xref: /freebsd/sys/vm/vm_kern.c (revision 24dedba9f59595d685726507f3eb47f40a5cabb7)
160727d8bSWarner Losh /*-
2df8bae1dSRodney W. Grimes  * Copyright (c) 1991, 1993
3df8bae1dSRodney W. Grimes  *	The Regents of the University of California.  All rights reserved.
4df8bae1dSRodney W. Grimes  *
5df8bae1dSRodney W. Grimes  * This code is derived from software contributed to Berkeley by
6df8bae1dSRodney W. Grimes  * The Mach Operating System project at Carnegie-Mellon University.
7df8bae1dSRodney W. Grimes  *
8df8bae1dSRodney W. Grimes  * Redistribution and use in source and binary forms, with or without
9df8bae1dSRodney W. Grimes  * modification, are permitted provided that the following conditions
10df8bae1dSRodney W. Grimes  * are met:
11df8bae1dSRodney W. Grimes  * 1. Redistributions of source code must retain the above copyright
12df8bae1dSRodney W. Grimes  *    notice, this list of conditions and the following disclaimer.
13df8bae1dSRodney W. Grimes  * 2. Redistributions in binary form must reproduce the above copyright
14df8bae1dSRodney W. Grimes  *    notice, this list of conditions and the following disclaimer in the
15df8bae1dSRodney W. Grimes  *    documentation and/or other materials provided with the distribution.
16df8bae1dSRodney W. Grimes  * 4. Neither the name of the University nor the names of its contributors
17df8bae1dSRodney W. Grimes  *    may be used to endorse or promote products derived from this software
18df8bae1dSRodney W. Grimes  *    without specific prior written permission.
19df8bae1dSRodney W. Grimes  *
20df8bae1dSRodney W. Grimes  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
21df8bae1dSRodney W. Grimes  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22df8bae1dSRodney W. Grimes  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23df8bae1dSRodney W. Grimes  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
24df8bae1dSRodney W. Grimes  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25df8bae1dSRodney W. Grimes  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26df8bae1dSRodney W. Grimes  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27df8bae1dSRodney W. Grimes  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28df8bae1dSRodney W. Grimes  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29df8bae1dSRodney W. Grimes  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30df8bae1dSRodney W. Grimes  * SUCH DAMAGE.
31df8bae1dSRodney W. Grimes  *
323c4dd356SDavid Greenman  *	from: @(#)vm_kern.c	8.3 (Berkeley) 1/12/94
33df8bae1dSRodney W. Grimes  *
34df8bae1dSRodney W. Grimes  *
35df8bae1dSRodney W. Grimes  * Copyright (c) 1987, 1990 Carnegie-Mellon University.
36df8bae1dSRodney W. Grimes  * All rights reserved.
37df8bae1dSRodney W. Grimes  *
38df8bae1dSRodney W. Grimes  * Authors: Avadis Tevanian, Jr., Michael Wayne Young
39df8bae1dSRodney W. Grimes  *
40df8bae1dSRodney W. Grimes  * Permission to use, copy, modify and distribute this software and
41df8bae1dSRodney W. Grimes  * its documentation is hereby granted, provided that both the copyright
42df8bae1dSRodney W. Grimes  * notice and this permission notice appear in all copies of the
43df8bae1dSRodney W. Grimes  * software, derivative works or modified versions, and any portions
44df8bae1dSRodney W. Grimes  * thereof, and that both notices appear in supporting documentation.
45df8bae1dSRodney W. Grimes  *
46df8bae1dSRodney W. Grimes  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
47df8bae1dSRodney W. Grimes  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
48df8bae1dSRodney W. Grimes  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
49df8bae1dSRodney W. Grimes  *
50df8bae1dSRodney W. Grimes  * Carnegie Mellon requests users of this software to return to
51df8bae1dSRodney W. Grimes  *
52df8bae1dSRodney W. Grimes  *  Software Distribution Coordinator  or  Software.Distribution@CS.CMU.EDU
53df8bae1dSRodney W. Grimes  *  School of Computer Science
54df8bae1dSRodney W. Grimes  *  Carnegie Mellon University
55df8bae1dSRodney W. Grimes  *  Pittsburgh PA 15213-3890
56df8bae1dSRodney W. Grimes  *
57df8bae1dSRodney W. Grimes  * any improvements or extensions that they make and grant Carnegie the
58df8bae1dSRodney W. Grimes  * rights to redistribute these changes.
59df8bae1dSRodney W. Grimes  */
60df8bae1dSRodney W. Grimes 
61df8bae1dSRodney W. Grimes /*
62df8bae1dSRodney W. Grimes  *	Kernel memory management.
