1 /*- 2 * SPDX-License-Identifier: (BSD-3-Clause AND MIT-CMU) 3 * 4 * Copyright (c) 1991, 1993 5 * The Regents of the University of California. All rights reserved. 6 * 7 * This code is derived from software contributed to Berkeley by 8 * The Mach Operating System project at Carnegie-Mellon University. 9 * 10 * Redistribution and use in source and binary forms, with or without 11 * modification, are permitted provided that the following conditions 12 * are met: 13 * 1. Redistributions of source code must retain the above copyright 14 * notice, this list of conditions and the following disclaimer. 15 * 2. Redistributions in binary form must reproduce the above copyright 16 * notice, this list of conditions and the following disclaimer in the 17 * documentation and/or other materials provided with the distribution. 18 * 3. Neither the name of the University nor the names of its contributors 19 * may be used to endorse or promote products derived from this software 20 * without specific prior written permission. 21 * 22 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 25 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 27 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 28 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 29 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 30 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 31 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 32 * SUCH DAMAGE. 33 * 34 * from: @(#)vm_object.c 8.5 (Berkeley) 3/22/94 35 * 36 * 37 * Copyright (c) 1987, 1990 Carnegie-Mellon University. 38 * All rights reserved. 39 * 40 * Authors: Avadis Tevanian, Jr., Michael Wayne Young 41 * 42 * Permission to use, copy, modify and distribute this software and 43 * its documentation is hereby granted, provided that both the copyright 44 * notice and this permission notice appear in all copies of the 45 * software, derivative works or modified versions, and any portions 46 * thereof, and that both notices appear in supporting documentation. 47 * 48 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS" 49 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND 50 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE. 51 * 52 * Carnegie Mellon requests users of this software to return to 53 * 54 * Software Distribution Coordinator or [email protected] 55 * School of Computer Science 56 * Carnegie Mellon University 57 * Pittsburgh PA 15213-3890 58 * 59 * any improvements or extensions that they make and grant Carnegie the 60 * rights to redistribute these changes. 61 */ 62 63 /* 64 * Virtual memory object module. 65 */ 66 67 #include <sys/cdefs.h> 68 __FBSDID("$FreeBSD$"); 69 70 #include "opt_vm.h" 71 72 #include <sys/param.h> 73 #include <sys/systm.h> 74 #include <sys/cpuset.h> 75 #include <sys/lock.h> 76 #include <sys/mman.h> 77 #include <sys/mount.h> 78 #include <sys/kernel.h> 79 #include <sys/pctrie.h> 80 #include <sys/sysctl.h> 81 #include <sys/mutex.h> 82 #include <sys/proc.h> /* for curproc, pageproc */ 83 #include <sys/socket.h> 84 #include <sys/resourcevar.h> 85 #include <sys/rwlock.h> 86 #include <sys/user.h> 87 #include <sys/vnode.h> 88 #include <sys/vmmeter.h> 89 #include <sys/sx.h> 90 91 #include <vm/vm.h> 92 #include <vm/vm_param.h> 93 #include <vm/pmap.h> 94 #include <vm/vm_map.h> 95 #include <vm/vm_object.h> 96 #include <vm/vm_page.h> 97 #include <vm/vm_pageout.h> 98 #include <vm/vm_pager.h> 99 #include <vm/vm_phys.h> 100 #include <vm/vm_pagequeue.h> 101 #include <vm/swap_pager.h> 102 #include <vm/vm_kern.h> 103 #include <vm/vm_extern.h> 104 #include <vm/vm_radix.h> 105 #include <vm/vm_reserv.h> 106 #include <vm/uma.h> 107 108 static int old_msync; 109 SYSCTL_INT(_vm, OID_AUTO, old_msync, CTLFLAG_RW, &old_msync, 0, 110 "Use old (insecure) msync behavior"); 111 112 static int vm_object_page_collect_flush(vm_object_t object, vm_page_t p, 113 int pagerflags, int flags, boolean_t *clearobjflags, 114 boolean_t *eio); 115 static boolean_t vm_object_page_remove_write(vm_page_t p, int flags, 116 boolean_t *clearobjflags); 117 static void vm_object_qcollapse(vm_object_t object); 118 static void vm_object_vndeallocate(vm_object_t object); 119 120 /* 121 * Virtual memory objects maintain the actual data 122 * associated with allocated virtual memory. A given 123 * page of memory exists within exactly one object. 124 * 125 * An object is only deallocated when all "references" 126 * are given up. Only one "reference" to a given 127 * region of an object should be writeable. 128 * 129 * Associated with each object is a list of all resident 130 * memory pages belonging to that object; this list is 131 * maintained by the "vm_page" module, and locked by the object's 132 * lock. 133 * 134 * Each object also records a "pager" routine which is 135 * used to retrieve (and store) pages to the proper backing 136 * storage. In addition, objects may be backed by other 137 * objects from which they were virtual-copied. 138 * 139 * The only items within the object structure which are 140 * modified after time of creation are: 141 * reference count locked by object's lock 142 * pager routine locked by object's lock 143 * 144 */ 145 146 struct object_q vm_object_list; 147 struct mtx vm_object_list_mtx; /* lock for object list and count */ 148 149 struct vm_object kernel_object_store; 150 151 static SYSCTL_NODE(_vm_stats, OID_AUTO, object, CTLFLAG_RD, 0, 152 "VM object stats"); 153 154 static counter_u64_t object_collapses = EARLY_COUNTER; 155 SYSCTL_COUNTER_U64(_vm_stats_object, OID_AUTO, collapses, CTLFLAG_RD, 156 &object_collapses, 157 "VM object collapses"); 158 159 static counter_u64_t object_bypasses = EARLY_COUNTER; 160 SYSCTL_COUNTER_U64(_vm_stats_object, OID_AUTO, bypasses, CTLFLAG_RD, 161 &object_bypasses, 162 "VM object bypasses"); 163 164 static void 165 counter_startup(void) 166 { 167 168 object_collapses = counter_u64_alloc(M_WAITOK); 169 object_bypasses = counter_u64_alloc(M_WAITOK); 170 } 171 SYSINIT(object_counters, SI_SUB_CPU, SI_ORDER_ANY, counter_startup, NULL); 172 173 static uma_zone_t obj_zone; 174 175 static int vm_object_zinit(void *mem, int size, int flags); 176 177 #ifdef INVARIANTS 178 static void vm_object_zdtor(void *mem, int size, void *arg); 179 180 static void 181 vm_object_zdtor(void *mem, int size, void *arg) 182 { 183 vm_object_t object; 184 185 object = (vm_object_t)mem; 186 KASSERT(object->ref_count == 0, 187 ("object %p ref_count = %d", object, object->ref_count)); 188 KASSERT(TAILQ_EMPTY(&object->memq), 189 ("object %p has resident pages in its memq", object)); 190 KASSERT(vm_radix_is_empty(&object->rtree), 191 ("object %p has resident pages in its trie", object)); 192 #if VM_NRESERVLEVEL > 0 193 KASSERT(LIST_EMPTY(&object->rvq), 194 ("object %p has reservations", 195 object)); 196 #endif 197 KASSERT(object->paging_in_progress == 0, 198 ("object %p paging_in_progress = %d", 199 object, object->paging_in_progress)); 200 KASSERT(object->resident_page_count == 0, 201 ("object %p resident_page_count = %d", 202 object, object->resident_page_count)); 203 KASSERT(object->shadow_count == 0, 204 ("object %p shadow_count = %d", 205 object, object->shadow_count)); 206 KASSERT(object->type == OBJT_DEAD, 207 ("object %p has non-dead type %d", 208 object, object->type)); 209 } 210 #endif 211 212 static int 213 vm_object_zinit(void *mem, int size, int flags) 214 { 215 vm_object_t object; 216 217 object = (vm_object_t)mem; 218 rw_init_flags(&object->lock, "vm object", RW_DUPOK | RW_NEW); 219 220 /* These are true for any object that has been freed */ 221 object->type = OBJT_DEAD; 222 object->ref_count = 0; 223 vm_radix_init(&object->rtree); 224 object->paging_in_progress = 0; 225 object->resident_page_count = 0; 226 object->shadow_count = 0; 227 object->flags = OBJ_DEAD; 228 229 mtx_lock(&vm_object_list_mtx); 230 TAILQ_INSERT_TAIL(&vm_object_list, object, object_list); 231 mtx_unlock(&vm_object_list_mtx); 232 return (0); 233 } 234 235 static void 236 _vm_object_allocate(objtype_t type, vm_pindex_t size, vm_object_t object) 237 { 238 239 TAILQ_INIT(&object->memq); 240 LIST_INIT(&object->shadow_head); 241 242 object->type = type; 243 if (type == OBJT_SWAP) 244 pctrie_init(&object->un_pager.swp.swp_blks); 245 246 /* 247 * Ensure that swap_pager_swapoff() iteration over object_list 248 * sees up to date type and pctrie head if it observed 249 * non-dead object. 250 */ 251 atomic_thread_fence_rel(); 252 253 switch (type) { 254 case OBJT_DEAD: 255 panic("_vm_object_allocate: can't create OBJT_DEAD"); 256 case OBJT_DEFAULT: 257 case OBJT_SWAP: 258 object->flags = OBJ_ONEMAPPING; 259 break; 260 case OBJT_DEVICE: 261 case OBJT_SG: 262 object->flags = OBJ_FICTITIOUS | OBJ_UNMANAGED; 263 break; 264 case OBJT_MGTDEVICE: 265 object->flags = OBJ_FICTITIOUS; 266 break; 267 case OBJT_PHYS: 268 object->flags = OBJ_UNMANAGED; 269 break; 270 case OBJT_VNODE: 271 object->flags = 0; 272 break; 273 default: 274 panic("_vm_object_allocate: type %d is undefined", type); 275 } 276 object->size = size; 277 object->domain.dr_policy = NULL; 278 object->generation = 1; 279 object->ref_count = 1; 280 object->memattr = VM_MEMATTR_DEFAULT; 281 object->cred = NULL; 282 object->charge = 0; 283 object->handle = NULL; 284 object->backing_object = NULL; 285 object->backing_object_offset = (vm_ooffset_t) 0; 286 #if VM_NRESERVLEVEL > 0 287 LIST_INIT(&object->rvq); 288 #endif 289 umtx_shm_object_init(object); 290 } 291 292 /* 293 * vm_object_init: 294 * 295 * Initialize the VM objects module. 