1917Selowe /* 2917Selowe * CDDL HEADER START 3917Selowe * 4917Selowe * The contents of this file are subject to the terms of the 53253Smec * Common Development and Distribution License (the "License"). 63253Smec * You may not use this file except in compliance with the License. 7917Selowe * 8917Selowe * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9917Selowe * or http://www.opensolaris.org/os/licensing. 10917Selowe * See the License for the specific language governing permissions 11917Selowe * and limitations under the License. 12917Selowe * 13917Selowe * When distributing Covered Code, include this CDDL HEADER in each 14917Selowe * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15917Selowe * If applicable, add the following below this CDDL HEADER, with the 16917Selowe * fields enclosed by brackets "[]" replaced with your own identifying 17917Selowe * information: Portions Copyright [yyyy] [name of copyright owner] 18917Selowe * 19917Selowe * CDDL HEADER END 20917Selowe */ 21917Selowe /* 228555SJustin.Frank@Sun.COM * Copyright 2009 Sun Microsystems, Inc. All rights reserved. 23917Selowe * Use is subject to license terms. 24917Selowe */ 25917Selowe 26917Selowe /* 27917Selowe * Page Retire - Big Theory Statement. 28917Selowe * 29917Selowe * This file handles removing sections of faulty memory from use when the 30917Selowe * user land FMA Diagnosis Engine requests that a page be removed or when 31917Selowe * a CE or UE is detected by the hardware. 32917Selowe * 33917Selowe * In the bad old days, the kernel side of Page Retire did a lot of the work 34917Selowe * on its own. Now, with the DE keeping track of errors, the kernel side is 35917Selowe * rather simple minded on most platforms. 36917Selowe * 37917Selowe * Errors are all reflected to the DE, and after digesting the error and 38917Selowe * looking at all previously reported errors, the DE decides what should 39917Selowe * be done about the current error. If the DE wants a particular page to 40917Selowe * be retired, then the kernel page retire code is invoked via an ioctl. 41917Selowe * On non-FMA platforms, the ue_drain and ce_drain paths ends up calling 42917Selowe * page retire to handle the error. Since page retire is just a simple 43917Selowe * mechanism it doesn't need to differentiate between the different callers. 44917Selowe * 45917Selowe * The p_toxic field in the page_t is used to indicate which errors have 46917Selowe * occurred and what action has been taken on a given page. Because errors are 47917Selowe * reported without regard to the locked state of a page, no locks are used 48917Selowe * to SET the error bits in p_toxic. However, in order to clear the error 49917Selowe * bits, the page_t must be held exclusively locked. 50917Selowe * 51917Selowe * When page_retire() is called, it must be able to acquire locks, sleep, etc. 52917Selowe * It must not be called from high-level interrupt context. 53917Selowe * 54917Selowe * Depending on how the requested page is being used at the time of the retire 55917Selowe * request (and on the availability of sufficient system resources), the page 56917Selowe * may be retired immediately, or just marked for retirement later. For 57917Selowe * example, locked pages are marked, while free pages are retired. Multiple 58917Selowe * requests may be made to retire the same page, although there is no need 59917Selowe * to: once the p_toxic flags are set, the page will be retired as soon as it 60917Selowe * can be exclusively locked. 61917Selowe * 62917Selowe * The retire mechanism is driven centrally out of page_unlock(). To expedite 63917Selowe * the retirement of pages, further requests for SE_SHARED locks are denied 64917Selowe * as long as a page retirement is pending. In addition, as long as pages are 65917Selowe * pending retirement a background thread runs periodically trying to retire 66917Selowe * those pages. Pages which could not be retired while the system is running 67917Selowe * are scrubbed prior to rebooting to avoid latent errors on the next boot. 68917Selowe * 691338Selowe * UE pages without persistent errors are scrubbed and returned to service. 701338Selowe * Recidivist pages, as well as FMA-directed requests for retirement, result 711338Selowe * in the page being taken out of service. Once the decision is made to take 721338Selowe * a page out of service, the page is cleared, hashed onto the retired_pages 731338Selowe * vnode, marked as retired, and it is unlocked. No other requesters (except 741338Selowe * for unretire) are allowed to lock retired pages. 75917Selowe * 76917Selowe * The public routines return (sadly) 0 if they worked and a non-zero error 77917Selowe * value if something went wrong. This is done for the ioctl side of the 78917Selowe * world to allow errors to be reflected all the way out to user land. The 79917Selowe * non-zero values are explained in comments atop each function. 80917Selowe */ 81917Selowe 82917Selowe /* 83917Selowe * Things to fix: 84917Selowe * 853253Smec * 1. Trying to retire non-relocatable kvp pages may result in a 86917Selowe * quagmire. This is because seg_kmem() no longer keeps its pages locked, 87917Selowe * and calls page_lookup() in the free path; since kvp pages are modified 88917Selowe * and don't have a usable backing store, page_retire() can't do anything 89917Selowe * with them, and we'll keep denying the lock to seg_kmem_free() in a 90917Selowe * vicious cycle. To prevent that, we don't deny locks to kvp pages, and 913253Smec * hence only try to retire a page from page_unlock() in the free path. 92917Selowe * Since most kernel pages are indefinitely held anyway, and don't 93917Selowe * participate in I/O, this is of little consequence. 94917Selowe * 953253Smec * 2. Low memory situations will be interesting. If we don't have 96917Selowe * enough memory for page_relocate() to succeed, we won't be able to 97917Selowe * retire dirty pages; nobody will be able to push them out to disk 98917Selowe * either, since we aggressively deny the page lock. We could change 99917Selowe * fsflush so it can recognize this situation, grab the lock, and push 100917Selowe * the page out, where we'll catch it in the free path and retire it. 101917Selowe * 1023253Smec * 3. Beware of places that have code like this in them: 103917Selowe * 104917Selowe * if (! page_tryupgrade(pp)) { 105917Selowe * page_unlock(pp); 106917Selowe * while (! page_lock(pp, SE_EXCL, NULL, P_RECLAIM)) { 107917Selowe * / *NOTHING* / 108917Selowe * } 109917Selowe * } 110917Selowe * page_free(pp); 111917Selowe * 112917Selowe * The problem is that pp can change identity right after the 113917Selowe * page_unlock() call. In particular, page_retire() can step in 114917Selowe * there, change pp's identity, and hash pp onto the retired_vnode. 