63df8bae1dSRodney W. Grimes  */
64df8bae1dSRodney W. Grimes 
65874651b1SDavid E. O'Brien #include <sys/cdefs.h>
66874651b1SDavid E. O'Brien __FBSDID("$FreeBSD$");
67874651b1SDavid E. O'Brien 
68df8bae1dSRodney W. Grimes #include <sys/param.h>
69df8bae1dSRodney W. Grimes #include <sys/systm.h>
7060363fb9SLuigi Rizzo #include <sys/kernel.h>		/* for ticks and hz */
710f2c2ce0SPawel Jakub Dawidek #include <sys/eventhandler.h>
72fb919e4dSMark Murray #include <sys/lock.h>
73fb919e4dSMark Murray #include <sys/mutex.h>
74f23b4c91SGarrett Wollman #include <sys/proc.h>
75a1f6d91cSDavid Greenman #include <sys/malloc.h>
76df8bae1dSRodney W. Grimes 
77df8bae1dSRodney W. Grimes #include <vm/vm.h>
78efeaf95aSDavid Greenman #include <vm/vm_param.h>
79efeaf95aSDavid Greenman #include <vm/pmap.h>
80efeaf95aSDavid Greenman #include <vm/vm_map.h>
81efeaf95aSDavid Greenman #include <vm/vm_object.h>
82df8bae1dSRodney W. Grimes #include <vm/vm_page.h>
83df8bae1dSRodney W. Grimes #include <vm/vm_pageout.h>
849b4288a3SBruce Evans #include <vm/vm_extern.h>
850f2c2ce0SPawel Jakub Dawidek #include <vm/uma.h>
86df8bae1dSRodney W. Grimes 
875b0a7408SJohn Dyson vm_map_t kernel_map=0;
885b0a7408SJohn Dyson vm_map_t kmem_map=0;
895b0a7408SJohn Dyson vm_map_t exec_map=0;
90cebde069SMike Silbersack vm_map_t pipe_map;
915b0a7408SJohn Dyson vm_map_t buffer_map=0;
92f23b4c91SGarrett Wollman 
93df8bae1dSRodney W. Grimes /*
94a839bdc8SDmitrij Tejblum  *	kmem_alloc_nofault:
95a839bdc8SDmitrij Tejblum  *
96b77c2bcdSAlan Cox  *	Allocate a virtual address range with no underlying object and
97b77c2bcdSAlan Cox  *	no initial mapping to physical memory.  Any mapping from this
98b77c2bcdSAlan Cox  *	range to physical memory must be explicitly created prior to
99b77c2bcdSAlan Cox  *	its use, typically with pmap_qenter().  Any attempt to create
100b77c2bcdSAlan Cox  *	a mapping on demand through vm_fault() will result in a panic.
101a839bdc8SDmitrij Tejblum  */
102a839bdc8SDmitrij Tejblum vm_offset_t
103a839bdc8SDmitrij Tejblum kmem_alloc_nofault(map, size)
104a839bdc8SDmitrij Tejblum 	vm_map_t map;
105030f2369SAlfred Perlstein 	vm_size_t size;
106a839bdc8SDmitrij Tejblum {
107a839bdc8SDmitrij Tejblum 	vm_offset_t addr;
108030f2369SAlfred Perlstein 	int result;
109a839bdc8SDmitrij Tejblum 
110a839bdc8SDmitrij Tejblum 	size = round_page(size);
111a839bdc8SDmitrij Tejblum 	addr = vm_map_min(map);
112848d1419SAlan Cox 	result = vm_map_find(map, NULL, 0,
113a839bdc8SDmitrij Tejblum 	    &addr, size, TRUE, VM_PROT_ALL, VM_PROT_ALL, MAP_NOFAULT);
114a839bdc8SDmitrij Tejblum 	if (result != KERN_SUCCESS) {
115a839bdc8SDmitrij Tejblum 		return (0);
116a839bdc8SDmitrij Tejblum 	}
117a839bdc8SDmitrij Tejblum 	return (addr);
118a839bdc8SDmitrij Tejblum }
119a839bdc8SDmitrij Tejblum 
120a839bdc8SDmitrij Tejblum /*
121df8bae1dSRodney W. Grimes  *	Allocate wired-down memory in the kernel's address map
122df8bae1dSRodney W. Grimes  *	or a submap.
123df8bae1dSRodney W. Grimes  */
1240d94caffSDavid Greenman vm_offset_t
1250d94caffSDavid Greenman kmem_alloc(map, size)
126030f2369SAlfred Perlstein 	vm_map_t map;
127030f2369SAlfred Perlstein 	vm_size_t size;
128df8bae1dSRodney W. Grimes {
129df8bae1dSRodney W. Grimes 	vm_offset_t addr;
130030f2369SAlfred Perlstein 	vm_offset_t offset;
131df8bae1dSRodney W. Grimes 	vm_offset_t i;
132df8bae1dSRodney W. Grimes 
133df8bae1dSRodney W. Grimes 	size = round_page(size);
134df8bae1dSRodney W. Grimes 
135df8bae1dSRodney W. Grimes 	/*
1360d94caffSDavid Greenman 	 * Use the kernel object for wired-down kernel pages. Assume that no
1370d94caffSDavid Greenman 	 * region of the kernel object is referenced more than once.
