom);
2046 goto put_dev_and_continue;
2047 }
2048 /* get it and thus adjust reference counter */
2049 get_device(dev);
2050 if (decfg) {
2051 AP_DBF_INFO("%s(%d,%d) new (decfg) queue dev created\n",
2052 __func__, ac->id, dom);
2053 } else if (chkstop) {
2054 AP_DBF_INFO("%s(%d,%d) new (chkstop) queue dev created\n",
2055 __func__, ac->id, dom);
2056 } else {
2057 /* nudge the queue's state machine */
2058 ap_queue_init_state(aq);
2059 AP_DBF_INFO("%s(%d,%d) new queue dev created\n",
2060 __func__, ac->id, dom);
2061 }
2062 goto put_dev_and_continue;
2063 }
2064 /* handle state changes on already existing queue device */
2065 spin_lock_bh(&aq->lock);
2066 /* SE bind state */
2067 aq->se_bstate = hwinfo.bs;
2068 /* checkstop state */
2069 if (chkstop && !aq->chkstop) {
2070 /* checkstop on */
2071 aq->chkstop = true;
2072 if (aq->dev_state > AP_DEV_STATE_UNINITIATED) {
2073 aq->dev_state = AP_DEV_STATE_ERROR;
2074 aq->last_err_rc = AP_RESPONSE_CHECKSTOPPED;
2075 }
2076 spin_unlock_bh(&aq->lock);
2077 pr_debug("(%d,%d) queue dev checkstop on\n",
2078 ac->id, dom);
2079 /* 'receive' pending messages with -EAGAIN */
2080 ap_flush_queue(aq);
2081 goto put_dev_and_continue;
2082 } else if (!chkstop && aq->chkstop) {
2083 /* checkstop off */
2084 aq->chkstop = false;
2085 if (aq->dev_state > AP_DEV_STATE_UNINITIATED)
2086 _ap_queue_init_state(aq);
2087 spin_unlock_bh(&aq->lock);
2088 pr_debug("(%d,%d) queue dev checkstop off\n",
2089 ac->id, dom);
2090 goto put_dev_and_continue;
2091 }
2092 /* config state change */
2093 if (decfg && aq->config) {
2094 /* config off this queue device */
2095 aq->config = false;
2096 if (aq->dev_state > AP_DEV_STATE_UNINITIATED) {
2097 aq->dev_state = AP_DEV_STATE_ERROR;
2098 aq->last_err_rc = AP_RESPONSE_DECONFIGURED;
2099 }
2100 spin_unlock_bh(&aq->lock);
2101 pr_debug("(%d,%d) queue dev config off\n",
2102 ac->id, dom);
2103 ap_send_config_uevent(&aq->ap_dev, aq->config);
2104 /* 'receive' pending messages with -EAGAIN */
2105 ap_flush_queue(aq);
2106 goto put_dev_and_continue;
2107 } else if (!decfg && !aq->config) {
2108 /* config on this queue device */
2109 aq->config = true;
2110 if (aq->dev_state > AP_DEV_STATE_UNINITIATED)
2111 _ap_queue_init_state(aq);
2112 spin_unlock_bh(&aq->lock);
2113 pr_debug("(%d,%d) queue dev config on\n",
2114 ac->id, dom);
2115 ap_send_config_uevent(&aq->ap_dev, aq->config);
2116 goto put_dev_and_continue;
2117 }
2118 /* handle other error states */
2119 if (!decfg && aq->dev_state == AP_DEV_STATE_ERROR) {
2120 spin_unlock_bh(&aq->lock);
2121 /* 'receive' pending messages with -EAGAIN */
2122 ap_flush_queue(aq);
2123 /* re-init (with reset) the queue device */
2124 ap_queue_init_state(aq);
2125 AP_DBF_INFO("%s(%d,%d) queue dev reinit enforced\n",
2126 __func__, ac->id, dom);
2127 goto put_dev_and_continue;
2128 }
2129 spin_unlock_bh(&aq->lock);
2130 put_dev_and_continue:
2131 put_device(dev);
2132 }
2133 }
2134
2135 /*
2136 * Helper function for ap_scan_bus().
