Merge branch 'tracing/core' of git://git.kernel.org/pub/scm/linux/kernel/git/frederic...
[linux-2.6-block.git] / arch / x86 / mm / kmmio.c
CommitLineData
8b7d89d0
PP
1/* Support for MMIO probes.
2 * Benfit many code from kprobes
3 * (C) 2002 Louis Zhuang <louis.zhuang@intel.com>.
4 * 2007 Alexander Eichner
5 * 2008 Pekka Paalanen <pq@iki.fi>
6 */
7
1bd591a5
JP
8#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
9
0fd0e3da 10#include <linux/list.h>
668a6c36 11#include <linux/rculist.h>
8b7d89d0
PP
12#include <linux/spinlock.h>
13#include <linux/hash.h>
14#include <linux/init.h>
15#include <linux/module.h>
8b7d89d0 16#include <linux/kernel.h>
8b7d89d0
PP
17#include <linux/uaccess.h>
18#include <linux/ptrace.h>
19#include <linux/preempt.h>
f5136380 20#include <linux/percpu.h>
0fd0e3da 21#include <linux/kdebug.h>
d61fc448 22#include <linux/mutex.h>
970e6fa0 23#include <linux/io.h>
8b7d89d0 24#include <asm/cacheflush.h>
8b7d89d0 25#include <asm/tlbflush.h>
970e6fa0 26#include <linux/errno.h>
13829537 27#include <asm/debugreg.h>
0fd0e3da 28#include <linux/mmiotrace.h>
8b7d89d0 29
8b7d89d0
PP
30#define KMMIO_PAGE_HASH_BITS 4
31#define KMMIO_PAGE_TABLE_SIZE (1 << KMMIO_PAGE_HASH_BITS)
32
0fd0e3da
PP
33struct kmmio_fault_page {
34 struct list_head list;
35 struct kmmio_fault_page *release_next;
36 unsigned long page; /* location of the fault page */
46e91d00 37 pteval_t old_presence; /* page presence prior to arming */
5359b585 38 bool armed;
0fd0e3da
PP
39
40 /*
41 * Number of times this page has been registered as a part
42 * of a probe. If zero, page is disarmed and this may be freed.
340430c5
PP
43 * Used only by writers (RCU) and post_kmmio_handler().
44 * Protected by kmmio_lock, when linked into kmmio_page_table.
0fd0e3da
PP
45 */
46 int count;
47};
48
49struct kmmio_delayed_release {
50 struct rcu_head rcu;
51 struct kmmio_fault_page *release_list;
52};
53
8b7d89d0
PP
54struct kmmio_context {
55 struct kmmio_fault_page *fpage;
56 struct kmmio_probe *probe;
57 unsigned long saved_flags;
0fd0e3da 58 unsigned long addr;
8b7d89d0
PP
59 int active;
60};
61
8b7d89d0
PP
62static DEFINE_SPINLOCK(kmmio_lock);
63
13829537 64/* Protected by kmmio_lock */
8b7d89d0 65unsigned int kmmio_count;
0fd0e3da
PP
66
67/* Read-protected by RCU, write-protected by kmmio_lock. */
8b7d89d0
PP
68static struct list_head kmmio_page_table[KMMIO_PAGE_TABLE_SIZE];
69static LIST_HEAD(kmmio_probes);
70
0fd0e3da
PP
71static struct list_head *kmmio_page_list(unsigned long page)
72{
73 return &kmmio_page_table[hash_long(page, KMMIO_PAGE_HASH_BITS)];
74}
75
f5136380
PP
76/* Accessed per-cpu */
77static DEFINE_PER_CPU(struct kmmio_context, kmmio_ctx);
8b7d89d0 78
8b7d89d0
PP
79/*
80 * this is basically a dynamic stabbing problem:
81 * Could use the existing prio tree code or
82 * Possible better implementations:
83 * The Interval Skip List: A Data Structure for Finding All Intervals That
84 * Overlap a Point (might be simple)
85 * Space Efficient Dynamic Stabbing with Fast Queries - Mikkel Thorup
86 */
0fd0e3da 87/* Get the kmmio at this addr (if any). You must be holding RCU read lock. */
8b7d89d0
PP
88static struct kmmio_probe *get_kmmio_probe(unsigned long addr)
89{
90 struct kmmio_probe *p;
0fd0e3da 91 list_for_each_entry_rcu(p, &kmmio_probes, list) {
33015c85 92 if (addr >= p->addr && addr < (p->addr + p->len))
8b7d89d0
PP
93 return p;
94 }
95 return NULL;
96}
97
0fd0e3da 98/* You must be holding RCU read lock. */