138df8bae1dSRodney W. Grimes 	 */
139df8bae1dSRodney W. Grimes 
140df8bae1dSRodney W. Grimes 	/*
1410d94caffSDavid Greenman 	 * Locate sufficient space in the map.  This will give us the final
1420d94caffSDavid Greenman 	 * virtual address for the new memory, and thus will tell us the
1430d94caffSDavid Greenman 	 * offset within the kernel map.
144df8bae1dSRodney W. Grimes 	 */
145df8bae1dSRodney W. Grimes 	vm_map_lock(map);
146e47ed70bSJohn Dyson 	if (vm_map_findspace(map, vm_map_min(map), size, &addr)) {
147df8bae1dSRodney W. Grimes 		vm_map_unlock(map);
148df8bae1dSRodney W. Grimes 		return (0);
149df8bae1dSRodney W. Grimes 	}
150df8bae1dSRodney W. Grimes 	offset = addr - VM_MIN_KERNEL_ADDRESS;
151df8bae1dSRodney W. Grimes 	vm_object_reference(kernel_object);
152bd7e5f99SJohn Dyson 	vm_map_insert(map, kernel_object, offset, addr, addr + size,
153bd7e5f99SJohn Dyson 		VM_PROT_ALL, VM_PROT_ALL, 0);
154df8bae1dSRodney W. Grimes 	vm_map_unlock(map);
155df8bae1dSRodney W. Grimes 
156df8bae1dSRodney W. Grimes 	/*
1570d94caffSDavid Greenman 	 * Guarantee that there are pages already in this object before
1588f101a2fSJonathan Mini 	 * calling vm_map_wire.  This is to prevent the following
1590d94caffSDavid Greenman 	 * scenario:
160df8bae1dSRodney W. Grimes 	 *
1610d94caffSDavid Greenman 	 * 1) Threads have swapped out, so that there is a pager for the
1620d94caffSDavid Greenman 	 * kernel_object. 2) The kmsg zone is empty, and so we are
1638f101a2fSJonathan Mini 	 * kmem_allocing a new page for it. 3) vm_map_wire calls vm_fault;
1640d94caffSDavid Greenman 	 * there is no page, but there is a pager, so we call
1650d94caffSDavid Greenman 	 * pager_data_request.  But the kmsg zone is empty, so we must
1660d94caffSDavid Greenman 	 * kmem_alloc. 4) goto 1 5) Even if the kmsg zone is not empty: when
1670d94caffSDavid Greenman 	 * we get the data back from the pager, it will be (very stale)
1680d94caffSDavid Greenman 	 * non-zero data.  kmem_alloc is defined to return zero-filled memory.
169df8bae1dSRodney W. Grimes 	 *
1700d94caffSDavid Greenman 	 * We're intentionally not activating the pages we allocate to prevent a
1718f101a2fSJonathan Mini 	 * race with page-out.  vm_map_wire will wire the pages.
172df8bae1dSRodney W. Grimes 	 */
17349c06616SAlan Cox 	VM_OBJECT_LOCK(kernel_object);
174df8bae1dSRodney W. Grimes 	for (i = 0; i < size; i += PAGE_SIZE) {
175df8bae1dSRodney W. Grimes 		vm_page_t mem;
176df8bae1dSRodney W. Grimes 
17795461b45SJohn Dyson 		mem = vm_page_grab(kernel_object, OFF_TO_IDX(offset + i),
178ddf4bb37SAlan Cox 		    VM_ALLOC_NOBUSY | VM_ALLOC_ZERO | VM_ALLOC_RETRY);
1797fb0c17eSDavid Greenman 		mem->valid = VM_PAGE_BITS_ALL;
1809f5c801bSAlan Cox 		KASSERT((mem->flags & PG_UNMANAGED) != 0,
1819f5c801bSAlan Cox 		    ("kmem_alloc: page %p is managed", mem));
182df8bae1dSRodney W. Grimes 	}
18349c06616SAlan Cox 	VM_OBJECT_UNLOCK(kernel_object);
184df8bae1dSRodney W. Grimes 
185df8bae1dSRodney W. Grimes 	/*
186df8bae1dSRodney W. Grimes 	 * And finally, mark the data as non-pageable.