115917Selowe * 116917Selowe * Of course, other functions besides page_retire() can have the 117917Selowe * same effect. A kmem reader can waltz by, set up a mapping to the 118917Selowe * page, and then unlock the page. Page_free() will then go castors 119917Selowe * up. So if anybody is doing this, it's already a bug. 120917Selowe * 1213253Smec * 4. mdboot()'s call into page_retire_mdboot() should probably be 122917Selowe * moved lower. Where the call is made now, we can get into trouble 123917Selowe * by scrubbing a kernel page that is then accessed later. 124917Selowe */ 125917Selowe 126917Selowe #include <sys/types.h> 127917Selowe #include <sys/param.h> 128917Selowe #include <sys/systm.h> 129917Selowe #include <sys/mman.h> 130917Selowe #include <sys/vnode.h> 1313898Srsb #include <sys/vfs_opreg.h> 132917Selowe #include <sys/cmn_err.h> 133917Selowe #include <sys/ksynch.h> 134917Selowe #include <sys/thread.h> 135917Selowe #include <sys/disp.h> 136917Selowe #include <sys/ontrap.h> 137917Selowe #include <sys/vmsystm.h> 138917Selowe #include <sys/mem_config.h> 139917Selowe #include <sys/atomic.h> 140917Selowe #include <sys/callb.h> 141917Selowe #include <vm/page.h> 142917Selowe #include <vm/vm_dep.h> 143917Selowe #include <vm/as.h> 144917Selowe #include <vm/hat.h> 145917Selowe 146917Selowe /* 147917Selowe * vnode for all pages which are retired from the VM system; 148917Selowe */ 149917Selowe vnode_t *retired_pages; 150917Selowe 1513253Smec static int page_retire_pp_finish(page_t *, void *, uint_t); 152917Selowe 153917Selowe /* 154917Selowe * Make a list of all of the pages that have been marked for retirement 155917Selowe * but are not yet retired. At system shutdown, we will scrub all of the 156917Selowe * pages in the list in case there are outstanding UEs. Then, we 157917Selowe * cross-check this list against the number of pages that are yet to be 158917Selowe * retired, and if we find inconsistencies, we scan every page_t in the 159917Selowe * whole system looking for any pages that need to be scrubbed for UEs. 160917Selowe * The background thread also uses this queue to determine which pages 161917Selowe * it should keep trying to retire. 162917Selowe */ 163917Selowe #ifdef DEBUG 164917Selowe #define PR_PENDING_QMAX 32 165917Selowe #else /* DEBUG */ 166917Selowe #define PR_PENDING_QMAX 256 167917Selowe #endif /* DEBUG */ 168917Selowe page_t *pr_pending_q[PR_PENDING_QMAX]; 169917Selowe kmutex_t pr_q_mutex; 170917Selowe 171917Selowe /* 172917Selowe * Page retire global kstats 173917Selowe */ 174917Selowe struct page_retire_kstat { 175917Selowe kstat_named_t pr_retired; 176917Selowe kstat_named_t pr_requested; 177917Selowe kstat_named_t pr_requested_free; 178917Selowe kstat_named_t pr_enqueue_fail; 179917Selowe kstat_named_t pr_dequeue_fail; 180917Selowe kstat_named_t pr_pending; 1819544SChristopher.Baumbauer@Sun.COM kstat_named_t pr_pending_kas; 182917Selowe kstat_named_t pr_failed; 183917Selowe kstat_named_t pr_failed_kernel; 184917Selowe kstat_named_t pr_limit; 185917Selowe kstat_named_t pr_limit_exceeded; 186917Selowe kstat_named_t pr_fma; 187917Selowe kstat_named_t pr_mce; 188917Selowe kstat_named_t pr_ue; 189917Selowe kstat_named_t pr_ue_cleared_retire; 190917Selowe kstat_named_t pr_ue_cleared_free; 191917Selowe kstat_named_t pr_ue_persistent; 192917Selowe kstat_named_t pr_unretired; 193917Selowe }; 194917Selowe 195917Selowe static struct page_retire_kstat page_retire_kstat = { 196917Selowe { "pages_retired", KSTAT_DATA_UINT64}, 197917Selowe { "pages_retire_request", KSTAT_DATA_UINT64}, 198917Selowe { "pages_retire_request_free", KSTAT_DATA_UINT64}, 199917Selowe { "pages_notenqueued", KSTAT_DATA_UINT64}, 200917Selowe { "pages_notdequeued", KSTAT_DATA_UINT64}, 201917Selowe { "pages_pending", KSTAT_DATA_UINT64}, 2029544SChristopher.Baumbauer@Sun.COM { "pages_pending_kas", KSTAT_DATA_UINT64}, 203917Selowe { "pages_deferred", KSTAT_DATA_UINT64}, 204917Selowe { "pages_deferred_kernel", KSTAT_DATA_UINT64}, 205917Selowe { "pages_limit", KSTAT_DATA_UINT64}, 206917Selowe { "pages_limit_exceeded", KSTAT_DATA_UINT64}, 207917Selowe { "pages_fma", KSTAT_DATA_UINT64}, 208917Selowe { "pages_multiple_ce", KSTAT_DATA_UINT64}, 209917Selowe { "pages_ue", KSTAT_DATA_UINT64}, 210917Selowe { "pages_ue_cleared_retired", KSTAT_DATA_UINT64}, 211917Selowe { "pages_ue_cleared_freed", KSTAT_DATA_UINT64}, 212917Selowe { "pages_ue_persistent", KSTAT_DATA_UINT64}, 213917Selowe { "pages_unretired", KSTAT_DATA_UINT64}, 214917Selowe }; 215917Selowe 216917Selowe static kstat_t *page_retire_ksp = NULL; 217917Selowe 218917Selowe #define PR_INCR_KSTAT(stat) \ 219917Selowe atomic_add_64(&(page_retire_kstat.stat.value.ui64), 1) 220917Selowe #define PR_DECR_KSTAT(stat) \ 221917Selowe atomic_add_64(&(page_retire_kstat.stat.value.ui64), -1) 222917Selowe 223917Selowe #define PR_KSTAT_RETIRED_CE (page_retire_kstat.pr_mce.value.ui64) 224917Selowe #define PR_KSTAT_RETIRED_FMA (page_retire_kstat.pr_fma.value.ui64) 225917Selowe #define PR_KSTAT_RETIRED_NOTUE (PR_KSTAT_RETIRED_CE + PR_KSTAT_RETIRED_FMA) 226917Selowe #define PR_KSTAT_PENDING (page_retire_kstat.pr_pending.value.ui64) 2279544SChristopher.Baumbauer@Sun.COM #define PR_KSTAT_PENDING_KAS (page_retire_kstat.pr_pending_kas.value.ui64) 228917Selowe #define PR_KSTAT_EQFAIL (page_retire_kstat.pr_enqueue_fail.value.ui64) 229917Selowe #define PR_KSTAT_DQFAIL (page_retire_kstat.pr_dequeue_fail.value.ui64) 230917Selowe 231917Selowe /* 2323253Smec * page retire kstats to list all retired pages 2333253Smec */ 2343253Smec static int pr_list_kstat_update(kstat_t *ksp, int rw); 2353253Smec static int pr_list_kstat_snapshot(kstat_t *ksp, void *buf, int rw); 2363253Smec kmutex_t pr_list_kstat_mutex; 2373253Smec 2383253Smec /* 239917Selowe * Limit the number of multiple CE page retires. 240917Selowe * The default is 0.1% of physmem, or 1 in 1000 pages. This is set in 241917Selowe * basis points, where 100 basis points equals one percent. 242917Selowe */ 243917Selowe #define MCE_BPT 10 244917Selowe uint64_t max_pages_retired_bps = MCE_BPT; 245917Selowe #define PAGE_RETIRE_LIMIT ((physmem * max_pages_retired_bps) / 10000) 246917Selowe 247917Selowe /* 248917Selowe * Control over the verbosity of page retirement. 