2137 * Does the scan bus job for the given adapter id.
2138 */
ap_scan_adapter(int ap)2139 static inline void ap_scan_adapter(int ap)
2140 {
2141 struct ap_tapq_hwinfo hwinfo;
2142 int rc, dom, comp_type;
2143 bool decfg, chkstop;
2144 struct ap_card *ac;
2145 struct device *dev;
2146 ap_qid_t qid;
2147
2148 /* Is there currently a card device for this adapter ? */
2149 dev = bus_find_device(&ap_bus_type, NULL,
2150 (void *)(long)ap,
2151 __match_card_device_with_id);
2152 ac = dev ? to_ap_card(dev) : NULL;
2153
2154 /* Adapter not in configuration ? */
2155 if (!ap_test_config_card_id(ap)) {
2156 if (ac) {
2157 AP_DBF_INFO("%s(%d) ap not in config any more, rm card and queue devs\n",
2158 __func__, ap);
2159 ap_scan_rm_card_dev_and_queue_devs(ac);
2160 put_device(dev);
2161 }
2162 return;
2163 }
2164
2165 /*
2166 * Adapter ap is valid in the current configuration. So do some checks:
2167 * If no card device exists, build one. If a card device exists, check
2168 * for type and functions changed. For all this we need to find a valid
2169 * APQN first.
2170 */
2171
2172 for (dom = 0; dom <= ap_max_domain_id; dom++)
2173 if (ap_test_config_usage_domain(dom)) {
2174 qid = AP_MKQID(ap, dom);
2175 if (ap_queue_info(qid, &hwinfo, &decfg, &chkstop) > 0)
2176 break;
2177 }
2178 if (dom > ap_max_domain_id) {
2179 /* Could not find one valid APQN for this adapter */
2180 if (ac) {
2181 AP_DBF_INFO("%s(%d) no type info (no APQN found), rm card and queue devs\n",
2182 __func__, ap);
2183 ap_scan_rm_card_dev_and_queue_devs(ac);
2184 put_device(dev);
2185 } else {
2186 pr_debug("(%d) no type info (no APQN found), ignored\n",
2187 ap);
2188 }
2189 return;
2190 }
2191 if (!hwinfo.at) {
2192 /* No apdater type info available, an unusable adapter */
2193 if (ac) {
2194 AP_DBF_INFO("%s(%d) no valid type (0) info, rm card and queue devs\n",
2195 __func__, ap);
2196 ap_scan_rm_card_dev_and_queue_devs(ac);
2197 put_device(dev);
2198 } else {
2199 pr_debug("(%d) no valid type (0) info, ignored\n", ap);
2200 }
2201 return;
2202 }
2203 hwinfo.value &= TAPQ_CARD_HWINFO_MASK; /* filter card specific hwinfo */
2204 if (ac) {
2205 /* Check APQN against existing card device for changes */
2206 if (ac->hwinfo.at != hwinfo.at) {
2207 AP_DBF_INFO("%s(%d) hwtype %d changed, rm card and queue devs\n",
2208 __func__, ap, hwinfo.at);
2209 ap_scan_rm_card_dev_and_queue_devs(ac);
2210 put_device(dev);
2211 ac = NULL;
2212 } else if (ac->hwinfo.fac != hwinfo.fac) {
2213 AP_DBF_INFO("%s(%d) functions 0x%08x changed, rm card and queue devs\n",
2214 __func__, ap, hwinfo.fac);
2215 ap_scan_rm_card_dev_and_queue_devs(ac);
2216 put_device(dev);
2217 ac = NULL;
2218 } else {
2219 /* handle checkstop state change */
2220 if (chkstop && !ac->chkstop) {
2221 /* checkstop on */
2222 ac->chkstop = true;
2223 AP_DBF_INFO("%s(%d) card dev checkstop on\n",
2224 __func__, ap);
2225 } else if (!chkstop && ac->chkstop) {
2226 /* checkstop off */
2227 ac->chkstop = false;
2228 AP_DBF_INFO("%s(%d) card dev checkstop off\n",
2229 __func__, ap);
2230 }
2231 /* handle config state change */
2232 if (decfg && ac->config) {
2233 ac->config = false;
