pmap.c revision 130560
1139804Simp/*-
2126324Sjhb * Copyright (c) 1991 Regents of the University of California.
3126324Sjhb * All rights reserved.
4126324Sjhb * Copyright (c) 1994 John S. Dyson
5126324Sjhb * All rights reserved.
6126324Sjhb * Copyright (c) 1994 David Greenman
7126324Sjhb * All rights reserved.
8126324Sjhb *
9126324Sjhb * This code is derived from software contributed to Berkeley by
10126324Sjhb * the Systems Programming Group of the University of Utah Computer
11126324Sjhb * Science Department and William Jolitz of UUNET Technologies Inc.
12126324Sjhb *
13126324Sjhb * Redistribution and use in source and binary forms, with or without
14126324Sjhb * modification, are permitted provided that the following conditions
15126324Sjhb * are met:
16126324Sjhb * 1. Redistributions of source code must retain the above copyright
17126324Sjhb *    notice, this list of conditions and the following disclaimer.
18126324Sjhb * 2. Redistributions in binary form must reproduce the above copyright
19126324Sjhb *    notice, this list of conditions and the following disclaimer in the
20126324Sjhb *    documentation and/or other materials provided with the distribution.
21126324Sjhb * 3. All advertising materials mentioning features or use of this software
22126324Sjhb *    must display the following acknowledgement:
23126324Sjhb *	This product includes software developed by the University of
24126324Sjhb *	California, Berkeley and its contributors.
25126324Sjhb * 4. Neither the name of the University nor the names of its contributors
26126324Sjhb *    may be used to endorse or promote products derived from this software
27126324Sjhb *    without specific prior written permission.
28126324Sjhb *
29126324Sjhb * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
30126324Sjhb * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
31126324Sjhb * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
32126324Sjhb * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
33126324Sjhb * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
34126324Sjhb * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
35126324Sjhb * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
36126324Sjhb * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
37126324Sjhb * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
38126324Sjhb * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
39126324Sjhb * SUCH DAMAGE.
40126324Sjhb *
41126324Sjhb *	from:	@(#)pmap.c	7.7 (Berkeley)	5/12/91
42126324Sjhb */
43126324Sjhb/*-
44126324Sjhb * Copyright (c) 2003 Networks Associates Technology, Inc.
45126324Sjhb * All rights reserved.
46126324Sjhb *
47126324Sjhb * This software was developed for the FreeBSD Project by Jake Burkholder,
48126324Sjhb * Safeport Network Services, and Network Associates Laboratories, the
49126324Sjhb * Security Research Division of Network Associates, Inc. under
50126324Sjhb * DARPA/SPAWAR contract N66001-01-C-8035 ("CBOSS"), as part of the DARPA
51126324Sjhb * CHATS research program.
52126324Sjhb *
53126324Sjhb * Redistribution and use in source and binary forms, with or without
54126324Sjhb * modification, are permitted provided that the following conditions
55126324Sjhb * are met:
56126324Sjhb * 1. Redistributions of source code must retain the above copyright
57126324Sjhb *    notice, this list of conditions and the following disclaimer.
58126324Sjhb * 2. Redistributions in binary form must reproduce the above copyright
59126324Sjhb *    notice, this list of conditions and the following disclaimer in the
60126324Sjhb *    documentation and/or other materials provided with the distribution.
61126324Sjhb *
62154936Sjhb * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
63154936Sjhb * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
64170640Sjeff * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
65296973Scem * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
66154936Sjhb * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
67126324Sjhb * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
68126324Sjhb * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
69126324Sjhb * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
70126324Sjhb * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
71126324Sjhb * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
72126324Sjhb * SUCH DAMAGE.
73126324Sjhb */
74177372Sjeff
75126324Sjhb#include <sys/cdefs.h>
76235459Srstone__FBSDID("$FreeBSD: head/sys/i386/i386/pmap.c 130560 2004-06-16 05:42:44Z alc $");
77126324Sjhb
78126324Sjhb/*
79296927Scem *	Manages physical address maps.
80131259Sjhb *
81126324Sjhb *	In addition to hardware address maps, this
82169666Sjeff *	module is called upon to provide software-use-only
83169666Sjeff *	maps which may or may not be stored in the same
84154936Sjhb *	form as hardware maps.  These pseudo-maps are
85154936Sjhb *	used to store intermediate results from copy
86154936Sjhb *	operations to and from address spaces.
87154936Sjhb *
88296927Scem *	Since the information managed by this module is
89126324Sjhb *	also stored by the logical address mapping module,
90248186Smav *	this module may throw away valid virtual-to-physical
91248186Smav *	mappings at almost any time.  However, invalidations
92126324Sjhb *	of virtual-to-physical mappings must be done as
93248186Smav *	requested.
94126324Sjhb *
95126324Sjhb *	In order to cope with hardware architectures which
96248186Smav *	make virtual-to-physical map invalidates expensive,
97248186Smav *	this module may delay invalidate or reduced protection
98126324Sjhb *	operations until such time as they are actually
99165272Skmacy *	necessary.  This module is given full information as
100126324Sjhb *	to which processors are currently using which maps,
101126324Sjhb *	and to when physical maps must be made correct.
102126324Sjhb */
103126324Sjhb
104126324Sjhb#include "opt_cpu.h"
105126324Sjhb#include "opt_pmap.h"
106126324Sjhb#include "opt_msgbuf.h"
107126324Sjhb#include "opt_kstack_pages.h"
108126324Sjhb
109126324Sjhb#include <sys/param.h>
110126324Sjhb#include <sys/systm.h>
111126324Sjhb#include <sys/kernel.h>
112126324Sjhb#include <sys/lock.h>
113126324Sjhb#include <sys/mman.h>
114126324Sjhb#include <sys/msgbuf.h>
115126324Sjhb#include <sys/mutex.h>
116126324Sjhb#include <sys/proc.h>
117126324Sjhb#include <sys/sx.h>
118126324Sjhb#include <sys/user.h>
119165272Skmacy#include <sys/vmmeter.h>
120200447Sattilio#include <sys/sched.h>
121126324Sjhb#include <sys/sysctl.h>
122126324Sjhb#ifdef SMP
123126324Sjhb#include <sys/smp.h>
124201879Sattilio#endif
125136445Sjhb
126164325Spjd#include <vm/vm.h>
127126324Sjhb#include <vm/vm_param.h>
128126324Sjhb#include <vm/vm_kern.h>
129126324Sjhb#include <vm/vm_page.h>
130126324Sjhb#include <vm/vm_map.h>
131126324Sjhb#include <vm/vm_object.h>
132126324Sjhb#include <vm/vm_extern.h>
133131259Sjhb#include <vm/vm_pageout.h>
134131259Sjhb#include <vm/vm_pager.h>
135131259Sjhb#include <vm/uma.h>
136131259Sjhb
137126324Sjhb#include <machine/cpu.h>
138126324Sjhb#include <machine/cputypes.h>
139131259Sjhb#include <machine/md_var.h>
140131259Sjhb#include <machine/specialreg.h>
141227309Sed#ifdef SMP
142227309Sed#include <machine/smp.h>
143131259Sjhb#endif
144131259Sjhb
145131259Sjhb#if !defined(CPU_ENABLE_SSE) && defined(I686_CPU)
146177372Sjeff#define CPU_ENABLE_SSE
147177372Sjeff#endif
148177372Sjeff#if defined(CPU_DISABLE_SSE)
149131259Sjhb#undef CPU_ENABLE_SSE
150126324Sjhb#endif
151169666Sjeff
152126324Sjhb#ifndef PMAP_SHPGPERPROC
153126324Sjhb#define PMAP_SHPGPERPROC 200
154126324Sjhb#endif
155126324Sjhb
156177085Sjeff#if defined(DIAGNOSTIC)
157165272Skmacy#define PMAP_DIAGNOSTIC
158277528Shselasky#endif
159169666Sjeff
160169666Sjeff#define MINPV 2048
161169666Sjeff
162169666Sjeff#if !defined(PMAP_DIAGNOSTIC)
163181334Sjhb#define PMAP_INLINE __inline
164169666Sjeff#else
165177085Sjeff#define PMAP_INLINE
166126324Sjhb#endif
167126324Sjhb
168235459Srstone/*
169235459Srstone * Get PDEs and PTEs for user/kernel address space
170235459Srstone */
171126324Sjhb#define	pmap_pde(m, v)	(&((m)->pm_pdir[(vm_offset_t)(v) >> PDRSHIFT]))
172267820Sattilio#define pdir_pde(m, v) (m[(vm_offset_t)(v) >> PDRSHIFT])
173267820Sattilio
174267820Sattilio#define pmap_pde_v(pte)		((*(int *)pte & PG_V) != 0)
175126324Sjhb#define pmap_pte_w(pte)		((*(int *)pte & PG_W) != 0)
176267820Sattilio#define pmap_pte_m(pte)		((*(int *)pte & PG_M) != 0)
177267820Sattilio#define pmap_pte_u(pte)		((*(int *)pte & PG_A) != 0)
178267820Sattilio#define pmap_pte_v(pte)		((*(int *)pte & PG_V) != 0)
179126324Sjhb
180267820Sattilio#define pmap_pte_set_w(pte, v)	((v) ? atomic_set_int((u_int *)(pte), PG_W) : \
181131259Sjhb    atomic_clear_int((u_int *)(pte), PG_W))
182267820Sattilio#define pmap_pte_set_prot(pte, v) ((*(int *)pte &= ~PG_PROT), (*(int *)pte |= (v)))
183126324Sjhb
184126324Sjhbstruct pmap kernel_pmap_store;
185267820SattilioLIST_HEAD(pmaplist, pmap);
186131259Sjhbstatic struct pmaplist allpmaps;
187131259Sjhbstatic struct mtx allpmaps_lock;
188131259Sjhb#ifdef SMP
189131259Sjhbstatic struct mtx lazypmap_lock;
190131259Sjhb#endif
191131259Sjhb
192131259Sjhbvm_paddr_t avail_end;	/* PA of last available physical page */
193131259Sjhbvm_offset_t virtual_avail;	/* VA of first avail page (after kernel bss) */
194267820Sattiliovm_offset_t virtual_end;	/* VA of last avail page (end of kernel AS) */
195267820Sattiliostatic boolean_t pmap_initialized = FALSE;	/* Has pmap_init completed? */
196267820Sattilioint pgeflag = 0;		/* PG_G or-in */
197267820Sattilioint pseflag = 0;		/* PG_PS or-in */
198267820Sattilio
199131259Sjhbstatic int nkpt;
200267820Sattiliovm_offset_t kernel_vm_end;
201267820Sattilioextern u_int32_t KERNend;
202267820Sattilio
203267820Sattilio#ifdef PAE
204267820Sattiliostatic uma_zone_t pdptzone;
205267820Sattilio#endif
206267820Sattilio
207267820Sattilio/*
208267820Sattilio * Data for the pv entry allocation mechanism
209267820Sattilio */
210267820Sattiliostatic uma_zone_t pvzone;
211267820Sattiliostatic struct vm_object pvzone_obj;
212267820Sattiliostatic int pv_entry_count = 0, pv_entry_max = 0, pv_entry_high_water = 0;
213267820Sattilioint pmap_pagedaemon_waken;
214126324Sjhb
215169666Sjeff/*
216169666Sjeff * All those kernel PT submaps that BSD is so fond of
217169666Sjeff */
218169666Sjeffpt_entry_t *CMAP1 = 0;
219169666Sjeffstatic pt_entry_t *CMAP2, *CMAP3, *ptmmap;
220169666Sjeffcaddr_t CADDR1 = 0, ptvmmap = 0;
221169666Sjeffstatic caddr_t CADDR2, CADDR3;
222126324Sjhbstatic struct mtx CMAPCADDR12_lock;
223126324Sjhbstatic pt_entry_t *msgbufmap;
224126324Sjhbstruct msgbuf *msgbufp = 0;
225126324Sjhb
226169666Sjeff/*
227126324Sjhb * Crashdump maps.