187df8bae1dSRodney W. Grimes 	 */
188abd498aaSBruce M Simpson 	(void) vm_map_wire(map, addr, addr + size,
189abd498aaSBruce M Simpson 	    VM_MAP_WIRE_SYSTEM|VM_MAP_WIRE_NOHOLES);
190df8bae1dSRodney W. Grimes 
191df8bae1dSRodney W. Grimes 	return (addr);
192df8bae1dSRodney W. Grimes }
193df8bae1dSRodney W. Grimes 
194df8bae1dSRodney W. Grimes /*
195df8bae1dSRodney W. Grimes  *	kmem_free:
196df8bae1dSRodney W. Grimes  *
197df8bae1dSRodney W. Grimes  *	Release a region of kernel virtual memory allocated
198df8bae1dSRodney W. Grimes  *	with kmem_alloc, and return the physical pages
199df8bae1dSRodney W. Grimes  *	associated with that region.
2001c7c3c6aSMatthew Dillon  *
2011c7c3c6aSMatthew Dillon  *	This routine may not block on kernel maps.
202df8bae1dSRodney W. Grimes  */
2030d94caffSDavid Greenman void
2040d94caffSDavid Greenman kmem_free(map, addr, size)
205df8bae1dSRodney W. Grimes 	vm_map_t map;
206030f2369SAlfred Perlstein 	vm_offset_t addr;
207df8bae1dSRodney W. Grimes 	vm_size_t size;
208df8bae1dSRodney W. Grimes {
20923955314SAlfred Perlstein 
210df8bae1dSRodney W. Grimes 	(void) vm_map_remove(map, trunc_page(addr), round_page(addr + size));
211df8bae1dSRodney W. Grimes }
212df8bae1dSRodney W. Grimes 
213df8bae1dSRodney W. Grimes /*
214df8bae1dSRodney W. Grimes  *	kmem_suballoc:
215df8bae1dSRodney W. Grimes  *
216df8bae1dSRodney W. Grimes  *	Allocates a map to manage a subrange
217df8bae1dSRodney W. Grimes  *	of the kernel virtual address space.
218df8bae1dSRodney W. Grimes  *
219df8bae1dSRodney W. Grimes  *	Arguments are as follows:
220df8bae1dSRodney W. Grimes  *
221df8bae1dSRodney W. Grimes  *	parent		Map to take range from
222df8bae1dSRodney W. Grimes  *	min, max	Returned endpoints of map
223030f2369SAlfred Perlstein  *	size		Size of range to find
224df8bae1dSRodney W. Grimes  */
2250d94caffSDavid Greenman vm_map_t
2262d8acc0fSJohn Dyson kmem_suballoc(parent, min, max, size)
2276e4f51d1SAlfred Perlstein 	vm_map_t parent;
228df8bae1dSRodney W. Grimes 	vm_offset_t *min, *max;
2296e4f51d1SAlfred Perlstein 	vm_size_t size;
230df8bae1dSRodney W. Grimes {
2316e4f51d1SAlfred Perlstein 	int ret;
232df8bae1dSRodney W. Grimes 	vm_map_t result;
23323955314SAlfred Perlstein 
234df8bae1dSRodney W. Grimes 	size = round_page(size);
235df8bae1dSRodney W. Grimes 
236df8bae1dSRodney W. Grimes 	*min = (vm_offset_t) vm_map_min(parent);
237df8bae1dSRodney W. Grimes 	ret = vm_map_find(parent, NULL, (vm_offset_t) 0,
238bd7e5f99SJohn Dyson 	    min, size, TRUE, VM_PROT_ALL, VM_PROT_ALL, 0);
23924dedba9SAlan Cox 	if (ret != KERN_SUCCESS)
24024dedba9SAlan Cox 		panic("kmem_suballoc: bad status return of %d", ret);
241df8bae1dSRodney W. Grimes 	*max = *min + size;
2422d8acc0fSJohn Dyson 	result = vm_map_create(vm_map_pmap(parent), *min, *max);
243df8bae1dSRodney W. Grimes 	if (result == NULL)
244df8bae1dSRodney W. Grimes 		panic("kmem_suballoc: cannot create submap");
2456e4f51d1SAlfred Perlstein 	if (vm_map_submap(parent, *min, *max, result) != KERN_SUCCESS)
246df8bae1dSRodney W. Grimes 		panic("kmem_suballoc: unable to change range to submap");
247df8bae1dSRodney W. Grimes 	return (result);
248df8bae1dSRodney W. Grimes }
249df8bae1dSRodney W. Grimes 
250df8bae1dSRodney W. Grimes /*
2511c7c3c6aSMatthew Dillon  *	kmem_malloc:
2521c7c3c6aSMatthew Dillon  *
253df8bae1dSRodney W. Grimes  * 	Allocate wired-down memory in the kernel's address map for the higher
254df8bae1dSRodney W. Grimes  * 	level kernel memory allocator (kern/kern_malloc.c).  We cannot use
255df8bae1dSRodney W. Grimes  * 	kmem_alloc() because we may need to allocate memory at interrupt
256df8bae1dSRodney W. Grimes  * 	level where we cannot block (canwait == FALSE).