2234 AP_DBF_INFO("%s(%d) card dev config off\n",
2235 __func__, ap);
2236 ap_send_config_uevent(&ac->ap_dev, ac->config);
2237 } else if (!decfg && !ac->config) {
2238 ac->config = true;
2239 AP_DBF_INFO("%s(%d) card dev config on\n",
2240 __func__, ap);
2241 ap_send_config_uevent(&ac->ap_dev, ac->config);
2242 }
2243 }
2244 }
2245
2246 if (!ac) {
2247 /* Build a new card device */
2248 comp_type = ap_get_compatible_type(qid, hwinfo.at, hwinfo.fac);
2249 if (!comp_type) {
2250 AP_DBF_WARN("%s(%d) type %d, can't get compatibility type\n",
2251 __func__, ap, hwinfo.at);
2252 return;
2253 }
2254 ac = ap_card_create(ap, hwinfo, comp_type);
2255 if (!ac) {
2256 AP_DBF_WARN("%s(%d) ap_card_create() failed\n",
2257 __func__, ap);
2258 return;
2259 }
2260 ac->config = !decfg;
2261 ac->chkstop = chkstop;
2262 dev = &ac->ap_dev.device;
2263 dev->bus = &ap_bus_type;
2264 dev->parent = ap_root_device;
2265 dev_set_name(dev, "card%02x", ap);
2266 /* maybe enlarge ap_max_msg_size to support this card */
2267 if (ac->maxmsgsize > atomic_read(&ap_max_msg_size)) {
2268 atomic_set(&ap_max_msg_size, ac->maxmsgsize);
2269 AP_DBF_INFO("%s(%d) ap_max_msg_size update to %d byte\n",
2270 __func__, ap,
2271 atomic_read(&ap_max_msg_size));
2272 }
2273 /* Register the new card device with AP bus */
2274 rc = device_register(dev);
2275 if (rc) {
2276 AP_DBF_WARN("%s(%d) device_register() failed\n",
2277 __func__, ap);
2278 put_device(dev);
2279 return;
2280 }
2281 /* get it and thus adjust reference counter */
2282 get_device(dev);
2283 if (decfg)
2284 AP_DBF_INFO("%s(%d) new (decfg) card dev type=%d func=0x%08x created\n",
2285 __func__, ap, hwinfo.at, hwinfo.fac);
2286 else if (chkstop)
2287 AP_DBF_INFO("%s(%d) new (chkstop) card dev type=%d func=0x%08x created\n",
2288 __func__, ap, hwinfo.at, hwinfo.fac);
2289 else
2290 AP_DBF_INFO("%s(%d) new card dev type=%d func=0x%08x created\n",
2291 __func__, ap, hwinfo.at, hwinfo.fac);
2292 }
2293
2294 /* Verify the domains and the queue devices for this card */
2295 ap_scan_domains(ac);
2296
2297 /* release the card device */
2298 put_device(&ac->ap_dev.device);
2299 }
2300
2301 /**
2302 * ap_get_configuration - get the host AP configuration
2303 *
2304 * Stores the host AP configuration information returned from the previous call
2305 * to Query Configuration Information (QCI), then retrieves and stores the
2306 * current AP configuration returned from QCI.
2307 *
2308 * Return: true if the host AP configuration changed between calls to QCI;
2309 * otherwise, return false.
2310 */
ap_get_configuration(void)2311 static bool ap_get_configuration(void)
2312 {
2313 if (!ap_qci_info->flags) /* QCI not supported */
2314 return false;
2315
2316 memcpy(ap_qci_info_old, ap_qci_info, sizeof(*ap_qci_info));
2317 ap_qci(ap_qci_info);
2318
2319 return memcmp(ap_qci_info, ap_qci_info_old,
2320 sizeof(struct ap_config_info)) != 0;
2321 }
2322
2323 /*
2324 * ap_config_has_new_aps - Check current against old qci info if
2325 * new adapters have appeared. Returns true if at least one new
2326 * adapter in the apm mask is showing up. Existing adapters or
2327 * receding adapters are not counted.