228126324Sjhb */
229126324Sjhbstatic pt_entry_t *pt_crashdumpmap;
230126324Sjhbstatic caddr_t crashdumpmap;
231126324Sjhb
232169666Sjeff#ifdef SMP
233126324Sjhbextern pt_entry_t *SMPpt;
234126324Sjhb#endif
235126324Sjhbstatic pt_entry_t *PMAP1 = 0, *PMAP2;
236126324Sjhbstatic pt_entry_t *PADDR1 = 0, *PADDR2;
237126324Sjhb#ifdef SMP
238126324Sjhbstatic int PMAP1cpu;
239126324Sjhbstatic int PMAP1changedcpu;
240126324SjhbSYSCTL_INT(_debug, OID_AUTO, PMAP1changedcpu, CTLFLAG_RD,
241126324Sjhb	   &PMAP1changedcpu, 0,
242169666Sjeff	   "Number of times pmap_pte_quick changed CPU with same PMAP1");
243126324Sjhb#endif
244126324Sjhbstatic int PMAP1changed;
245126324SjhbSYSCTL_INT(_debug, OID_AUTO, PMAP1changed, CTLFLAG_RD,
246136445Sjhb	   &PMAP1changed, 0,
247136445Sjhb	   "Number of times pmap_pte_quick changed PMAP1");
248136445Sjhbstatic int PMAP1unchanged;
249136445SjhbSYSCTL_INT(_debug, OID_AUTO, PMAP1unchanged, CTLFLAG_RD,
250136445Sjhb	   &PMAP1unchanged, 0,
251136445Sjhb	   "Number of times pmap_pte_quick didn't change PMAP1");
252136445Sjhb
253136445Sjhbstatic PMAP_INLINE void	free_pv_entry(pv_entry_t pv);
254136445Sjhbstatic pv_entry_t get_pv_entry(void);
255136445Sjhbstatic void	pmap_clear_ptes(vm_page_t m, int bit);
256136445Sjhb
257136445Sjhbstatic int pmap_remove_pte(pmap_t pmap, pt_entry_t *ptq, vm_offset_t sva);
258126324Sjhbstatic void pmap_remove_page(struct pmap *pmap, vm_offset_t va);
259136445Sjhbstatic int pmap_remove_entry(struct pmap *pmap, vm_page_t m,
260136445Sjhb					vm_offset_t va);
261126324Sjhbstatic void pmap_insert_entry(pmap_t pmap, vm_offset_t va,
262126324Sjhb		vm_page_t mpte, vm_page_t m);
263126324Sjhb
264126324Sjhbstatic vm_page_t pmap_allocpte(pmap_t pmap, vm_offset_t va);
265126324Sjhb
266126324Sjhbstatic vm_page_t _pmap_allocpte(pmap_t pmap, unsigned ptepindex);
267126324Sjhbstatic pt_entry_t *pmap_pte_quick(pmap_t pmap, vm_offset_t va);
268126324Sjhbstatic int pmap_unuse_pt(pmap_t, vm_offset_t, vm_page_t);
269126324Sjhbstatic vm_offset_t pmap_kmem_choose(vm_offset_t addr);
270136445Sjhb#ifdef PAE
271126324Sjhbstatic void *pmap_pdpt_allocf(uma_zone_t zone, int bytes, u_int8_t *flags, int wait);
272126324Sjhb#endif
273126324Sjhb
274126324SjhbCTASSERT(1 << PDESHIFT == sizeof(pd_entry_t));
275126324SjhbCTASSERT(1 << PTESHIFT == sizeof(pt_entry_t));
276126324Sjhb
277126324Sjhb/*
278126324Sjhb * Move the kernel virtual free pointer to the next
279126324Sjhb * 4MB.  This is used to help improve performance
280126324Sjhb * by using a large (4MB) page for much of the kernel
281126324Sjhb * (.text, .data, .bss)
282126324Sjhb */
283126324Sjhbstatic vm_offset_t
284126324Sjhbpmap_kmem_choose(vm_offset_t addr)
285126324Sjhb{
286126324Sjhb	vm_offset_t newaddr = addr;
287126324Sjhb
288126324Sjhb#ifndef DISABLE_PSE
289126324Sjhb	if (cpu_feature & CPUID_PSE)
290137277Sjhb		newaddr = (addr + PDRMASK) & ~PDRMASK;
291126324Sjhb#endif
292126324Sjhb	return newaddr;
293126324Sjhb}
294126324Sjhb
295126324Sjhb/*
296165272Skmacy *	Bootstrap the system enough to run with virtual memory.
297165272Skmacy *
298126324Sjhb *	On the i386 this is called after mapping has already been enabled
299126324Sjhb *	and just syncs the pmap module with what has already been done.
300136445Sjhb *	[We can't call it easily with mapping off since the kernel is not
301137277Sjhb *	mapped with PA == VA, hence we would have to relocate every address
302126324Sjhb *	from the linked base (virtual) address "KERNBASE" to the actual
303126324Sjhb *	(physical) address starting relative to 0]
304126324Sjhb */
305126324Sjhbvoid
306126324Sjhbpmap_bootstrap(firstaddr, loadaddr)
307126324Sjhb	vm_paddr_t firstaddr;
308165272Skmacy	vm_paddr_t loadaddr;
309126324Sjhb{
310150177Sjhb	vm_offset_t va;
311247588Sjhb	pt_entry_t *pte;
312247588Sjhb	int i;
313240423Sattilio
314150177Sjhb	/*
315136445Sjhb	 * XXX The calculation of virtual_avail is wrong. It's NKPT*PAGE_SIZE too
316136445Sjhb	 * large. It should instead be correctly calculated in locore.s and
317136445Sjhb	 * not based on 'first' (which is a physical address, not a virtual
318136445Sjhb	 * address, for the start of unused physical memory). The kernel
319136445Sjhb	 * page tables are NOT double mapped and thus should not be included
320136445Sjhb	 * in this calculation.
321136445Sjhb	 */
322136445Sjhb	virtual_avail = (vm_offset_t) KERNBASE + firstaddr;
323126324Sjhb	virtual_avail = pmap_kmem_choose(virtual_avail);
324165272Skmacy
325165292Skmacy	virtual_end = VM_MAX_KERNEL_ADDRESS;
326165291Sache
327165292Skmacy	/*
328200447Sattilio	 * Initialize the kernel pmap (which is statically allocated).
329165292Skmacy	 */
330200447Sattilio	kernel_pmap->pm_pdir = (pd_entry_t *) (KERNBASE + (u_int)IdlePTD);
331200447Sattilio#ifdef PAE
332200447Sattilio	kernel_pmap->pm_pdpt = (pdpt_entry_t *) (KERNBASE + (u_int)IdlePDPT);
333200447Sattilio#endif
334165272Skmacy	kernel_pmap->pm_active = -1;	/* don't allow deactivation */
335165272Skmacy	TAILQ_INIT(&kernel_pmap->pm_pvlist);
336165272Skmacy	LIST_INIT(&allpmaps);
337165292Skmacy#ifdef SMP
338165272Skmacy	mtx_init(&lazypmap_lock, "lazypmap", NULL, MTX_SPIN);
339131259Sjhb#endif
340131259Sjhb	mtx_init(&allpmaps_lock, "allpmaps", NULL, MTX_SPIN);
341131259Sjhb	mtx_lock_spin(&allpmaps_lock);
342131259Sjhb	LIST_INSERT_HEAD(&allpmaps, kernel_pmap, pm_list);
343131259Sjhb	mtx_unlock_spin(&allpmaps_lock);
344131259Sjhb	nkpt = NKPT;
345131259Sjhb
346131259Sjhb	/*
347165292Skmacy	 * Reserve some special page table entries/VA space for temporary
348126324Sjhb	 * mapping of pages.
349126324Sjhb	 */
350201879Sattilio#define	SYSMAP(c, p, v, n)	\
351126324Sjhb	v = (c)va; va += ((n)*PAGE_SIZE); p = pte; pte += (n);
352126324Sjhb
353126488Sjhb	va = virtual_avail;
354136445Sjhb	pte = vtopte(va);
355126324Sjhb
356126324Sjhb	/*
357172155Sattilio	 * CMAP1/CMAP2 are used for zeroing and copying pages.
358165272Skmacy	 * CMAP3 is used for the idle process page zeroing.
359200447Sattilio	 */
360126324Sjhb	SYSMAP(caddr_t, CMAP1, CADDR1, 1)
361165272Skmacy	SYSMAP(caddr_t, CMAP2, CADDR2, 1)
362126324Sjhb	SYSMAP(caddr_t, CMAP3, CADDR3, 1)
363126324Sjhb	*CMAP3 = 0;
364155741Sdavidxu
365134013Sjhb	mtx_init(&CMAPCADDR12_lock, "CMAPCADDR12", NULL, MTX_DEF);
366155741Sdavidxu
367155741Sdavidxu	/*
368172155Sattilio	 * Crashdump maps.
369126324Sjhb	 */
370126324Sjhb	SYSMAP(caddr_t, pt_crashdumpmap, crashdumpmap, MAXDUMPPGS);
371126324Sjhb
372126324Sjhb	/*
373126324Sjhb	 * ptvmmap is used for reading arbitrary physical pages via /dev/mem.
374126324Sjhb	 * XXX ptmmap is not used.
375126324Sjhb	 */
376247783Sdavide	SYSMAP(caddr_t, ptmmap, ptvmmap, 1)
377247783Sdavide
378126324Sjhb	/*
379277528Shselasky	 * msgbufp is used to map the system message buffer.
380126324Sjhb	 * XXX msgbufmap is not used.
381126324Sjhb	 */
382126324Sjhb	SYSMAP(struct msgbuf *, msgbufmap, msgbufp,
383277528Shselasky	       atop(round_page(MSGBUF_SIZE)))
384277528Shselasky
385277528Shselasky	/*
386277528Shselasky	 * ptemap is used for pmap_pte_quick
387277528Shselasky	 */
388297466Sjhb	SYSMAP(pt_entry_t *, PMAP1, PADDR1, 1);
389297466Sjhb	SYSMAP(pt_entry_t *, PMAP2, PADDR2, 1);
390247783Sdavide
391247783Sdavide	virtual_avail = va;
392126324Sjhb
393126324Sjhb	*CMAP1 = *CMAP2 = 0;
394126324Sjhb	for (i = 0; i < NKPT; i++)
395200447Sattilio		PTD[i] = 0;
396200447Sattilio
397200447Sattilio	/* Turn on PG_G on kernel page(s) */
398200447Sattilio	pmap_set_pg();
399200447Sattilio}
400200447Sattilio
401200447Sattilio/*
402200447Sattilio * Set PG_G on kernel pages.  Only the BSP calls this when SMP is turned on.
403200447Sattilio */
404200447Sattiliovoid
405200447Sattiliopmap_set_pg(void)
406200447Sattilio{
407200447Sattilio	pd_entry_t pdir;
408200447Sattilio	pt_entry_t *pte;
409200447Sattilio	vm_offset_t va, endva;
410200447Sattilio	int i;
411126324Sjhb
412126324Sjhb	if (pgeflag == 0)
413170294Sjeff		return;
414170294Sjeff
415126324Sjhb	i = KERNLOAD/NBPDR;
416155741Sdavidxu	endva = KERNBASE + KERNend;
417177085Sjeff
418126324Sjhb	if (pseflag) {
419126324Sjhb		va = KERNBASE + KERNLOAD;
420126324Sjhb		while (va  < endva) {
421126324Sjhb			pdir = kernel_pmap->pm_pdir[KPTDI+i];
422126324Sjhb			pdir |= pgeflag;
423155741Sdavidxu			kernel_pmap->pm_pdir[KPTDI+i] = PTD[KPTDI+i] = pdir;
424248470Sjhb			invltlb();	/* Play it safe, invltlb() every time */
425126324Sjhb			i++;
426126324Sjhb			va += NBPDR;
427155741Sdavidxu		}
428126324Sjhb	} else {
429126324Sjhb		va = (vm_offset_t)btext;
430126324Sjhb		while (va < endva) {
431211523Sdavidxu			pte = vtopte(va);
432211523Sdavidxu			if (*pte)
433211523Sdavidxu				*pte |= pgeflag;
434211534Sdavidxu			invltlb();	/* Play it safe, invltlb() every time */
435211523Sdavidxu			va += PAGE_SIZE;
436211523Sdavidxu		}
437211523Sdavidxu	}
438177375Sjeff}
439177375Sjeff
440177375Sjeff#ifdef PAE
441177375Sjeffstatic void *
442177375Sjeffpmap_pdpt_allocf(uma_zone_t zone, int bytes, u_int8_t *flags, int wait)
443177375Sjeff{
444177471Sjeff	*flags = UMA_SLAB_PRIV;
445177375Sjeff	return (contigmalloc(PAGE_SIZE, NULL, 0, 0x0ULL, 0xffffffffULL, 1, 0));
446177375Sjeff}
447177375Sjeff#endif
448177375Sjeff
449177375Sjeff/*
450129241Sbde *	Initialize the pmap module.
451173601Sjulian *	Called by vm_init, to initialize any structures that the pmap
452126324Sjhb *	system needs to map virtual memory.
453155741Sdavidxu *	pmap_init has been enhanced to support in a fairly consistant
454155741Sdavidxu *	way, discontiguous physical memory.
455248470Sjhb */
456302328Skibvoid
457155741Sdavidxupmap_init(void)
458302328Skib{
459302328Skib	int i;
460302328Skib
461302328Skib	/*
462302328Skib	 * Allocate memory for random pmap data structures.  Includes the
463302328Skib	 * pv_head_table.
464302328Skib	 */
465302328Skib
466302328Skib	for(i = 0; i < vm_page_array_size; i++) {
467155741Sdavidxu		vm_page_t m;
468155741Sdavidxu
469155741Sdavidxu		m = &vm_page_array[i];
470155741Sdavidxu		TAILQ_INIT(&m->md.pv_list);
471155741Sdavidxu		m->md.pv_list_count = 0;
472155741Sdavidxu	}
473155741Sdavidxu
474155741Sdavidxu	/*
475155741Sdavidxu	 * init the pv free list
476184667Sdavidxu	 */
477184667Sdavidxu	pvzone = uma_zcreate("PV ENTRY", sizeof (struct pv_entry), NULL, NULL,
478184667Sdavidxu	    NULL, NULL, UMA_ALIGN_PTR, UMA_ZONE_VM | UMA_ZONE_NOFREE);
479209612Sjhb	uma_prealloc(pvzone, MINPV);
480184667Sdavidxu
481184667Sdavidxu#ifdef PAE
482170294Sjeff	pdptzone = uma_zcreate("PDPT", NPGPTD * sizeof(pdpt_entry_t), NULL,
483184667Sdavidxu	    NULL, NULL, NULL, (NPGPTD * sizeof(pdpt_entry_t)) - 1,
484170294Sjeff	    UMA_ZONE_VM | UMA_ZONE_NOFREE);
485184667Sdavidxu	uma_zone_set_allocf(pdptzone, pmap_pdpt_allocf);
486185502Sdavidxu#endif
487185502Sdavidxu
488185502Sdavidxu	/*
489185502Sdavidxu	 * Now it is safe to enable pv_table recording.
490211523Sdavidxu	 */
491155936Sdavidxu	pmap_initialized = TRUE;
492155936Sdavidxu}
493155936Sdavidxu
494155936Sdavidxu/*
495170294Sjeff * Initialize the address space (zone) for the pv_entries.  Set a
496170294Sjeff * high water mark so that the system can recover from excessive
497181334Sjhb * numbers of pv entries.