296 */ 297 void 298 vm_object_init(void) 299 { 300 TAILQ_INIT(&vm_object_list); 301 mtx_init(&vm_object_list_mtx, "vm object_list", NULL, MTX_DEF); 302 303 rw_init(&kernel_object->lock, "kernel vm object"); 304 _vm_object_allocate(OBJT_PHYS, atop(VM_MAX_KERNEL_ADDRESS - 305 VM_MIN_KERNEL_ADDRESS), kernel_object); 306 #if VM_NRESERVLEVEL > 0 307 kernel_object->flags |= OBJ_COLORED; 308 kernel_object->pg_color = (u_short)atop(VM_MIN_KERNEL_ADDRESS); 309 #endif 310 311 /* 312 * The lock portion of struct vm_object must be type stable due 313 * to vm_pageout_fallback_object_lock locking a vm object 314 * without holding any references to it. 315 */ 316 obj_zone = uma_zcreate("VM OBJECT", sizeof (struct vm_object), NULL, 317 #ifdef INVARIANTS 318 vm_object_zdtor, 319 #else 320 NULL, 321 #endif 322 vm_object_zinit, NULL, UMA_ALIGN_PTR, UMA_ZONE_NOFREE); 323 324 vm_radix_zinit(); 325 } 326 327 void 328 vm_object_clear_flag(vm_object_t object, u_short bits) 329 { 330 331 VM_OBJECT_ASSERT_WLOCKED(object); 332 object->flags &= ~bits; 333 } 334 335 /* 336 * Sets the default memory attribute for the specified object. Pages 337 * that are allocated to this object are by default assigned this memory 338 * attribute. 339 * 340 * Presently, this function must be called before any pages are allocated 341 * to the object. In the future, this requirement may be relaxed for 342 * "default" and "swap" objects. 343 */ 344 int 345 vm_object_set_memattr(vm_object_t object, vm_memattr_t memattr) 346 { 347 348 VM_OBJECT_ASSERT_WLOCKED(object); 349 switch (object->type) { 350 case OBJT_DEFAULT: 351 case OBJT_DEVICE: 352 case OBJT_MGTDEVICE: 353 case OBJT_PHYS: 354 case OBJT_SG: 355 case OBJT_SWAP: 356 case OBJT_VNODE: 357 if (!TAILQ_EMPTY(&object->memq)) 358 return (KERN_FAILURE); 359 break; 360 case OBJT_DEAD: 361 return (KERN_INVALID_ARGUMENT); 362 default: 363 panic("vm_object_set_memattr: object %p is of undefined type", 364 object); 365 } 366 object->memattr = memattr; 367 return (KERN_SUCCESS); 368 } 369 370 void 371 vm_object_pip_add(vm_object_t object, short i) 372 { 373 374 VM_OBJECT_ASSERT_WLOCKED(object); 375 object->paging_in_progress += i; 376 } 377 378 void 379 vm_object_pip_subtract(vm_object_t object, short i) 380 { 381 382 VM_OBJECT_ASSERT_WLOCKED(object); 383 object->paging_in_progress -= i; 384 } 385 386 void 387 vm_object_pip_wakeup(vm_object_t object) 388 { 389 390 VM_OBJECT_ASSERT_WLOCKED(object); 391 object->paging_in_progress--; 392 if ((object->flags & OBJ_PIPWNT) && object->paging_in_progress == 0) { 393 vm_object_clear_flag(object, OBJ_PIPWNT); 394 wakeup(object); 395 } 396 } 397 398 void 399 vm_object_pip_wakeupn(vm_object_t object, short i) 400 { 401 402 VM_OBJECT_ASSERT_WLOCKED(object); 403 if (i) 404 object->paging_in_progress -= i; 405 if ((object->flags & OBJ_PIPWNT) && object->paging_in_progress == 0) { 406 vm_object_clear_flag(object, OBJ_PIPWNT); 407 wakeup(object); 408 } 409 } 410 411 void 412 vm_object_pip_wait(vm_object_t object, char *waitid) 413 { 414 415 VM_OBJECT_ASSERT_WLOCKED(object); 416 while (object->paging_in_progress) { 417 object->flags |= OBJ_PIPWNT; 418 VM_OBJECT_SLEEP(object, object, PVM, waitid, 0); 419 } 420 } 421 422 /* 423 * vm_object_allocate: 424 * 425 * Returns a new object with the given size. 426 */ 427 vm_object_t 428 vm_object_allocate(objtype_t type, vm_pindex_t size) 429 { 430 vm_object_t object; 431 432 object = (vm_object_t)uma_zalloc(obj_zone, M_WAITOK); 433 _vm_object_allocate(type, size, object); 434 return (object); 435 } 436 437 438 /* 439 * vm_object_reference: 440 * 441 * Gets another reference to the given object. Note: OBJ_DEAD 442 * objects can be referenced during final cleaning. 443 */ 444 void 445 vm_object_reference(vm_object_t object) 446 { 447 if (object == NULL) 448 return; 449 VM_OBJECT_WLOCK(object); 450 vm_object_reference_locked(object); 451 VM_OBJECT_WUNLOCK(object); 452 } 453 454 /* 455 * vm_object_reference_locked: 456 * 457 * Gets another reference to the given object. 458 * 459 * The object must be locked. 460 */ 461 void 462 vm_object_reference_locked(vm_object_t object) 463 { 464 struct vnode *vp; 465 466 VM_OBJECT_ASSERT_WLOCKED(object); 467 object->ref_count++; 468 if (object->type == OBJT_VNODE) { 469 vp = object->handle; 470 vref(vp); 471 } 472 } 473 474 /* 475 * Handle deallocating an object of type OBJT_VNODE. 476 */ 477 static void 478 vm_object_vndeallocate(vm_object_t object) 479 { 480 struct vnode *vp = (struct vnode *) object->handle; 481 482 VM_OBJECT_ASSERT_WLOCKED(object); 483 KASSERT(object->type == OBJT_VNODE, 484 ("vm_object_vndeallocate: not a vnode object")); 485 KASSERT(vp != NULL, ("vm_object_vndeallocate: missing vp")); 486 #ifdef INVARIANTS 487 if (object->ref_count == 0) { 488 vn_printf(vp, "vm_object_vndeallocate "); 489 panic("vm_object_vndeallocate: bad object reference count"); 490 } 491 #endif 492 493 if (!umtx_shm_vnobj_persistent && object->ref_count == 1) 494 umtx_shm_object_terminated(object); 495 496 object->ref_count--; 497 498 /* vrele may need the vnode lock. */ 499 VM_OBJECT_WUNLOCK(object); 500 vrele(vp); 501 } 502 503 /* 504 * vm_object_deallocate: 505 * 506 * Release a reference to the specified object, 507 * gained either through a vm_object_allocate 508 * or a vm_object_reference call. When all references 509 * are gone, storage associated with this object 510 * may be relinquished. 511 * 512 * No object may be locked. 513 */ 514 void 515 vm_object_deallocate(vm_object_t object) 516 { 517 vm_object_t temp; 518 519 while (object != NULL) { 520 VM_OBJECT_WLOCK(object); 521 if (object->type == OBJT_VNODE) { 522 vm_object_vndeallocate(object); 523 return; 524 } 525 526 KASSERT(object->ref_count != 0, 527 ("vm_object_deallocate: object deallocated too many times: %d", object->type)); 528 529 /* 530 * If the reference count goes to 0 we start calling 531 * vm_object_terminate() on the object chain. 532 * A ref count of 1 may be a special case depending on the 533 * shadow count being 0 or 1. 534 */ 535 object->ref_count--; 536 if (object->ref_count > 1) { 537 VM_OBJECT_WUNLOCK(object); 538 return; 539 } else if (object->ref_count == 1) { 540 if (object->shadow_count == 0 && 541 object->handle == NULL && 542 (object->type == OBJT_DEFAULT || 543 (object->type == OBJT_SWAP && 544 (object->flags & OBJ_TMPFS_NODE) == 0))) { 545 vm_object_set_flag(object, OBJ_ONEMAPPING); 546 } else if ((object->shadow_count == 1) && 547 (object->handle == NULL) && 548 (object->type == OBJT_DEFAULT || 549 object->type == OBJT_SWAP)) { 550 vm_object_t robject; 551 552 robject = LIST_FIRST(&object->shadow_head); 553 KASSERT(robject != NULL, 554 ("vm_object_deallocate: ref_count: %d, shadow_count: %d", 555 object->ref_count, 556 object->shadow_count)); 557 KASSERT((robject->flags & OBJ_TMPFS_NODE) == 0, 558 ("shadowed tmpfs v_object %p", object)); 559 if (!VM_OBJECT_TRYWLOCK(robject)) { 560 /* 561 * Avoid a potential deadlock. 562 */ 563 object->ref_count++; 564 VM_OBJECT_WUNLOCK(object); 565 /* 566 * More likely than not the thread 567 * holding robject's lock has lower 568 * priority than the current thread. 569 * Let the lower priority thread run. 570 */ 571 pause("vmo_de", 1); 572 continue; 573 } 574 /* 575 * Collapse object into its shadow unless its 576 * shadow is dead. In that case, object will 577 * be deallocated by the thread that is 578 * deallocating its shadow. 579 */ 580 if ((robject->flags & OBJ_DEAD) == 0 && 581 (robject->handle == NULL) && 582 (robject->type == OBJT_DEFAULT || 583 robject->type == OBJT_SWAP)) { 584 585 robject->ref_count++; 586 retry: 587 if (robject->paging_in_progress) { 588 VM_OBJECT_WUNLOCK(object); 589 vm_object_pip_wait(robject, 590 "objde1"); 591 temp = robject->backing_object; 592 if (object == temp) { 593 VM_OBJECT_WLOCK(object); 594 goto retry; 595 } 596 } else if (object->paging_in_progress) { 597 VM_OBJECT_WUNLOCK(robject); 598 object->flags |= OBJ_PIPWNT; 599 VM_OBJECT_SLEEP(object, object, 600 PDROP | PVM, "objde2", 0); 601 VM_OBJECT_WLOCK(robject); 602 temp = robject->backing_object; 603 if (object == temp) { 604 VM_OBJECT_WLOCK(object); 605 goto retry; 606 } 607 } else 608 VM_OBJECT_WUNLOCK(object); 609 610 if (robject->ref_count == 1) { 611 robject->ref_count--; 612 object = robject; 613 goto doterm; 614 } 615 object = robject; 616 vm_object_collapse(object); 617 VM_OBJECT_WUNLOCK(object); 618 continue; 619 } 620 VM_OBJECT_WUNLOCK(robject); 621 } 622 VM_OBJECT_WUNLOCK(object); 623 return; 624 } 625 doterm: 626 umtx_shm_object_terminated(object); 627 temp = object->backing_object; 628 if (temp != NULL) { 629 KASSERT((object->flags & OBJ_TMPFS_NODE) == 0, 630 ("shadowed tmpfs v_object 2 %p", object)); 631 VM_OBJECT_WLOCK(temp); 632 LIST_REMOVE(object, shadow_list); 633 temp->shadow_count--; 634 VM_OBJECT_WUNLOCK(temp); 635 object->backing_object = NULL; 636 } 637 /* 638 * Don't double-terminate, we could be in a termination 639 * recursion due to the terminate having to sync data 640 * to disk. 641 */ 642 if ((object->flags & OBJ_DEAD) == 0) 643 vm_object_terminate(object); 644 else 645 VM_OBJECT_WUNLOCK(object); 646 object = temp; 647 } 648 } 649 650 /* 651 * vm_object_destroy removes the object from the global object list 652 * and frees the space for the object. 653 */ 654 void 655 vm_object_destroy(vm_object_t object) 656 { 657 658 /* 659 * Release the allocation charge. 660 */ 661 if (object->cred != NULL) { 662 swap_release_by_cred(object->charge, object->cred); 663 object->charge = 0; 664 crfree(object->cred); 665 object->cred = NULL; 666 } 667 668 /* 669 * Free the space for the object. 670 */ 671 uma_zfree(obj_zone, object); 672 } 673 674 /* 675 * vm_object_terminate_pages removes any remaining pageable pages 676 * from the object and resets the object to an empty state. 677 */ 678 static void 679 vm_object_terminate_pages(vm_object_t object) 680 { 681 vm_page_t p, p_next; 682 struct mtx *mtx; 683 684 VM_OBJECT_ASSERT_WLOCKED(object); 685 686 mtx = NULL; 687 688 /* 689 * Free any remaining pageable pages. This also removes them from the 690 * paging queues. However, don't free wired pages, just remove them 691 * from the object. Rather than incrementally removing each page from 692 * the object, the page and object are reset to any empty state. 