249917Selowe * 250917Selowe * When set to zero (the default), no messages will be printed. 251917Selowe * When set to one, summary messages will be printed. 252917Selowe * When set > one, all messages will be printed. 253917Selowe * 254917Selowe * A value of one will trigger detailed messages for retirement operations, 255917Selowe * and is intended as a platform tunable for processors where FMA's DE does 256917Selowe * not run (e.g., spitfire). Values > one are intended for debugging only. 257917Selowe */ 258917Selowe int page_retire_messages = 0; 259917Selowe 260917Selowe /* 261917Selowe * Control whether or not we return scrubbed UE pages to service. 262917Selowe * By default we do not since FMA wants to run its diagnostics first 263917Selowe * and then ask us to unretire the page if it passes. Non-FMA platforms 264917Selowe * may set this to zero so we will only retire recidivist pages. It should 265917Selowe * not be changed by the user. 266917Selowe */ 267917Selowe int page_retire_first_ue = 1; 268917Selowe 269917Selowe /* 270917Selowe * Master enable for page retire. This prevents a CE or UE early in boot 271917Selowe * from trying to retire a page before page_retire_init() has finished 272917Selowe * setting things up. This is internal only and is not a tunable! 273917Selowe */ 274917Selowe static int pr_enable = 0; 275917Selowe 276917Selowe extern struct vnode kvp; 277917Selowe 278917Selowe #ifdef DEBUG 279917Selowe struct page_retire_debug { 2801381Selowe int prd_dup1; 2811381Selowe int prd_dup2; 2821381Selowe int prd_qdup; 283917Selowe int prd_noaction; 284917Selowe int prd_queued; 285917Selowe int prd_notqueued; 286917Selowe int prd_dequeue; 287917Selowe int prd_top; 288917Selowe int prd_locked; 289917Selowe int prd_reloc; 290973Selowe int prd_relocfail; 291973Selowe int prd_mod; 292973Selowe int prd_mod_late; 293917Selowe int prd_kern; 294917Selowe int prd_free; 295917Selowe int prd_noreclaim; 296917Selowe int prd_hashout; 297917Selowe int prd_fma; 298917Selowe int prd_uescrubbed; 299917Selowe int prd_uenotscrubbed; 300917Selowe int prd_mce; 301917Selowe int prd_prlocked; 302917Selowe int prd_prnotlocked; 303917Selowe int prd_prretired; 304917Selowe int prd_ulocked; 305917Selowe int prd_unotretired; 306917Selowe int prd_udestroy; 307917Selowe int prd_uhashout; 308917Selowe int prd_uunretired; 309917Selowe int prd_unotlocked; 310917Selowe int prd_checkhit; 3111381Selowe int prd_checkmiss_pend; 3121381Selowe int prd_checkmiss_noerr; 313917Selowe int prd_tctop; 314917Selowe int prd_tclocked; 315917Selowe int prd_hunt; 316917Selowe int prd_dohunt; 317917Selowe int prd_earlyhunt; 318917Selowe int prd_latehunt; 319917Selowe int prd_nofreedemote; 320917Selowe int prd_nodemote; 321917Selowe int prd_demoted; 322917Selowe } pr_debug; 323917Selowe 324917Selowe #define PR_DEBUG(foo) ((pr_debug.foo)++) 325917Selowe 326917Selowe /* 327917Selowe * A type histogram. We record the incidence of the various toxic 328917Selowe * flag combinations along with the interesting page attributes. The 329917Selowe * goal is to get as many combinations as we can while driving all 330917Selowe * pr_debug values nonzero (indicating we've exercised all possible 331917Selowe * code paths across all possible page types). Not all combinations 332917Selowe * will make sense -- e.g. PRT_MOD|PRT_KERNEL. 333917Selowe * 334917Selowe * pr_type offset bit encoding (when examining with a debugger): 335917Selowe * 336917Selowe * PRT_NAMED - 0x4 337917Selowe * PRT_KERNEL - 0x8 338917Selowe * PRT_FREE - 0x10 339917Selowe * PRT_MOD - 0x20 340917Selowe * PRT_FMA - 0x0 341917Selowe * PRT_MCE - 0x40 342917Selowe * PRT_UE - 0x80 343917Selowe */ 344917Selowe 345917Selowe #define PRT_NAMED 0x01 346917Selowe #define PRT_KERNEL 0x02 347917Selowe #define PRT_FREE 0x04 348917Selowe #define PRT_MOD 0x08 349917Selowe #define PRT_FMA 0x00 /* yes, this is not a mistake */ 350917Selowe #define PRT_MCE 0x10 351917Selowe #define PRT_UE 0x20 352917Selowe #define PRT_ALL 0x3F 353917Selowe 354917Selowe int pr_types[PRT_ALL+1]; 355917Selowe 356917Selowe #define PR_TYPES(pp) { \ 357917Selowe int whichtype = 0; \ 358917Selowe if (pp->p_vnode) \ 359917Selowe whichtype |= PRT_NAMED; \ 3603290Sjohansen if (PP_ISKAS(pp)) \ 361917Selowe whichtype |= PRT_KERNEL; \ 362917Selowe if (PP_ISFREE(pp)) \ 363917Selowe whichtype |= PRT_FREE; \ 364917Selowe if (hat_ismod(pp)) \ 365917Selowe whichtype |= PRT_MOD; \ 366917Selowe if (pp->p_toxic & PR_UE) \ 367917Selowe whichtype |= PRT_UE; \ 368917Selowe if (pp->p_toxic & PR_MCE) \ 369917Selowe whichtype |= PRT_MCE; \ 370917Selowe pr_types[whichtype]++; \ 371917Selowe } 372917Selowe 373917Selowe int recl_calls; 374917Selowe int recl_mtbf = 3; 375917Selowe int reloc_calls; 376917Selowe int reloc_mtbf = 7; 377917Selowe int pr_calls; 378917Selowe int pr_mtbf = 15; 379917Selowe 380917Selowe #define MTBF(v, f) (((++(v)) & (f)) != (f)) 381917Selowe 382917Selowe #else /* DEBUG */ 383917Selowe 384917Selowe #define PR_DEBUG(foo) /* nothing */ 385917Selowe #define PR_TYPES(foo) /* nothing */ 386917Selowe #define MTBF(v, f) (1) 387917Selowe 388917Selowe #endif /* DEBUG */ 389917Selowe 390917Selowe /* 391917Selowe * page_retire_done() - completion processing 392917Selowe * 393917Selowe * Used by the page_retire code for common completion processing. 394917Selowe * It keeps track of how many times a given result has happened, 395917Selowe * and writes out an occasional message. 396917Selowe * 397917Selowe * May be called with a NULL pp (PRD_INVALID_PA case). 398917Selowe */ 399917Selowe #define PRD_INVALID_KEY -1 400917Selowe #define PRD_SUCCESS 0 401917Selowe #define PRD_PENDING 1 402917Selowe #define PRD_FAILED 2 403917Selowe #define PRD_DUPLICATE 3 404917Selowe #define PRD_INVALID_PA 4 405917Selowe #define PRD_LIMIT 5 406917Selowe #define PRD_UE_SCRUBBED 6 407917Selowe #define PRD_UNR_SUCCESS 7 408917Selowe #define PRD_UNR_CANTLOCK 8 409917Selowe #define PRD_UNR_NOT 9 410917Selowe 411917Selowe typedef struct page_retire_op { 412917Selowe int pr_key; /* one of the PRD_* defines from above */ 413917Selowe int pr_count; /* How many times this has happened */ 414917Selowe int pr_retval; /* return value */ 415917Selowe int pr_msglvl; /* message level - when to print */ 416917Selowe char *pr_message; /* Cryptic message for field service */ 417917Selowe } page_retire_op_t; 418917Selowe 419917Selowe static page_retire_op_t page_retire_ops[] = { 420917Selowe /* key count retval msglvl message */ 421917Selowe {PRD_SUCCESS, 0, 0, 1, 422917Selowe "Page 0x%08x.