498181334Sjhb */
499181334Sjhbvoid
500181334Sjhbpmap_init2()
501181334Sjhb{
502181334Sjhb	int shpgperproc = PMAP_SHPGPERPROC;
503181334Sjhb
504181334Sjhb	TUNABLE_INT_FETCH("vm.pmap.shpgperproc", &shpgperproc);
505181334Sjhb	pv_entry_max = shpgperproc * maxproc + vm_page_array_size;
506170294Sjeff	TUNABLE_INT_FETCH("vm.pmap.pv_entries", &pv_entry_max);
507170294Sjeff	pv_entry_high_water = 9 * (pv_entry_max / 10);
508170294Sjeff	uma_zone_set_obj(pvzone, &pvzone_obj, pv_entry_max);
509155741Sdavidxu}
510126324Sjhb
511126324Sjhb
512126324Sjhb/***************************************************
513170294Sjeff * Low level helper routines.....
514170294Sjeff ***************************************************/
515126324Sjhb
516126324Sjhb#if defined(PMAP_DIAGNOSTIC)
517177085Sjeff
518126324Sjhb/*
519126324Sjhb * This code checks for non-writeable/modified pages.
520175654Sjhb * This should be an invalid condition.
521126324Sjhb */
522126324Sjhbstatic int
523126324Sjhbpmap_nw_modified(pt_entry_t ptea)
524126324Sjhb{
525126324Sjhb	int pte;
526170294Sjeff
527175654Sjhb	pte = (int) ptea;
528175654Sjhb
529175654Sjhb	if ((pte & (PG_M|PG_RW)) == PG_M)
530175654Sjhb		return 1;
531175654Sjhb	else
532126324Sjhb		return 0;
533126324Sjhb}
534126324Sjhb#endif
535126324Sjhb
536175654Sjhb
537175654Sjhb/*
538175654Sjhb * this routine defines the region(s) of memory that should
539175654Sjhb * not be tested for the modified bit.
540175654Sjhb */
541175654Sjhbstatic PMAP_INLINE int
542175654Sjhbpmap_track_modified(vm_offset_t va)
543175654Sjhb{
544175654Sjhb	if ((va < kmi.clean_sva) || (va >= kmi.clean_eva))
545181334Sjhb		return 1;
546181334Sjhb	else
547181334Sjhb		return 0;
548181334Sjhb}
549181334Sjhb
550181334Sjhb#ifdef I386_CPU
551181334Sjhb/*
552181334Sjhb * i386 only has "invalidate everything" and no SMP to worry about.
553181334Sjhb */
554175654SjhbPMAP_INLINE void
555175654Sjhbpmap_invalidate_page(pmap_t pmap, vm_offset_t va)
556175654Sjhb{
557177372Sjeff
558177372Sjeff	if (pmap == kernel_pmap || pmap->pm_active)
559177372Sjeff		invltlb();
560177372Sjeff}
561177085Sjeff
562177085SjeffPMAP_INLINE void
563170294Sjeffpmap_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
564235459Srstone{
565126324Sjhb
566178272Sjeff	if (pmap == kernel_pmap || pmap->pm_active)
567126324Sjhb		invltlb();
568129241Sbde}
569173600Sjulian
570126324SjhbPMAP_INLINE void
571126324Sjhbpmap_invalidate_all(pmap_t pmap)
572126324Sjhb{
573126324Sjhb
574126324Sjhb	if (pmap == kernel_pmap || pmap->pm_active)
575126324Sjhb		invltlb();
576277528Shselasky}
577126324Sjhb#else /* !I386_CPU */
578277528Shselasky#ifdef SMP
579277528Shselasky/*
580277528Shselasky * For SMP, these functions have to use the IPI mechanism for coherence.
581170294Sjeff */
582126324Sjhbvoid
583126324Sjhbpmap_invalidate_page(pmap_t pmap, vm_offset_t va)
584126324Sjhb{
585126324Sjhb	u_int cpumask;
586126324Sjhb	u_int other_cpus;
587126324Sjhb
588126324Sjhb	if (smp_started) {
589126324Sjhb		if (!(read_eflags() & PSL_I))
590277528Shselasky			panic("%s: interrupts disabled", __func__);
591277528Shselasky		mtx_lock_spin(&smp_tlb_mtx);
592277528Shselasky	} else
593277528Shselasky		critical_enter();
594277528Shselasky	/*
595277528Shselasky	 * We need to disable interrupt preemption but MUST NOT have
596277528Shselasky	 * interrupts disabled here.
597277528Shselasky	 * XXX we may need to hold schedlock to get a coherent pm_active
598277528Shselasky	 * XXX critical sections disable interrupts again
599277528Shselasky	 */
600277528Shselasky	if (pmap == kernel_pmap || pmap->pm_active == all_cpus) {
601277528Shselasky		invlpg(va);
602277528Shselasky		smp_invlpg(va);
603302350Sglebius	} else {
604296320Skib		cpumask = PCPU_GET(cpumask);
605277528Shselasky		other_cpus = PCPU_GET(other_cpus);
606277528Shselasky		if (pmap->pm_active & cpumask)
607277528Shselasky			invlpg(va);
608277528Shselasky		if (pmap->pm_active & other_cpus)
609126324Sjhb			smp_masked_invlpg(pmap->pm_active & other_cpus, va);
610126324Sjhb	}
611126324Sjhb	if (smp_started)
612126324Sjhb		mtx_unlock_spin(&smp_tlb_mtx);
613126324Sjhb	else
614126324Sjhb		critical_exit();
615126324Sjhb}
616126324Sjhb
617126324Sjhbvoid
618126324Sjhbpmap_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
619126324Sjhb{
620126324Sjhb	u_int cpumask;
621170294Sjeff	u_int other_cpus;
622126324Sjhb	vm_offset_t addr;
623126324Sjhb
624155741Sdavidxu	if (smp_started) {
625246417Sjhb		if (!(read_eflags() & PSL_I))
626126324Sjhb			panic("%s: interrupts disabled", __func__);
627155741Sdavidxu		mtx_lock_spin(&smp_tlb_mtx);
628155741Sdavidxu	} else
629155741Sdavidxu		critical_enter();
630155741Sdavidxu	/*
631155741Sdavidxu	 * We need to disable interrupt preemption but MUST NOT have
632126324Sjhb	 * interrupts disabled here.
633126324Sjhb	 * XXX we may need to hold schedlock to get a coherent pm_active
634126324Sjhb	 * XXX critical sections disable interrupts again
635126324Sjhb	 */
636126324Sjhb	if (pmap == kernel_pmap || pmap->pm_active == all_cpus) {
637126324Sjhb		for (addr = sva; addr < eva; addr += PAGE_SIZE)
638126324Sjhb			invlpg(addr);
639177085Sjeff		smp_invlpg_range(sva, eva);
640126324Sjhb	} else {
641170294Sjeff		cpumask = PCPU_GET(cpumask);
642126324Sjhb		other_cpus = PCPU_GET(other_cpus);
643170294Sjeff		if (pmap->pm_active & cpumask)
644170294Sjeff			for (addr = sva; addr < eva; addr += PAGE_SIZE)
645170294Sjeff				invlpg(addr);
646177085Sjeff		if (pmap->pm_active & other_cpus)
647170294Sjeff			smp_masked_invlpg_range(pmap->pm_active & other_cpus,
648126324Sjhb			    sva, eva);
649126324Sjhb	}
650126324Sjhb	if (smp_started)
651126324Sjhb		mtx_unlock_spin(&smp_tlb_mtx);
652126324Sjhb	else
653126324Sjhb		critical_exit();
654126324Sjhb}
655177085Sjeff
656126324Sjhbvoid
657155741Sdavidxupmap_invalidate_all(pmap_t pmap)
658126324Sjhb{
659126324Sjhb	u_int cpumask;
660177085Sjeff	u_int other_cpus;
661126324Sjhb
662170294Sjeff	if (smp_started) {
663155741Sdavidxu		if (!(read_eflags() & PSL_I))
664155741Sdavidxu			panic("%s: interrupts disabled", __func__);
665126324Sjhb		mtx_lock_spin(&smp_tlb_mtx);
666126324Sjhb	} else
667126324Sjhb		critical_enter();
668126324Sjhb	/*
669126324Sjhb	 * We need to disable interrupt preemption but MUST NOT have
670126324Sjhb	 * interrupts disabled here.
671126324Sjhb	 * XXX we may need to hold schedlock to get a coherent pm_active
672126324Sjhb	 * XXX critical sections disable interrupts again
673177085Sjeff	 */
674126324Sjhb	if (pmap == kernel_pmap || pmap->pm_active == all_cpus) {
675170294Sjeff		invltlb();
676126324Sjhb		smp_invltlb();
677126324Sjhb	} else {
678170294Sjeff		cpumask = PCPU_GET(cpumask);
679170294Sjeff		other_cpus = PCPU_GET(other_cpus);
680170294Sjeff		if (pmap->pm_active & cpumask)
681177085Sjeff			invltlb();
682277528Shselasky		if (pmap->pm_active & other_cpus)
683170294Sjeff			smp_masked_invltlb(pmap->pm_active & other_cpus);
684170294Sjeff	}
685131249Sjhb	if (smp_started)
686126324Sjhb		mtx_unlock_spin(&smp_tlb_mtx);
687126324Sjhb	else
688126324Sjhb		critical_exit();
689126324Sjhb}
690126324Sjhb#else /* !SMP */
691126324Sjhb/*
692126324Sjhb * Normal, non-SMP, 486+ invalidation functions.
693177085Sjeff * We inline these within pmap.c for speed.
694126324Sjhb */
695155741SdavidxuPMAP_INLINE void
696126324Sjhbpmap_invalidate_page(pmap_t pmap, vm_offset_t va)
697177085Sjeff{
698277528Shselasky
699126324Sjhb	if (pmap == kernel_pmap || pmap->pm_active)
700277528Shselasky		invlpg(va);
701155741Sdavidxu}
702155741Sdavidxu
703155741SdavidxuPMAP_INLINE void
704126324Sjhbpmap_invalidate_range(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
705155741Sdavidxu{
706126324Sjhb	vm_offset_t addr;
707126324Sjhb
708126324Sjhb	if (pmap == kernel_pmap || pmap->pm_active)
709201879Sattilio		for (addr = sva; addr < eva; addr += PAGE_SIZE)
710201879Sattilio			invlpg(addr);
711201879Sattilio}
712201879Sattilio
713201879SattilioPMAP_INLINE void
714201879Sattiliopmap_invalidate_all(pmap_t pmap)
715201879Sattilio{
716201879Sattilio
717201879Sattilio	if (pmap == kernel_pmap || pmap->pm_active)
718201879Sattilio		invltlb();
719201879Sattilio}
720201879Sattilio#endif /* !SMP */
721201879Sattilio#endif /* !I386_CPU */
722201879Sattilio
723201879Sattilio/*
724201879Sattilio * Are we current address space or kernel?  N.B. We return FALSE when
725201879Sattilio * a pmap's page table is in use because a kernel thread is borrowing
726201879Sattilio * it.  The borrowed page table can change spontaneously, making any
727201879Sattilio * dependence on its continued use subject to a race condition.
728201879Sattilio */
729201879Sattiliostatic __inline int
730201879Sattiliopmap_is_current(pmap_t pmap)
731145056Sjhb{
732145056Sjhb
733126324Sjhb	return (pmap == kernel_pmap ||
734181334Sjhb		(pmap == vmspace_pmap(curthread->td_proc->p_vmspace) &&
735145056Sjhb	    (pmap->pm_pdir[PTDPTDI] & PG_FRAME) == (PTDpde[0] & PG_FRAME)));
736126324Sjhb}
737126324Sjhb
738126324Sjhb/*
739126324Sjhb * If the given pmap is not the current pmap, Giant must be held.
740126324Sjhb */
741126324Sjhbpt_entry_t *
742165272Skmacypmap_pte(pmap_t pmap, vm_offset_t va)
743170294Sjeff{
744126324Sjhb	pd_entry_t newpf;
745126324Sjhb	pd_entry_t *pde;
746126324Sjhb
747235459Srstone	pde = pmap_pde(pmap, va);
748235459Srstone	if (*pde & PG_PS)
749126324Sjhb		return (pde);
750200447Sattilio	if (*pde != 0) {
751165272Skmacy		/* are we current address space or kernel? */
752126324Sjhb		if (pmap_is_current(pmap))
753126324Sjhb			return (vtopte(va));
754126324Sjhb		GIANT_REQUIRED;
755126324Sjhb		newpf = *pde & PG_FRAME;
756126324Sjhb		if ((*PMAP2 & PG_FRAME) != newpf) {
757126324Sjhb			*PMAP2 = newpf | PG_RW | PG_V | PG_A | PG_M;
758126324Sjhb			pmap_invalidate_page(kernel_pmap, (vm_offset_t)PADDR2);
759126324Sjhb		}
760126324Sjhb		return (PADDR2 + (i386_btop(va) & (NPTEPG - 1)));
761126324Sjhb	}
762126324Sjhb	return (0);
763131259Sjhb}
764131259Sjhb
765131259Sjhbstatic __inline void
766126324Sjhbinvlcaddr(void *caddr)
767126324Sjhb{
768126324Sjhb#ifdef I386_CPU
769126324Sjhb	invltlb();
770129188Sjhb#else
771129188Sjhb	invlpg((u_int)caddr);
772246417Sjhb#endif
773129188Sjhb}
774129241Sbde
775173600Sjulian/*
776126324Sjhb * Super fast pmap_pte routine best used when scanning
777126324Sjhb * the pv lists.  This eliminates many coarse-grained
778177085Sjeff * invltlb calls.  Note that many of the pv list
779217410Sjhb * scans are across different pmaps.  It is very wasteful
780217410Sjhb * to do an entire invltlb for checking a single mapping.
781136439Sups *
782184653Sjhb * If the given pmap is not the current pmap, vm_page_queue_mtx
783184653Sjhb * must be held and curthread pinned to a CPU.