693 */ 694 TAILQ_FOREACH_SAFE(p, &object->memq, listq, p_next) { 695 vm_page_assert_unbusied(p); 696 if ((object->flags & OBJ_UNMANAGED) == 0) 697 /* 698 * vm_page_free_prep() only needs the page 699 * lock for managed pages. 700 */ 701 vm_page_change_lock(p, &mtx); 702 p->object = NULL; 703 if (vm_page_wired(p)) 704 continue; 705 VM_CNT_INC(v_pfree); 706 vm_page_free(p); 707 } 708 if (mtx != NULL) 709 mtx_unlock(mtx); 710 711 /* 712 * If the object contained any pages, then reset it to an empty state. 713 * None of the object's fields, including "resident_page_count", were 714 * modified by the preceding loop. 715 */ 716 if (object->resident_page_count != 0) { 717 vm_radix_reclaim_allnodes(&object->rtree); 718 TAILQ_INIT(&object->memq); 719 object->resident_page_count = 0; 720 if (object->type == OBJT_VNODE) 721 vdrop(object->handle); 722 } 723 } 724 725 /* 726 * vm_object_terminate actually destroys the specified object, freeing 727 * up all previously used resources. 728 * 729 * The object must be locked. 730 * This routine may block. 731 */ 732 void 733 vm_object_terminate(vm_object_t object) 734 { 735 736 VM_OBJECT_ASSERT_WLOCKED(object); 737 738 /* 739 * Make sure no one uses us. 740 */ 741 vm_object_set_flag(object, OBJ_DEAD); 742 743 /* 744 * wait for the pageout daemon to be done with the object 745 */ 746 vm_object_pip_wait(object, "objtrm"); 747 748 KASSERT(!object->paging_in_progress, 749 ("vm_object_terminate: pageout in progress")); 750 751 /* 752 * Clean and free the pages, as appropriate. All references to the 753 * object are gone, so we don't need to lock it. 754 */ 755 if (object->type == OBJT_VNODE) { 756 struct vnode *vp = (struct vnode *)object->handle; 757 758 /* 759 * Clean pages and flush buffers. 760 */ 761 vm_object_page_clean(object, 0, 0, OBJPC_SYNC); 762 VM_OBJECT_WUNLOCK(object); 763 764 vinvalbuf(vp, V_SAVE, 0, 0); 765 766 BO_LOCK(&vp->v_bufobj); 767 vp->v_bufobj.bo_flag |= BO_DEAD; 768 BO_UNLOCK(&vp->v_bufobj); 769 770 VM_OBJECT_WLOCK(object); 771 } 772 773 KASSERT(object->ref_count == 0, 774 ("vm_object_terminate: object with references, ref_count=%d", 775 object->ref_count)); 776 777 if ((object->flags & OBJ_PG_DTOR) == 0) 778 vm_object_terminate_pages(object); 779 780 #if VM_NRESERVLEVEL > 0 781 if (__predict_false(!LIST_EMPTY(&object->rvq))) 782 vm_reserv_break_all(object); 783 #endif 784 785 KASSERT(object->cred == NULL || object->type == OBJT_DEFAULT || 786 object->type == OBJT_SWAP, 787 ("%s: non-swap obj %p has cred", __func__, object)); 788 789 /* 790 * Let the pager know object is dead. 791 */ 792 vm_pager_deallocate(object); 793 VM_OBJECT_WUNLOCK(object); 794 795 vm_object_destroy(object); 796 } 797 798 /* 799 * Make the page read-only so that we can clear the object flags. However, if 800 * this is a nosync mmap then the object is likely to stay dirty so do not 801 * mess with the page and do not clear the object flags. Returns TRUE if the 802 * page should be flushed, and FALSE otherwise. 803 */ 804 static boolean_t 805 vm_object_page_remove_write(vm_page_t p, int flags, boolean_t *clearobjflags) 806 { 807 808 /* 809 * If we have been asked to skip nosync pages and this is a 810 * nosync page, skip it. Note that the object flags were not 811 * cleared in this case so we do not have to set them. 812 */ 813 if ((flags & OBJPC_NOSYNC) != 0 && (p->oflags & VPO_NOSYNC) != 0) { 814 *clearobjflags = FALSE; 815 return (FALSE); 816 } else { 817 pmap_remove_write(p); 818 return (p->dirty != 0); 819 } 820 } 821 822 /* 823 * vm_object_page_clean 824 * 825 * Clean all dirty pages in the specified range of object. Leaves page 826 * on whatever queue it is currently on. If NOSYNC is set then do not 827 * write out pages with VPO_NOSYNC set (originally comes from MAP_NOSYNC), 828 * leaving the object dirty. 829 * 830 * When stuffing pages asynchronously, allow clustering. XXX we need a 831 * synchronous clustering mode implementation. 832 * 833 * Odd semantics: if start == end, we clean everything. 834 * 835 * The object must be locked. 836 * 837 * Returns FALSE if some page from the range was not written, as 838 * reported by the pager, and TRUE otherwise. 839 */ 840 boolean_t 841 vm_object_page_clean(vm_object_t object, vm_ooffset_t start, vm_ooffset_t end, 842 int flags) 843 { 844 vm_page_t np, p; 845 vm_pindex_t pi, tend, tstart; 846 int curgeneration, n, pagerflags; 847 boolean_t clearobjflags, eio, res; 848 849 VM_OBJECT_ASSERT_WLOCKED(object); 850 851 /* 852 * The OBJ_MIGHTBEDIRTY flag is only set for OBJT_VNODE 853 * objects. The check below prevents the function from 854 * operating on non-vnode objects. 855 */ 856 if ((object->flags & OBJ_MIGHTBEDIRTY) == 0 || 857 object->resident_page_count == 0) 858 return (TRUE); 859 860 pagerflags = (flags & (OBJPC_SYNC | OBJPC_INVAL)) != 0 ? 861 VM_PAGER_PUT_SYNC : VM_PAGER_CLUSTER_OK; 862 pagerflags |= (flags & OBJPC_INVAL) != 0 ? VM_PAGER_PUT_INVAL : 0; 863 864 tstart = OFF_TO_IDX(start); 865 tend = (end == 0) ? object->size : OFF_TO_IDX(end + PAGE_MASK); 866 clearobjflags = tstart == 0 && tend >= object->size; 867 res = TRUE; 868 869 rescan: 870 curgeneration = object->generation; 871 872 for (p = vm_page_find_least(object, tstart); p != NULL; p = np) { 873 pi = p->pindex; 874 if (pi >= tend) 875 break; 876 np = TAILQ_NEXT(p, listq); 877 if (p->valid == 0) 878 continue; 879 if (vm_page_sleep_if_busy(p, "vpcwai")) { 880 if (object->generation != curgeneration) { 881 if ((flags & OBJPC_SYNC) != 0) 882 goto rescan; 883 else 884 clearobjflags = FALSE; 885 } 886 np = vm_page_find_least(object, pi); 887 continue; 888 } 889 if (!vm_object_page_remove_write(p, flags, &clearobjflags)) 890 continue; 891 892 n = vm_object_page_collect_flush(object, p, pagerflags, 893 flags, &clearobjflags, &eio); 894 if (eio) { 895 res = FALSE; 896 clearobjflags = FALSE; 897 } 898 if (object->generation != curgeneration) { 899 if ((flags & OBJPC_SYNC) != 0) 900 goto rescan; 901 else 902 clearobjflags = FALSE; 903 } 904 905 /* 906 * If the VOP_PUTPAGES() did a truncated write, so 907 * that even the first page of the run is not fully 908 * written, vm_pageout_flush() returns 0 as the run 909 * length. Since the condition that caused truncated 910 * write may be permanent, e.g. exhausted free space, 911 * accepting n == 0 would cause an infinite loop. 912 * 913 * Forwarding the iterator leaves the unwritten page 914 * behind, but there is not much we can do there if 915 * filesystem refuses to write it. 916 */ 917 if (n == 0) { 918 n = 1; 919 clearobjflags = FALSE; 920 } 921 np = vm_page_find_least(object, pi + n); 922 } 923 #if 0 924 VOP_FSYNC(vp, (pagerflags & VM_PAGER_PUT_SYNC) ? MNT_WAIT : 0); 925 #endif 926 927 if (clearobjflags) 928 vm_object_clear_flag(object, OBJ_MIGHTBEDIRTY); 929 return (res); 930 } 931 932 static int 933 vm_object_page_collect_flush(vm_object_t object, vm_page_t p, int pagerflags, 934 int flags, boolean_t *clearobjflags, boolean_t *eio) 935 { 936 vm_page_t ma[vm_pageout_page_count], p_first, tp; 937 int count, i, mreq, runlen; 938 939 vm_page_lock_assert(p, MA_NOTOWNED); 940 VM_OBJECT_ASSERT_WLOCKED(object); 941 942 count = 1; 943 mreq = 0; 944 945 for (tp = p; count < vm_pageout_page_count; count++) { 946 tp = vm_page_next(tp); 947 if (tp == NULL || vm_page_busied(tp)) 948 break; 949 if (!vm_object_page_remove_write(tp, flags, clearobjflags)) 950 break; 951 } 952 953 for (p_first = p; count < vm_pageout_page_count; count++) { 954 tp = vm_page_prev(p_first); 955 if (tp == NULL || vm_page_busied(tp)) 956 break; 957 if (!vm_object_page_remove_write(tp, flags, clearobjflags)) 958 break; 959 p_first = tp; 960 mreq++; 961 } 962 963 for (tp = p_first, i = 0; i < count; tp = TAILQ_NEXT(tp, listq), i++) 964 ma[i] = tp; 965 966 vm_pageout_flush(ma, count, pagerflags, mreq, &runlen, eio); 967 return (runlen); 968 } 969 970 /* 971 * Note that there is absolutely no sense in writing out 972 * anonymous objects, so we track down the vnode object 973 * to write out. 974 * We invalidate (remove) all pages from the address space 975 * for semantic correctness. 976 * 977 * If the backing object is a device object with unmanaged pages, then any 978 * mappings to the specified range of pages must be removed before this 979 * function is called. 980 * 981 * Note: certain anonymous maps, such as MAP_NOSYNC maps, 982 * may start out with a NULL object. 983 */ 984 boolean_t 985 vm_object_sync(vm_object_t object, vm_ooffset_t offset, vm_size_t size, 986 boolean_t syncio, boolean_t invalidate) 987 { 988 vm_object_t backing_object; 989 struct vnode *vp; 990 struct mount *mp; 991 int error, flags, fsync_after; 992 boolean_t res; 993 994 if (object == NULL) 995 return (TRUE); 996 res = TRUE; 997 error = 0; 998 VM_OBJECT_WLOCK(object); 999 while ((backing_object = object->backing_object) != NULL) { 1000 VM_OBJECT_WLOCK(backing_object); 1001 offset += object->backing_object_offset; 1002 VM_OBJECT_WUNLOCK(object); 1003 object = backing_object; 1004 if (object->size < OFF_TO_IDX(offset + size)) 1005 size = IDX_TO_OFF(object->size) - offset; 1006 } 1007 /* 1008 * Flush pages if writing is allowed, invalidate them 1009 * if invalidation requested. Pages undergoing I/O 1010 * will be ignored by vm_object_page_remove(). 1011 * 1012 * We cannot lock the vnode and then wait for paging 1013 * to complete without deadlocking against vm_fault. 