257df8bae1dSRodney W. Grimes  *
258df8bae1dSRodney W. Grimes  * 	This routine has its own private kernel submap (kmem_map) and object
259df8bae1dSRodney W. Grimes  * 	(kmem_object).  This, combined with the fact that only malloc uses
260df8bae1dSRodney W. Grimes  * 	this routine, ensures that we will never block in map or object waits.
261df8bae1dSRodney W. Grimes  *
262df8bae1dSRodney W. Grimes  * 	Note that this still only works in a uni-processor environment and
263df8bae1dSRodney W. Grimes  * 	when called at splhigh().
264df8bae1dSRodney W. Grimes  *
265df8bae1dSRodney W. Grimes  * 	We don't worry about expanding the map (adding entries) since entries
266df8bae1dSRodney W. Grimes  * 	for wired maps are statically allocated.
2671c7c3c6aSMatthew Dillon  *
2681c7c3c6aSMatthew Dillon  *	NOTE:  This routine is not supposed to block if M_NOWAIT is set, but
2691c7c3c6aSMatthew Dillon  *	I have not verified that it actually does not block.
27008442f8aSBosko Milekic  *
27108442f8aSBosko Milekic  *	`map' is ONLY allowed to be kmem_map or one of the mbuf submaps to
27208442f8aSBosko Milekic  *	which we never free.
273df8bae1dSRodney W. Grimes  */
274df8bae1dSRodney W. Grimes vm_offset_t
2751c7c3c6aSMatthew Dillon kmem_malloc(map, size, flags)
276030f2369SAlfred Perlstein 	vm_map_t map;
277030f2369SAlfred Perlstein 	vm_size_t size;
2781c7c3c6aSMatthew Dillon 	int flags;
279df8bae1dSRodney W. Grimes {
280030f2369SAlfred Perlstein 	vm_offset_t offset, i;
281df8bae1dSRodney W. Grimes 	vm_map_entry_t entry;
282df8bae1dSRodney W. Grimes 	vm_offset_t addr;
283df8bae1dSRodney W. Grimes 	vm_page_t m;
2841e081f88SJeff Roberson 	int pflags;
285df8bae1dSRodney W. Grimes 
286df8bae1dSRodney W. Grimes 	size = round_page(size);
287df8bae1dSRodney W. Grimes 	addr = vm_map_min(map);
288df8bae1dSRodney W. Grimes 
289df8bae1dSRodney W. Grimes 	/*
2900d94caffSDavid Greenman 	 * Locate sufficient space in the map.  This will give us the final
2910d94caffSDavid Greenman 	 * virtual address for the new memory, and thus will tell us the
2920d94caffSDavid Greenman 	 * offset within the kernel map.
293df8bae1dSRodney W. Grimes 	 */
294df8bae1dSRodney W. Grimes 	vm_map_lock(map);
295e47ed70bSJohn Dyson 	if (vm_map_findspace(map, vm_map_min(map), size, &addr)) {
296df8bae1dSRodney W. Grimes 		vm_map_unlock(map);
2970f2c2ce0SPawel Jakub Dawidek                 if ((flags & M_NOWAIT) == 0) {
29879c2840dSPawel Jakub Dawidek 			for (i = 0; i < 8; i++) {
2990f2c2ce0SPawel Jakub Dawidek 				EVENTHANDLER_INVOKE(vm_lowmem, 0);
3000f2c2ce0SPawel Jakub Dawidek 				uma_reclaim();
3010f2c2ce0SPawel Jakub Dawidek 				vm_map_lock(map);
30279c2840dSPawel Jakub Dawidek 				if (vm_map_findspace(map, vm_map_min(map),
30379c2840dSPawel Jakub Dawidek 				    size, &addr) == 0) {
30479c2840dSPawel Jakub Dawidek 					break;
30579c2840dSPawel Jakub Dawidek 				}
3060f2c2ce0SPawel Jakub Dawidek 				vm_map_unlock(map);
30779c2840dSPawel Jakub Dawidek 				tsleep(&i, 0, "nokva", (hz / 4) * (i + 1));
30879c2840dSPawel Jakub Dawidek 			}
30979c2840dSPawel Jakub Dawidek 			if (i == 8) {
3103efc015bSPeter Wemm 				panic("kmem_malloc(%ld): kmem_map too small: %ld total allocated",
3113efc015bSPeter Wemm 				    (long)size, (long)map->size);
3120f2c2ce0SPawel Jakub Dawidek 			}
3130f2c2ce0SPawel Jakub Dawidek 		} else {
314f31c239dSAlan Cox 			return (0);
315df8bae1dSRodney W. Grimes 		}
3160f2c2ce0SPawel Jakub Dawidek 	}
3170891ef4cSJohn Dyson 	offset = addr - VM_MIN_KERNEL_ADDRESS;
318df8bae1dSRodney W. Grimes 	vm_object_reference(kmem_object);
319bd7e5f99SJohn Dyson 	vm_map_insert(map, kmem_object, offset, addr, addr + size,
320bd7e5f99SJohn Dyson 		VM_PROT_ALL, VM_PROT_ALL, 0);
321df8bae1dSRodney W. Grimes 
3221c7c3c6aSMatthew Dillon 	/*
3231c7c3c6aSMatthew Dillon 	 * Note: if M_NOWAIT specified alone, allocate from
3241c7c3c6aSMatthew Dillon 	 * interrupt-safe queues only (just the free list).  If
32502cd7c3cSJohn Baldwin 	 * M_USE_RESERVE is also specified, we can also
3261c7c3c6aSMatthew Dillon 	 * allocate from the cache.  Neither of the latter two
3271c7c3c6aSMatthew Dillon 	 * flags may be specified from an interrupt since interrupts
3281c7c3c6aSMatthew Dillon 	 * are not allowed to mess with the cache queue.