784184653Sjhb */
785184653Sjhbstatic pt_entry_t *
786184653Sjhbpmap_pte_quick(pmap_t pmap, vm_offset_t va)
787184653Sjhb{
788184653Sjhb	pd_entry_t newpf;
789184653Sjhb	pd_entry_t *pde;
790184653Sjhb
791184653Sjhb	pde = pmap_pde(pmap, va);
792184653Sjhb	if (*pde & PG_PS)
793184653Sjhb		return (pde);
794126324Sjhb	if (*pde != 0) {
795126324Sjhb		/* are we current address space or kernel? */
796169666Sjeff		if (pmap_is_current(pmap))
797126324Sjhb			return (vtopte(va));
798169666Sjeff		mtx_assert(&vm_page_queue_mtx, MA_OWNED);
799169666Sjeff		KASSERT(curthread->td_pinned > 0, ("curthread not pinned"));
800169666Sjeff		newpf = *pde & PG_FRAME;
801169666Sjeff		if ((*PMAP1 & PG_FRAME) != newpf) {
802169666Sjeff			*PMAP1 = newpf | PG_RW | PG_V | PG_A | PG_M;
803169666Sjeff#ifdef SMP
804169666Sjeff			PMAP1cpu = PCPU_GET(cpuid);
805169666Sjeff#endif
806169666Sjeff			invlcaddr(PADDR1);
807200447Sattilio			PMAP1changed++;
808169666Sjeff		} else
809200447Sattilio#ifdef SMP
810200447Sattilio		if (PMAP1cpu != PCPU_GET(cpuid)) {
811169666Sjeff			PMAP1cpu = PCPU_GET(cpuid);
812169666Sjeff			invlcaddr(PADDR1);
813169666Sjeff			PMAP1changedcpu++;
814169666Sjeff		} else
815169666Sjeff#endif
816169666Sjeff			PMAP1unchanged++;
817169666Sjeff		return (PADDR1 + (i386_btop(va) & (NPTEPG - 1)));
818169666Sjeff	}
819169666Sjeff	return (0);
820169666Sjeff}
821169666Sjeff
822169666Sjeff/*
823169666Sjeff *	Routine:	pmap_extract
824169666Sjeff *	Function:
825200447Sattilio *		Extract the physical page address associated
826169666Sjeff *		with the given map/virtual_address pair.
827200447Sattilio */
828200447Sattiliovm_paddr_t
829169666Sjeffpmap_extract(pmap, va)
830169666Sjeff	register pmap_t pmap;
831169666Sjeff	vm_offset_t va;
832169666Sjeff{
833169666Sjeff	vm_paddr_t rtval;
834126324Sjhb	pt_entry_t *pte;
835126324Sjhb	pd_entry_t pde;
836181334Sjhb
837165272Skmacy	if (pmap == 0)
838126324Sjhb		return 0;
839126324Sjhb	pde = pmap->pm_pdir[va >> PDRSHIFT];
840137277Sjhb	if (pde != 0) {
841181334Sjhb		if ((pde & PG_PS) != 0) {
842126324Sjhb			rtval = (pde & ~PDRMASK) | (va & PDRMASK);
843126324Sjhb			return rtval;
844126324Sjhb		}
845165272Skmacy		pte = pmap_pte(pmap, va);
846126324Sjhb		rtval = ((*pte & PG_FRAME) | (va & PAGE_MASK));
847170294Sjeff		return rtval;
848181334Sjhb	}
849134013Sjhb	return 0;
850126324Sjhb
851129188Sjhb}
852137277Sjhb
853137277Sjhb/*
854137277Sjhb *	Routine:	pmap_extract_and_hold
855137277Sjhb *	Function:
856137277Sjhb *		Atomically extract and hold the physical page
857137277Sjhb *		with the given pmap and virtual address pair
858137277Sjhb *		if that mapping permits the given protection.
859165272Skmacy */
860137277Sjhbvm_page_t
861137277Sjhbpmap_extract_and_hold(pmap_t pmap, vm_offset_t va, vm_prot_t prot)
862137277Sjhb{
863137277Sjhb	vm_paddr_t pa;
864170294Sjeff	vm_page_t m;
865181334Sjhb
866170294Sjeff	m = NULL;
867181334Sjhb	mtx_lock(&Giant);
868126324Sjhb	if ((pa = pmap_extract(pmap, va)) != 0) {
869126324Sjhb		m = PHYS_TO_VM_PAGE(pa);
870126324Sjhb		vm_page_lock_queues();
871126324Sjhb		vm_page_hold(m);
872126324Sjhb		vm_page_unlock_queues();
873181334Sjhb	}
874165272Skmacy	mtx_unlock(&Giant);
875126324Sjhb	return (m);
876126324Sjhb}
877300109Smarkj
878181334Sjhb/***************************************************
879126324Sjhb * Low level mapping routines.....
880126324Sjhb ***************************************************/
881126324Sjhb
882165272Skmacy/*
883126324Sjhb * Add a wired page to the kva.
884177085Sjeff * Note: not SMP coherent.
885181334Sjhb */
886134013SjhbPMAP_INLINE void
887126324Sjhbpmap_kenter(vm_offset_t va, vm_paddr_t pa)
888129188Sjhb{
889145056Sjhb	pt_entry_t *pte;
890181334Sjhb
891300109Smarkj	pte = vtopte(va);
892170294Sjeff	pte_store(pte, pa | PG_RW | PG_V | pgeflag);
893300109Smarkj}
894170294Sjeff
895170294Sjeff/*
896181334Sjhb * Remove a page from the kernel pagetables.
897126324Sjhb * Note: not SMP coherent.
898126324Sjhb */
899126324SjhbPMAP_INLINE void
900126324Sjhbpmap_kremove(vm_offset_t va)
901126324Sjhb{
902126324Sjhb	pt_entry_t *pte;
903126324Sjhb
904126324Sjhb	pte = vtopte(va);
905126324Sjhb	pte_clear(pte);
906277528Shselasky}
907277528Shselasky
908277528Shselasky/*
909277528Shselasky *	Used to map a range of physical addresses into kernel
910277528Shselasky *	virtual address space.
911126324Sjhb *
912277528Shselasky *	The value passed in '*virt' is a suggested virtual address for
913277528Shselasky *	the mapping. Architectures which can support a direct-mapped
914129241Sbde *	physical to virtual region can return the appropriate address
915173600Sjulian *	within that region, leaving '*virt' unchanged. Other
916126324Sjhb *	architectures should map the pages starting at '*virt' and
917277528Shselasky *	update '*virt' with the first usable address after the mapped
918277528Shselasky *	region.
919277528Shselasky */
920277528Shselaskyvm_offset_t
921277528Shselaskypmap_map(vm_offset_t *virt, vm_paddr_t start, vm_paddr_t end, int prot)
922277528Shselasky{
923277528Shselasky	vm_offset_t va, sva;
924277528Shselasky
925277528Shselasky	va = sva = *virt;
926277528Shselasky	while (start < end) {
927277528Shselasky		pmap_kenter(va, start);
928277528Shselasky		va += PAGE_SIZE;
929277528Shselasky		start += PAGE_SIZE;
930277528Shselasky	}
931277528Shselasky	pmap_invalidate_range(kernel_pmap, sva, va);
932277528Shselasky	*virt = va;
933277528Shselasky	return (sva);
934277528Shselasky}
935277213Shselasky
936277528Shselasky
937277528Shselasky/*
938277528Shselasky * Add a list of wired pages to the kva
939277528Shselasky * this routine is only used for temporary
940277528Shselasky * kernel mappings that do not need to have
941277528Shselasky * page modification or references recorded.
942277213Shselasky * Note that old mappings are simply written
943277528Shselasky * over.  The page *must* be wired.
944277528Shselasky * Note: SMP coherent.  Uses a ranged shootdown IPI.
945277528Shselasky */
946277528Shselaskyvoid
947175654Sjhbpmap_qenter(vm_offset_t sva, vm_page_t *m, int count)
948277528Shselasky{
949277528Shselasky	vm_offset_t va;
950277528Shselasky
951277528Shselasky	va = sva;
952277528Shselasky	while (count-- > 0) {
953277528Shselasky		pmap_kenter(va, VM_PAGE_TO_PHYS(*m));
954277528Shselasky		va += PAGE_SIZE;
955277528Shselasky		m++;
956277528Shselasky	}
957277528Shselasky	pmap_invalidate_range(kernel_pmap, sva, va);
958277528Shselasky}
959277528Shselasky
960277528Shselasky/*
961277528Shselasky * This routine tears out page mappings from the
962277528Shselasky * kernel -- it is meant only for temporary mappings.
963277528Shselasky * Note: SMP coherent.  Uses a ranged shootdown IPI.
964170294Sjeff */
965181334Sjhbvoid
966181334Sjhbpmap_qremove(vm_offset_t sva, int count)
967126324Sjhb{
968126324Sjhb	vm_offset_t va;
969126324Sjhb
970126324Sjhb	va = sva;
971126324Sjhb	while (count-- > 0) {
972126324Sjhb		pmap_kremove(va);
973126324Sjhb		va += PAGE_SIZE;
974126324Sjhb	}
975126324Sjhb	pmap_invalidate_range(kernel_pmap, sva, va);
976126324Sjhb}
977181334Sjhb
978126324Sjhb/***************************************************
979126324Sjhb * Page table page management routines.....
980126324Sjhb ***************************************************/
981126324Sjhb
982126324Sjhb/*
983126324Sjhb * This routine unholds page table pages, and if the hold count
984126324Sjhb * drops to zero, then it decrements the wire count.
985136445Sjhb */
986126324Sjhbstatic int
987170294Sjeff_pmap_unwire_pte_hold(pmap_t pmap, vm_page_t m)
988170294Sjeff{
989170294Sjeff
990170294Sjeff	while (vm_page_sleep_if_busy(m, FALSE, "pmuwpt"))
991170294Sjeff		vm_page_lock_queues();
992170294Sjeff
993126324Sjhb	if (m->hold_count == 0) {
994126324Sjhb		vm_offset_t pteva;
995126324Sjhb		/*
996126324Sjhb		 * unmap the page table page
997170294Sjeff		 */
998170294Sjeff		pmap->pm_pdir[m->pindex] = 0;
999126324Sjhb		--pmap->pm_stats.resident_count;
1000170294Sjeff		/*
1001181334Sjhb		 * We never unwire a kernel page table page, making a
1002170294Sjeff		 * check for the kernel_pmap unnecessary.
1003126324Sjhb		 */
1004181334Sjhb		if ((pmap->pm_pdir[PTDPTDI] & PG_FRAME) == (PTDpde[0] & PG_FRAME)) {
1005181334Sjhb			/*
1006126324Sjhb			 * Do an invltlb to make the invalidated mapping
1007126324Sjhb			 * take effect immediately.
1008126324Sjhb			 */
1009129241Sbde			pteva = VM_MAXUSER_ADDRESS + i386_ptob(m->pindex);
1010129241Sbde			pmap_invalidate_page(pmap, pteva);
1011126324Sjhb		}
1012181334Sjhb
1013155741Sdavidxu		/*
1014126324Sjhb		 * If the page is finally unwired, simply free it.
1015170294Sjeff		 */
1016126324Sjhb		--m->wire_count;
1017126324Sjhb		if (m->wire_count == 0) {
1018170294Sjeff			vm_page_busy(m);
1019126324Sjhb			vm_page_free_zero(m);
1020126324Sjhb			atomic_subtract_int(&cnt.v_wire_count, 1);
1021155741Sdavidxu		}
1022126324Sjhb		return 1;
1023126324Sjhb	}
1024126324Sjhb	return 0;
1025126324Sjhb}
1026126324Sjhb
1027126324Sjhbstatic PMAP_INLINE int
1028181334Sjhbpmap_unwire_pte_hold(pmap_t pmap, vm_page_t m)
1029126324Sjhb{
1030129241Sbde	vm_page_unhold(m);
1031173600Sjulian	if (m->hold_count == 0)
1032170294Sjeff		return _pmap_unwire_pte_hold(pmap, m);
1033170294Sjeff	else
1034170294Sjeff		return 0;
1035170294Sjeff}
1036170294Sjeff
1037170294Sjeff/*
1038170294Sjeff * After removing a page table entry, this routine is used to
1039170294Sjeff * conditionally free the page, and manage the hold/wire counts.
1040181334Sjhb */
1041126324Sjhbstatic int
1042170294Sjeffpmap_unuse_pt(pmap_t pmap, vm_offset_t va, vm_page_t mpte)
1043170294Sjeff{
1044170294Sjeff
1045170294Sjeff	if (va >= VM_MAXUSER_ADDRESS)
1046170294Sjeff		return 0;
1047181334Sjhb
1048126324Sjhb	return pmap_unwire_pte_hold(pmap, mpte);
1049154936Sjhb}
1050296927Scem
1051296927Scemvoid
1052296927Scempmap_pinit0(pmap)
1053296927Scem	struct pmap *pmap;
1054296927Scem{
1055296927Scem
1056296973Scem	pmap->pm_pdir = (pd_entry_t *)(KERNBASE + (vm_offset_t)IdlePTD);
1057296927Scem#ifdef PAE
1058296927Scem	pmap->pm_pdpt = (pdpt_entry_t *)(KERNBASE + (vm_offset_t)IdlePDPT);
1059296927Scem#endif
1060296927Scem	pmap->pm_active = 0;
1061296927Scem	PCPU_SET(curpmap, pmap);
1062296927Scem	TAILQ_INIT(&pmap->pm_pvlist);
1063296927Scem	bzero(&pmap->pm_stats, sizeof pmap->pm_stats);
1064296927Scem	mtx_lock_spin(&allpmaps_lock);
1065296927Scem	LIST_INSERT_HEAD(&allpmaps, pmap, pm_list);
1066296927Scem	mtx_unlock_spin(&allpmaps_lock);
1067296927Scem}
1068296927Scem
1069296927Scem/*
1070296927Scem * Initialize a preallocated and zeroed pmap structure,
1071296927Scem * such as one in a vmspace structure.