1014 * Instead we simply call vm_object_page_remove() and 1015 * allow it to block internally on a page-by-page 1016 * basis when it encounters pages undergoing async 1017 * I/O. 1018 */ 1019 if (object->type == OBJT_VNODE && 1020 (object->flags & OBJ_MIGHTBEDIRTY) != 0 && 1021 ((vp = object->handle)->v_vflag & VV_NOSYNC) == 0) { 1022 VM_OBJECT_WUNLOCK(object); 1023 (void) vn_start_write(vp, &mp, V_WAIT); 1024 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY); 1025 if (syncio && !invalidate && offset == 0 && 1026 atop(size) == object->size) { 1027 /* 1028 * If syncing the whole mapping of the file, 1029 * it is faster to schedule all the writes in 1030 * async mode, also allowing the clustering, 1031 * and then wait for i/o to complete. 1032 */ 1033 flags = 0; 1034 fsync_after = TRUE; 1035 } else { 1036 flags = (syncio || invalidate) ? OBJPC_SYNC : 0; 1037 flags |= invalidate ? (OBJPC_SYNC | OBJPC_INVAL) : 0; 1038 fsync_after = FALSE; 1039 } 1040 VM_OBJECT_WLOCK(object); 1041 res = vm_object_page_clean(object, offset, offset + size, 1042 flags); 1043 VM_OBJECT_WUNLOCK(object); 1044 if (fsync_after) 1045 error = VOP_FSYNC(vp, MNT_WAIT, curthread); 1046 VOP_UNLOCK(vp, 0); 1047 vn_finished_write(mp); 1048 if (error != 0) 1049 res = FALSE; 1050 VM_OBJECT_WLOCK(object); 1051 } 1052 if ((object->type == OBJT_VNODE || 1053 object->type == OBJT_DEVICE) && invalidate) { 1054 if (object->type == OBJT_DEVICE) 1055 /* 1056 * The option OBJPR_NOTMAPPED must be passed here 1057 * because vm_object_page_remove() cannot remove 1058 * unmanaged mappings. 1059 */ 1060 flags = OBJPR_NOTMAPPED; 1061 else if (old_msync) 1062 flags = 0; 1063 else 1064 flags = OBJPR_CLEANONLY; 1065 vm_object_page_remove(object, OFF_TO_IDX(offset), 1066 OFF_TO_IDX(offset + size + PAGE_MASK), flags); 1067 } 1068 VM_OBJECT_WUNLOCK(object); 1069 return (res); 1070 } 1071 1072 /* 1073 * Determine whether the given advice can be applied to the object. Advice is 1074 * not applied to unmanaged pages since they never belong to page queues, and 1075 * since MADV_FREE is destructive, it can apply only to anonymous pages that 1076 * have been mapped at most once. 1077 */ 1078 static bool 1079 vm_object_advice_applies(vm_object_t object, int advice) 1080 { 1081 1082 if ((object->flags & OBJ_UNMANAGED) != 0) 1083 return (false); 1084 if (advice != MADV_FREE) 1085 return (true); 1086 return ((object->type == OBJT_DEFAULT || object->type == OBJT_SWAP) && 1087 (object->flags & OBJ_ONEMAPPING) != 0); 1088 } 1089 1090 static void 1091 vm_object_madvise_freespace(vm_object_t object, int advice, vm_pindex_t pindex, 1092 vm_size_t size) 1093 { 1094 1095 if (advice == MADV_FREE && object->type == OBJT_SWAP) 1096 swap_pager_freespace(object, pindex, size); 1097 } 1098 1099 /* 1100 * vm_object_madvise: 1101 * 1102 * Implements the madvise function at the object/page level. 1103 * 1104 * MADV_WILLNEED (any object) 1105 * 1106 * Activate the specified pages if they are resident. 1107 * 1108 * MADV_DONTNEED (any object) 1109 * 1110 * Deactivate the specified pages if they are resident. 1111 * 1112 * MADV_FREE (OBJT_DEFAULT/OBJT_SWAP objects, 1113 * OBJ_ONEMAPPING only) 1114 * 1115 * Deactivate and clean the specified pages if they are 1116 * resident. This permits the process to reuse the pages 1117 * without faulting or the kernel to reclaim the pages 1118 * without I/O. 1119 */ 1120 void 1121 vm_object_madvise(vm_object_t object, vm_pindex_t pindex, vm_pindex_t end, 1122 int advice) 1123 { 1124 vm_pindex_t tpindex; 1125 vm_object_t backing_object, tobject; 1126 vm_page_t m, tm; 1127 1128 if (object == NULL) 1129 return; 1130 1131 relookup: 1132 VM_OBJECT_WLOCK(object); 1133 if (!vm_object_advice_applies(object, advice)) { 1134 VM_OBJECT_WUNLOCK(object); 1135 return; 1136 } 1137 for (m = vm_page_find_least(object, pindex); pindex < end; pindex++) { 1138 tobject = object; 1139 1140 /* 1141 * If the next page isn't resident in the top-level object, we 1142 * need to search the shadow chain. When applying MADV_FREE, we 1143 * take care to release any swap space used to store 1144 * non-resident pages. 1145 */ 1146 if (m == NULL || pindex < m->pindex) { 1147 /* 1148 * Optimize a common case: if the top-level object has 1149 * no backing object, we can skip over the non-resident 1150 * range in constant time. 1151 */ 1152 if (object->backing_object == NULL) { 1153 tpindex = (m != NULL && m->pindex < end) ? 1154 m->pindex : end; 1155 vm_object_madvise_freespace(object, advice, 1156 pindex, tpindex - pindex); 1157 if ((pindex = tpindex) == end) 1158 break; 1159 goto next_page; 1160 } 1161 1162 tpindex = pindex; 1163 do { 1164 vm_object_madvise_freespace(tobject, advice, 1165 tpindex, 1); 1166 /* 1167 * Prepare to search the next object in the 1168 * chain. 1169 */ 1170 backing_object = tobject->backing_object; 1171 if (backing_object == NULL) 1172 goto next_pindex; 1173 VM_OBJECT_WLOCK(backing_object); 1174 tpindex += 1175 OFF_TO_IDX(tobject->backing_object_offset); 1176 if (tobject != object) 1177 VM_OBJECT_WUNLOCK(tobject); 1178 tobject = backing_object; 1179 if (!vm_object_advice_applies(tobject, advice)) 1180 goto next_pindex; 1181 } while ((tm = vm_page_lookup(tobject, tpindex)) == 1182 NULL); 1183 } else { 1184 next_page: 1185 tm = m; 1186 m = TAILQ_NEXT(m, listq); 1187 } 1188 1189 /* 1190 * If the page is not in a normal state, skip it. 1191 */ 1192 if (tm->valid != VM_PAGE_BITS_ALL) 1193 goto next_pindex; 1194 vm_page_lock(tm); 1195 if (vm_page_held(tm)) { 1196 vm_page_unlock(tm); 1197 goto next_pindex; 1198 } 1199 KASSERT((tm->flags & PG_FICTITIOUS) == 0, 1200 ("vm_object_madvise: page %p is fictitious", tm)); 1201 KASSERT((tm->oflags & VPO_UNMANAGED) == 0, 1202 ("vm_object_madvise: page %p is not managed", tm)); 1203 if (vm_page_busied(tm)) { 1204 if (object != tobject) 1205 VM_OBJECT_WUNLOCK(tobject); 1206 VM_OBJECT_WUNLOCK(object); 1207 if (advice == MADV_WILLNEED) { 1208 /* 1209 * Reference the page before unlocking and 1210 * sleeping so that the page daemon is less 1211 * likely to reclaim it. 1212 */ 1213 vm_page_aflag_set(tm, PGA_REFERENCED); 1214 } 1215 vm_page_busy_sleep(tm, "madvpo", false); 1216 goto relookup; 1217 } 1218 vm_page_advise(tm, advice); 1219 vm_page_unlock(tm); 1220 vm_object_madvise_freespace(tobject, advice, tm->pindex, 1); 1221 next_pindex: 1222 if (tobject != object) 1223 VM_OBJECT_WUNLOCK(tobject); 1224 } 1225 VM_OBJECT_WUNLOCK(object); 1226 } 1227 1228 /* 1229 * vm_object_shadow: 1230 * 1231 * Create a new object which is backed by the 1232 * specified existing object range. The source 1233 * object reference is deallocated. 1234 * 1235 * The new object and offset into that object 1236 * are returned in the source parameters. 1237 */ 1238 void 1239 vm_object_shadow( 1240 vm_object_t *object, /* IN/OUT */ 1241 vm_ooffset_t *offset, /* IN/OUT */ 1242 vm_size_t length) 1243 { 1244 vm_object_t source; 1245 vm_object_t result; 1246 1247 source = *object; 1248 1249 /* 1250 * Don't create the new object if the old object isn't shared. 1251 */ 1252 if (source != NULL) { 1253 VM_OBJECT_WLOCK(source); 1254 if (source->ref_count == 1 && 1255 source->handle == NULL && 1256 (source->type == OBJT_DEFAULT || 1257 source->type == OBJT_SWAP)) { 1258 VM_OBJECT_WUNLOCK(source); 1259 return; 1260 } 1261 VM_OBJECT_WUNLOCK(source); 1262 } 1263 1264 /* 1265 * Allocate a new object with the given length. 1266 */ 1267 result = vm_object_allocate(OBJT_DEFAULT, atop(length)); 1268 1269 /* 1270 * The new object shadows the source object, adding a reference to it. 1271 * Our caller changes his reference to point to the new object, 1272 * removing a reference to the source object. Net result: no change 1273 * of reference count. 1274 * 1275 * Try to optimize the result object's page color when shadowing 1276 * in order to maintain page coloring consistency in the combined 1277 * shadowed object. 1278 */ 1279 result->backing_object = source; 1280 /* 1281 * Store the offset into the source object, and fix up the offset into 1282 * the new object. 1283 */ 1284 result->backing_object_offset = *offset; 1285 if (source != NULL) { 1286 VM_OBJECT_WLOCK(source); 1287 result->domain = source->domain; 1288 LIST_INSERT_HEAD(&source->shadow_head, result, shadow_list); 1289 source->shadow_count++; 1290 #if VM_NRESERVLEVEL > 0 1291 result->flags |= source->flags & OBJ_COLORED; 1292 result->pg_color = (source->pg_color + OFF_TO_IDX(*offset)) & 1293 ((1 << (VM_NFREEORDER - 1)) - 1); 1294 #endif 1295 VM_OBJECT_WUNLOCK(source); 1296 } 1297 1298 1299 /* 1300 * Return the new things 1301 */ 1302 *offset = 0; 1303 *object = result; 1304 } 1305 1306 /* 1307 * vm_object_split: 1308 * 1309 * Split the pages in a map entry into a new object. This affords 1310 * easier removal of unused pages, and keeps object inheritance from 1311 * being a negative impact on memory usage. 1312 */ 1313 void 1314 vm_object_split(vm_map_entry_t entry) 1315 { 1316 vm_page_t m, m_next; 1317 vm_object_t orig_object, new_object, source; 1318 vm_pindex_t idx, offidxstart; 1319 vm_size_t size; 1320 1321 orig_object = entry->object.vm_object; 1322 if (orig_object->type != OBJT_DEFAULT && orig_object->type != OBJT_SWAP) 1323 return; 1324 if (orig_object->ref_count <= 1) 1325 return; 1326 VM_OBJECT_WUNLOCK(orig_object); 1327 1328 offidxstart = OFF_TO_IDX(entry->offset); 1329 size = atop(entry->end - entry->start); 1330 1331 /* 1332 * If swap_pager_copy() is later called, it will convert new_object 1333 * into a swap object. 1334 */ 1335 new_object = vm_object_allocate(OBJT_DEFAULT, size); 1336 1337 /* 1338 * At this point, the new object is still private, so the order in 1339 * which the original and new objects are locked does not matter. 