%08x removed from service"}, 423917Selowe {PRD_PENDING, 0, EAGAIN, 2, 424917Selowe "Page 0x%08x.%08x will be retired on free"}, 425917Selowe {PRD_FAILED, 0, EAGAIN, 0, NULL}, 4261381Selowe {PRD_DUPLICATE, 0, EIO, 2, 4271381Selowe "Page 0x%08x.%08x already retired or pending"}, 428917Selowe {PRD_INVALID_PA, 0, EINVAL, 2, 429917Selowe "PA 0x%08x.%08x is not a relocatable page"}, 430917Selowe {PRD_LIMIT, 0, 0, 1, 431917Selowe "Page 0x%08x.%08x not retired due to limit exceeded"}, 432917Selowe {PRD_UE_SCRUBBED, 0, 0, 1, 433917Selowe "Previously reported error on page 0x%08x.%08x cleared"}, 434917Selowe {PRD_UNR_SUCCESS, 0, 0, 1, 435917Selowe "Page 0x%08x.%08x returned to service"}, 436917Selowe {PRD_UNR_CANTLOCK, 0, EAGAIN, 2, 437917Selowe "Page 0x%08x.%08x could not be unretired"}, 4381381Selowe {PRD_UNR_NOT, 0, EIO, 2, 439917Selowe "Page 0x%08x.%08x is not retired"}, 440917Selowe {PRD_INVALID_KEY, 0, 0, 0, NULL} /* MUST BE LAST! */ 441917Selowe }; 442917Selowe 443917Selowe /* 444917Selowe * print a message if page_retire_messages is true. 445917Selowe */ 446917Selowe #define PR_MESSAGE(debuglvl, msglvl, msg, pa) \ 447917Selowe { \ 448917Selowe uint64_t p = (uint64_t)pa; \ 449917Selowe if (page_retire_messages >= msglvl && msg != NULL) { \ 450917Selowe cmn_err(debuglvl, msg, \ 451917Selowe (uint32_t)(p >> 32), (uint32_t)p); \ 452917Selowe } \ 453917Selowe } 454917Selowe 455917Selowe /* 456917Selowe * Note that multiple bits may be set in a single settoxic operation. 457917Selowe * May be called without the page locked. 458917Selowe */ 459917Selowe void 460917Selowe page_settoxic(page_t *pp, uchar_t bits) 461917Selowe { 462917Selowe atomic_or_8(&pp->p_toxic, bits); 463917Selowe } 464917Selowe 465917Selowe /* 466917Selowe * Note that multiple bits may cleared in a single clrtoxic operation. 4671338Selowe * Must be called with the page exclusively locked to prevent races which 4681338Selowe * may attempt to retire a page without any toxic bits set. 4693253Smec * Note that the PR_CAPTURE bit can be cleared without the exclusive lock 4703253Smec * being held as there is a separate mutex which protects that bit. 471917Selowe */ 472917Selowe void 473917Selowe page_clrtoxic(page_t *pp, uchar_t bits) 474917Selowe { 4753253Smec ASSERT((bits & PR_CAPTURE) || PAGE_EXCL(pp)); 476917Selowe atomic_and_8(&pp->p_toxic, ~bits); 477917Selowe } 478917Selowe 479917Selowe /* 480917Selowe * Prints any page retire messages to the user, and decides what 481917Selowe * error code is appropriate for the condition reported. 482917Selowe */ 483917Selowe static int 484917Selowe page_retire_done(page_t *pp, int code) 485917Selowe { 486917Selowe page_retire_op_t *prop; 487917Selowe uint64_t pa = 0; 488917Selowe int i; 489917Selowe 490917Selowe if (pp != NULL) { 4911338Selowe pa = mmu_ptob((uint64_t)pp->p_pagenum); 492917Selowe } 493917Selowe 494917Selowe prop = NULL; 495917Selowe for (i = 0; page_retire_ops[i].pr_key != PRD_INVALID_KEY; i++) { 496917Selowe if (page_retire_ops[i].pr_key == code) { 497917Selowe prop = &page_retire_ops[i]; 498917Selowe break; 499917Selowe } 500917Selowe } 501917Selowe 502917Selowe #ifdef DEBUG 503917Selowe if (page_retire_ops[i].pr_key == PRD_INVALID_KEY) { 504917Selowe cmn_err(CE_PANIC, "page_retire_done: Invalid opcode %d", code); 505917Selowe } 506917Selowe #endif 507917Selowe 508917Selowe ASSERT(prop->pr_key == code); 509917Selowe 510917Selowe prop->pr_count++; 511917Selowe 512917Selowe PR_MESSAGE(CE_NOTE, prop->pr_msglvl, prop->pr_message, pa); 513917Selowe if (pp != NULL) { 514917Selowe page_settoxic(pp, PR_MSG); 515917Selowe } 516917Selowe 517917Selowe return (prop->pr_retval); 518917Selowe } 519917Selowe 520917Selowe /* 521917Selowe * Act like page_destroy(), but instead of freeing the page, hash it onto 522917Selowe * the retired_pages vnode, and mark it retired. 523917Selowe * 524917Selowe * For fun, we try to scrub the page until it's squeaky clean. 525917Selowe * availrmem is adjusted here. 526917Selowe */ 527917Selowe static void 528917Selowe page_retire_destroy(page_t *pp) 529917Selowe { 530973Selowe u_offset_t off = (u_offset_t)((uintptr_t)pp); 531973Selowe 532917Selowe ASSERT(PAGE_EXCL(pp)); 533917Selowe ASSERT(!PP_ISFREE(pp)); 534917Selowe ASSERT(pp->p_szc == 0); 535917Selowe ASSERT(!hat_page_is_mapped(pp)); 536917Selowe ASSERT(!pp->p_vnode); 537917Selowe 538*10271SJason.Beloro@Sun.COM page_clr_all_props(pp); 539917Selowe pagescrub(pp, 0, MMU_PAGESIZE); 540917Selowe 541917Selowe pp->p_next = NULL; 542917Selowe pp->p_prev = NULL; 543973Selowe if (page_hashin(pp, retired_pages, off, NULL) == 0) { 544917Selowe cmn_err(CE_PANIC, "retired page %p hashin failed", (void *)pp); 545917Selowe } 546917Selowe 547917Selowe page_settoxic(pp, PR_RETIRED); 548917Selowe PR_INCR_KSTAT(pr_retired); 549917Selowe 550917Selowe if (pp->p_toxic & PR_FMA) { 551917Selowe PR_INCR_KSTAT(pr_fma); 552917Selowe } else if (pp->p_toxic & PR_UE) { 553917Selowe PR_INCR_KSTAT(pr_ue); 554917Selowe } else { 555917Selowe PR_INCR_KSTAT(pr_mce); 556917Selowe } 557917Selowe 558917Selowe mutex_enter(&freemem_lock); 559917Selowe availrmem--; 560917Selowe mutex_exit(&freemem_lock); 561917Selowe 562917Selowe page_unlock(pp); 563917Selowe } 564917Selowe 565917Selowe /* 566917Selowe * Check whether the number of pages which have been retired already exceeds 567917Selowe * the maximum allowable percentage of memory which may be retired. 568917Selowe * 569917Selowe * Returns 1 if the limit has been exceeded. 570917Selowe */ 571917Selowe static int 572917Selowe page_retire_limit(void) 573917Selowe { 574917Selowe if (PR_KSTAT_RETIRED_NOTUE >= (uint64_t)PAGE_RETIRE_LIMIT) { 575917Selowe PR_INCR_KSTAT(pr_limit_exceeded); 576917Selowe return (1); 577917Selowe } 578917Selowe 579917Selowe return (0); 580917Selowe } 581917Selowe 582917Selowe #define MSG_DM "Data Mismatch occurred at PA 0x%08x.%08x" \ 583917Selowe "[ 0x%x != 0x%x ] while attempting to clear previously " \ 584917Selowe "reported error; page removed from service" 585917Selowe 586917Selowe #define MSG_UE "Uncorrectable Error occurred at PA 0x%08x.%08x while " \ 587917Selowe "attempting to clear previously reported error; page removed " \ 588917Selowe "from service" 589917Selowe 590917Selowe /* 591917Selowe * Attempt to clear a UE from a page. 592917Selowe * Returns 1 if the error has been successfully cleared. 