1072296927Scem */
1073296927Scemvoid
1074296927Scempmap_pinit(pmap)
1075296927Scem	register struct pmap *pmap;
1076296927Scem{
1077296927Scem	vm_page_t m, ptdpg[NPGPTD];
1078296927Scem	vm_paddr_t pa;
1079296927Scem	static int color;
1080296927Scem	int i;
1081296927Scem
1082296927Scem	/*
1083296927Scem	 * No need to allocate page table space yet but we do need a valid
1084296927Scem	 * page directory table.
1085296927Scem	 */
1086296927Scem	if (pmap->pm_pdir == NULL) {
1087296927Scem		pmap->pm_pdir = (pd_entry_t *)kmem_alloc_nofault(kernel_map,
1088296927Scem		    NBPTD);
1089296927Scem#ifdef PAE
1090296927Scem		pmap->pm_pdpt = uma_zalloc(pdptzone, M_WAITOK | M_ZERO);
1091296927Scem		KASSERT(((vm_offset_t)pmap->pm_pdpt &
1092296927Scem		    ((NPGPTD * sizeof(pdpt_entry_t)) - 1)) == 0,
1093296927Scem		    ("pmap_pinit: pdpt misaligned"));
1094296927Scem		KASSERT(pmap_kextract((vm_offset_t)pmap->pm_pdpt) < (4ULL<<30),
1095296927Scem		    ("pmap_pinit: pdpt above 4g"));
1096296927Scem#endif
1097296927Scem	}
1098296927Scem
1099296927Scem	/*
1100296927Scem	 * allocate the page directory page(s)
1101296927Scem	 */
1102296927Scem	for (i = 0; i < NPGPTD;) {
1103296927Scem		m = vm_page_alloc(NULL, color++,
1104296927Scem		    VM_ALLOC_NORMAL | VM_ALLOC_NOOBJ | VM_ALLOC_WIRED |
1105296927Scem		    VM_ALLOC_ZERO);
1106296927Scem		if (m == NULL)
1107296927Scem			VM_WAIT;
1108296927Scem		else {
1109296927Scem			ptdpg[i++] = m;
1110296927Scem		}
1111296927Scem	}
1112296927Scem
1113296927Scem	pmap_qenter((vm_offset_t)pmap->pm_pdir, ptdpg, NPGPTD);
1114296927Scem
1115296927Scem	for (i = 0; i < NPGPTD; i++) {
1116296927Scem		if ((ptdpg[i]->flags & PG_ZERO) == 0)
1117296927Scem			bzero(pmap->pm_pdir + (i * NPDEPG), PAGE_SIZE);
1118296927Scem	}
1119296927Scem
1120296927Scem	mtx_lock_spin(&allpmaps_lock);
1121296927Scem	LIST_INSERT_HEAD(&allpmaps, pmap, pm_list);
1122296927Scem	mtx_unlock_spin(&allpmaps_lock);
1123296927Scem	/* Wire in kernel global address entries. */
1124296927Scem	/* XXX copies current process, does not fill in MPPTDI */
1125296927Scem	bcopy(PTD + KPTDI, pmap->pm_pdir + KPTDI, nkpt * sizeof(pd_entry_t));
1126296927Scem#ifdef SMP
1127296927Scem	pmap->pm_pdir[MPPTDI] = PTD[MPPTDI];
1128296927Scem#endif
1129296927Scem
1130296927Scem	/* install self-referential address mapping entry(s) */
1131296927Scem	for (i = 0; i < NPGPTD; i++) {
1132296927Scem		pa = VM_PAGE_TO_PHYS(ptdpg[i]);
1133296927Scem		pmap->pm_pdir[PTDPTDI + i] = pa | PG_V | PG_RW | PG_A | PG_M;
1134296927Scem#ifdef PAE
1135296927Scem		pmap->pm_pdpt[i] = pa | PG_V;
1136296927Scem#endif
1137296927Scem	}
1138296927Scem
1139296927Scem	pmap->pm_active = 0;
1140296927Scem	TAILQ_INIT(&pmap->pm_pvlist);
1141296927Scem	bzero(&pmap->pm_stats, sizeof pmap->pm_stats);
1142296927Scem}
1143296927Scem
1144296927Scem/*
1145296927Scem * this routine is called if the page table page is not
1146296927Scem * mapped correctly.
1147296927Scem */
1148296927Scemstatic vm_page_t
1149296927Scem_pmap_allocpte(pmap, ptepindex)
1150296927Scem	pmap_t	pmap;
1151296927Scem	unsigned ptepindex;
1152296927Scem{
1153296927Scem	vm_paddr_t ptepa;
1154296927Scem	vm_page_t m;
1155296927Scem
1156296927Scem	/*
1157296927Scem	 * Allocate a page table page.
1158296927Scem	 */
1159296927Scem	if ((m = vm_page_alloc(NULL, ptepindex, VM_ALLOC_NOOBJ |
1160296927Scem	    VM_ALLOC_WIRED | VM_ALLOC_ZERO)) == NULL) {
1161296927Scem		VM_WAIT;
1162296927Scem		/*
1163296927Scem		 * Indicate the need to retry.  While waiting, the page table
1164296973Scem		 * page may have been allocated.
1165296927Scem		 */
1166177372Sjeff		return (NULL);
1167177372Sjeff	}
1168212750Smdf	if ((m->flags & PG_ZERO) == 0)
1169177372Sjeff		pmap_zero_page(m);
1170177372Sjeff
1171177372Sjeff	KASSERT(m->queue == PQ_NONE,
1172177372Sjeff		("_pmap_allocpte: %p->queue != PQ_NONE", m));
1173177372Sjeff
1174177372Sjeff	/*
1175177372Sjeff	 * Increment the hold count for the page table page
1176177372Sjeff	 * (denoting a new mapping.)
1177177372Sjeff	 */
1178177372Sjeff	m->hold_count++;
1179177372Sjeff
1180177372Sjeff	/*
1181177372Sjeff	 * Map the pagetable page into the process address space, if
1182177372Sjeff	 * it isn't already there.
1183177372Sjeff	 */
1184177372Sjeff
1185177372Sjeff	pmap->pm_stats.resident_count++;
1186177372Sjeff
1187177372Sjeff	ptepa = VM_PAGE_TO_PHYS(m);
1188177372Sjeff	pmap->pm_pdir[ptepindex] =
1189177372Sjeff		(pd_entry_t) (ptepa | PG_U | PG_RW | PG_V | PG_A | PG_M);
1190177372Sjeff
1191177372Sjeff	vm_page_lock_queues();
1192177372Sjeff	vm_page_wakeup(m);
1193177372Sjeff	vm_page_unlock_queues();
1194177372Sjeff
1195177372Sjeff	return m;
1196177372Sjeff}
1197177372Sjeff
1198177372Sjeffstatic vm_page_t
1199177372Sjeffpmap_allocpte(pmap_t pmap, vm_offset_t va)
1200177372Sjeff{
1201177372Sjeff	unsigned ptepindex;
1202177372Sjeff	pd_entry_t ptepa;
1203177372Sjeff	vm_page_t m;
1204177372Sjeff
1205177372Sjeff	/*
1206177372Sjeff	 * Calculate pagetable page index
1207177372Sjeff	 */
1208177372Sjeff	ptepindex = va >> PDRSHIFT;
1209177372Sjeffretry:
1210177372Sjeff	/*
1211177372Sjeff	 * Get the page directory entry
1212177372Sjeff	 */
1213177372Sjeff	ptepa = pmap->pm_pdir[ptepindex];
1214177372Sjeff
1215177372Sjeff	/*
1216177372Sjeff	 * This supports switching from a 4MB page to a
1217177372Sjeff	 * normal 4K page.
1218177372Sjeff	 */
1219177372Sjeff	if (ptepa & PG_PS) {
1220177372Sjeff		pmap->pm_pdir[ptepindex] = 0;
1221177372Sjeff		ptepa = 0;
1222177372Sjeff		pmap_invalidate_all(kernel_pmap);
1223177372Sjeff	}
1224177372Sjeff
1225177372Sjeff	/*
1226177372Sjeff	 * If the page table page is mapped, we just increment the
1227177372Sjeff	 * hold count, and activate it.
1228177372Sjeff	 */
1229177372Sjeff	if (ptepa) {
1230177372Sjeff		m = PHYS_TO_VM_PAGE(ptepa);
1231177372Sjeff		m->hold_count++;
1232177372Sjeff	} else {
1233177372Sjeff		/*
1234177372Sjeff		 * Here if the pte page isn't mapped, or if it has
1235177372Sjeff		 * been deallocated.
1236177372Sjeff		 */
1237177372Sjeff		m = _pmap_allocpte(pmap, ptepindex);
1238177372Sjeff		if (m == NULL)
1239177372Sjeff			goto retry;
1240177372Sjeff	}
1241177372Sjeff	return (m);
1242177372Sjeff}
1243177372Sjeff
1244177372Sjeff
1245177372Sjeff/***************************************************
1246177372Sjeff* Pmap allocation/deallocation routines.
1247177372Sjeff ***************************************************/
1248177372Sjeff
1249177372Sjeff#ifdef SMP
1250177372Sjeff/*
1251177372Sjeff * Deal with a SMP shootdown of other users of the pmap that we are
1252177372Sjeff * trying to dispose of.  This can be a bit hairy.
1253177372Sjeff */
1254177372Sjeffstatic u_int *lazymask;
1255177372Sjeffstatic u_int lazyptd;
1256177372Sjeffstatic volatile u_int lazywait;
1257177372Sjeff
1258177372Sjeffvoid pmap_lazyfix_action(void);
1259177372Sjeff
1260177372Sjeffvoid
1261177372Sjeffpmap_lazyfix_action(void)
1262177372Sjeff{
1263177372Sjeff	u_int mymask = PCPU_GET(cpumask);
1264177372Sjeff
1265177372Sjeff	if (rcr3() == lazyptd)
1266177372Sjeff		load_cr3(PCPU_GET(curpcb)->pcb_cr3);
1267177372Sjeff	atomic_clear_int(lazymask, mymask);
1268177372Sjeff	atomic_store_rel_int(&lazywait, 1);
1269177372Sjeff}
1270177372Sjeff
1271177372Sjeffstatic void
1272177372Sjeffpmap_lazyfix_self(u_int mymask)
1273177372Sjeff{
1274177372Sjeff
1275177372Sjeff	if (rcr3() == lazyptd)
1276177372Sjeff		load_cr3(PCPU_GET(curpcb)->pcb_cr3);
1277177372Sjeff	atomic_clear_int(lazymask, mymask);
1278177372Sjeff}
1279217916Smdf
1280217916Smdf
1281217916Smdfstatic void
1282212750Smdfpmap_lazyfix(pmap_t pmap)
1283177372Sjeff{
1284177372Sjeff	u_int mymask = PCPU_GET(cpumask);
1285177372Sjeff	u_int mask;
1286177372Sjeff	register u_int spins;
1287177372Sjeff
1288177372Sjeff	while ((mask = pmap->pm_active) != 0) {
1289177372Sjeff		spins = 50000000;
1290177372Sjeff		mask = mask & -mask;	/* Find least significant set bit */
1291177372Sjeff		mtx_lock_spin(&lazypmap_lock);
1292177372Sjeff#ifdef PAE
1293177372Sjeff		lazyptd = vtophys(pmap->pm_pdpt);
1294177372Sjeff#else
1295177372Sjeff		lazyptd = vtophys(pmap->pm_pdir);
1296177372Sjeff#endif
1297177372Sjeff		if (mask == mymask) {
1298212750Smdf			lazymask = &pmap->pm_active;
1299177372Sjeff			pmap_lazyfix_self(mymask);
1300177372Sjeff		} else {
1301177372Sjeff			atomic_store_rel_int((u_int *)&lazymask,
1302177372Sjeff			    (u_int)&pmap->pm_active);
1303177372Sjeff			atomic_store_rel_int(&lazywait, 0);
1304177372Sjeff			ipi_selected(mask, IPI_LAZYPMAP);
1305177372Sjeff			while (lazywait == 0) {
1306177372Sjeff				ia32_pause();
1307177372Sjeff				if (--spins == 0)
1308177372Sjeff					break;
1309177372Sjeff			}
1310177372Sjeff		}
1311177372Sjeff		mtx_unlock_spin(&lazypmap_lock);
1312154936Sjhb		if (spins == 0)
1313154936Sjhb			printf("pmap_lazyfix: spun for 50000000\n");
1314154936Sjhb	}
1315154936Sjhb}
1316154936Sjhb
1317154944Simp#else	/* SMP */
1318154936Sjhb
1319154944Simp/*
1320154936Sjhb * Cleaning up on uniprocessor is easy.  For various reasons, we're
1321154936Sjhb * unlikely to have to even execute this code, including the fact
1322154936Sjhb * that the cleanup is deferred until the parent does a wait(2), which
1323154936Sjhb * means that another userland process has run.
1324154936Sjhb */
1325154936Sjhbstatic void
1326154936Sjhbpmap_lazyfix(pmap_t pmap)
1327154936Sjhb{
1328154936Sjhb	u_int cr3;
1329154936Sjhb
1330154936Sjhb	cr3 = vtophys(pmap->pm_pdir);
1331154936Sjhb	if (cr3 == rcr3()) {
1332154936Sjhb		load_cr3(PCPU_GET(curpcb)->pcb_cr3);
1333154936Sjhb		pmap->pm_active &= ~(PCPU_GET(cpumask));
1334154936Sjhb	}
1335154936Sjhb}
1336154936Sjhb#endif	/* SMP */
1337154936Sjhb
1338154936Sjhb/*
1339154936Sjhb * Release any resources held by the given physical map.
1340154936Sjhb * Called when a pmap initialized by pmap_pinit is being released.
1341154936Sjhb * Should only be called if the map contains no valid mappings.