3291c7c3c6aSMatthew Dillon 	 */
3301e081f88SJeff Roberson 
33195f24639SJeff Roberson 	if ((flags & (M_NOWAIT|M_USE_RESERVE)) == M_NOWAIT)
332a623fedeSAlan Cox 		pflags = VM_ALLOC_INTERRUPT | VM_ALLOC_WIRED;
33395f24639SJeff Roberson 	else
334a623fedeSAlan Cox 		pflags = VM_ALLOC_SYSTEM | VM_ALLOC_WIRED;
33595f24639SJeff Roberson 
33695f24639SJeff Roberson 	if (flags & M_ZERO)
33795f24639SJeff Roberson 		pflags |= VM_ALLOC_ZERO;
33895f24639SJeff Roberson 
339acbff226SAlan Cox 	VM_OBJECT_LOCK(kmem_object);
3401e081f88SJeff Roberson 	for (i = 0; i < size; i += PAGE_SIZE) {
3411e081f88SJeff Roberson retry:
34295f24639SJeff Roberson 		m = vm_page_alloc(kmem_object, OFF_TO_IDX(offset + i), pflags);
343df8bae1dSRodney W. Grimes 
344df8bae1dSRodney W. Grimes 		/*
3450d94caffSDavid Greenman 		 * Ran out of space, free everything up and return. Don't need
3460d94caffSDavid Greenman 		 * to lock page queues here as we know that the pages we got
3470d94caffSDavid Greenman 		 * aren't on any queues.
348df8bae1dSRodney W. Grimes 		 */
349df8bae1dSRodney W. Grimes 		if (m == NULL) {
3501c7c3c6aSMatthew Dillon 			if ((flags & M_NOWAIT) == 0) {
351acbff226SAlan Cox 				VM_OBJECT_UNLOCK(kmem_object);
352c7003c69SAlan Cox 				vm_map_unlock(map);
353b18bfc3dSJohn Dyson 				VM_WAIT;
354c7003c69SAlan Cox 				vm_map_lock(map);
355acbff226SAlan Cox 				VM_OBJECT_LOCK(kmem_object);
356b18bfc3dSJohn Dyson 				goto retry;
357b18bfc3dSJohn Dyson 			}
358ff91d780STor Egge 			/*
359ff91d780STor Egge 			 * Free the pages before removing the map entry.
360ff91d780STor Egge 			 * They are already marked busy.  Calling
361ff91d780STor Egge 			 * vm_map_delete before the pages has been freed or
362ff91d780STor Egge 			 * unbusied will cause a deadlock.
363ff91d780STor Egge 			 */
364ff91d780STor Egge 			while (i != 0) {
365ff91d780STor Egge 				i -= PAGE_SIZE;
366ff91d780STor Egge 				m = vm_page_lookup(kmem_object,
367ff91d780STor Egge 						   OFF_TO_IDX(offset + i));
36857123de6SAlan Cox 				vm_page_lock_queues();
369a623fedeSAlan Cox 				vm_page_unwire(m, 0);
370ff91d780STor Egge 				vm_page_free(m);
37157123de6SAlan Cox 				vm_page_unlock_queues();
372ff91d780STor Egge 			}
373acbff226SAlan Cox 			VM_OBJECT_UNLOCK(kmem_object);
374df8bae1dSRodney W. Grimes 			vm_map_delete(map, addr, addr + size);
375df8bae1dSRodney W. Grimes 			vm_map_unlock(map);
376f31c239dSAlan Cox 			return (0);
377df8bae1dSRodney W. Grimes 		}
3781e081f88SJeff Roberson 		if (flags & M_ZERO && (m->flags & PG_ZERO) == 0)
379fff6062aSAlan Cox 			pmap_zero_page(m);
38049c06616SAlan Cox 		m->valid = VM_PAGE_BITS_ALL;
3819f5c801bSAlan Cox 		KASSERT((m->flags & PG_UNMANAGED) != 0,
3829f5c801bSAlan Cox 		    ("kmem_malloc: page %p is managed", m));
383df8bae1dSRodney W. Grimes 	}
384acbff226SAlan Cox 	VM_OBJECT_UNLOCK(kmem_object);
385df8bae1dSRodney W. Grimes 
386df8bae1dSRodney W. Grimes 	/*
3870d94caffSDavid Greenman 	 * Mark map entry as non-pageable. Assert: vm_map_insert() will never
3880d94caffSDavid Greenman 	 * be able to extend the previous entry so there will be a new entry
3890d94caffSDavid Greenman 	 * exactly corresponding to this address range and it will have
3900d94caffSDavid Greenman 	 * wired_count == 0.