593917Selowe */ 594917Selowe static int 595917Selowe page_clear_transient_ue(page_t *pp) 596917Selowe { 597917Selowe caddr_t kaddr; 598917Selowe uint8_t rb, wb; 599917Selowe uint64_t pa; 600917Selowe uint32_t pa_hi, pa_lo; 601917Selowe on_trap_data_t otd; 602917Selowe int errors = 0; 603917Selowe int i; 604917Selowe 605917Selowe ASSERT(PAGE_EXCL(pp)); 606917Selowe ASSERT(PP_PR_REQ(pp)); 607917Selowe ASSERT(pp->p_szc == 0); 608917Selowe ASSERT(!hat_page_is_mapped(pp)); 609917Selowe 610917Selowe /* 611917Selowe * Clear the page and attempt to clear the UE. If we trap 612917Selowe * on the next access to the page, we know the UE has recurred. 613917Selowe */ 614917Selowe pagescrub(pp, 0, PAGESIZE); 615917Selowe 616917Selowe /* 617917Selowe * Map the page and write a bunch of bit patterns to compare 618917Selowe * what we wrote with what we read back. This isn't a perfect 619917Selowe * test but it should be good enough to catch most of the 620917Selowe * recurring UEs. If this fails to catch a recurrent UE, we'll 621917Selowe * retire the page the next time we see a UE on the page. 622917Selowe */ 623917Selowe kaddr = ppmapin(pp, PROT_READ|PROT_WRITE, (caddr_t)-1); 624917Selowe 625917Selowe pa = ptob((uint64_t)page_pptonum(pp)); 626917Selowe pa_hi = (uint32_t)(pa >> 32); 627917Selowe pa_lo = (uint32_t)pa; 628917Selowe 629917Selowe /* 6307458SChristopher.Baumbauer@Sun.COM * Disable preemption to prevent the off chance that 6317458SChristopher.Baumbauer@Sun.COM * we migrate while in the middle of running through 6327458SChristopher.Baumbauer@Sun.COM * the bit pattern and run on a different processor 6337458SChristopher.Baumbauer@Sun.COM * than what we started on. 6347458SChristopher.Baumbauer@Sun.COM */ 6357458SChristopher.Baumbauer@Sun.COM kpreempt_disable(); 6367458SChristopher.Baumbauer@Sun.COM 6377458SChristopher.Baumbauer@Sun.COM /* 638917Selowe * Fill the page with each (0x00 - 0xFF] bit pattern, flushing 639917Selowe * the cache in between reading and writing. We do this under 640917Selowe * on_trap() protection to avoid recursion. 641917Selowe */ 642917Selowe if (on_trap(&otd, OT_DATA_EC)) { 643917Selowe PR_MESSAGE(CE_WARN, 1, MSG_UE, pa); 644917Selowe errors = 1; 645917Selowe } else { 646917Selowe for (wb = 0xff; wb > 0; wb--) { 647917Selowe for (i = 0; i < PAGESIZE; i++) { 648917Selowe kaddr[i] = wb; 649917Selowe } 650917Selowe 651917Selowe sync_data_memory(kaddr, PAGESIZE); 652917Selowe 653917Selowe for (i = 0; i < PAGESIZE; i++) { 654917Selowe rb = kaddr[i]; 655917Selowe if (rb != wb) { 656917Selowe /* 657917Selowe * We had a mismatch without a trap. 658917Selowe * Uh-oh. Something is really wrong 659917Selowe * with this system. 660917Selowe */ 661917Selowe if (page_retire_messages) { 662917Selowe cmn_err(CE_WARN, MSG_DM, 663917Selowe pa_hi, pa_lo, rb, wb); 664917Selowe } 665917Selowe errors = 1; 666917Selowe goto out; /* double break */ 667917Selowe } 668917Selowe } 669917Selowe } 670917Selowe } 671917Selowe out: 672917Selowe no_trap(); 6737458SChristopher.Baumbauer@Sun.COM kpreempt_enable(); 674917Selowe ppmapout(kaddr); 675917Selowe 676917Selowe return (errors ? 0 : 1); 677917Selowe } 678917Selowe 679917Selowe /* 680917Selowe * Try to clear a page_t with a single UE. If the UE was transient, it is 681917Selowe * returned to service, and we return 1. Otherwise we return 0 meaning 682917Selowe * that further processing is required to retire the page. 683917Selowe */ 684917Selowe static int 685917Selowe page_retire_transient_ue(page_t *pp) 686917Selowe { 687917Selowe ASSERT(PAGE_EXCL(pp)); 688917Selowe ASSERT(!hat_page_is_mapped(pp)); 689917Selowe 690917Selowe /* 691917Selowe * If this page is a repeat offender, retire him under the 692917Selowe * "two strikes and you're out" rule. The caller is responsible 693917Selowe * for scrubbing the page to try to clear the error. 694917Selowe */ 695917Selowe if (pp->p_toxic & PR_UE_SCRUBBED) { 696917Selowe PR_INCR_KSTAT(pr_ue_persistent); 697917Selowe return (0); 698917Selowe } 699917Selowe 700917Selowe if (page_clear_transient_ue(pp)) { 701917Selowe /* 702917Selowe * We set the PR_SCRUBBED_UE bit; if we ever see this 703917Selowe * page again, we will retire it, no questions asked. 704917Selowe */ 705917Selowe page_settoxic(pp, PR_UE_SCRUBBED); 706917Selowe 707917Selowe if (page_retire_first_ue) { 708917Selowe PR_INCR_KSTAT(pr_ue_cleared_retire); 709917Selowe return (0); 710917Selowe } else { 711917Selowe PR_INCR_KSTAT(pr_ue_cleared_free); 712917Selowe 7133253Smec page_clrtoxic(pp, PR_UE | PR_MCE | PR_MSG); 714917Selowe 715917Selowe /* LINTED: CONSTCOND */ 716917Selowe VN_DISPOSE(pp, B_FREE, 1, kcred); 717917Selowe return (1); 718917Selowe } 719917Selowe } 720917Selowe 721917Selowe PR_INCR_KSTAT(pr_ue_persistent); 722917Selowe return (0); 723917Selowe } 724917Selowe 725917Selowe /* 726917Selowe * Update the statistics dynamically when our kstat is read. 727917Selowe */ 728917Selowe static int 729917Selowe page_retire_kstat_update(kstat_t *ksp, int rw) 730917Selowe { 731917Selowe struct page_retire_kstat *pr; 732917Selowe 733917Selowe if (ksp == NULL) 7347458SChristopher.Baumbauer@Sun.COM return (EINVAL); 735917Selowe 736917Selowe switch (rw) { 737917Selowe 738917Selowe case KSTAT_READ: 739917Selowe pr = (struct page_retire_kstat *)ksp->ks_data; 740917Selowe ASSERT(pr == &page_retire_kstat); 741917Selowe pr->pr_limit.value.ui64 = PAGE_RETIRE_LIMIT; 742917Selowe return (0); 743917Selowe 744917Selowe case KSTAT_WRITE: 745917Selowe return (EACCES); 746917Selowe 747917Selowe default: 748917Selowe return (EINVAL); 749917Selowe } 750917Selowe /*NOTREACHED*/ 751917Selowe } 752917Selowe 7533253Smec static int 7543253Smec pr_list_kstat_update(kstat_t *ksp, int rw) 7553253Smec { 7563253Smec uint_t count; 7573253Smec page_t *pp; 7583253Smec kmutex_t *vphm; 7593253Smec 7603253Smec if (rw == KSTAT_WRITE) 7613253Smec return (EACCES); 7623253Smec 7633253Smec vphm = page_vnode_mutex(retired_pages); 7643253Smec mutex_enter(vphm); 7653253Smec /* Needs to be under a lock so that for loop will work right */ 7663253Smec if (retired_pages->v_pages == NULL) { 7673253Smec mutex_exit(vphm); 7683253Smec ksp->ks_ndata = 0; 7693253Smec ksp->ks_data_size = 0; 7703253Smec return (0); 7713253Smec } 7723253Smec 7733253Smec count = 1; 7743253Smec for (pp = retired_pages->v_pages->p_vpnext; 7753253Smec pp != retired_pages->v_pages; pp = pp->p_vpnext) { 7763253Smec count++; 7773253Smec } 7783253Smec mutex_exit(vphm); 7793253Smec 7803253Smec ksp->ks_ndata = count; 7813253Smec ksp->ks_data_size = count * 2 * sizeof (uint64_t); 7823253Smec 7833253Smec return (0); 7843253Smec } 7853253Smec 7863253Smec /* 7873253Smec * all spans will be pagesize and no coalescing will be done with the 7883253Smec * list produced. 