1342154936Sjhb */
1343154936Sjhbvoid
1344154936Sjhbpmap_release(pmap_t pmap)
1345154936Sjhb{
1346154936Sjhb	vm_page_t m, ptdpg[NPGPTD];
1347154936Sjhb	int i;
1348154936Sjhb
1349154936Sjhb	KASSERT(pmap->pm_stats.resident_count == 0,
1350154936Sjhb	    ("pmap_release: pmap resident count %ld != 0",
1351201879Sattilio	    pmap->pm_stats.resident_count));
1352154936Sjhb
1353154936Sjhb	pmap_lazyfix(pmap);
1354164325Spjd	mtx_lock_spin(&allpmaps_lock);
1355154936Sjhb	LIST_REMOVE(pmap, pm_list);
1356154936Sjhb	mtx_unlock_spin(&allpmaps_lock);
1357154936Sjhb
1358154936Sjhb	for (i = 0; i < NPGPTD; i++)
1359154936Sjhb		ptdpg[i] = PHYS_TO_VM_PAGE(pmap->pm_pdir[PTDPTDI + i]);
1360165272Skmacy
1361165272Skmacy	bzero(pmap->pm_pdir + PTDPTDI, (nkpt + NPGPTD) *
1362165272Skmacy	    sizeof(*pmap->pm_pdir));
1363165272Skmacy#ifdef SMP
1364165272Skmacy	pmap->pm_pdir[MPPTDI] = 0;
1365165272Skmacy#endif
1366165272Skmacy
1367165272Skmacy	pmap_qremove((vm_offset_t)pmap->pm_pdir, NPGPTD);
1368165272Skmacy
1369180930Sjhb	vm_page_lock_queues();
1370165272Skmacy	for (i = 0; i < NPGPTD; i++) {
1371200447Sattilio		m = ptdpg[i];
1372165272Skmacy#ifdef PAE
1373154936Sjhb		KASSERT(VM_PAGE_TO_PHYS(m) == (pmap->pm_pdpt[i] & PG_FRAME),
1374157823Sjhb		    ("pmap_release: got wrong ptd page"));
1375157823Sjhb#endif
1376183054Ssam		m->wire_count--;
1377154936Sjhb		atomic_subtract_int(&cnt.v_wire_count, 1);
1378		vm_page_free_zero(m);
1379	}
1380	vm_page_unlock_queues();
1381}
1382
1383static int
1384kvm_size(SYSCTL_HANDLER_ARGS)
1385{
1386	unsigned long ksize = VM_MAX_KERNEL_ADDRESS - KERNBASE;
1387
1388	return sysctl_handle_long(oidp, &ksize, 0, req);
1389}
1390SYSCTL_PROC(_vm, OID_AUTO, kvm_size, CTLTYPE_LONG|CTLFLAG_RD,
1391    0, 0, kvm_size, "IU", "Size of KVM");
1392
1393static int
1394kvm_free(SYSCTL_HANDLER_ARGS)
1395{
1396	unsigned long kfree = VM_MAX_KERNEL_ADDRESS - kernel_vm_end;
1397
1398	return sysctl_handle_long(oidp, &kfree, 0, req);
1399}
1400SYSCTL_PROC(_vm, OID_AUTO, kvm_free, CTLTYPE_LONG|CTLFLAG_RD,
1401    0, 0, kvm_free, "IU", "Amount of KVM free");
1402
1403/*
1404 * grow the number of kernel page table entries, if needed
1405 */
1406void
1407pmap_growkernel(vm_offset_t addr)
1408{
1409	struct pmap *pmap;
1410	vm_paddr_t ptppaddr;
1411	vm_page_t nkpg;
1412	pd_entry_t newpdir;
1413	pt_entry_t *pde;
1414
1415	mtx_assert(&kernel_map->system_mtx, MA_OWNED);
1416	if (kernel_vm_end == 0) {
1417		kernel_vm_end = KERNBASE;
1418		nkpt = 0;
1419		while (pdir_pde(PTD, kernel_vm_end)) {
1420			kernel_vm_end = (kernel_vm_end + PAGE_SIZE * NPTEPG) & ~(PAGE_SIZE * NPTEPG - 1);
1421			nkpt++;
1422		}
1423	}
1424	addr = roundup2(addr, PAGE_SIZE * NPTEPG);
1425	while (kernel_vm_end < addr) {
1426		if (pdir_pde(PTD, kernel_vm_end)) {
1427			kernel_vm_end = (kernel_vm_end + PAGE_SIZE * NPTEPG) & ~(PAGE_SIZE * NPTEPG - 1);
1428			continue;
1429		}
1430
1431		/*
1432		 * This index is bogus, but out of the way
1433		 */
1434		nkpg = vm_page_alloc(NULL, nkpt,
1435		    VM_ALLOC_NOOBJ | VM_ALLOC_SYSTEM | VM_ALLOC_WIRED);
1436		if (!nkpg)
1437			panic("pmap_growkernel: no memory to grow kernel");
1438
1439		nkpt++;
1440
1441		pmap_zero_page(nkpg);
1442		ptppaddr = VM_PAGE_TO_PHYS(nkpg);
1443		newpdir = (pd_entry_t) (ptppaddr | PG_V | PG_RW | PG_A | PG_M);
1444		pdir_pde(PTD, kernel_vm_end) = newpdir;
1445
1446		mtx_lock_spin(&allpmaps_lock);
1447		LIST_FOREACH(pmap, &allpmaps, pm_list) {
1448			pde = pmap_pde(pmap, kernel_vm_end);
1449			pde_store(pde, newpdir);
1450		}
1451		mtx_unlock_spin(&allpmaps_lock);
1452		kernel_vm_end = (kernel_vm_end + PAGE_SIZE * NPTEPG) & ~(PAGE_SIZE * NPTEPG - 1);
1453	}
1454}
1455
1456
1457/***************************************************
1458 * page management routines.
1459 ***************************************************/
1460
1461/*
1462 * free the pv_entry back to the free list
1463 */
1464static PMAP_INLINE void
1465free_pv_entry(pv_entry_t pv)
1466{
1467	pv_entry_count--;
1468	uma_zfree(pvzone, pv);
1469}
1470
1471/*
1472 * get a new pv_entry, allocating a block from the system
1473 * when needed.
1474 * the memory allocation is performed bypassing the malloc code
1475 * because of the possibility of allocations at interrupt time.
1476 */
1477static pv_entry_t
1478get_pv_entry(void)
1479{
1480	pv_entry_count++;
1481	if (pv_entry_high_water &&
1482		(pv_entry_count > pv_entry_high_water) &&
1483		(pmap_pagedaemon_waken == 0)) {
1484		pmap_pagedaemon_waken = 1;
1485		wakeup (&vm_pages_needed);
1486	}
1487	return uma_zalloc(pvzone, M_NOWAIT);
1488}
1489
1490
1491static int
1492pmap_remove_entry(pmap_t pmap, vm_page_t m, vm_offset_t va)
1493{
1494	pv_entry_t pv;
1495	int rtval;
1496
1497	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
1498	if (m->md.pv_list_count < pmap->pm_stats.resident_count) {
1499		TAILQ_FOREACH(pv, &m->md.pv_list, pv_list) {
1500			if (pmap == pv->pv_pmap && va == pv->pv_va)
1501				break;
1502		}
1503	} else {
1504		TAILQ_FOREACH(pv, &pmap->pm_pvlist, pv_plist) {
1505			if (va == pv->pv_va)
1506				break;
1507		}
1508	}
1509
1510	rtval = 0;
1511	if (pv) {
1512		rtval = pmap_unuse_pt(pmap, va, pv->pv_ptem);
1513		TAILQ_REMOVE(&m->md.pv_list, pv, pv_list);
1514		m->md.pv_list_count--;
1515		if (TAILQ_FIRST(&m->md.pv_list) == NULL)
1516			vm_page_flag_clear(m, PG_WRITEABLE);
1517
1518		TAILQ_REMOVE(&pmap->pm_pvlist, pv, pv_plist);
1519		free_pv_entry(pv);
1520	}
1521
1522	return rtval;
1523}
1524
1525/*
1526 * Create a pv entry for page at pa for
1527 * (pmap, va).
1528 */
1529static void
1530pmap_insert_entry(pmap_t pmap, vm_offset_t va, vm_page_t mpte, vm_page_t m)
1531{
1532
1533	pv_entry_t pv;
1534
1535	pv = get_pv_entry();
1536	pv->pv_va = va;
1537	pv->pv_pmap = pmap;
1538	pv->pv_ptem = mpte;
1539
1540	vm_page_lock_queues();
1541	TAILQ_INSERT_TAIL(&pmap->pm_pvlist, pv, pv_plist);
1542	TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_list);
1543	m->md.pv_list_count++;
1544
1545	vm_page_unlock_queues();
1546}
1547
1548/*
1549 * pmap_remove_pte: do the things to unmap a page in a process
1550 */
1551static int
1552pmap_remove_pte(pmap_t pmap, pt_entry_t *ptq, vm_offset_t va)
1553{
1554	pt_entry_t oldpte;
1555	vm_page_t m, mpte;
1556
1557	oldpte = pte_load_clear(ptq);
1558	if (oldpte & PG_W)
1559		pmap->pm_stats.wired_count -= 1;
1560	/*
1561	 * Machines that don't support invlpg, also don't support
1562	 * PG_G.
1563	 */
1564	if (oldpte & PG_G)
1565		pmap_invalidate_page(kernel_pmap, va);
1566	pmap->pm_stats.resident_count -= 1;
1567	if (oldpte & PG_MANAGED) {
1568		m = PHYS_TO_VM_PAGE(oldpte);
1569		if (oldpte & PG_M) {
1570#if defined(PMAP_DIAGNOSTIC)
1571			if (pmap_nw_modified((pt_entry_t) oldpte)) {
1572				printf(
1573	"pmap_remove: modified page not writable: va: 0x%x, pte: 0x%x\n",
1574				    va, oldpte);
1575			}
1576#endif
1577			if (pmap_track_modified(va))
1578				vm_page_dirty(m);
1579		}
1580		if (oldpte & PG_A)
1581			vm_page_flag_set(m, PG_REFERENCED);
1582		return pmap_remove_entry(pmap, m, va);
1583	} else {
1584		mpte = PHYS_TO_VM_PAGE(*pmap_pde(pmap, va));
1585		return pmap_unuse_pt(pmap, va, mpte);
1586	}
1587}
1588
1589/*
1590 * Remove a single page from a process address space
1591 */
1592static void
1593pmap_remove_page(pmap_t pmap, vm_offset_t va)
1594{
1595	pt_entry_t *pte;
1596
1597	if ((pte = pmap_pte(pmap, va)) == NULL || *pte == 0)
1598		return;
1599	pmap_remove_pte(pmap, pte, va);
1600	pmap_invalidate_page(pmap, va);
1601}
1602
1603/*
1604 *	Remove the given range of addresses from the specified map.
1605 *
1606 *	It is assumed that the start and end are properly
1607 *	rounded to the page size.
1608 */
1609void
1610pmap_remove(pmap_t pmap, vm_offset_t sva, vm_offset_t eva)
1611{
1612	vm_offset_t pdnxt;
1613	pd_entry_t ptpaddr;
1614	pt_entry_t *pte;
1615	int anyvalid;
1616
1617	if (pmap == NULL)
1618		return;
1619
1620	if (pmap->pm_stats.resident_count == 0)
1621		return;
1622
1623	/*
1624	 * special handling of removing one page.  a very
1625	 * common operation and easy to short circuit some
1626	 * code.
1627	 */
1628	if ((sva + PAGE_SIZE == eva) &&
1629	    ((pmap->pm_pdir[(sva >> PDRSHIFT)] & PG_PS) == 0)) {
1630		pmap_remove_page(pmap, sva);
1631		return;
1632	}
1633
1634	anyvalid = 0;
1635
1636	for (; sva < eva; sva = pdnxt) {
1637		unsigned pdirindex;
1638
1639		/*
1640		 * Calculate index for next page table.
1641		 */
1642		pdnxt = (sva + NBPDR) & ~PDRMASK;
1643		if (pmap->pm_stats.resident_count == 0)
1644			break;
1645
1646		pdirindex = sva >> PDRSHIFT;
1647		ptpaddr = pmap->pm_pdir[pdirindex];
1648
1649		/*
1650		 * Weed out invalid mappings. Note: we assume that the page
1651		 * directory table is always allocated, and in kernel virtual.
1652		 */
1653		if (ptpaddr == 0)
1654			continue;
1655
1656		/*
1657		 * Check for large page.
1658		 */
1659		if ((ptpaddr & PG_PS) != 0) {
1660			pmap->pm_pdir[pdirindex] = 0;
1661			pmap->pm_stats.resident_count -= NBPDR / PAGE_SIZE;
1662			anyvalid = 1;
1663			continue;
1664		}
1665
1666		/*
1667		 * Limit our scan to either the end of the va represented
1668		 * by the current page table page, or to the end of the
1669		 * range being removed.
1670		 */
1671		if (pdnxt > eva)
1672			pdnxt = eva;
1673
1674		for (; sva != pdnxt; sva += PAGE_SIZE) {
1675			if ((pte = pmap_pte(pmap, sva)) == NULL ||
1676			    *pte == 0)
1677				continue;
1678			anyvalid = 1;
1679			if (pmap_remove_pte(pmap, pte, sva))
1680				break;
1681		}
1682	}
1683
1684	if (anyvalid)
1685		pmap_invalidate_all(pmap);
1686}
1687
1688/*
1689 *	Routine:	pmap_remove_all
1690 *	Function:
1691 *		Removes this physical page from
1692 *		all physical maps in which it resides.
1693 *		Reflects back modify bits to the pager.
1694 *
1695 *	Notes:
1696 *		Original versions of this routine were very
1697 *		inefficient because they iteratively called
1698 *		pmap_remove (slow...)
1699 */
1700
1701void
1702pmap_remove_all(vm_page_t m)
1703{
1704	register pv_entry_t pv;
1705	pt_entry_t *pte, tpte;
1706
1707#if defined(PMAP_DIAGNOSTIC)
1708	/*
1709	 * XXX This makes pmap_remove_all() illegal for non-managed pages!