1340 */ 1341 VM_OBJECT_WLOCK(new_object); 1342 VM_OBJECT_WLOCK(orig_object); 1343 new_object->domain = orig_object->domain; 1344 source = orig_object->backing_object; 1345 if (source != NULL) { 1346 VM_OBJECT_WLOCK(source); 1347 if ((source->flags & OBJ_DEAD) != 0) { 1348 VM_OBJECT_WUNLOCK(source); 1349 VM_OBJECT_WUNLOCK(orig_object); 1350 VM_OBJECT_WUNLOCK(new_object); 1351 vm_object_deallocate(new_object); 1352 VM_OBJECT_WLOCK(orig_object); 1353 return; 1354 } 1355 LIST_INSERT_HEAD(&source->shadow_head, 1356 new_object, shadow_list); 1357 source->shadow_count++; 1358 vm_object_reference_locked(source); /* for new_object */ 1359 vm_object_clear_flag(source, OBJ_ONEMAPPING); 1360 VM_OBJECT_WUNLOCK(source); 1361 new_object->backing_object_offset = 1362 orig_object->backing_object_offset + entry->offset; 1363 new_object->backing_object = source; 1364 } 1365 if (orig_object->cred != NULL) { 1366 new_object->cred = orig_object->cred; 1367 crhold(orig_object->cred); 1368 new_object->charge = ptoa(size); 1369 KASSERT(orig_object->charge >= ptoa(size), 1370 ("orig_object->charge < 0")); 1371 orig_object->charge -= ptoa(size); 1372 } 1373 retry: 1374 m = vm_page_find_least(orig_object, offidxstart); 1375 for (; m != NULL && (idx = m->pindex - offidxstart) < size; 1376 m = m_next) { 1377 m_next = TAILQ_NEXT(m, listq); 1378 1379 /* 1380 * We must wait for pending I/O to complete before we can 1381 * rename the page. 1382 * 1383 * We do not have to VM_PROT_NONE the page as mappings should 1384 * not be changed by this operation. 1385 */ 1386 if (vm_page_busied(m)) { 1387 VM_OBJECT_WUNLOCK(new_object); 1388 vm_page_lock(m); 1389 VM_OBJECT_WUNLOCK(orig_object); 1390 vm_page_busy_sleep(m, "spltwt", false); 1391 VM_OBJECT_WLOCK(orig_object); 1392 VM_OBJECT_WLOCK(new_object); 1393 goto retry; 1394 } 1395 1396 /* vm_page_rename() will dirty the page. */ 1397 if (vm_page_rename(m, new_object, idx)) { 1398 VM_OBJECT_WUNLOCK(new_object); 1399 VM_OBJECT_WUNLOCK(orig_object); 1400 vm_radix_wait(); 1401 VM_OBJECT_WLOCK(orig_object); 1402 VM_OBJECT_WLOCK(new_object); 1403 goto retry; 1404 } 1405 #if VM_NRESERVLEVEL > 0 1406 /* 1407 * If some of the reservation's allocated pages remain with 1408 * the original object, then transferring the reservation to 1409 * the new object is neither particularly beneficial nor 1410 * particularly harmful as compared to leaving the reservation 1411 * with the original object. If, however, all of the 1412 * reservation's allocated pages are transferred to the new 1413 * object, then transferring the reservation is typically 1414 * beneficial. Determining which of these two cases applies 1415 * would be more costly than unconditionally renaming the 1416 * reservation. 1417 */ 1418 vm_reserv_rename(m, new_object, orig_object, offidxstart); 1419 #endif 1420 if (orig_object->type == OBJT_SWAP) 1421 vm_page_xbusy(m); 1422 } 1423 if (orig_object->type == OBJT_SWAP) { 1424 /* 1425 * swap_pager_copy() can sleep, in which case the orig_object's 1426 * and new_object's locks are released and reacquired. 1427 */ 1428 swap_pager_copy(orig_object, new_object, offidxstart, 0); 1429 TAILQ_FOREACH(m, &new_object->memq, listq) 1430 vm_page_xunbusy(m); 1431 } 1432 VM_OBJECT_WUNLOCK(orig_object); 1433 VM_OBJECT_WUNLOCK(new_object); 1434 entry->object.vm_object = new_object; 1435 entry->offset = 0LL; 1436 vm_object_deallocate(orig_object); 1437 VM_OBJECT_WLOCK(new_object); 1438 } 1439 1440 #define OBSC_COLLAPSE_NOWAIT 0x0002 1441 #define OBSC_COLLAPSE_WAIT 0x0004 1442 1443 static vm_page_t 1444 vm_object_collapse_scan_wait(vm_object_t object, vm_page_t p, vm_page_t next, 1445 int op) 1446 { 1447 vm_object_t backing_object; 1448 1449 VM_OBJECT_ASSERT_WLOCKED(object); 1450 backing_object = object->backing_object; 1451 VM_OBJECT_ASSERT_WLOCKED(backing_object); 1452 1453 KASSERT(p == NULL || vm_page_busied(p), ("unbusy page %p", p)); 1454 KASSERT(p == NULL || p->object == object || p->object == backing_object, 1455 ("invalid ownership %p %p %p", p, object, backing_object)); 1456 if ((op & OBSC_COLLAPSE_NOWAIT) != 0) 1457 return (next); 1458 if (p != NULL) 1459 vm_page_lock(p); 1460 VM_OBJECT_WUNLOCK(object); 1461 VM_OBJECT_WUNLOCK(backing_object); 1462 /* The page is only NULL when rename fails. */ 1463 if (p == NULL) 1464 vm_radix_wait(); 1465 else 1466 vm_page_busy_sleep(p, "vmocol", false); 1467 VM_OBJECT_WLOCK(object); 1468 VM_OBJECT_WLOCK(backing_object); 1469 return (TAILQ_FIRST(&backing_object->memq)); 1470 } 1471 1472 static bool 1473 vm_object_scan_all_shadowed(vm_object_t object) 1474 { 1475 vm_object_t backing_object; 1476 vm_page_t p, pp; 1477 vm_pindex_t backing_offset_index, new_pindex, pi, ps; 1478 1479 VM_OBJECT_ASSERT_WLOCKED(object); 1480 VM_OBJECT_ASSERT_WLOCKED(object->backing_object); 1481 1482 backing_object = object->backing_object; 1483 1484 if (backing_object->type != OBJT_DEFAULT && 1485 backing_object->type != OBJT_SWAP) 1486 return (false); 1487 1488 pi = backing_offset_index = OFF_TO_IDX(object->backing_object_offset); 1489 p = vm_page_find_least(backing_object, pi); 1490 ps = swap_pager_find_least(backing_object, pi); 1491 1492 /* 1493 * Only check pages inside the parent object's range and 1494 * inside the parent object's mapping of the backing object. 1495 */ 1496 for (;; pi++) { 1497 if (p != NULL && p->pindex < pi) 1498 p = TAILQ_NEXT(p, listq); 1499 if (ps < pi) 1500 ps = swap_pager_find_least(backing_object, pi); 1501 if (p == NULL && ps >= backing_object->size) 1502 break; 1503 else if (p == NULL) 1504 pi = ps; 1505 else 1506 pi = MIN(p->pindex, ps); 1507 1508 new_pindex = pi - backing_offset_index; 1509 if (new_pindex >= object->size) 1510 break; 1511 1512 /* 1513 * See if the parent has the page or if the parent's object 1514 * pager has the page. If the parent has the page but the page 1515 * is not valid, the parent's object pager must have the page. 1516 * 1517 * If this fails, the parent does not completely shadow the 1518 * object and we might as well give up now. 1519 */ 1520 pp = vm_page_lookup(object, new_pindex); 1521 if ((pp == NULL || pp->valid == 0) && 1522 !vm_pager_has_page(object, new_pindex, NULL, NULL)) 1523 return (false); 1524 } 1525 return (true); 1526 } 1527 1528 static bool 1529 vm_object_collapse_scan(vm_object_t object, int op) 1530 { 1531 vm_object_t backing_object; 1532 vm_page_t next, p, pp; 1533 vm_pindex_t backing_offset_index, new_pindex; 1534 1535 VM_OBJECT_ASSERT_WLOCKED(object); 1536 VM_OBJECT_ASSERT_WLOCKED(object->backing_object); 1537 1538 backing_object = object->backing_object; 1539 backing_offset_index = OFF_TO_IDX(object->backing_object_offset); 1540 1541 /* 1542 * Initial conditions 1543 */ 1544 if ((op & OBSC_COLLAPSE_WAIT) != 0) 1545 vm_object_set_flag(backing_object, OBJ_DEAD); 1546 1547 /* 1548 * Our scan 1549 */ 1550 for (p = TAILQ_FIRST(&backing_object->memq); p != NULL; p = next) { 1551 next = TAILQ_NEXT(p, listq); 1552 new_pindex = p->pindex - backing_offset_index; 1553 1554 /* 1555 * Check for busy page 1556 */ 1557 if (vm_page_busied(p)) { 1558 next = vm_object_collapse_scan_wait(object, p, next, op); 1559 continue; 1560 } 1561 1562 KASSERT(p->object == backing_object, 1563 ("vm_object_collapse_scan: object mismatch")); 1564 1565 if (p->pindex < backing_offset_index || 1566 new_pindex >= object->size) { 1567 if (backing_object->type == OBJT_SWAP) 1568 swap_pager_freespace(backing_object, p->pindex, 1569 1); 1570 1571 /* 1572 * Page is out of the parent object's range, we can 1573 * simply destroy it. 1574 */ 1575 vm_page_lock(p); 1576 KASSERT(!pmap_page_is_mapped(p), 1577 ("freeing mapped page %p", p)); 1578 if (vm_page_remove(p)) 1579 vm_page_free(p); 1580 vm_page_unlock(p); 1581 continue; 1582 } 1583 1584 pp = vm_page_lookup(object, new_pindex); 1585 if (pp != NULL && vm_page_busied(pp)) { 1586 /* 1587 * The page in the parent is busy and possibly not 1588 * (yet) valid. Until its state is finalized by the 1589 * busy bit owner, we can't tell whether it shadows the 1590 * original page. Therefore, we must either skip it 1591 * and the original (backing_object) page or wait for 1592 * its state to be finalized. 1593 * 1594 * This is due to a race with vm_fault() where we must 1595 * unbusy the original (backing_obj) page before we can 1596 * (re)lock the parent. Hence we can get here. 1597 */ 1598 next = vm_object_collapse_scan_wait(object, pp, next, 1599 op); 1600 continue; 1601 } 1602 1603 KASSERT(pp == NULL || pp->valid != 0, 1604 ("unbusy invalid page %p", pp)); 1605 1606 if (pp != NULL || vm_pager_has_page(object, new_pindex, NULL, 1607 NULL)) { 1608 /* 1609 * The page already exists in the parent OR swap exists 1610 * for this location in the parent. Leave the parent's 1611 * page alone. Destroy the original page from the 1612 * backing object. 1613 */ 1614 if (backing_object->type == OBJT_SWAP) 1615 swap_pager_freespace(backing_object, p->pindex, 1616 1); 1617 vm_page_lock(p); 1618 KASSERT(!pmap_page_is_mapped(p), 1619 ("freeing mapped page %p", p)); 1620 if (vm_page_remove(p)) 1621 vm_page_free(p); 1622 vm_page_unlock(p); 1623 continue; 1624 } 1625 1626 /* 1627 * Page does not exist in parent, rename the page from the 1628 * backing object to the main object. 1629 * 1630 * If the page was mapped to a process, it can remain mapped 1631 * through the rename. vm_page_rename() will dirty the page. 1632 */ 1633 if (vm_page_rename(p, object, new_pindex)) { 1634 next = vm_object_collapse_scan_wait(object, NULL, next, 1635 op); 1636 continue; 1637 } 1638 1639 /* Use the old pindex to free the right page. */ 1640 if (backing_object->type == OBJT_SWAP) 1641 swap_pager_freespace(backing_object, 1642 new_pindex + backing_offset_index, 1); 1643 1644 #if VM_NRESERVLEVEL > 0 1645 /* 1646 * Rename the reservation. 1647 */ 1648 vm_reserv_rename(p, object, backing_object, 1649 backing_offset_index); 1650 #endif 1651 } 1652 return (true); 1653 } 1654 1655 1656 /* 1657 * this version of collapse allows the operation to occur earlier and 1658 * when paging_in_progress is true for an object... This is not a complete 1659 * operation, but should plug 99.9% of the rest of the leaks. 