8b7d89d0
PP
99static struct kmmio_fault_page *get_kmmio_fault_page(unsigned long page)
100{
0fd0e3da 101 struct list_head *head;
0492e1bb 102 struct kmmio_fault_page *f;
8b7d89d0
PP
103
104 page &= PAGE_MASK;
0fd0e3da 105 head = kmmio_page_list(page);
0492e1bb
SB
106 list_for_each_entry_rcu(f, head, list) {
107 if (f->page == page)
108 return f;
8b7d89d0 109 }
8b7d89d0
PP
110 return NULL;
111}
112
46e91d00 113static void clear_pmd_presence(pmd_t *pmd, bool clear, pmdval_t *old)
0b700a6a
PP
114{
115 pmdval_t v = pmd_val(*pmd);
46e91d00
SB
116 if (clear) {
117 *old = v & _PAGE_PRESENT;
118 v &= ~_PAGE_PRESENT;
119 } else /* presume this has been called with clear==true previously */
120 v |= *old;
0b700a6a
PP
121 set_pmd(pmd, __pmd(v));
122}
123
46e91d00 124static void clear_pte_presence(pte_t *pte, bool clear, pteval_t *old)
0b700a6a
PP
125{
126 pteval_t v = pte_val(*pte);
46e91d00
SB
127 if (clear) {
128 *old = v & _PAGE_PRESENT;
129 v &= ~_PAGE_PRESENT;
130 } else /* presume this has been called with clear==true previously */
131 v |= *old;
0b700a6a
PP
132 set_pte_atomic(pte, __pte(v));
133}
134
46e91d00 135static int clear_page_presence(struct kmmio_fault_page *f, bool clear)
8b7d89d0 136{
790e2a29 137 unsigned int level;
46e91d00 138 pte_t *pte = lookup_address(f->page, &level);
8b7d89d0 139
75bb8835 140 if (!pte) {
1bd591a5 141 pr_err("no pte for page 0x%08lx\n", f->page);
e9d54cae 142 return -1;
75bb8835
PP
143 }
144
13829537
PP
145 switch (level) {
146 case PG_LEVEL_2M:
46e91d00 147 clear_pmd_presence((pmd_t *)pte, clear, &f->old_presence);
13829537 148 break;
13829537 149 case PG_LEVEL_4K:
46e91d00 150 clear_pte_presence(pte, clear, &f->old_presence);
13829537 151 break;
13829537 152 default:
1bd591a5 153 pr_err("unexpected page level 0x%x.\n", level);
e9d54cae 154 return -1;
8b7d89d0
PP
155 }
156
46e91d00 157 __flush_tlb_one(f->page);
e9d54cae 158 return 0;
13829537 159}
75bb8835 160
5359b585
PP
161/*
162 * Mark the given page as not present. Access to it will trigger a fault.
163 *
164 * Struct kmmio_fault_page is protected by RCU and kmmio_lock, but the
165 * protection is ignored here. RCU read lock is assumed held, so the struct
166 * will not disappear unexpectedly. Furthermore, the caller must guarantee,
167 * that double arming the same virtual address (page) cannot occur.
168 *
169 * Double disarming on the other hand is allowed, and may occur when a fault
170 * and mmiotrace shutdown happen simultaneously.
171 */
172static int arm_kmmio_fault_page(struct kmmio_fault_page *f)
13829537 173{
5359b585 174 int ret;
1bd591a5 175 WARN_ONCE(f->armed, KERN_ERR pr_fmt("kmmio page already armed.\n"));
5359b585 176 if (f->armed) {
1bd591a5
JP
177 pr_warning("double-arm: page 0x%08lx, ref %d, old %d\n",
178 f->page, f->count, !!f->old_presence);
5359b585 179 }
46e91d00 180 ret = clear_page_presence(f, true);
1bd591a5
JP
181 WARN_ONCE(ret < 0, KERN_ERR pr_fmt("arming 0x%08lx failed.\n"),
182 f->page);
5359b585 183 f->armed = true;
e9d54cae 184 return ret;
8b7d89d0
PP
185}
186
5359b585
PP
187/** Restore the given page to saved presence state. */
188static void disarm_kmmio_fault_page(struct kmmio_fault_page *f)
8b7d89d0 189{
46e91d00 190 int ret = clear_page_presence(f, false);
5359b585
PP
191 WARN_ONCE(ret < 0,
192 KERN_ERR "kmmio disarming 0x%08lx failed.\n", f->page);
193 f->armed = false;
8b7d89d0
PP
194}
195
0fd0e3da
PP
196/*
197 * This is being called from do_page_fault().