391df8bae1dSRodney W. Grimes 	 */
392df8bae1dSRodney W. Grimes 	if (!vm_map_lookup_entry(map, addr, &entry) ||
393df8bae1dSRodney W. Grimes 	    entry->start != addr || entry->end != addr + size ||
394c7003c69SAlan Cox 	    entry->wired_count != 0)
395df8bae1dSRodney W. Grimes 		panic("kmem_malloc: entry not found or misaligned");
396c7003c69SAlan Cox 	entry->wired_count = 1;
397df8bae1dSRodney W. Grimes 
398ff5dcf25SAlan Cox 	/*
399ff5dcf25SAlan Cox 	 * At this point, the kmem_object must be unlocked because
400ff5dcf25SAlan Cox 	 * vm_map_simplify_entry() calls vm_object_deallocate(), which
401ff5dcf25SAlan Cox 	 * locks the kmem_object.
402ff5dcf25SAlan Cox 	 */
403b7b2aac2SJohn Dyson 	vm_map_simplify_entry(map, entry);
404b7b2aac2SJohn Dyson 
405df8bae1dSRodney W. Grimes 	/*
4060f3b612aSAlan Cox 	 * Loop thru pages, entering them in the pmap.
407df8bae1dSRodney W. Grimes 	 */
408acbff226SAlan Cox 	VM_OBJECT_LOCK(kmem_object);
409ff5dcf25SAlan Cox 	for (i = 0; i < size; i += PAGE_SIZE) {
410a316d390SJohn Dyson 		m = vm_page_lookup(kmem_object, OFF_TO_IDX(offset + i));
4111c7c3c6aSMatthew Dillon 		/*
4121c7c3c6aSMatthew Dillon 		 * Because this is kernel_pmap, this call will not block.
4131c7c3c6aSMatthew Dillon 		 */
414eb2a0517SAlan Cox 		pmap_enter(kernel_pmap, addr + i, VM_PROT_ALL, m, VM_PROT_ALL,
415eb2a0517SAlan Cox 		    TRUE);
41666bdd5d6SAlan Cox 		vm_page_wakeup(m);
417df8bae1dSRodney W. Grimes 	}
418ff5dcf25SAlan Cox 	VM_OBJECT_UNLOCK(kmem_object);
419df8bae1dSRodney W. Grimes 	vm_map_unlock(map);
420df8bae1dSRodney W. Grimes 
421df8bae1dSRodney W. Grimes 	return (addr);
422df8bae1dSRodney W. Grimes }
423df8bae1dSRodney W. Grimes 
424df8bae1dSRodney W. Grimes /*
4251c7c3c6aSMatthew Dillon  *	kmem_alloc_wait:
426df8bae1dSRodney W. Grimes  *
427df8bae1dSRodney W. Grimes  *	Allocates pageable memory from a sub-map of the kernel.  If the submap
428df8bae1dSRodney W. Grimes  *	has no room, the caller sleeps waiting for more memory in the submap.
429df8bae1dSRodney W. Grimes  *
4301c7c3c6aSMatthew Dillon  *	This routine may block.
431df8bae1dSRodney W. Grimes  */
4320d94caffSDavid Greenman vm_offset_t
4330d94caffSDavid Greenman kmem_alloc_wait(map, size)
434df8bae1dSRodney W. Grimes 	vm_map_t map;
435df8bae1dSRodney W. Grimes 	vm_size_t size;
436df8bae1dSRodney W. Grimes {
437df8bae1dSRodney W. Grimes 	vm_offset_t addr;
43823955314SAlfred Perlstein 
439df8bae1dSRodney W. Grimes 	size = round_page(size);
440df8bae1dSRodney W. Grimes 
441df8bae1dSRodney W. Grimes 	for (;;) {
442df8bae1dSRodney W. Grimes 		/*
4430d94caffSDavid Greenman 		 * To make this work for more than one map, use the map's lock
4440d94caffSDavid Greenman 		 * to lock out sleepers/wakers.