1660 */ 1661 static void 1662 vm_object_qcollapse(vm_object_t object) 1663 { 1664 vm_object_t backing_object = object->backing_object; 1665 1666 VM_OBJECT_ASSERT_WLOCKED(object); 1667 VM_OBJECT_ASSERT_WLOCKED(backing_object); 1668 1669 if (backing_object->ref_count != 1) 1670 return; 1671 1672 vm_object_collapse_scan(object, OBSC_COLLAPSE_NOWAIT); 1673 } 1674 1675 /* 1676 * vm_object_collapse: 1677 * 1678 * Collapse an object with the object backing it. 1679 * Pages in the backing object are moved into the 1680 * parent, and the backing object is deallocated. 1681 */ 1682 void 1683 vm_object_collapse(vm_object_t object) 1684 { 1685 vm_object_t backing_object, new_backing_object; 1686 1687 VM_OBJECT_ASSERT_WLOCKED(object); 1688 1689 while (TRUE) { 1690 /* 1691 * Verify that the conditions are right for collapse: 1692 * 1693 * The object exists and the backing object exists. 1694 */ 1695 if ((backing_object = object->backing_object) == NULL) 1696 break; 1697 1698 /* 1699 * we check the backing object first, because it is most likely 1700 * not collapsable. 1701 */ 1702 VM_OBJECT_WLOCK(backing_object); 1703 if (backing_object->handle != NULL || 1704 (backing_object->type != OBJT_DEFAULT && 1705 backing_object->type != OBJT_SWAP) || 1706 (backing_object->flags & (OBJ_DEAD | OBJ_NOSPLIT)) != 0 || 1707 object->handle != NULL || 1708 (object->type != OBJT_DEFAULT && 1709 object->type != OBJT_SWAP) || 1710 (object->flags & OBJ_DEAD)) { 1711 VM_OBJECT_WUNLOCK(backing_object); 1712 break; 1713 } 1714 1715 if (object->paging_in_progress != 0 || 1716 backing_object->paging_in_progress != 0) { 1717 vm_object_qcollapse(object); 1718 VM_OBJECT_WUNLOCK(backing_object); 1719 break; 1720 } 1721 1722 /* 1723 * We know that we can either collapse the backing object (if 1724 * the parent is the only reference to it) or (perhaps) have 1725 * the parent bypass the object if the parent happens to shadow 1726 * all the resident pages in the entire backing object. 1727 * 1728 * This is ignoring pager-backed pages such as swap pages. 1729 * vm_object_collapse_scan fails the shadowing test in this 1730 * case. 1731 */ 1732 if (backing_object->ref_count == 1) { 1733 vm_object_pip_add(object, 1); 1734 vm_object_pip_add(backing_object, 1); 1735 1736 /* 1737 * If there is exactly one reference to the backing 1738 * object, we can collapse it into the parent. 1739 */ 1740 vm_object_collapse_scan(object, OBSC_COLLAPSE_WAIT); 1741 1742 #if VM_NRESERVLEVEL > 0 1743 /* 1744 * Break any reservations from backing_object. 1745 */ 1746 if (__predict_false(!LIST_EMPTY(&backing_object->rvq))) 1747 vm_reserv_break_all(backing_object); 1748 #endif 1749 1750 /* 1751 * Move the pager from backing_object to object. 1752 */ 1753 if (backing_object->type == OBJT_SWAP) { 1754 /* 1755 * swap_pager_copy() can sleep, in which case 1756 * the backing_object's and object's locks are 1757 * released and reacquired. 1758 * Since swap_pager_copy() is being asked to 1759 * destroy the source, it will change the 1760 * backing_object's type to OBJT_DEFAULT. 1761 */ 1762 swap_pager_copy( 1763 backing_object, 1764 object, 1765 OFF_TO_IDX(object->backing_object_offset), TRUE); 1766 } 1767 /* 1768 * Object now shadows whatever backing_object did. 1769 * Note that the reference to 1770 * backing_object->backing_object moves from within 1771 * backing_object to within object. 1772 */ 1773 LIST_REMOVE(object, shadow_list); 1774 backing_object->shadow_count--; 1775 if (backing_object->backing_object) { 1776 VM_OBJECT_WLOCK(backing_object->backing_object); 1777 LIST_REMOVE(backing_object, shadow_list); 1778 LIST_INSERT_HEAD( 1779 &backing_object->backing_object->shadow_head, 1780 object, shadow_list); 1781 /* 1782 * The shadow_count has not changed. 1783 */ 1784 VM_OBJECT_WUNLOCK(backing_object->backing_object); 1785 } 1786 object->backing_object = backing_object->backing_object; 1787 object->backing_object_offset += 1788 backing_object->backing_object_offset; 1789 1790 /* 1791 * Discard backing_object. 1792 * 1793 * Since the backing object has no pages, no pager left, 1794 * and no object references within it, all that is 1795 * necessary is to dispose of it. 1796 */ 1797 KASSERT(backing_object->ref_count == 1, ( 1798 "backing_object %p was somehow re-referenced during collapse!", 1799 backing_object)); 1800 vm_object_pip_wakeup(backing_object); 1801 backing_object->type = OBJT_DEAD; 1802 backing_object->ref_count = 0; 1803 VM_OBJECT_WUNLOCK(backing_object); 1804 vm_object_destroy(backing_object); 1805 1806 vm_object_pip_wakeup(object); 1807 counter_u64_add(object_collapses, 1); 1808 } else { 1809 /* 1810 * If we do not entirely shadow the backing object, 1811 * there is nothing we can do so we give up. 1812 */ 1813 if (object->resident_page_count != object->size && 1814 !vm_object_scan_all_shadowed(object)) { 1815 VM_OBJECT_WUNLOCK(backing_object); 1816 break; 1817 } 1818 1819 /* 1820 * Make the parent shadow the next object in the 1821 * chain. Deallocating backing_object will not remove 1822 * it, since its reference count is at least 2. 1823 */ 1824 LIST_REMOVE(object, shadow_list); 1825 backing_object->shadow_count--; 1826 1827 new_backing_object = backing_object->backing_object; 1828 if ((object->backing_object = new_backing_object) != NULL) { 1829 VM_OBJECT_WLOCK(new_backing_object); 1830 LIST_INSERT_HEAD( 1831 &new_backing_object->shadow_head, 1832 object, 1833 shadow_list 1834 ); 1835 new_backing_object->shadow_count++; 1836 vm_object_reference_locked(new_backing_object); 1837 VM_OBJECT_WUNLOCK(new_backing_object); 1838 object->backing_object_offset += 1839 backing_object->backing_object_offset; 1840 } 1841 1842 /* 1843 * Drop the reference count on backing_object. Since 1844 * its ref_count was at least 2, it will not vanish. 1845 */ 1846 backing_object->ref_count--; 1847 VM_OBJECT_WUNLOCK(backing_object); 1848 counter_u64_add(object_bypasses, 1); 1849 } 1850 1851 /* 1852 * Try again with this object's new backing object. 1853 */ 1854 } 1855 } 1856 1857 /* 1858 * vm_object_page_remove: 1859 * 1860 * For the given object, either frees or invalidates each of the 1861 * specified pages. In general, a page is freed. However, if a page is 1862 * wired for any reason other than the existence of a managed, wired 1863 * mapping, then it may be invalidated but not removed from the object. 1864 * Pages are specified by the given range ["start", "end") and the option 1865 * OBJPR_CLEANONLY. As a special case, if "end" is zero, then the range 1866 * extends from "start" to the end of the object. If the option 1867 * OBJPR_CLEANONLY is specified, then only the non-dirty pages within the 1868 * specified range are affected. If the option OBJPR_NOTMAPPED is 1869 * specified, then the pages within the specified range must have no 1870 * mappings. Otherwise, if this option is not specified, any mappings to 1871 * the specified pages are removed before the pages are freed or 1872 * invalidated. 1873 * 1874 * In general, this operation should only be performed on objects that 1875 * contain managed pages. There are, however, two exceptions. First, it 1876 * is performed on the kernel and kmem objects by vm_map_entry_delete(). 1877 * Second, it is used by msync(..., MS_INVALIDATE) to invalidate device- 1878 * backed pages. In both of these cases, the option OBJPR_CLEANONLY must 1879 * not be specified and the option OBJPR_NOTMAPPED must be specified. 1880 * 1881 * The object must be locked. 1882 */ 1883 void 1884 vm_object_page_remove(vm_object_t object, vm_pindex_t start, vm_pindex_t end, 1885 int options) 1886 { 1887 vm_page_t p, next; 1888 struct mtx *mtx; 1889 1890 VM_OBJECT_ASSERT_WLOCKED(object); 1891 KASSERT((object->flags & OBJ_UNMANAGED) == 0 || 1892 (options & (OBJPR_CLEANONLY | OBJPR_NOTMAPPED)) == OBJPR_NOTMAPPED, 1893 ("vm_object_page_remove: illegal options for object %p", object)); 1894 if (object->resident_page_count == 0) 1895 return; 1896 vm_object_pip_add(object, 1); 1897 again: 1898 p = vm_page_find_least(object, start); 1899 mtx = NULL; 1900 1901 /* 1902 * Here, the variable "p" is either (1) the page with the least pindex 1903 * greater than or equal to the parameter "start" or (2) NULL. 1904 */ 1905 for (; p != NULL && (p->pindex < end || end == 0); p = next) { 1906 next = TAILQ_NEXT(p, listq); 1907 1908 /* 1909 * If the page is wired for any reason besides the existence 1910 * of managed, wired mappings, then it cannot be freed. For 1911 * example, fictitious pages, which represent device memory, 1912 * are inherently wired and cannot be freed. They can, 1913 * however, be invalidated if the option OBJPR_CLEANONLY is 1914 * not specified. 1915 */ 1916 vm_page_change_lock(p, &mtx); 1917 if (vm_page_xbusied(p)) { 1918 VM_OBJECT_WUNLOCK(object); 1919 vm_page_busy_sleep(p, "vmopax", true); 1920 VM_OBJECT_WLOCK(object); 1921 goto again; 1922 } 1923 if (vm_page_wired(p)) { 1924 if ((options & OBJPR_NOTMAPPED) == 0 && 1925 object->ref_count != 0) 1926 pmap_remove_all(p); 1927 if ((options & OBJPR_CLEANONLY) == 0) { 1928 p->valid = 0; 1929 vm_page_undirty(p); 1930 } 1931 continue; 1932 } 1933 if (vm_page_busied(p)) { 1934 VM_OBJECT_WUNLOCK(object); 1935 vm_page_busy_sleep(p, "vmopar", false); 1936 VM_OBJECT_WLOCK(object); 1937 goto again; 1938 } 1939 KASSERT((p->flags & PG_FICTITIOUS) == 0, 1940 ("vm_object_page_remove: page %p is fictitious", p)); 1941 if ((options & OBJPR_CLEANONLY) != 0 && p->valid != 0) { 1942 if ((options & OBJPR_NOTMAPPED) == 0 && 1943 object->ref_count != 0) 1944 pmap_remove_write(p); 1945 if (p->dirty != 0) 1946 continue; 1947 } 1948 if ((options & OBJPR_NOTMAPPED) == 0 && object->ref_count != 0) 1949 pmap_remove_all(p); 1950 vm_page_free(p); 1951 } 1952 if (mtx != NULL) 1953 mtx_unlock(mtx); 1954 vm_object_pip_wakeup(object); 1955 } 1956 1957 /* 1958 * vm_object_page_noreuse: 1959 * 1960 * For the given object, attempt to move the specified pages to 1961 * the head of the inactive queue. This bypasses regular LRU 1962 * operation and allows the pages to be reused quickly under memory 1963 * pressure. If a page is wired for any reason, then it will not 1964 * be queued. Pages are specified by the range ["start", "end"). 