198 *
199 * We may be in an interrupt or a critical section. Also prefecthing may
200 * trigger a page fault. We may be in the middle of process switch.
201 * We cannot take any locks, because we could be executing especially
202 * within a kmmio critical section.
203 *
204 * Local interrupts are disabled, so preemption cannot happen.
205 * Do not enable interrupts, do not sleep, and watch out for other CPUs.
206 */
8b7d89d0
PP
207/*
208 * Interrupts are disabled on entry as trap3 is an interrupt gate
af901ca1 209 * and they remain disabled throughout this function.
8b7d89d0 210 */
0fd0e3da 211int kmmio_handler(struct pt_regs *regs, unsigned long addr)
8b7d89d0 212{
0fd0e3da
PP
213 struct kmmio_context *ctx;
214 struct kmmio_fault_page *faultpage;
13829537 215 int ret = 0; /* default to fault not handled */
8b7d89d0
PP
216
217 /*
218 * Preemption is now disabled to prevent process switch during
219 * single stepping. We can only handle one active kmmio trace
220 * per cpu, so ensure that we finish it before something else
d61fc448
PP
221 * gets to run. We also hold the RCU read lock over single
222 * stepping to avoid looking up the probe and kmmio_fault_page
223 * again.
8b7d89d0
PP
224 */
225 preempt_disable();
0fd0e3da 226 rcu_read_lock();
d61fc448 227
0fd0e3da
PP
228 faultpage = get_kmmio_fault_page(addr);
229 if (!faultpage) {
230 /*
231 * Either this page fault is not caused by kmmio, or
232 * another CPU just pulled the kmmio probe from under
13829537 233 * our feet. The latter case should not be possible.
0fd0e3da
PP
234 */
235 goto no_kmmio;
236 }
237
238 ctx = &get_cpu_var(kmmio_ctx);
8b7d89d0 239 if (ctx->active) {
13829537
PP
240 if (addr == ctx->addr) {
241 /*
3e39aa15
SB
242 * A second fault on the same page means some other
243 * condition needs handling by do_page_fault(), the
244 * page really not being present is the most common.
13829537 245 */
1bd591a5
JP
246 pr_debug("secondary hit for 0x%08lx CPU %d.\n",
247 addr, smp_processor_id());
3e39aa15
SB
248
249 if (!faultpage->old_presence)
1bd591a5
JP
250 pr_info("unexpected secondary hit for address 0x%08lx on CPU %d.\n",
251 addr, smp_processor_id());
3e39aa15
SB
252 } else {
253 /*
254 * Prevent overwriting already in-flight context.
255 * This should not happen, let's hope disarming at
256 * least prevents a panic.
257 */
1bd591a5
JP
258 pr_emerg("recursive probe hit on CPU %d, for address 0x%08lx. Ignoring.\n",
259 smp_processor_id(), addr);
260 pr_emerg("previous hit was at 0x%08lx.\n", ctx->addr);
3e39aa15
SB
261 disarm_kmmio_fault_page(faultpage);
262 }
0fd0e3da 263 goto no_kmmio_ctx;
8b7d89d0
PP
264 }
265 ctx->active++;
266
0fd0e3da 267 ctx->fpage = faultpage;
8b7d89d0 268 ctx->probe = get_kmmio_probe(addr);
49023168 269 ctx->saved_flags = (regs->flags & (X86_EFLAGS_TF | X86_EFLAGS_IF));
0fd0e3da 270 ctx->addr = addr;
8b7d89d0
PP
271
272 if (ctx->probe && ctx->probe->pre_handler)
273 ctx->probe->pre_handler(ctx->probe, regs, addr);
274
d61fc448
PP
275 /*
276 * Enable single-stepping and disable interrupts for the faulting
277 * context. Local interrupts must not get enabled during stepping.