1710	 */
1711	if (!pmap_initialized || (m->flags & PG_FICTITIOUS)) {
1712		panic("pmap_remove_all: illegal for unmanaged page, va: 0x%x",
1713		    VM_PAGE_TO_PHYS(m));
1714	}
1715#endif
1716	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
1717	sched_pin();
1718	while ((pv = TAILQ_FIRST(&m->md.pv_list)) != NULL) {
1719		pv->pv_pmap->pm_stats.resident_count--;
1720		pte = pmap_pte_quick(pv->pv_pmap, pv->pv_va);
1721		tpte = pte_load_clear(pte);
1722		if (tpte & PG_W)
1723			pv->pv_pmap->pm_stats.wired_count--;
1724		if (tpte & PG_A)
1725			vm_page_flag_set(m, PG_REFERENCED);
1726
1727		/*
1728		 * Update the vm_page_t clean and reference bits.
1729		 */
1730		if (tpte & PG_M) {
1731#if defined(PMAP_DIAGNOSTIC)
1732			if (pmap_nw_modified((pt_entry_t) tpte)) {
1733				printf(
1734	"pmap_remove_all: modified page not writable: va: 0x%x, pte: 0x%x\n",
1735				    pv->pv_va, tpte);
1736			}
1737#endif
1738			if (pmap_track_modified(pv->pv_va))
1739				vm_page_dirty(m);
1740		}
1741		pmap_invalidate_page(pv->pv_pmap, pv->pv_va);
1742		TAILQ_REMOVE(&pv->pv_pmap->pm_pvlist, pv, pv_plist);
1743		TAILQ_REMOVE(&m->md.pv_list, pv, pv_list);
1744		m->md.pv_list_count--;
1745		pmap_unuse_pt(pv->pv_pmap, pv->pv_va, pv->pv_ptem);
1746		free_pv_entry(pv);
1747	}
1748	vm_page_flag_clear(m, PG_WRITEABLE);
1749	sched_unpin();
1750}
1751
1752/*
1753 *	Set the physical protection on the
1754 *	specified range of this map as requested.
1755 */
1756void
1757pmap_protect(pmap_t pmap, vm_offset_t sva, vm_offset_t eva, vm_prot_t prot)
1758{
1759	vm_offset_t pdnxt;
1760	pd_entry_t ptpaddr;
1761	int anychanged;
1762
1763	if (pmap == NULL)
1764		return;
1765
1766	if ((prot & VM_PROT_READ) == VM_PROT_NONE) {
1767		pmap_remove(pmap, sva, eva);
1768		return;
1769	}
1770
1771	if (prot & VM_PROT_WRITE)
1772		return;
1773
1774	anychanged = 0;
1775
1776	for (; sva < eva; sva = pdnxt) {
1777		unsigned pdirindex;
1778
1779		pdnxt = (sva + NBPDR) & ~PDRMASK;
1780
1781		pdirindex = sva >> PDRSHIFT;
1782		ptpaddr = pmap->pm_pdir[pdirindex];
1783
1784		/*
1785		 * Weed out invalid mappings. Note: we assume that the page
1786		 * directory table is always allocated, and in kernel virtual.
1787		 */
1788		if (ptpaddr == 0)
1789			continue;
1790
1791		/*
1792		 * Check for large page.
1793		 */
1794		if ((ptpaddr & PG_PS) != 0) {
1795			pmap->pm_pdir[pdirindex] &= ~(PG_M|PG_RW);
1796			pmap->pm_stats.resident_count -= NBPDR / PAGE_SIZE;
1797			anychanged = 1;
1798			continue;
1799		}
1800
1801		if (pdnxt > eva)
1802			pdnxt = eva;
1803
1804		for (; sva != pdnxt; sva += PAGE_SIZE) {
1805			pt_entry_t pbits;
1806			pt_entry_t *pte;
1807			vm_page_t m;
1808
1809			if ((pte = pmap_pte(pmap, sva)) == NULL)
1810				continue;
1811			pbits = *pte;
1812			if (pbits & PG_MANAGED) {
1813				m = NULL;
1814				if (pbits & PG_A) {
1815					m = PHYS_TO_VM_PAGE(pbits);
1816					vm_page_flag_set(m, PG_REFERENCED);
1817					pbits &= ~PG_A;
1818				}
1819				if ((pbits & PG_M) != 0 &&
1820				    pmap_track_modified(sva)) {
1821					if (m == NULL)
1822						m = PHYS_TO_VM_PAGE(pbits);
1823					vm_page_dirty(m);
1824					pbits &= ~PG_M;
1825				}
1826			}
1827
1828			pbits &= ~PG_RW;
1829
1830			if (pbits != *pte) {
1831				pte_store(pte, pbits);
1832				anychanged = 1;
1833			}
1834		}
1835	}
1836	if (anychanged)
1837		pmap_invalidate_all(pmap);
1838}
1839
1840/*
1841 *	Insert the given physical page (p) at
1842 *	the specified virtual address (v) in the
1843 *	target physical map with the protection requested.
1844 *
1845 *	If specified, the page will be wired down, meaning
1846 *	that the related pte can not be reclaimed.
1847 *
1848 *	NB:  This is the only routine which MAY NOT lazy-evaluate
1849 *	or lose information.  That is, this routine must actually
1850 *	insert this page into the given map NOW.
1851 */
1852void
1853pmap_enter(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_prot_t prot,
1854	   boolean_t wired)
1855{
1856	vm_paddr_t pa;
1857	register pt_entry_t *pte;
1858	vm_paddr_t opa;
1859	pt_entry_t origpte, newpte;
1860	vm_page_t mpte;
1861
1862	if (pmap == NULL)
1863		return;
1864
1865	va &= PG_FRAME;
1866#ifdef PMAP_DIAGNOSTIC
1867	if (va > VM_MAX_KERNEL_ADDRESS)
1868		panic("pmap_enter: toobig");
1869	if ((va >= UPT_MIN_ADDRESS) && (va < UPT_MAX_ADDRESS))
1870		panic("pmap_enter: invalid to pmap_enter page table pages (va: 0x%x)", va);
1871#endif
1872
1873	mpte = NULL;
1874	/*
1875	 * In the case that a page table page is not
1876	 * resident, we are creating it here.
1877	 */
1878	if (va < VM_MAXUSER_ADDRESS) {
1879		mpte = pmap_allocpte(pmap, va);
1880	}
1881#if 0 && defined(PMAP_DIAGNOSTIC)
1882	else {
1883		pd_entry_t *pdeaddr = pmap_pde(pmap, va);
1884		origpte = *pdeaddr;
1885		if ((origpte & PG_V) == 0) {
1886			panic("pmap_enter: invalid kernel page table page, pdir=%p, pde=%p, va=%p\n",
1887				pmap->pm_pdir[PTDPTDI], origpte, va);
1888		}
1889	}
1890#endif
1891
1892	pte = pmap_pte(pmap, va);
1893
1894	/*
1895	 * Page Directory table entry not valid, we need a new PT page
1896	 */
1897	if (pte == NULL) {
1898		panic("pmap_enter: invalid page directory pdir=%#jx, va=%#x\n",
1899			(uintmax_t)pmap->pm_pdir[PTDPTDI], va);
1900	}
1901
1902	pa = VM_PAGE_TO_PHYS(m) & PG_FRAME;
1903	origpte = *pte;
1904	opa = origpte & PG_FRAME;
1905
1906	if (origpte & PG_PS) {
1907		/*
1908		 * Yes, I know this will truncate upper address bits for PAE,
1909		 * but I'm actually more interested in the lower bits
1910		 */
1911		printf("pmap_enter: va %p, pte %p, origpte %p\n",
1912		    (void *)va, (void *)pte, (void *)(uintptr_t)origpte);
1913		panic("pmap_enter: attempted pmap_enter on 4MB page");
1914	}
1915
1916	/*
1917	 * Mapping has not changed, must be protection or wiring change.
1918	 */
1919	if (origpte && (opa == pa)) {
1920		/*
1921		 * Wiring change, just update stats. We don't worry about
1922		 * wiring PT pages as they remain resident as long as there
1923		 * are valid mappings in them. Hence, if a user page is wired,
1924		 * the PT page will be also.
1925		 */
1926		if (wired && ((origpte & PG_W) == 0))
1927			pmap->pm_stats.wired_count++;
1928		else if (!wired && (origpte & PG_W))
1929			pmap->pm_stats.wired_count--;
1930
1931#if defined(PMAP_DIAGNOSTIC)
1932		if (pmap_nw_modified((pt_entry_t) origpte)) {
1933			printf(
1934	"pmap_enter: modified page not writable: va: 0x%x, pte: 0x%x\n",
1935			    va, origpte);
1936		}
1937#endif
1938
1939		/*
1940		 * Remove extra pte reference
1941		 */
1942		if (mpte)
1943			mpte->hold_count--;
1944
1945		/*
1946		 * We might be turning off write access to the page,
1947		 * so we go ahead and sense modify status.
1948		 */
1949		if (origpte & PG_MANAGED) {
1950			if ((origpte & PG_M) && pmap_track_modified(va)) {
1951				vm_page_t om;
1952				om = PHYS_TO_VM_PAGE(opa);
1953				vm_page_dirty(om);
1954			}
1955			pa |= PG_MANAGED;
1956		}
1957		goto validate;
1958	}
1959	/*
1960	 * Mapping has changed, invalidate old range and fall through to
1961	 * handle validating new mapping.
1962	 */
1963	if (opa) {
1964		int err;
1965		vm_page_lock_queues();
1966		err = pmap_remove_pte(pmap, pte, va);
1967		vm_page_unlock_queues();
1968		if (err)
1969			panic("pmap_enter: pte vanished, va: 0x%x", va);
1970	}
1971
1972	/*
1973	 * Enter on the PV list if part of our managed memory. Note that we
1974	 * raise IPL while manipulating pv_table since pmap_enter can be
1975	 * called at interrupt time.
1976	 */
1977	if (pmap_initialized &&
1978	    (m->flags & (PG_FICTITIOUS|PG_UNMANAGED)) == 0) {
1979		pmap_insert_entry(pmap, va, mpte, m);
1980		pa |= PG_MANAGED;
1981	}
1982
1983	/*
1984	 * Increment counters
1985	 */
1986	pmap->pm_stats.resident_count++;
1987	if (wired)
1988		pmap->pm_stats.wired_count++;
1989
1990validate:
1991	/*
1992	 * Now validate mapping with desired protection/wiring.
1993	 */
1994	newpte = (pt_entry_t)(pa | PG_V);
1995	if ((prot & VM_PROT_WRITE) != 0)
1996		newpte |= PG_RW;
1997	if (wired)
1998		newpte |= PG_W;
1999	if (va < VM_MAXUSER_ADDRESS)
2000		newpte |= PG_U;
2001	if (pmap == kernel_pmap)
2002		newpte |= pgeflag;
2003
2004	/*
2005	 * if the mapping or permission bits are different, we need
2006	 * to update the pte.
2007	 */
2008	if ((origpte & ~(PG_M|PG_A)) != newpte) {
2009		pte_store(pte, newpte | PG_A);
2010		/*if (origpte)*/ {
2011			pmap_invalidate_page(pmap, va);
2012		}
2013	}
2014}
2015
2016/*
2017 * this code makes some *MAJOR* assumptions:
2018 * 1. Current pmap & pmap exists.
2019 * 2. Not wired.
2020 * 3. Read access.
2021 * 4. No page table pages.
2022 * 5. Tlbflush is deferred to calling procedure.
2023 * 6. Page IS managed.
2024 * but is *MUCH* faster than pmap_enter...
2025 */
2026
2027vm_page_t
2028pmap_enter_quick(pmap_t pmap, vm_offset_t va, vm_page_t m, vm_page_t mpte)
2029{
2030	pt_entry_t *pte;
2031	vm_paddr_t pa;
2032
2033	/*
2034	 * In the case that a page table page is not
2035	 * resident, we are creating it here.
2036	 */
2037	if (va < VM_MAXUSER_ADDRESS) {
2038		unsigned ptepindex;
2039		pd_entry_t ptepa;
2040
2041		/*
2042		 * Calculate pagetable page index
2043		 */
2044		ptepindex = va >> PDRSHIFT;
2045		if (mpte && (mpte->pindex == ptepindex)) {
2046			mpte->hold_count++;
2047		} else {
2048retry:
2049			/*
2050			 * Get the page directory entry
2051			 */
2052			ptepa = pmap->pm_pdir[ptepindex];
2053
2054			/*
2055			 * If the page table page is mapped, we just increment
2056			 * the hold count, and activate it.
2057			 */
2058			if (ptepa) {
2059				if (ptepa & PG_PS)
2060					panic("pmap_enter_quick: unexpected mapping into 4MB page");
2061				mpte = PHYS_TO_VM_PAGE(ptepa);
2062				mpte->hold_count++;
2063			} else {
2064				mpte = _pmap_allocpte(pmap, ptepindex);
2065				if (mpte == NULL)
2066					goto retry;
2067			}
2068		}
2069	} else {
2070		mpte = NULL;
2071	}
2072
2073	/*
2074	 * This call to vtopte makes the assumption that we are
2075	 * entering the page into the current pmap.  In order to support
2076	 * quick entry into any pmap, one would likely use pmap_pte_quick.
2077	 * But that isn't as quick as vtopte.
2078	 */
2079	pte = vtopte(va);
2080	if (*pte) {
2081		if (mpte != NULL) {
2082			vm_page_lock_queues();
2083			pmap_unwire_pte_hold(pmap, mpte);
2084			vm_page_unlock_queues();
2085		}
2086		return 0;
2087	}
2088
2089	/*
2090	 * Enter on the PV list if part of our managed memory. Note that we
2091	 * raise IPL while manipulating pv_table since pmap_enter can be
2092	 * called at interrupt time.