7893253Smec */ 7903253Smec static int 7913253Smec pr_list_kstat_snapshot(kstat_t *ksp, void *buf, int rw) 7923253Smec { 7933253Smec kmutex_t *vphm; 7943253Smec page_t *pp; 7953253Smec struct memunit { 7963253Smec uint64_t address; 7973253Smec uint64_t size; 7983253Smec } *kspmem; 7993253Smec 8003253Smec if (rw == KSTAT_WRITE) 8013253Smec return (EACCES); 8023253Smec 8033253Smec ksp->ks_snaptime = gethrtime(); 8043253Smec 8053253Smec kspmem = (struct memunit *)buf; 8063253Smec 8073253Smec vphm = page_vnode_mutex(retired_pages); 8083253Smec mutex_enter(vphm); 8093253Smec pp = retired_pages->v_pages; 8103253Smec if (((caddr_t)kspmem >= (caddr_t)buf + ksp->ks_data_size) || 8113253Smec (pp == NULL)) { 8123253Smec mutex_exit(vphm); 8133253Smec return (0); 8143253Smec } 8153253Smec kspmem->address = ptob(pp->p_pagenum); 8163253Smec kspmem->size = PAGESIZE; 8173253Smec kspmem++; 8183253Smec for (pp = pp->p_vpnext; pp != retired_pages->v_pages; 8193253Smec pp = pp->p_vpnext, kspmem++) { 8203253Smec if ((caddr_t)kspmem >= (caddr_t)buf + ksp->ks_data_size) 8213253Smec break; 8223253Smec kspmem->address = ptob(pp->p_pagenum); 8233253Smec kspmem->size = PAGESIZE; 8243253Smec } 8253253Smec mutex_exit(vphm); 8263253Smec 8273253Smec return (0); 8283253Smec } 8293253Smec 830917Selowe /* 8313480Sjfrank * page_retire_pend_count -- helper function for page_capture_thread, 8323480Sjfrank * returns the number of pages pending retirement. 8333480Sjfrank */ 8343480Sjfrank uint64_t 8353480Sjfrank page_retire_pend_count(void) 8363480Sjfrank { 8373480Sjfrank return (PR_KSTAT_PENDING); 8383480Sjfrank } 8393480Sjfrank 8409544SChristopher.Baumbauer@Sun.COM uint64_t 8419544SChristopher.Baumbauer@Sun.COM page_retire_pend_kas_count(void) 8423480Sjfrank { 8439544SChristopher.Baumbauer@Sun.COM return (PR_KSTAT_PENDING_KAS); 8443480Sjfrank } 8453480Sjfrank 8463480Sjfrank void 8479544SChristopher.Baumbauer@Sun.COM page_retire_incr_pend_count(void *datap) 8489544SChristopher.Baumbauer@Sun.COM { 8499544SChristopher.Baumbauer@Sun.COM PR_INCR_KSTAT(pr_pending); 8509544SChristopher.Baumbauer@Sun.COM 8519544SChristopher.Baumbauer@Sun.COM if ((datap == &kvp) || (datap == &zvp)) { 8529544SChristopher.Baumbauer@Sun.COM PR_INCR_KSTAT(pr_pending_kas); 8539544SChristopher.Baumbauer@Sun.COM } 8549544SChristopher.Baumbauer@Sun.COM } 8559544SChristopher.Baumbauer@Sun.COM 8569544SChristopher.Baumbauer@Sun.COM void 8579544SChristopher.Baumbauer@Sun.COM page_retire_decr_pend_count(void *datap) 8583480Sjfrank { 8593480Sjfrank PR_DECR_KSTAT(pr_pending); 8609544SChristopher.Baumbauer@Sun.COM 8619544SChristopher.Baumbauer@Sun.COM if ((datap == &kvp) || (datap == &zvp)) { 8629544SChristopher.Baumbauer@Sun.COM PR_DECR_KSTAT(pr_pending_kas); 8639544SChristopher.Baumbauer@Sun.COM } 8643480Sjfrank } 8653480Sjfrank 8663480Sjfrank /* 867917Selowe * Initialize the page retire mechanism: 868917Selowe * 869917Selowe * - Establish the correctable error retire limit. 870917Selowe * - Initialize locks. 871917Selowe * - Build the retired_pages vnode. 872917Selowe * - Set up the kstats. 873917Selowe * - Fire off the background thread. 8743253Smec * - Tell page_retire() it's OK to start retiring pages. 875917Selowe */ 876917Selowe void 877917Selowe page_retire_init(void) 878917Selowe { 8793898Srsb const fs_operation_def_t retired_vnodeops_template[] = { 8803898Srsb { NULL, NULL } 8813898Srsb }; 882917Selowe struct vnodeops *vops; 8833253Smec kstat_t *ksp; 884917Selowe 885917Selowe const uint_t page_retire_ndata = 886917Selowe sizeof (page_retire_kstat) / sizeof (kstat_named_t); 887917Selowe 888917Selowe ASSERT(page_retire_ksp == NULL); 889917Selowe 890917Selowe if (max_pages_retired_bps <= 0) { 891917Selowe max_pages_retired_bps = MCE_BPT; 892917Selowe } 893917Selowe 894917Selowe mutex_init(&pr_q_mutex, NULL, MUTEX_DEFAULT, NULL); 895917Selowe 896917Selowe retired_pages = vn_alloc(KM_SLEEP); 897917Selowe if (vn_make_ops("retired_pages", retired_vnodeops_template, &vops)) { 898917Selowe cmn_err(CE_PANIC, 899917Selowe "page_retired_init: can't make retired vnodeops"); 900917Selowe } 901917Selowe vn_setops(retired_pages, vops); 902917Selowe 903917Selowe if ((page_retire_ksp = kstat_create("unix", 0, "page_retire", 904917Selowe "misc", KSTAT_TYPE_NAMED, page_retire_ndata, 905917Selowe KSTAT_FLAG_VIRTUAL)) == NULL) { 906917Selowe cmn_err(CE_WARN, "kstat_create for page_retire failed"); 907917Selowe } else { 908917Selowe page_retire_ksp->ks_data = (void *)&page_retire_kstat; 909917Selowe page_retire_ksp->ks_update = page_retire_kstat_update; 910917Selowe kstat_install(page_retire_ksp); 911917Selowe } 912917Selowe 9133253Smec mutex_init(&pr_list_kstat_mutex, NULL, MUTEX_DEFAULT, NULL); 9143253Smec ksp = kstat_create("unix", 0, "page_retire_list", "misc", 9153253Smec KSTAT_TYPE_RAW, 0, KSTAT_FLAG_VAR_SIZE | KSTAT_FLAG_VIRTUAL); 9163253Smec if (ksp != NULL) { 9173253Smec ksp->ks_update = pr_list_kstat_update; 9183253Smec ksp->ks_snapshot = pr_list_kstat_snapshot; 9193253Smec ksp->ks_lock = &pr_list_kstat_mutex; 9203253Smec kstat_install(ksp); 9213253Smec } 922917Selowe 9233253Smec page_capture_register_callback(PC_RETIRE, -1, page_retire_pp_finish); 924917Selowe pr_enable = 1; 925917Selowe } 926917Selowe 927917Selowe /* 928917Selowe * page_retire_hunt() callback for the retire thread. 929917Selowe */ 930917Selowe static void 931917Selowe page_retire_thread_cb(page_t *pp) 932917Selowe { 933917Selowe PR_DEBUG(prd_tctop); 9343290Sjohansen if (!PP_ISKAS(pp) && page_trylock(pp, SE_EXCL)) { 935917Selowe PR_DEBUG(prd_tclocked); 936917Selowe page_unlock(pp); 937917Selowe } 938917Selowe } 939917Selowe 940917Selowe /* 9413253Smec * Callback used by page_trycapture() to finish off retiring a page. 9423253Smec * The page has already been cleaned and we've been given sole access to 9433253Smec * it. 9443253Smec * Always returns 0 to indicate that callback succeded as the callback never 9453253Smec * fails to finish retiring the given page. 946917Selowe */ 9473253Smec /*ARGSUSED*/ 948917Selowe static int 9493253Smec page_retire_pp_finish(page_t *pp, void *notused, uint_t flags) 950917Selowe { 951917Selowe int toxic; 952917Selowe 953917Selowe ASSERT(PAGE_EXCL(pp)); 954917Selowe ASSERT(pp->p_iolock_state == 0); 955917Selowe ASSERT(pp->p_szc == 0); 956917Selowe 957917Selowe toxic = pp->p_toxic; 958917Selowe 959917Selowe /* 960917Selowe * The problem page is locked, demoted, unmapped, not free, 961917Selowe * hashed out, and not COW or mlocked (whew!). 