278 */
49023168
IM
279 regs->flags |= X86_EFLAGS_TF;
280 regs->flags &= ~X86_EFLAGS_IF;
8b7d89d0 281
0fd0e3da 282 /* Now we set present bit in PTE and single step. */
5359b585 283 disarm_kmmio_fault_page(ctx->fpage);
8b7d89d0 284
d61fc448
PP
285 /*
286 * If another cpu accesses the same page while we are stepping,
287 * the access will not be caught. It will simply succeed and the
288 * only downside is we lose the event. If this becomes a problem,
289 * the user should drop to single cpu before tracing.
290 */
291
f5136380 292 put_cpu_var(kmmio_ctx);
13829537 293 return 1; /* fault handled */
8b7d89d0 294
0fd0e3da
PP
295no_kmmio_ctx:
296 put_cpu_var(kmmio_ctx);
8b7d89d0 297no_kmmio:
0fd0e3da 298 rcu_read_unlock();
8b7d89d0 299 preempt_enable_no_resched();
13829537 300 return ret;
8b7d89d0
PP
301}
302
303/*
304 * Interrupts are disabled on entry as trap1 is an interrupt gate
af901ca1 305 * and they remain disabled throughout this function.
0fd0e3da 306 * This must always get called as the pair to kmmio_handler().
8b7d89d0
PP
307 */
308static int post_kmmio_handler(unsigned long condition, struct pt_regs *regs)
309{
f5136380
PP
310 int ret = 0;
311 struct kmmio_context *ctx = &get_cpu_var(kmmio_ctx);
8b7d89d0 312
13829537 313 if (!ctx->active) {
0f9a623d
SB
314 /*
315 * debug traps without an active context are due to either
316 * something external causing them (f.e. using a debugger while
317 * mmio tracing enabled), or erroneous behaviour
318 */
1bd591a5
JP
319 pr_warning("unexpected debug trap on CPU %d.\n",
320 smp_processor_id());
f5136380 321 goto out;
13829537 322 }
8b7d89d0
PP
323
324 if (ctx->probe && ctx->probe->post_handler)
325 ctx->probe->post_handler(ctx->probe, condition, regs);
326
340430c5
PP
327 /* Prevent racing against release_kmmio_fault_page(). */
328 spin_lock(&kmmio_lock);
329 if (ctx->fpage->count)
330 arm_kmmio_fault_page(ctx->fpage);
331 spin_unlock(&kmmio_lock);
8b7d89d0 332
49023168 333 regs->flags &= ~X86_EFLAGS_TF;
8b7d89d0
PP
334 regs->flags |= ctx->saved_flags;
335
336 /* These were acquired in kmmio_handler(). */
337 ctx->active--;
0fd0e3da 338 BUG_ON(ctx->active);
d61fc448 339 rcu_read_unlock();
8b7d89d0
PP
340 preempt_enable_no_resched();
341
342 /*
343 * if somebody else is singlestepping across a probe point, flags
344 * will have TF set, in which case, continue the remaining processing
345 * of do_debug, as if this is not a probe hit.
346 */
49023168 347 if (!(regs->flags & X86_EFLAGS_TF))
f5136380 348 ret = 1;
f5136380
PP
349out:
350 put_cpu_var(kmmio_ctx);
351 return ret;
8b7d89d0
PP
352}
353
0fd0e3da 354/* You must be holding kmmio_lock. */
8b7d89d0
PP
355static int add_kmmio_fault_page(unsigned long page)
356{
357 struct kmmio_fault_page *f;
358
359 page &= PAGE_MASK;
360 f = get_kmmio_fault_page(page);
361 if (f) {
0fd0e3da 362 if (!f->count)
5359b585 363 arm_kmmio_fault_page(f);
8b7d89d0
PP
364 f->count++;
365 return 0;
366 }
367
5359b585 368 f = kzalloc(sizeof(*f), GFP_ATOMIC);
8b7d89d0
PP
369 if (!f)
370 return -1;
371
372 f->count = 1;
373 f->page = page;
8b7d89d0 374
5359b585 375 if (arm_kmmio_fault_page(f)) {
e9d54cae
SB
376 kfree(f);
377 return -1;
378 }
379
380 list_add_rcu(&f->list, kmmio_page_list(f->page));
8b7d89d0
PP
381
382 return 0;
383}
384
0fd0e3da
PP
385/* You must be holding kmmio_lock. */
386static void release_kmmio_fault_page(unsigned long page,
387 struct kmmio_fault_page **release_list)
8b7d89d0
PP
388{
389 struct kmmio_fault_page *f;
390
391 page &= PAGE_MASK;
392 f = get_kmmio_fault_page(page);
393 if (!f)
394 return;
395
396 f->count--;
0fd0e3da 397 BUG_ON(f->count < 0);
8b7d89d0 398 if (!f->count) {
5359b585 399 disarm_kmmio_fault_page(f);
0fd0e3da
PP
400 f->release_next = *release_list;
401 *release_list = f;
8b7d89d0
PP
402 }
403}
404
87e547fe
PP
405/*
406 * With page-unaligned ioremaps, one or two armed pages may contain
407 * addresses from outside the intended mapping. Events for these addresses
408 * are currently silently dropped. The events may result only from programming
409 * mistakes by accessing addresses before the beginning or past the end of a
410 * mapping.