2328 */
ap_config_has_new_aps(void)2329 static bool ap_config_has_new_aps(void)
2330 {
2331
2332 unsigned long m[BITS_TO_LONGS(AP_DEVICES)];
2333
2334 if (!ap_qci_info->flags)
2335 return false;
2336
2337 bitmap_andnot(m, (unsigned long *)ap_qci_info->apm,
2338 (unsigned long *)ap_qci_info_old->apm, AP_DEVICES);
2339 if (!bitmap_empty(m, AP_DEVICES))
2340 return true;
2341
2342 return false;
2343 }
2344
2345 /*
2346 * ap_config_has_new_doms - Check current against old qci info if
2347 * new (usage) domains have appeared. Returns true if at least one
2348 * new domain in the aqm mask is showing up. Existing domains or
2349 * receding domains are not counted.
2350 */
ap_config_has_new_doms(void)2351 static bool ap_config_has_new_doms(void)
2352 {
2353 unsigned long m[BITS_TO_LONGS(AP_DOMAINS)];
2354
2355 if (!ap_qci_info->flags)
2356 return false;
2357
2358 bitmap_andnot(m, (unsigned long *)ap_qci_info->aqm,
2359 (unsigned long *)ap_qci_info_old->aqm, AP_DOMAINS);
2360 if (!bitmap_empty(m, AP_DOMAINS))
2361 return true;
2362
2363 return false;
2364 }
2365
2366 /**
2367 * ap_scan_bus(): Scan the AP bus for new devices
2368 * Always run under mutex ap_scan_bus_mutex protection
2369 * which needs to get locked/unlocked by the caller!
2370 * Returns true if any config change has been detected
2371 * during the scan, otherwise false.
2372 */
ap_scan_bus(void)2373 static bool ap_scan_bus(void)
2374 {
2375 bool config_changed;
2376 int ap;
2377
2378 pr_debug(">\n");
2379
2380 /* (re-)fetch configuration via QCI */
2381 config_changed = ap_get_configuration();
2382 if (config_changed) {
2383 if (ap_config_has_new_aps() || ap_config_has_new_doms()) {
2384 /*
2385 * Appearance of new adapters and/or domains need to
2386 * build new ap devices which need to get bound to an
2387 * device driver. Thus reset the APQN bindings complete
2388 * completion.
2389 */
2390 reinit_completion(&ap_apqn_bindings_complete);
2391 }
2392 /* post a config change notify */
2393 notify_config_changed();
2394 }
2395 ap_select_domain();
2396
2397 /* loop over all possible adapters */
2398 for (ap = 0; ap <= ap_max_adapter_id; ap++)
2399 ap_scan_adapter(ap);
2400
2401 /* scan complete notify */
2402 if (config_changed)
2403 notify_scan_complete();
2404
2405 /* check if there is at least one queue available with default domain */
2406 if (ap_domain_index >= 0) {
2407 struct device *dev =
2408 bus_find_device(&ap_bus_type, NULL,
2409 (void *)(long)ap_domain_index,
2410 __match_queue_device_with_queue_id);
2411 if (dev)
2412 put_device(dev);
2413 else
2414 AP_DBF_INFO("%s no queue device with default domain %d available\n",
2415 __func__, ap_domain_index);
2416 }
2417
2418 if (atomic64_inc_return(&ap_scan_bus_count) == 1) {
2419 pr_debug("init scan complete\n");
2420 ap_send_init_scan_done_uevent();
2421 }
2422
2423 ap_check_bindings_complete();
2424
2425 mod_timer(&ap_scan_bus_timer, jiffies + ap_scan_bus_time * HZ);
2426
2427 pr_debug("< config_changed=%d\n", config_changed);
2428
2429 return config_changed;
2430 }
2431
2432 /*
2433 * Callback for the ap_scan_bus_timer
2434 * Runs periodically, workqueue timer (ap_scan_bus_time)
2435 */
ap_scan_bus_timer_callback(struct timer_list * unused)2436 static void ap_scan_bus_timer_callback(struct timer_list *unused)
2437 {
2438 /*
2439 * schedule work into the system long wq which when
2440 * the work is finally executed, calls the AP bus scan.