962917Selowe * 963917Selowe * Now we select our ammunition, take it around back, and shoot it. 964917Selowe */ 965917Selowe if (toxic & PR_UE) { 9663253Smec ue_error: 967917Selowe if (page_retire_transient_ue(pp)) { 968917Selowe PR_DEBUG(prd_uescrubbed); 9693253Smec (void) page_retire_done(pp, PRD_UE_SCRUBBED); 970917Selowe } else { 971917Selowe PR_DEBUG(prd_uenotscrubbed); 972917Selowe page_retire_destroy(pp); 9733253Smec (void) page_retire_done(pp, PRD_SUCCESS); 974917Selowe } 9753253Smec return (0); 976917Selowe } else if (toxic & PR_FMA) { 977917Selowe PR_DEBUG(prd_fma); 978917Selowe page_retire_destroy(pp); 9793253Smec (void) page_retire_done(pp, PRD_SUCCESS); 9803253Smec return (0); 981917Selowe } else if (toxic & PR_MCE) { 982917Selowe PR_DEBUG(prd_mce); 983917Selowe page_retire_destroy(pp); 9843253Smec (void) page_retire_done(pp, PRD_SUCCESS); 9853253Smec return (0); 986917Selowe } 987917Selowe 988917Selowe /* 9893253Smec * When page_retire_first_ue is set to zero and a UE occurs which is 9903253Smec * transient, it's possible that we clear some flags set by a second 9913253Smec * UE error on the page which occurs while the first is currently being 9923253Smec * handled and thus we need to handle the case where none of the above 9933253Smec * are set. In this instance, PR_UE_SCRUBBED should be set and thus 9943253Smec * we should execute the UE code above. 995917Selowe */ 9963253Smec if (toxic & PR_UE_SCRUBBED) { 9973253Smec goto ue_error; 998917Selowe } 9993253Smec 10003253Smec /* 10013253Smec * It's impossible to get here. 10023253Smec */ 10033253Smec panic("bad toxic flags 0x%x in page_retire_pp_finish\n", toxic); 10043253Smec return (0); 1005917Selowe } 1006917Selowe 1007917Selowe /* 1008917Selowe * page_retire() - the front door in to retire a page. 1009917Selowe * 1010917Selowe * Ideally, page_retire() would instantly retire the requested page. 1011917Selowe * Unfortunately, some pages are locked or otherwise tied up and cannot be 10123253Smec * retired right away. We use the page capture logic to deal with this 10133253Smec * situation as it will continuously try to retire the page in the background 10143253Smec * if the first attempt fails. Success is determined by looking to see whether 10153253Smec * the page has been retired after the page_trycapture() attempt. 1016917Selowe * 1017917Selowe * Returns: 1018917Selowe * 1019917Selowe * - 0 on success, 1020917Selowe * - EINVAL when the PA is whacko, 10211381Selowe * - EIO if the page is already retired or already pending retirement, or 10221381Selowe * - EAGAIN if the page could not be _immediately_ retired but is pending. 1023917Selowe */ 1024917Selowe int 1025917Selowe page_retire(uint64_t pa, uchar_t reason) 1026917Selowe { 1027917Selowe page_t *pp; 1028917Selowe 1029917Selowe ASSERT(reason & PR_REASONS); /* there must be a reason */ 1030917Selowe ASSERT(!(reason & ~PR_REASONS)); /* but no other bits */ 1031917Selowe 1032917Selowe pp = page_numtopp_nolock(mmu_btop(pa)); 1033917Selowe if (pp == NULL) { 1034917Selowe PR_MESSAGE(CE_WARN, 1, "Cannot schedule clearing of error on" 1035917Selowe " page 0x%08x.%08x; page is not relocatable memory", pa); 1036917Selowe return (page_retire_done(pp, PRD_INVALID_PA)); 1037917Selowe } 1038917Selowe if (PP_RETIRED(pp)) { 10391381Selowe PR_DEBUG(prd_dup1); 1040917Selowe return (page_retire_done(pp, PRD_DUPLICATE)); 1041917Selowe } 1042917Selowe 10431381Selowe if ((reason & PR_UE) && !PP_TOXIC(pp)) { 1044917Selowe PR_MESSAGE(CE_NOTE, 1, "Scheduling clearing of error on" 1045917Selowe " page 0x%08x.%08x", pa); 10461381Selowe } else if (PP_PR_REQ(pp)) { 10471381Selowe PR_DEBUG(prd_dup2); 10481381Selowe return (page_retire_done(pp, PRD_DUPLICATE)); 1049917Selowe } else { 1050917Selowe PR_MESSAGE(CE_NOTE, 1, "Scheduling removal of" 1051917Selowe " page 0x%08x.%08x", pa); 1052917Selowe } 10533253Smec 10543253Smec /* Avoid setting toxic bits in the first place */ 10553253Smec if ((reason & (PR_FMA | PR_MCE)) && !(reason & PR_UE) && 10563253Smec page_retire_limit()) { 10573253Smec return (page_retire_done(pp, PRD_LIMIT)); 10583253Smec } 1059917Selowe 10603253Smec if (MTBF(pr_calls, pr_mtbf)) { 10613253Smec page_settoxic(pp, reason); 10629544SChristopher.Baumbauer@Sun.COM if (page_trycapture(pp, 0, CAPTURE_RETIRE, pp->p_vnode) == 0) { 10633253Smec PR_DEBUG(prd_prlocked); 10643253Smec } else { 10653253Smec PR_DEBUG(prd_prnotlocked); 10663253Smec } 1067917Selowe } else { 1068917Selowe PR_DEBUG(prd_prnotlocked); 1069917Selowe } 1070917Selowe 1071917Selowe if (PP_RETIRED(pp)) { 1072917Selowe PR_DEBUG(prd_prretired); 1073917Selowe return (0); 1074917Selowe } else { 10753253Smec cv_signal(&pc_cv); 1076917Selowe PR_INCR_KSTAT(pr_failed); 1077917Selowe 1078917Selowe if (pp->p_toxic & PR_MSG) { 1079917Selowe return (page_retire_done(pp, PRD_FAILED)); 1080917Selowe } else { 1081917Selowe return (page_retire_done(pp, PRD_PENDING)); 1082917Selowe } 1083917Selowe } 1084917Selowe } 1085917Selowe 1086917Selowe /* 1087917Selowe * Take a retired page off the retired-pages vnode and clear the toxic flags. 1088917Selowe * If "free" is nonzero, lock it and put it back on the freelist. If "free" 1089917Selowe * is zero, the caller already holds SE_EXCL lock so we simply unretire it 1090917Selowe * and don't do anything else with it. 1091917Selowe * 1092917Selowe * Any unretire messages are printed from this routine. 1093917Selowe * 1094917Selowe * Returns 0 if page pp was unretired; else an error code. 10953253Smec * 10963253Smec * If flags is: 10973253Smec * PR_UNR_FREE - lock the page, clear the toxic flags and free it 10983253Smec * to the freelist. 10993253Smec * PR_UNR_TEMP - lock the page, unretire it, leave the toxic 11003253Smec * bits set as is and return it to the caller. 11013253Smec * PR_UNR_CLEAN - page is SE_EXCL locked, unretire it, clear the 11023253Smec * toxic flags and return it to caller as is. 1103917Selowe */ 1104917Selowe int 11053253Smec page_unretire_pp(page_t *pp, int flags) 1106917Selowe { 1107917Selowe /* 1108917Selowe * To be retired, a page has to be hashed onto the retired_pages vnode 1109917Selowe * and have PR_RETIRED set in p_toxic. 