411 */
8b7d89d0
PP
412int register_kmmio_probe(struct kmmio_probe *p)
413{
d61fc448 414 unsigned long flags;
8b7d89d0
PP
415 int ret = 0;
416 unsigned long size = 0;
87e547fe 417 const unsigned long size_lim = p->len + (p->addr & ~PAGE_MASK);
8b7d89d0 418
d61fc448 419 spin_lock_irqsave(&kmmio_lock, flags);
8b7d89d0
PP
420 if (get_kmmio_probe(p->addr)) {
421 ret = -EEXIST;
422 goto out;
423 }
d61fc448 424 kmmio_count++;
0fd0e3da 425 list_add_rcu(&p->list, &kmmio_probes);
87e547fe 426 while (size < size_lim) {
8b7d89d0 427 if (add_kmmio_fault_page(p->addr + size))
1bd591a5 428 pr_err("Unable to set page fault.\n");
8b7d89d0
PP
429 size += PAGE_SIZE;
430 }
8b7d89d0 431out:
d61fc448 432 spin_unlock_irqrestore(&kmmio_lock, flags);
8b7d89d0
PP
433 /*
434 * XXX: What should I do here?
435 * Here was a call to global_flush_tlb(), but it does not exist
0fd0e3da 436 * anymore. It seems it's not needed after all.
8b7d89d0
PP
437 */
438 return ret;
439}
0fd0e3da 440EXPORT_SYMBOL(register_kmmio_probe);
8b7d89d0 441
0fd0e3da
PP
442static void rcu_free_kmmio_fault_pages(struct rcu_head *head)
443{
444 struct kmmio_delayed_release *dr = container_of(
445 head,
446 struct kmmio_delayed_release,
447 rcu);
0492e1bb
SB
448 struct kmmio_fault_page *f = dr->release_list;
449 while (f) {
450 struct kmmio_fault_page *next = f->release_next;
451 BUG_ON(f->count);
452 kfree(f);
453 f = next;
0fd0e3da
PP
454 }
455 kfree(dr);
456}
457
458static void remove_kmmio_fault_pages(struct rcu_head *head)
459{
d0fc63f7
SB
460 struct kmmio_delayed_release *dr =
461 container_of(head, struct kmmio_delayed_release, rcu);
0492e1bb 462 struct kmmio_fault_page *f = dr->release_list;
0fd0e3da
PP
463 struct kmmio_fault_page **prevp = &dr->release_list;
464 unsigned long flags;
d0fc63f7 465
0fd0e3da 466 spin_lock_irqsave(&kmmio_lock, flags);
0492e1bb
SB
467 while (f) {
468 if (!f->count) {
469 list_del_rcu(&f->list);
470 prevp = &f->release_next;
d0fc63f7 471 } else {
0492e1bb 472 *prevp = f->release_next;
d0fc63f7 473 }
0492e1bb 474 f = f->release_next;
0fd0e3da
PP
475 }
476 spin_unlock_irqrestore(&kmmio_lock, flags);
d0fc63f7 477
0fd0e3da
PP
478 /* This is the real RCU destroy call. */
479 call_rcu(&dr->rcu, rcu_free_kmmio_fault_pages);
480}
481
482/*
483 * Remove a kmmio probe. You have to synchronize_rcu() before you can be
d61fc448
PP
484 * sure that the callbacks will not be called anymore. Only after that
485 * you may actually release your struct kmmio_probe.