2441 */
2442 queue_work(system_long_wq, &ap_scan_bus_work);
2443 }
2444
2445 /*
2446 * Callback for the ap_scan_bus_work
2447 */
ap_scan_bus_wq_callback(struct work_struct * unused)2448 static void ap_scan_bus_wq_callback(struct work_struct *unused)
2449 {
2450 /*
2451 * Try to invoke an ap_scan_bus(). If the mutex acquisition
2452 * fails there is currently another task already running the
2453 * AP scan bus and there is no need to wait and re-trigger the
2454 * scan again. Please note at the end of the scan bus function
2455 * the AP scan bus timer is re-armed which triggers then the
2456 * ap_scan_bus_timer_callback which enqueues a work into the
2457 * system_long_wq which invokes this function here again.
2458 */
2459 if (mutex_trylock(&ap_scan_bus_mutex)) {
2460 ap_scan_bus_task = current;
2461 ap_scan_bus_result = ap_scan_bus();
2462 ap_scan_bus_task = NULL;
2463 mutex_unlock(&ap_scan_bus_mutex);
2464 }
2465 }
2466
ap_async_exit(void)2467 static inline void __exit ap_async_exit(void)
2468 {
2469 if (ap_thread_flag)
2470 ap_poll_thread_stop();
2471 chsc_notifier_unregister(&ap_bus_nb);
2472 cancel_work(&ap_scan_bus_work);
2473 hrtimer_cancel(&ap_poll_timer);
2474 timer_delete(&ap_scan_bus_timer);
2475 }
2476
ap_async_init(void)2477 static inline int __init ap_async_init(void)
2478 {
2479 int rc;
2480
2481 /* Setup the AP bus rescan timer. */
2482 timer_setup(&ap_scan_bus_timer, ap_scan_bus_timer_callback, 0);
2483
2484 /*
2485 * Setup the high resolution poll timer.
2486 * If we are running under z/VM adjust polling to z/VM polling rate.
2487 */
2488 if (machine_is_vm())
2489 poll_high_timeout = 1500000;
2490 hrtimer_setup(&ap_poll_timer, ap_poll_timeout, CLOCK_MONOTONIC, HRTIMER_MODE_ABS);
2491
2492 queue_work(system_long_wq, &ap_scan_bus_work);
2493
2494 rc = chsc_notifier_register(&ap_bus_nb);
2495 if (rc)
2496 goto out;
2497
2498 /* Start the low priority AP bus poll thread. */
2499 if (!ap_thread_flag)
2500 return 0;
2501
2502 rc = ap_poll_thread_start();
2503 if (rc)
2504 goto out_notifier;
2505
2506 return 0;
2507
2508 out_notifier:
2509 chsc_notifier_unregister(&ap_bus_nb);
2510 out:
2511 cancel_work(&ap_scan_bus_work);
2512 hrtimer_cancel(&ap_poll_timer);
2513 timer_delete(&ap_scan_bus_timer);
2514 return rc;
2515 }
2516
ap_irq_exit(void)2517 static inline void ap_irq_exit(void)
2518 {
2519 if (ap_irq_flag)
2520 unregister_adapter_interrupt(&ap_airq);
2521 }
2522
ap_irq_init(void)2523 static inline int __init ap_irq_init(void)
2524 {
2525 int rc;
2526
2527 if (!ap_interrupts_available() || !ap_useirq)
2528 return 0;
2529
2530 rc = register_adapter_interrupt(&ap_airq);
2531 ap_irq_flag = (rc == 0);
2532
2533 return rc;
2534 }
2535
ap_debug_exit(void)2536 static inline void ap_debug_exit(void)
2537 {
2538 debug_unregister(ap_dbf_info);
2539 }
2540
ap_debug_init(void)2541 static inline int __init ap_debug_init(void)
2542 {
2543 ap_dbf_info = debug_register("ap", 2, 1,
2544 AP_DBF_MAX_SPRINTF_ARGS * sizeof(long));
2545 debug_register_view(ap_dbf_info, &debug_sprintf_view);
2546 debug_set_level(ap_dbf_info, DBF_ERR);
2547
2548 return 0;
2549 }
2550
ap_perms_init(void)2551 static void __init ap_perms_init(void)
2552 {
2553 /* all resources usable if no kernel parameter string given */
2554 memset(&ap_perms.ioctlm, 0xFF, sizeof(ap_perms.ioctlm));
2555 memset(&ap_perms.apm, 0xFF, sizeof(ap_perms.apm));
2556 memset(&ap_perms.aqm, 0xFF, sizeof(ap_perms.aqm));
2557
2558 /* apm kernel parameter string */
2559 if (apm_str) {
2560 memset(&ap_perms.apm, 0, sizeof(ap_perms.apm));
2561 ap_parse_mask_str(apm_str, ap_perms.apm, AP_DEVICES,
2562 &ap_attr_mutex);
2563 }
2564
2565 /* aqm kernel parameter string */
2566 if (aqm_str) {
2567 memset(&ap_perms.aqm, 0, sizeof(ap_perms.aqm));
2568 ap_parse_mask_str(aqm_str, ap_perms.aqm, AP_DOMAINS,
2569 &ap_attr_mutex);
2570 }
2571 }
2572
2573 /**
2574 * ap_module_init(): The module initialization code.