1110917Selowe */ 11113253Smec if (flags == PR_UNR_CLEAN || 11123253Smec page_try_reclaim_lock(pp, SE_EXCL, SE_RETIRED)) { 1113917Selowe ASSERT(PAGE_EXCL(pp)); 1114917Selowe PR_DEBUG(prd_ulocked); 1115917Selowe if (!PP_RETIRED(pp)) { 1116917Selowe PR_DEBUG(prd_unotretired); 1117917Selowe page_unlock(pp); 1118917Selowe return (page_retire_done(pp, PRD_UNR_NOT)); 1119917Selowe } 1120917Selowe 1121917Selowe PR_MESSAGE(CE_NOTE, 1, "unretiring retired" 11221338Selowe " page 0x%08x.%08x", mmu_ptob((uint64_t)pp->p_pagenum)); 1123917Selowe if (pp->p_toxic & PR_FMA) { 1124917Selowe PR_DECR_KSTAT(pr_fma); 1125917Selowe } else if (pp->p_toxic & PR_UE) { 1126917Selowe PR_DECR_KSTAT(pr_ue); 1127917Selowe } else { 1128917Selowe PR_DECR_KSTAT(pr_mce); 1129917Selowe } 1130917Selowe 11313253Smec if (flags == PR_UNR_TEMP) 11323253Smec page_clrtoxic(pp, PR_RETIRED); 11333253Smec else 11343253Smec page_clrtoxic(pp, PR_TOXICFLAGS); 11353253Smec 11363253Smec if (flags == PR_UNR_FREE) { 1137917Selowe PR_DEBUG(prd_udestroy); 1138917Selowe page_destroy(pp, 0); 1139917Selowe } else { 1140917Selowe PR_DEBUG(prd_uhashout); 1141917Selowe page_hashout(pp, NULL); 1142917Selowe } 1143917Selowe 1144917Selowe mutex_enter(&freemem_lock); 1145917Selowe availrmem++; 1146917Selowe mutex_exit(&freemem_lock); 1147917Selowe 1148917Selowe PR_DEBUG(prd_uunretired); 1149917Selowe PR_DECR_KSTAT(pr_retired); 1150917Selowe PR_INCR_KSTAT(pr_unretired); 1151917Selowe return (page_retire_done(pp, PRD_UNR_SUCCESS)); 1152917Selowe } 1153917Selowe PR_DEBUG(prd_unotlocked); 1154917Selowe return (page_retire_done(pp, PRD_UNR_CANTLOCK)); 1155917Selowe } 1156917Selowe 1157917Selowe /* 1158917Selowe * Return a page to service by moving it from the retired_pages vnode 1159917Selowe * onto the freelist. 1160917Selowe * 1161917Selowe * Called from mmioctl_page_retire() on behalf of the FMA DE. 1162917Selowe * 1163917Selowe * Returns: 1164917Selowe * 1165917Selowe * - 0 if the page is unretired, 1166917Selowe * - EAGAIN if the pp can not be locked, 1167917Selowe * - EINVAL if the PA is whacko, and 11681381Selowe * - EIO if the pp is not retired. 1169917Selowe */ 1170917Selowe int 1171917Selowe page_unretire(uint64_t pa) 1172917Selowe { 1173917Selowe page_t *pp; 1174917Selowe 1175917Selowe pp = page_numtopp_nolock(mmu_btop(pa)); 1176917Selowe if (pp == NULL) { 1177917Selowe return (page_retire_done(pp, PRD_INVALID_PA)); 1178917Selowe } 1179917Selowe 11803253Smec return (page_unretire_pp(pp, PR_UNR_FREE)); 1181917Selowe } 1182917Selowe 1183917Selowe /* 1184917Selowe * Test a page to see if it is retired. If errors is non-NULL, the toxic 1185917Selowe * bits of the page are returned. Returns 0 on success, error code on failure. 1186917Selowe */ 1187917Selowe int 1188917Selowe page_retire_check_pp(page_t *pp, uint64_t *errors) 1189917Selowe { 1190917Selowe int rc; 1191917Selowe 1192917Selowe if (PP_RETIRED(pp)) { 1193917Selowe PR_DEBUG(prd_checkhit); 1194917Selowe rc = 0; 11951381Selowe } else if (PP_PR_REQ(pp)) { 11961381Selowe PR_DEBUG(prd_checkmiss_pend); 11971381Selowe rc = EAGAIN; 1198917Selowe } else { 11991381Selowe PR_DEBUG(prd_checkmiss_noerr); 12001381Selowe rc = EIO; 1201917Selowe } 1202917Selowe 1203917Selowe /* 1204917Selowe * We have magically arranged the bit values returned to fmd(1M) 1205917Selowe * to line up with the FMA, MCE, and UE bits of the page_t. 1206917Selowe */ 1207917Selowe if (errors) { 1208917Selowe uint64_t toxic = (uint64_t)(pp->p_toxic & PR_ERRMASK); 1209917Selowe if (toxic & PR_UE_SCRUBBED) { 1210917Selowe toxic &= ~PR_UE_SCRUBBED; 1211917Selowe toxic |= PR_UE; 1212917Selowe } 1213917Selowe *errors = toxic; 1214917Selowe } 1215917Selowe 1216917Selowe return (rc); 1217917Selowe } 1218917Selowe 1219917Selowe /* 1220917Selowe * Test to see if the page_t for a given PA is retired, and return the 1221917Selowe * hardware errors we have seen on the page if requested. 1222917Selowe * 1223917Selowe * Called from mmioctl_page_retire on behalf of the FMA DE. 1224917Selowe * 1225917Selowe * Returns: 1226917Selowe * 1227917Selowe * - 0 if the page is retired, 12281381Selowe * - EIO if the page is not retired and has no errors, 12291381Selowe * - EAGAIN if the page is not retired but is pending; and 1230917Selowe * - EINVAL if the PA is whacko. 1231917Selowe */ 1232917Selowe int 1233917Selowe page_retire_check(uint64_t pa, uint64_t *errors) 1234917Selowe { 1235917Selowe page_t *pp; 1236917Selowe 1237917Selowe if (errors) { 1238917Selowe *errors = 0; 1239917Selowe } 1240917Selowe 1241917Selowe pp = page_numtopp_nolock(mmu_btop(pa)); 1242917Selowe if (pp == NULL) { 1243917Selowe return (page_retire_done(pp, PRD_INVALID_PA)); 1244917Selowe } 1245917Selowe 1246917Selowe return (page_retire_check_pp(pp, errors)); 1247917Selowe } 1248917Selowe 1249917Selowe /* 1250917Selowe * Page retire self-test. For now, it always returns 0. 1251917Selowe */ 1252917Selowe int 1253917Selowe page_retire_test(void) 1254917Selowe { 1255917Selowe page_t *first, *pp, *cpp, *cpp2, *lpp; 1256917Selowe 1257917Selowe /* 1258917Selowe * Tests the corner case where a large page can't be retired 1259917Selowe * because one of the constituent pages is locked. We mark 1260917Selowe * one page to be retired and try to retire it, and mark the 1261917Selowe * other page to be retired but don't try to retire it, so 1262917Selowe * that page_unlock() in the failure path will recurse and try 1263917Selowe * to retire THAT page. This is the worst possible situation 1264917Selowe * we can get ourselves into. 1265917Selowe */ 1266917Selowe memsegs_lock(0); 1267917Selowe pp = first = page_first(); 1268917Selowe do { 1269917Selowe if (pp->p_szc && PP_PAGEROOT(pp) == pp) { 1270917Selowe cpp = pp + 1; 1271917Selowe lpp = PP_ISFREE(pp)? pp : pp + 2; 1272917Selowe cpp2 = pp + 3; 1273917Selowe if (!page_trylock(lpp, pp == lpp? SE_EXCL : SE_SHARED)) 1274917Selowe continue; 1275917Selowe if (!page_trylock(cpp, SE_EXCL)) { 1276917Selowe page_unlock(lpp); 1277917Selowe continue; 1278917Selowe } 12793253Smec 12803253Smec /* fails */ 12813253Smec (void) page_retire(ptob(cpp->p_pagenum), PR_FMA); 12823253Smec 1283917Selowe page_unlock(lpp); 12843253Smec page_unlock(cpp); 12853253Smec (void) page_retire(ptob(cpp->p_pagenum), PR_FMA); 12863253Smec (void) page_retire(ptob(cpp2->p_pagenum), PR_FMA); 1287917Selowe } 1288917Selowe } while ((pp = page_next(pp)) != first); 1289917Selowe memsegs_unlock(0); 1290917Selowe 1291917Selowe return (0); 1292917Selowe } 1293