1965 * As a special case, if "end" is zero, then the range extends from 1966 * "start" to the end of the object. 1967 * 1968 * This operation should only be performed on objects that 1969 * contain non-fictitious, managed pages. 1970 * 1971 * The object must be locked. 1972 */ 1973 void 1974 vm_object_page_noreuse(vm_object_t object, vm_pindex_t start, vm_pindex_t end) 1975 { 1976 struct mtx *mtx; 1977 vm_page_t p, next; 1978 1979 VM_OBJECT_ASSERT_LOCKED(object); 1980 KASSERT((object->flags & (OBJ_FICTITIOUS | OBJ_UNMANAGED)) == 0, 1981 ("vm_object_page_noreuse: illegal object %p", object)); 1982 if (object->resident_page_count == 0) 1983 return; 1984 p = vm_page_find_least(object, start); 1985 1986 /* 1987 * Here, the variable "p" is either (1) the page with the least pindex 1988 * greater than or equal to the parameter "start" or (2) NULL. 1989 */ 1990 mtx = NULL; 1991 for (; p != NULL && (p->pindex < end || end == 0); p = next) { 1992 next = TAILQ_NEXT(p, listq); 1993 vm_page_change_lock(p, &mtx); 1994 vm_page_deactivate_noreuse(p); 1995 } 1996 if (mtx != NULL) 1997 mtx_unlock(mtx); 1998 } 1999 2000 /* 2001 * Populate the specified range of the object with valid pages. Returns 2002 * TRUE if the range is successfully populated and FALSE otherwise. 2003 * 2004 * Note: This function should be optimized to pass a larger array of 2005 * pages to vm_pager_get_pages() before it is applied to a non- 2006 * OBJT_DEVICE object. 2007 * 2008 * The object must be locked. 2009 */ 2010 boolean_t 2011 vm_object_populate(vm_object_t object, vm_pindex_t start, vm_pindex_t end) 2012 { 2013 vm_page_t m; 2014 vm_pindex_t pindex; 2015 int rv; 2016 2017 VM_OBJECT_ASSERT_WLOCKED(object); 2018 for (pindex = start; pindex < end; pindex++) { 2019 m = vm_page_grab(object, pindex, VM_ALLOC_NORMAL); 2020 if (m->valid != VM_PAGE_BITS_ALL) { 2021 rv = vm_pager_get_pages(object, &m, 1, NULL, NULL); 2022 if (rv != VM_PAGER_OK) { 2023 vm_page_lock(m); 2024 vm_page_free(m); 2025 vm_page_unlock(m); 2026 break; 2027 } 2028 } 2029 /* 2030 * Keep "m" busy because a subsequent iteration may unlock 2031 * the object. 2032 */ 2033 } 2034 if (pindex > start) { 2035 m = vm_page_lookup(object, start); 2036 while (m != NULL && m->pindex < pindex) { 2037 vm_page_xunbusy(m); 2038 m = TAILQ_NEXT(m, listq); 2039 } 2040 } 2041 return (pindex == end); 2042 } 2043 2044 /* 2045 * Routine: vm_object_coalesce 2046 * Function: Coalesces two objects backing up adjoining 2047 * regions of memory into a single object. 2048 * 2049 * returns TRUE if objects were combined. 2050 * 2051 * NOTE: Only works at the moment if the second object is NULL - 2052 * if it's not, which object do we lock first? 2053 * 2054 * Parameters: 2055 * prev_object First object to coalesce 2056 * prev_offset Offset into prev_object 2057 * prev_size Size of reference to prev_object 2058 * next_size Size of reference to the second object 2059 * reserved Indicator that extension region has 2060 * swap accounted for 2061 * 2062 * Conditions: 2063 * The object must *not* be locked. 2064 */ 2065 boolean_t 2066 vm_object_coalesce(vm_object_t prev_object, vm_ooffset_t prev_offset, 2067 vm_size_t prev_size, vm_size_t next_size, boolean_t reserved) 2068 { 2069 vm_pindex_t next_pindex; 2070 2071 if (prev_object == NULL) 2072 return (TRUE); 2073 VM_OBJECT_WLOCK(prev_object); 2074 if ((prev_object->type != OBJT_DEFAULT && 2075 prev_object->type != OBJT_SWAP) || 2076 (prev_object->flags & OBJ_NOSPLIT) != 0) { 2077 VM_OBJECT_WUNLOCK(prev_object); 2078 return (FALSE); 2079 } 2080 2081 /* 2082 * Try to collapse the object first 2083 */ 2084 vm_object_collapse(prev_object); 2085 2086 /* 2087 * Can't coalesce if: . more than one reference . paged out . shadows 2088 * another object . has a copy elsewhere (any of which mean that the 2089 * pages not mapped to prev_entry may be in use anyway) 2090 */ 2091 if (prev_object->backing_object != NULL) { 2092 VM_OBJECT_WUNLOCK(prev_object); 2093 return (FALSE); 2094 } 2095 2096 prev_size >>= PAGE_SHIFT; 2097 next_size >>= PAGE_SHIFT; 2098 next_pindex = OFF_TO_IDX(prev_offset) + prev_size; 2099 2100 if (prev_object->ref_count > 1 && 2101 prev_object->size != next_pindex && 2102 (prev_object->flags & OBJ_ONEMAPPING) == 0) { 2103 VM_OBJECT_WUNLOCK(prev_object); 2104 return (FALSE); 2105 } 2106 2107 /* 2108 * Account for the charge. 2109 */ 2110 if (prev_object->cred != NULL) { 2111 2112 /* 2113 * If prev_object was charged, then this mapping, 2114 * although not charged now, may become writable 2115 * later. Non-NULL cred in the object would prevent 2116 * swap reservation during enabling of the write 2117 * access, so reserve swap now. Failed reservation 2118 * cause allocation of the separate object for the map 2119 * entry, and swap reservation for this entry is 2120 * managed in appropriate time. 2121 */ 2122 if (!reserved && !swap_reserve_by_cred(ptoa(next_size), 2123 prev_object->cred)) { 2124 VM_OBJECT_WUNLOCK(prev_object); 2125 return (FALSE); 2126 } 2127 prev_object->charge += ptoa(next_size); 2128 } 2129 2130 /* 2131 * Remove any pages that may still be in the object from a previous 2132 * deallocation. 2133 */ 2134 if (next_pindex < prev_object->size) { 2135 vm_object_page_remove(prev_object, next_pindex, next_pindex + 2136 next_size, 0); 2137 if (prev_object->type == OBJT_SWAP) 2138 swap_pager_freespace(prev_object, 2139 next_pindex, next_size); 2140 #if 0 2141 if (prev_object->cred != NULL) { 2142 KASSERT(prev_object->charge >= 2143 ptoa(prev_object->size - next_pindex), 2144 ("object %p overcharged 1 %jx %jx", prev_object, 2145 (uintmax_t)next_pindex, (uintmax_t)next_size)); 2146 prev_object->charge -= ptoa(prev_object->size - 2147 next_pindex); 2148 } 2149 #endif 2150 } 2151 2152 /* 2153 * Extend the object if necessary. 2154 */ 2155 if (next_pindex + next_size > prev_object->size) 2156 prev_object->size = next_pindex + next_size; 2157 2158 VM_OBJECT_WUNLOCK(prev_object); 2159 return (TRUE); 2160 } 2161 2162 void 2163 vm_object_set_writeable_dirty(vm_object_t object) 2164 { 2165 2166 VM_OBJECT_ASSERT_WLOCKED(object); 2167 if (object->type != OBJT_VNODE) { 2168 if ((object->flags & OBJ_TMPFS_NODE) != 0) { 2169 KASSERT(object->type == OBJT_SWAP, ("non-swap tmpfs")); 2170 vm_object_set_flag(object, OBJ_TMPFS_DIRTY); 2171 } 2172 return; 2173 } 2174 object->generation++; 2175 if ((object->flags & OBJ_MIGHTBEDIRTY) != 0) 2176 return; 2177 vm_object_set_flag(object, OBJ_MIGHTBEDIRTY); 2178 } 2179 2180 /* 2181 * vm_object_unwire: 2182 * 2183 * For each page offset within the specified range of the given object, 2184 * find the highest-level page in the shadow chain and unwire it. A page 2185 * must exist at every page offset, and the highest-level page must be 2186 * wired. 2187 */ 2188 void 2189 vm_object_unwire(vm_object_t object, vm_ooffset_t offset, vm_size_t length, 2190 uint8_t queue) 2191 { 2192 vm_object_t tobject, t1object; 2193 vm_page_t m, tm; 2194 vm_pindex_t end_pindex, pindex, tpindex; 2195 int depth, locked_depth; 2196 2197 KASSERT((offset & PAGE_MASK) == 0, 2198 ("vm_object_unwire: offset is not page aligned")); 2199 KASSERT((length & PAGE_MASK) == 0, 2200 ("vm_object_unwire: length is not a multiple of PAGE_SIZE")); 2201 /* The wired count of a fictitious page never changes. */ 2202 if ((object->flags & OBJ_FICTITIOUS) != 0) 2203 return; 2204 pindex = OFF_TO_IDX(offset); 2205 end_pindex = pindex + atop(length); 2206 again: 2207 locked_depth = 1; 2208 VM_OBJECT_RLOCK(object); 2209 m = vm_page_find_least(object, pindex); 2210 while (pindex < end_pindex) { 2211 if (m == NULL || pindex < m->pindex) { 2212 /* 2213 * The first object in the shadow chain doesn't 2214 * contain a page at the current index. Therefore, 2215 * the page must exist in a backing object. 2216 */ 2217 tobject = object; 2218 tpindex = pindex; 2219 depth = 0; 2220 do { 2221 tpindex += 2222 OFF_TO_IDX(tobject->backing_object_offset); 2223 tobject = tobject->backing_object; 2224 KASSERT(tobject != NULL, 2225 ("vm_object_unwire: missing page")); 2226 if ((tobject->flags & OBJ_FICTITIOUS) != 0) 2227 goto next_page; 2228 depth++; 2229 if (depth == locked_depth) { 2230 locked_depth++; 2231 VM_OBJECT_RLOCK(tobject); 2232 } 2233 } while ((tm = vm_page_lookup(tobject, tpindex)) == 2234 NULL); 2235 } else { 2236 tm = m; 2237 m = TAILQ_NEXT(m, listq); 2238 } 2239 vm_page_lock(tm); 2240 if (vm_page_xbusied(tm)) { 2241 for (tobject = object; locked_depth >= 1; 2242 locked_depth--) { 2243 t1object = tobject->backing_object; 2244 VM_OBJECT_RUNLOCK(tobject); 2245 tobject = t1object; 2246 } 2247 vm_page_busy_sleep(tm, "unwbo", true); 2248 goto again; 2249 } 2250 vm_page_unwire(tm, queue); 2251 vm_page_unlock(tm); 2252 next_page: 2253 pindex++; 2254 } 2255 /* Release the accumulated object locks. */ 2256 for (tobject = object; locked_depth >= 1; locked_depth--) { 2257 t1object = tobject->backing_object; 2258 VM_OBJECT_RUNLOCK(tobject); 2259 tobject = t1object; 2260 } 2261 } 2262 2263 struct vnode * 2264 vm_object_vnode(vm_object_t object) 2265 { 2266 2267 VM_OBJECT_ASSERT_LOCKED(object); 2268 if (object->type == OBJT_VNODE) 2269 return (object->handle); 2270 if (object->type == OBJT_SWAP && (object->flags & OBJ_TMPFS) != 0) 2271 return (object->un_pager.swp.swp_tmpfs); 2272 return (NULL); 