2575 *
2576 * Initializes the module.
2577 */
ap_module_init(void)2578 static int __init ap_module_init(void)
2579 {
2580 int rc;
2581
2582 if (!ap_instructions_available()) {
2583 pr_warn("The hardware system does not support AP instructions\n");
2584 return -ENODEV;
2585 }
2586
2587 rc = ap_debug_init();
2588 if (rc)
2589 return rc;
2590
2591 /* init ap_queue hashtable */
2592 hash_init(ap_queues);
2593
2594 /* create ap msg buffer memory pool */
2595 ap_msg_pool = mempool_create_kmalloc_pool(ap_msg_pool_min_items,
2596 AP_DEFAULT_MAX_MSG_SIZE);
2597 if (!ap_msg_pool) {
2598 rc = -ENOMEM;
2599 goto out;
2600 }
2601
2602 /* set up the AP permissions (ioctls, ap and aq masks) */
2603 ap_perms_init();
2604
2605 /* Get AP configuration data if available */
2606 ap_init_qci_info();
2607
2608 /* check default domain setting */
2609 if (ap_domain_index < -1 || ap_domain_index > ap_max_domain_id ||
2610 (ap_domain_index >= 0 &&
2611 !test_bit_inv(ap_domain_index, ap_perms.aqm))) {
2612 pr_warn("%d is not a valid cryptographic domain\n",
2613 ap_domain_index);
2614 ap_domain_index = -1;
2615 }
2616
2617 /* Create /sys/bus/ap. */
2618 rc = bus_register(&ap_bus_type);
2619 if (rc)
2620 goto out;
2621
2622 /* Create /sys/devices/ap. */
2623 ap_root_device = root_device_register("ap");
2624 rc = PTR_ERR_OR_ZERO(ap_root_device);
2625 if (rc)
2626 goto out_bus;
2627 ap_root_device->bus = &ap_bus_type;
2628
2629 /* enable interrupts if available */
2630 rc = ap_irq_init();
2631 if (rc)
2632 goto out_device;
2633
2634 /* Setup asynchronous work (timers, workqueue, etc). */
2635 rc = ap_async_init();
2636 if (rc)
2637 goto out_irq;
2638
2639 return 0;
2640
2641 out_irq:
2642 ap_irq_exit();
2643 out_device:
2644 root_device_unregister(ap_root_device);
2645 out_bus:
2646 bus_unregister(&ap_bus_type);
2647 out:
2648 mempool_destroy(ap_msg_pool);
2649 ap_debug_exit();
2650 return rc;
2651 }
2652
ap_module_exit(void)2653 static void __exit ap_module_exit(void)
2654 {
2655 ap_async_exit();
2656 ap_irq_exit();
2657 root_device_unregister(ap_root_device);
2658 bus_unregister(&ap_bus_type);
2659 mempool_destroy(ap_msg_pool);
2660 ap_debug_exit();
2661 }
2662
2663 module_init(ap_module_init);
2664 module_exit(ap_module_exit);
2665