445df8bae1dSRodney W. Grimes 		 */
446df8bae1dSRodney W. Grimes 		vm_map_lock(map);
447e47ed70bSJohn Dyson 		if (vm_map_findspace(map, vm_map_min(map), size, &addr) == 0)
448df8bae1dSRodney W. Grimes 			break;
449df8bae1dSRodney W. Grimes 		/* no space now; see if we can ever get space */
450df8bae1dSRodney W. Grimes 		if (vm_map_max(map) - vm_map_min(map) < size) {
451df8bae1dSRodney W. Grimes 			vm_map_unlock(map);
452df8bae1dSRodney W. Grimes 			return (0);
453df8bae1dSRodney W. Grimes 		}
4549688f931SAlan Cox 		map->needs_wakeup = TRUE;
4558ce2d00aSPawel Jakub Dawidek 		vm_map_unlock_and_wait(map, 0);
456df8bae1dSRodney W. Grimes 	}
4579688f931SAlan Cox 	vm_map_insert(map, NULL, 0, addr, addr + size, VM_PROT_ALL, VM_PROT_ALL, 0);
458df8bae1dSRodney W. Grimes 	vm_map_unlock(map);
459df8bae1dSRodney W. Grimes 	return (addr);
460df8bae1dSRodney W. Grimes }
461df8bae1dSRodney W. Grimes 
462df8bae1dSRodney W. Grimes /*
4631c7c3c6aSMatthew Dillon  *	kmem_free_wakeup:
464df8bae1dSRodney W. Grimes  *
46524a1cce3SDavid Greenman  *	Returns memory to a submap of the kernel, and wakes up any processes
466df8bae1dSRodney W. Grimes  *	waiting for memory in that map.
467df8bae1dSRodney W. Grimes  */
4680d94caffSDavid Greenman void
4690d94caffSDavid Greenman kmem_free_wakeup(map, addr, size)
470df8bae1dSRodney W. Grimes 	vm_map_t map;
471df8bae1dSRodney W. Grimes 	vm_offset_t addr;
472df8bae1dSRodney W. Grimes 	vm_size_t size;
473df8bae1dSRodney W. Grimes {
47423955314SAlfred Perlstein 
475df8bae1dSRodney W. Grimes 	vm_map_lock(map);
476df8bae1dSRodney W. Grimes 	(void) vm_map_delete(map, trunc_page(addr), round_page(addr + size));
4779688f931SAlan Cox 	if (map->needs_wakeup) {
4789688f931SAlan Cox 		map->needs_wakeup = FALSE;
4799688f931SAlan Cox 		vm_map_wakeup(map);
4809688f931SAlan Cox 	}
481df8bae1dSRodney W. Grimes 	vm_map_unlock(map);
482df8bae1dSRodney W. Grimes }
483df8bae1dSRodney W. Grimes 
484df8bae1dSRodney W. Grimes /*
4851c7c3c6aSMatthew Dillon  * 	kmem_init:
4861c7c3c6aSMatthew Dillon  *
4871c7c3c6aSMatthew Dillon  *	Create the kernel map; insert a mapping covering kernel text,
4881c7c3c6aSMatthew Dillon  *	data, bss, and all space allocated thus far (`boostrap' data).  The
4891c7c3c6aSMatthew Dillon  *	new map will thus map the range between VM_MIN_KERNEL_ADDRESS and
4901c7c3c6aSMatthew Dillon  *	`start' as allocated, and the range between `start' and `end' as free.
491df8bae1dSRodney W. Grimes  */
4920d94caffSDavid Greenman void
4930d94caffSDavid Greenman kmem_init(start, end)
494df8bae1dSRodney W. Grimes 	vm_offset_t start, end;
495df8bae1dSRodney W. Grimes {
496030f2369SAlfred Perlstein 	vm_map_t m;
497df8bae1dSRodney W. Grimes 
4982d8acc0fSJohn Dyson 	m = vm_map_create(kernel_pmap, VM_MIN_KERNEL_ADDRESS, end);
499c9267356SAlan Cox 	m->system_map = 1;
500df8bae1dSRodney W. Grimes 	vm_map_lock(m);
501df8bae1dSRodney W. Grimes 	/* N.B.: cannot use kgdb to debug, starting with this assignment ... */
502df8bae1dSRodney W. Grimes 	kernel_map = m;
503c9267356SAlan Cox 	(void) vm_map_insert(m, NULL, (vm_ooffset_t) 0,
504e6eaadbaSAlan Cox 	    VM_MIN_KERNEL_ADDRESS, start, VM_PROT_ALL, VM_PROT_ALL,
505e6eaadbaSAlan Cox 	    MAP_NOFAULT);
506df8bae1dSRodney W. Grimes 	/* ... and ending with the completion of the above `insert' */
507df8bae1dSRodney W. Grimes 	vm_map_unlock(m);
508df8bae1dSRodney W. Grimes }
509