0fd0e3da
PP
486 *
487 * Unregistering a kmmio fault page has three steps:
488 * 1. release_kmmio_fault_page()
489 * Disarm the page, wait a grace period to let all faults finish.
490 * 2. remove_kmmio_fault_pages()
491 * Remove the pages from kmmio_page_table.
492 * 3. rcu_free_kmmio_fault_pages()
8055039c 493 * Actually free the kmmio_fault_page structs as with RCU.
0fd0e3da 494 */
8b7d89d0
PP
495void unregister_kmmio_probe(struct kmmio_probe *p)
496{
d61fc448 497 unsigned long flags;
8b7d89d0 498 unsigned long size = 0;
87e547fe 499 const unsigned long size_lim = p->len + (p->addr & ~PAGE_MASK);
0fd0e3da
PP
500 struct kmmio_fault_page *release_list = NULL;
501 struct kmmio_delayed_release *drelease;
8b7d89d0 502
d61fc448 503 spin_lock_irqsave(&kmmio_lock, flags);
87e547fe 504 while (size < size_lim) {
0fd0e3da 505 release_kmmio_fault_page(p->addr + size, &release_list);
8b7d89d0
PP
506 size += PAGE_SIZE;
507 }
0fd0e3da 508 list_del_rcu(&p->list);
8b7d89d0 509 kmmio_count--;
d61fc448 510 spin_unlock_irqrestore(&kmmio_lock, flags);
8b7d89d0 511
0fd0e3da
PP
512 drelease = kmalloc(sizeof(*drelease), GFP_ATOMIC);
513 if (!drelease) {
1bd591a5 514 pr_crit("leaking kmmio_fault_page objects.\n");
0fd0e3da
PP
515 return;
516 }
517 drelease->release_list = release_list;
518
519 /*
520 * This is not really RCU here. We have just disarmed a set of
521 * pages so that they cannot trigger page faults anymore. However,
522 * we cannot remove the pages from kmmio_page_table,
523 * because a probe hit might be in flight on another CPU. The
524 * pages are collected into a list, and they will be removed from
525 * kmmio_page_table when it is certain that no probe hit related to
526 * these pages can be in flight. RCU grace period sounds like a
527 * good choice.
528 *
529 * If we removed the pages too early, kmmio page fault handler might
530 * not find the respective kmmio_fault_page and determine it's not
531 * a kmmio fault, when it actually is. This would lead to madness.
532 */
533 call_rcu(&drelease->rcu, remove_kmmio_fault_pages);
8b7d89d0 534}
0fd0e3da 535EXPORT_SYMBOL(unregister_kmmio_probe);
8b7d89d0 536
0f9a623d
SB
537static int
538kmmio_die_notifier(struct notifier_block *nb, unsigned long val, void *args)
8b7d89d0
PP
539{
540 struct die_args *arg = args;
0bb7a95f 541 unsigned long* dr6_p = (unsigned long *)ERR_PTR(arg->err);
8b7d89d0 542
0bb7a95f
LB
543 if (val == DIE_DEBUG && (*dr6_p & DR_STEP))
544 if (post_kmmio_handler(*dr6_p, arg->regs) == 1) {
62edab90
P
545 /*
546 * Reset the BS bit in dr6 (pointed by args->err) to
547 * denote completion of processing
548 */
0bb7a95f 549 *dr6_p &= ~DR_STEP;
8b7d89d0 550 return NOTIFY_STOP;
62edab90 551 }
8b7d89d0
PP
552
553 return NOTIFY_DONE;
554}
13829537
PP
555
556static struct notifier_block nb_die = {
557 .notifier_call = kmmio_die_notifier
558};
559
0f9a623d 560int kmmio_init(void)
13829537
PP
561{
562 int i;
0f9a623d 563
13829537
PP
564 for (i = 0; i < KMMIO_PAGE_TABLE_SIZE; i++)
565 INIT_LIST_HEAD(&kmmio_page_table[i]);
0f9a623d 566
13829537
PP
567 return register_die_notifier(&nb_die);
568}
0f9a623d
SB
569
570void kmmio_cleanup(void)
571{
572 int i;
573
574 unregister_die_notifier(&nb_die);
575 for (i = 0; i < KMMIO_PAGE_TABLE_SIZE; i++) {
576 WARN_ONCE(!list_empty(&kmmio_page_table[i]),
577 KERN_ERR "kmmio_page_table not empty at cleanup, any further tracing will leak memory.\n");
578 }
579}