2273 } 2274 2275 static int 2276 sysctl_vm_object_list(SYSCTL_HANDLER_ARGS) 2277 { 2278 struct kinfo_vmobject *kvo; 2279 char *fullpath, *freepath; 2280 struct vnode *vp; 2281 struct vattr va; 2282 vm_object_t obj; 2283 vm_page_t m; 2284 int count, error; 2285 2286 if (req->oldptr == NULL) { 2287 /* 2288 * If an old buffer has not been provided, generate an 2289 * estimate of the space needed for a subsequent call. 2290 */ 2291 mtx_lock(&vm_object_list_mtx); 2292 count = 0; 2293 TAILQ_FOREACH(obj, &vm_object_list, object_list) { 2294 if (obj->type == OBJT_DEAD) 2295 continue; 2296 count++; 2297 } 2298 mtx_unlock(&vm_object_list_mtx); 2299 return (SYSCTL_OUT(req, NULL, sizeof(struct kinfo_vmobject) * 2300 count * 11 / 10)); 2301 } 2302 2303 kvo = malloc(sizeof(*kvo), M_TEMP, M_WAITOK); 2304 error = 0; 2305 2306 /* 2307 * VM objects are type stable and are never removed from the 2308 * list once added. This allows us to safely read obj->object_list 2309 * after reacquiring the VM object lock. 2310 */ 2311 mtx_lock(&vm_object_list_mtx); 2312 TAILQ_FOREACH(obj, &vm_object_list, object_list) { 2313 if (obj->type == OBJT_DEAD) 2314 continue; 2315 VM_OBJECT_RLOCK(obj); 2316 if (obj->type == OBJT_DEAD) { 2317 VM_OBJECT_RUNLOCK(obj); 2318 continue; 2319 } 2320 mtx_unlock(&vm_object_list_mtx); 2321 kvo->kvo_size = ptoa(obj->size); 2322 kvo->kvo_resident = obj->resident_page_count; 2323 kvo->kvo_ref_count = obj->ref_count; 2324 kvo->kvo_shadow_count = obj->shadow_count; 2325 kvo->kvo_memattr = obj->memattr; 2326 kvo->kvo_active = 0; 2327 kvo->kvo_inactive = 0; 2328 TAILQ_FOREACH(m, &obj->memq, listq) { 2329 /* 2330 * A page may belong to the object but be 2331 * dequeued and set to PQ_NONE while the 2332 * object lock is not held. This makes the 2333 * reads of m->queue below racy, and we do not 2334 * count pages set to PQ_NONE. However, this 2335 * sysctl is only meant to give an 2336 * approximation of the system anyway. 2337 */ 2338 if (m->queue == PQ_ACTIVE) 2339 kvo->kvo_active++; 2340 else if (m->queue == PQ_INACTIVE) 2341 kvo->kvo_inactive++; 2342 } 2343 2344 kvo->kvo_vn_fileid = 0; 2345 kvo->kvo_vn_fsid = 0; 2346 kvo->kvo_vn_fsid_freebsd11 = 0; 2347 freepath = NULL; 2348 fullpath = ""; 2349 vp = NULL; 2350 switch (obj->type) { 2351 case OBJT_DEFAULT: 2352 kvo->kvo_type = KVME_TYPE_DEFAULT; 2353 break; 2354 case OBJT_VNODE: 2355 kvo->kvo_type = KVME_TYPE_VNODE; 2356 vp = obj->handle; 2357 vref(vp); 2358 break; 2359 case OBJT_SWAP: 2360 kvo->kvo_type = KVME_TYPE_SWAP; 2361 break; 2362 case OBJT_DEVICE: 2363 kvo->kvo_type = KVME_TYPE_DEVICE; 2364 break; 2365 case OBJT_PHYS: 2366 kvo->kvo_type = KVME_TYPE_PHYS; 2367 break; 2368 case OBJT_DEAD: 2369 kvo->kvo_type = KVME_TYPE_DEAD; 2370 break; 2371 case OBJT_SG: 2372 kvo->kvo_type = KVME_TYPE_SG; 2373 break; 2374 case OBJT_MGTDEVICE: 2375 kvo->kvo_type = KVME_TYPE_MGTDEVICE; 2376 break; 2377 default: 2378 kvo->kvo_type = KVME_TYPE_UNKNOWN; 2379 break; 2380 } 2381 VM_OBJECT_RUNLOCK(obj); 2382 if (vp != NULL) { 2383 vn_fullpath(curthread, vp, &fullpath, &freepath); 2384 vn_lock(vp, LK_SHARED | LK_RETRY); 2385 if (VOP_GETATTR(vp, &va, curthread->td_ucred) == 0) { 2386 kvo->kvo_vn_fileid = va.va_fileid; 2387 kvo->kvo_vn_fsid = va.va_fsid; 2388 kvo->kvo_vn_fsid_freebsd11 = va.va_fsid; 2389 /* truncate */ 2390 } 2391 vput(vp); 2392 } 2393 2394 strlcpy(kvo->kvo_path, fullpath, sizeof(kvo->kvo_path)); 2395 if (freepath != NULL) 2396 free(freepath, M_TEMP); 2397 2398 /* Pack record size down */ 2399 kvo->kvo_structsize = offsetof(struct kinfo_vmobject, kvo_path) 2400 + strlen(kvo->kvo_path) + 1; 2401 kvo->kvo_structsize = roundup(kvo->kvo_structsize, 2402 sizeof(uint64_t)); 2403 error = SYSCTL_OUT(req, kvo, kvo->kvo_structsize); 2404 mtx_lock(&vm_object_list_mtx); 2405 if (error) 2406 break; 2407 } 2408 mtx_unlock(&vm_object_list_mtx); 2409 free(kvo, M_TEMP); 2410 return (error); 2411 } 2412 SYSCTL_PROC(_vm, OID_AUTO, objects, CTLTYPE_STRUCT | CTLFLAG_RW | CTLFLAG_SKIP | 2413 CTLFLAG_MPSAFE, NULL, 0, sysctl_vm_object_list, "S,kinfo_vmobject", 2414 "List of VM objects"); 2415 2416 #include "opt_ddb.h" 2417 #ifdef DDB 2418 #include <sys/kernel.h> 2419 2420 #include <sys/cons.h> 2421 2422 #include <ddb/ddb.h> 2423 2424 static int 2425 _vm_object_in_map(vm_map_t map, vm_object_t object, vm_map_entry_t entry) 2426 { 2427 vm_map_t tmpm; 2428 vm_map_entry_t tmpe; 2429 vm_object_t obj; 2430 int entcount; 2431 2432 if (map == 0) 2433 return 0; 2434 2435 if (entry == 0) { 2436 tmpe = map->header.next; 2437 entcount = map->nentries; 2438 while (entcount-- && (tmpe != &map->header)) { 2439 if (_vm_object_in_map(map, object, tmpe)) { 2440 return 1; 2441 } 2442 tmpe = tmpe->next; 2443 } 2444 } else if (entry->eflags & MAP_ENTRY_IS_SUB_MAP) { 2445 tmpm = entry->object.sub_map; 2446 tmpe = tmpm->header.next; 2447 entcount = tmpm->nentries; 2448 while (entcount-- && tmpe != &tmpm->header) { 2449 if (_vm_object_in_map(tmpm, object, tmpe)) { 2450 return 1; 2451 } 2452 tmpe = tmpe->next; 2453 } 2454 } else if ((obj = entry->object.vm_object) != NULL) { 2455 for (; obj; obj = obj->backing_object) 2456 if (obj == object) { 2457 return 1; 2458 } 2459 } 2460 return 0; 2461 } 2462 2463 static int 2464 vm_object_in_map(vm_object_t object) 2465 { 2466 struct proc *p; 2467 2468 /* sx_slock(&allproc_lock); */ 2469 FOREACH_PROC_IN_SYSTEM(p) { 2470 if (!p->p_vmspace /* || (p->p_flag & (P_SYSTEM|P_WEXIT)) */) 2471 continue; 2472 if (_vm_object_in_map(&p->p_vmspace->vm_map, object, 0)) { 2473 /* sx_sunlock(&allproc_lock); */ 2474 return 1; 2475 } 2476 } 2477 /* sx_sunlock(&allproc_lock); */ 2478 if (_vm_object_in_map(kernel_map, object, 0)) 2479 return 1; 2480 return 0; 2481 } 2482 2483 DB_SHOW_COMMAND(vmochk, vm_object_check) 2484 { 2485 vm_object_t object; 2486 2487 /* 2488 * make sure that internal objs are in a map somewhere 2489 * and none have zero ref counts. 2490 */ 2491 TAILQ_FOREACH(object, &vm_object_list, object_list) { 2492 if (object->handle == NULL && 2493 (object->type == OBJT_DEFAULT || object->type == OBJT_SWAP)) { 2494 if (object->ref_count == 0) { 2495 db_printf("vmochk: internal obj has zero ref count: %ld\n", 2496 (long)object->size); 2497 } 2498 if (!vm_object_in_map(object)) { 2499 db_printf( 2500 "vmochk: internal obj is not in a map: " 2501 "ref: %d, size: %lu: 0x%lx, backing_object: %p\n", 2502 object->ref_count, (u_long)object->size, 2503 (u_long)object->size, 2504 (void *)object->backing_object); 2505 } 2506 } 2507 } 2508 } 2509 2510 /* 2511 * vm_object_print: [ debug ] 2512 */ 2513 DB_SHOW_COMMAND(object, vm_object_print_static) 2514 { 2515 /* XXX convert args. */ 2516 vm_object_t object = (vm_object_t)addr; 2517 boolean_t full = have_addr; 2518 2519 vm_page_t p; 2520 2521 /* XXX count is an (unused) arg. Avoid shadowing it. */ 2522 #define count was_count 2523 2524 int count; 2525 2526 if (object == NULL) 2527 return; 2528 2529 db_iprintf( 2530 "Object %p: type=%d, size=0x%jx, res=%d, ref=%d, flags=0x%x ruid %d charge %jx\n", 2531 object, (int)object->type, (uintmax_t)object->size, 2532 object->resident_page_count, object->ref_count, object->flags, 2533 object->cred ? object->cred->cr_ruid : -1, (uintmax_t)object->charge); 2534 db_iprintf(" sref=%d, backing_object(%d)=(%p)+0x%jx\n", 2535 object->shadow_count, 2536 object->backing_object ? object->backing_object->ref_count : 0, 2537 object->backing_object, (uintmax_t)object->backing_object_offset); 2538 2539 if (!full) 2540 return; 2541 2542 db_indent += 2; 2543 count = 0; 2544 TAILQ_FOREACH(p, &object->memq, listq) { 2545 if (count == 0) 2546 db_iprintf("memory:="); 2547 else if (count == 6) { 2548 db_printf("\n"); 2549 db_iprintf(" ..."); 2550 count = 0; 2551 } else 2552 db_printf(","); 2553 count++; 2554 2555 db_printf("(off=0x%jx,page=0x%jx)", 2556 (uintmax_t)p->pindex, (uintmax_t)VM_PAGE_TO_PHYS(p)); 2557 } 2558 if (count != 0) 2559 db_printf("\n"); 2560 db_indent -= 2; 2561 } 2562 2563 /* XXX. */ 2564 #undef count 2565 2566 /* XXX need this non-static entry for calling from vm_map_print. */ 2567 void 2568 vm_object_print( 2569 /* db_expr_t */ long addr, 2570 boolean_t have_addr, 2571 /* db_expr_t */ long count, 2572 char *modif) 2573 { 2574 vm_object_print_static(addr, have_addr, count, modif); 2575 } 2576 2577 DB_SHOW_COMMAND(vmopag, vm_object_print_pages) 2578 { 2579 vm_object_t object; 2580 vm_pindex_t fidx; 2581 vm_paddr_t pa; 2582 vm_page_t m, prev_m; 2583 int rcount, nl, c; 2584 2585 nl = 0; 2586 TAILQ_FOREACH(object, &vm_object_list, object_list) { 2587 db_printf("new object: %p\n", (void *)object); 2588 if (nl > 18) { 2589 c = cngetc(); 2590 if (c != ' ') 2591 return; 2592 nl = 0; 2593 } 2594 nl++; 2595 rcount = 0; 2596 fidx = 0; 2597 pa = -1; 2598 TAILQ_FOREACH(m, &object->memq, listq) { 2599 if (m->pindex > 128) 2600 break; 2601 if ((prev_m = TAILQ_PREV(m, pglist, listq)) != NULL && 2602 prev_m->pindex + 1 != m->pindex) { 2603 if (rcount) { 2604 db_printf(" index(%ld)run(%d)pa(0x%lx)\n", 2605 (long)fidx, rcount, (long)pa); 2606 if (nl > 18) { 2607 c = cngetc(); 2608 if (c != ' ') 2609 return; 2610 nl = 0; 2611 } 2612 nl++; 2613 rcount = 0; 2614 } 2615 } 2616 if (rcount && 2617 (VM_PAGE_TO_PHYS(m) == pa + rcount * PAGE_SIZE)) { 2618 ++rcount; 2619 continue; 2620 } 2621 if (rcount) { 2622 db_printf(" index(%ld)run(%d)pa(0x%lx)\n", 2623 (long)fidx, rcount, (long)pa); 2624 if (nl > 18) { 2625 c = cngetc(); 2626 if (c != ' ') 2627 return; 2628 nl = 0; 2629 } 2630 nl++; 2631 } 2632 fidx = m->pindex; 2633 pa = VM_PAGE_TO_PHYS(m); 2634 rcount = 1; 2635 } 2636 if (rcount) { 2637 db_printf(" index(%ld)run(%d)pa(0x%lx)\n", 2638 (long)fidx, rcount, (long)pa); 2639 if (nl > 18) { 2640 c = cngetc(); 2641 if (c != ' ') 2642 return; 2643 nl = 0; 2644 } 2645 nl++; 2646 } 2647 } 2648 } 2649 #endif /* DDB */ 2650