2093	 */
2094	if ((m->flags & (PG_FICTITIOUS|PG_UNMANAGED)) == 0)
2095		pmap_insert_entry(pmap, va, mpte, m);
2096
2097	/*
2098	 * Increment counters
2099	 */
2100	pmap->pm_stats.resident_count++;
2101
2102	pa = VM_PAGE_TO_PHYS(m);
2103
2104	/*
2105	 * Now validate mapping with RO protection
2106	 */
2107	if (m->flags & (PG_FICTITIOUS|PG_UNMANAGED))
2108		pte_store(pte, pa | PG_V | PG_U);
2109	else
2110		pte_store(pte, pa | PG_V | PG_U | PG_MANAGED);
2111
2112	return mpte;
2113}
2114
2115/*
2116 * Make a temporary mapping for a physical address.  This is only intended
2117 * to be used for panic dumps.
2118 */
2119void *
2120pmap_kenter_temporary(vm_paddr_t pa, int i)
2121{
2122	vm_offset_t va;
2123
2124	va = (vm_offset_t)crashdumpmap + (i * PAGE_SIZE);
2125	pmap_kenter(va, pa);
2126#ifndef I386_CPU
2127	invlpg(va);
2128#else
2129	invltlb();
2130#endif
2131	return ((void *)crashdumpmap);
2132}
2133
2134/*
2135 * This code maps large physical mmap regions into the
2136 * processor address space.  Note that some shortcuts
2137 * are taken, but the code works.
2138 */
2139void
2140pmap_object_init_pt(pmap_t pmap, vm_offset_t addr,
2141		    vm_object_t object, vm_pindex_t pindex,
2142		    vm_size_t size)
2143{
2144	vm_page_t p;
2145
2146	VM_OBJECT_LOCK_ASSERT(object, MA_OWNED);
2147	KASSERT(object->type == OBJT_DEVICE,
2148	    ("pmap_object_init_pt: non-device object"));
2149	if (pseflag &&
2150	    ((addr & (NBPDR - 1)) == 0) && ((size & (NBPDR - 1)) == 0)) {
2151		int i;
2152		vm_page_t m[1];
2153		unsigned int ptepindex;
2154		int npdes;
2155		pd_entry_t ptepa;
2156
2157		if (pmap->pm_pdir[ptepindex = (addr >> PDRSHIFT)])
2158			return;
2159retry:
2160		p = vm_page_lookup(object, pindex);
2161		if (p != NULL) {
2162			vm_page_lock_queues();
2163			if (vm_page_sleep_if_busy(p, FALSE, "init4p"))
2164				goto retry;
2165		} else {
2166			p = vm_page_alloc(object, pindex, VM_ALLOC_NORMAL);
2167			if (p == NULL)
2168				return;
2169			m[0] = p;
2170
2171			if (vm_pager_get_pages(object, m, 1, 0) != VM_PAGER_OK) {
2172				vm_page_lock_queues();
2173				vm_page_free(p);
2174				vm_page_unlock_queues();
2175				return;
2176			}
2177
2178			p = vm_page_lookup(object, pindex);
2179			vm_page_lock_queues();
2180			vm_page_wakeup(p);
2181		}
2182		vm_page_unlock_queues();
2183
2184		ptepa = VM_PAGE_TO_PHYS(p);
2185		if (ptepa & (NBPDR - 1))
2186			return;
2187
2188		p->valid = VM_PAGE_BITS_ALL;
2189
2190		pmap->pm_stats.resident_count += size >> PAGE_SHIFT;
2191		npdes = size >> PDRSHIFT;
2192		for(i = 0; i < npdes; i++) {
2193			pde_store(&pmap->pm_pdir[ptepindex],
2194			    ptepa | PG_U | PG_RW | PG_V | PG_PS);
2195			ptepa += NBPDR;
2196			ptepindex += 1;
2197		}
2198		pmap_invalidate_all(pmap);
2199	}
2200}
2201
2202/*
2203 *	Routine:	pmap_change_wiring
2204 *	Function:	Change the wiring attribute for a map/virtual-address
2205 *			pair.
2206 *	In/out conditions:
2207 *			The mapping must already exist in the pmap.
2208 */
2209void
2210pmap_change_wiring(pmap, va, wired)
2211	register pmap_t pmap;
2212	vm_offset_t va;
2213	boolean_t wired;
2214{
2215	register pt_entry_t *pte;
2216
2217	if (pmap == NULL)
2218		return;
2219
2220	pte = pmap_pte(pmap, va);
2221
2222	if (wired && !pmap_pte_w(pte))
2223		pmap->pm_stats.wired_count++;
2224	else if (!wired && pmap_pte_w(pte))
2225		pmap->pm_stats.wired_count--;
2226
2227	/*
2228	 * Wiring is not a hardware characteristic so there is no need to
2229	 * invalidate TLB.
2230	 */
2231	pmap_pte_set_w(pte, wired);
2232}
2233
2234
2235
2236/*
2237 *	Copy the range specified by src_addr/len
2238 *	from the source map to the range dst_addr/len
2239 *	in the destination map.
2240 *
2241 *	This routine is only advisory and need not do anything.
2242 */
2243
2244void
2245pmap_copy(pmap_t dst_pmap, pmap_t src_pmap, vm_offset_t dst_addr, vm_size_t len,
2246	  vm_offset_t src_addr)
2247{
2248	vm_offset_t addr;
2249	vm_offset_t end_addr = src_addr + len;
2250	vm_offset_t pdnxt;
2251	vm_page_t m;
2252
2253	if (dst_addr != src_addr)
2254		return;
2255
2256	if (!pmap_is_current(src_pmap))
2257		return;
2258
2259	for (addr = src_addr; addr < end_addr; addr = pdnxt) {
2260		pt_entry_t *src_pte, *dst_pte;
2261		vm_page_t dstmpte, srcmpte;
2262		pd_entry_t srcptepaddr;
2263		unsigned ptepindex;
2264
2265		if (addr >= UPT_MIN_ADDRESS)
2266			panic("pmap_copy: invalid to pmap_copy page tables\n");
2267
2268		/*
2269		 * Don't let optional prefaulting of pages make us go
2270		 * way below the low water mark of free pages or way
2271		 * above high water mark of used pv entries.
2272		 */
2273		if (cnt.v_free_count < cnt.v_free_reserved ||
2274		    pv_entry_count > pv_entry_high_water)
2275			break;
2276
2277		pdnxt = (addr + NBPDR) & ~PDRMASK;
2278		ptepindex = addr >> PDRSHIFT;
2279
2280		srcptepaddr = src_pmap->pm_pdir[ptepindex];
2281		if (srcptepaddr == 0)
2282			continue;
2283
2284		if (srcptepaddr & PG_PS) {
2285			if (dst_pmap->pm_pdir[ptepindex] == 0) {
2286				dst_pmap->pm_pdir[ptepindex] = srcptepaddr;
2287				dst_pmap->pm_stats.resident_count +=
2288				    NBPDR / PAGE_SIZE;
2289			}
2290			continue;
2291		}
2292
2293		srcmpte = PHYS_TO_VM_PAGE(srcptepaddr);
2294		if (srcmpte->hold_count == 0 || (srcmpte->flags & PG_BUSY))
2295			continue;
2296
2297		if (pdnxt > end_addr)
2298			pdnxt = end_addr;
2299
2300		src_pte = vtopte(addr);
2301		while (addr < pdnxt) {
2302			pt_entry_t ptetemp;
2303			ptetemp = *src_pte;
2304			/*
2305			 * we only virtual copy managed pages
2306			 */
2307			if ((ptetemp & PG_MANAGED) != 0) {
2308				/*
2309				 * We have to check after allocpte for the
2310				 * pte still being around...  allocpte can
2311				 * block.
2312				 */
2313				dstmpte = pmap_allocpte(dst_pmap, addr);
2314				dst_pte = pmap_pte(dst_pmap, addr);
2315				if ((*dst_pte == 0) && (ptetemp = *src_pte)) {
2316					/*
2317					 * Clear the modified and
2318					 * accessed (referenced) bits
2319					 * during the copy.
2320					 */
2321					m = PHYS_TO_VM_PAGE(ptetemp);
2322					*dst_pte = ptetemp & ~(PG_M | PG_A);
2323					dst_pmap->pm_stats.resident_count++;
2324					pmap_insert_entry(dst_pmap, addr,
2325						dstmpte, m);
2326	 			} else {
2327					vm_page_lock_queues();
2328					pmap_unwire_pte_hold(dst_pmap, dstmpte);
2329					vm_page_unlock_queues();
2330				}
2331				if (dstmpte->hold_count >= srcmpte->hold_count)
2332					break;
2333			}
2334			addr += PAGE_SIZE;
2335			src_pte++;
2336		}
2337	}
2338}
2339
2340static __inline void
2341pagezero(void *page)
2342{
2343#if defined(I686_CPU)
2344	if (cpu_class == CPUCLASS_686) {
2345#if defined(CPU_ENABLE_SSE)
2346		if (cpu_feature & CPUID_SSE2)
2347			sse2_pagezero(page);
2348		else
2349#endif
2350			i686_pagezero(page);
2351	} else
2352#endif
2353		bzero(page, PAGE_SIZE);
2354}
2355
2356/*
2357 *	pmap_zero_page zeros the specified hardware page by mapping
2358 *	the page into KVM and using bzero to clear its contents.
2359 */
2360void
2361pmap_zero_page(vm_page_t m)
2362{
2363
2364	mtx_lock(&CMAPCADDR12_lock);
2365	if (*CMAP2)
2366		panic("pmap_zero_page: CMAP2 busy");
2367	sched_pin();
2368	*CMAP2 = PG_V | PG_RW | VM_PAGE_TO_PHYS(m) | PG_A | PG_M;
2369	invlcaddr(CADDR2);
2370	pagezero(CADDR2);
2371	*CMAP2 = 0;
2372	sched_unpin();
2373	mtx_unlock(&CMAPCADDR12_lock);
2374}
2375
2376/*
2377 *	pmap_zero_page_area zeros the specified hardware page by mapping
2378 *	the page into KVM and using bzero to clear its contents.
2379 *
2380 *	off and size may not cover an area beyond a single hardware page.
2381 */
2382void
2383pmap_zero_page_area(vm_page_t m, int off, int size)
2384{
2385
2386	mtx_lock(&CMAPCADDR12_lock);
2387	if (*CMAP2)
2388		panic("pmap_zero_page: CMAP2 busy");
2389	sched_pin();
2390	*CMAP2 = PG_V | PG_RW | VM_PAGE_TO_PHYS(m) | PG_A | PG_M;
2391	invlcaddr(CADDR2);
2392	if (off == 0 && size == PAGE_SIZE)
2393		pagezero(CADDR2);
2394	else
2395		bzero((char *)CADDR2 + off, size);
2396	*CMAP2 = 0;
2397	sched_unpin();
2398	mtx_unlock(&CMAPCADDR12_lock);
2399}
2400
2401/*
2402 *	pmap_zero_page_idle zeros the specified hardware page by mapping
2403 *	the page into KVM and using bzero to clear its contents.  This
2404 *	is intended to be called from the vm_pagezero process only and
2405 *	outside of Giant.
2406 */
2407void
2408pmap_zero_page_idle(vm_page_t m)
2409{
2410
2411	if (*CMAP3)
2412		panic("pmap_zero_page: CMAP3 busy");
2413	sched_pin();
2414	*CMAP3 = PG_V | PG_RW | VM_PAGE_TO_PHYS(m) | PG_A | PG_M;
2415	invlcaddr(CADDR3);
2416	pagezero(CADDR3);
2417	*CMAP3 = 0;
2418	sched_unpin();
2419}
2420
2421/*
2422 *	pmap_copy_page copies the specified (machine independent)
2423 *	page by mapping the page into virtual memory and using
2424 *	bcopy to copy the page, one machine dependent page at a
2425 *	time.
2426 */
2427void
2428pmap_copy_page(vm_page_t src, vm_page_t dst)
2429{
2430
2431	mtx_lock(&CMAPCADDR12_lock);
2432	if (*CMAP1)
2433		panic("pmap_copy_page: CMAP1 busy");
2434	if (*CMAP2)
2435		panic("pmap_copy_page: CMAP2 busy");
2436	sched_pin();
2437#ifdef I386_CPU
2438	invltlb();
2439#else
2440	invlpg((u_int)CADDR1);
2441	invlpg((u_int)CADDR2);
2442#endif
2443	*CMAP1 = PG_V | VM_PAGE_TO_PHYS(src) | PG_A;
2444	*CMAP2 = PG_V | PG_RW | VM_PAGE_TO_PHYS(dst) | PG_A | PG_M;
2445	bcopy(CADDR1, CADDR2, PAGE_SIZE);
2446	*CMAP1 = 0;
2447	*CMAP2 = 0;
2448	sched_unpin();
2449	mtx_unlock(&CMAPCADDR12_lock);
2450}
2451
2452/*
2453 * Returns true if the pmap's pv is one of the first
2454 * 16 pvs linked to from this page.  This count may
2455 * be changed upwards or downwards in the future; it
2456 * is only necessary that true be returned for a small
2457 * subset of pmaps for proper page aging.
2458 */
2459boolean_t
2460pmap_page_exists_quick(pmap, m)
2461	pmap_t pmap;
2462	vm_page_t m;
2463{
2464	pv_entry_t pv;
2465	int loops = 0;
2466
2467	if (!pmap_initialized || (m->flags & PG_FICTITIOUS))
2468		return FALSE;
2469
2470	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
2471	TAILQ_FOREACH(pv, &m->md.pv_list, pv_list) {
2472		if (pv->pv_pmap == pmap) {
2473			return TRUE;
2474		}
2475		loops++;
2476		if (loops >= 16)
2477			break;
2478	}
2479	return (FALSE);
2480}
2481
2482#define PMAP_REMOVE_PAGES_CURPROC_ONLY
2483/*
2484 * Remove all pages from specified address space
2485 * this aids process exit speeds.  Also, this code
2486 * is special cased for current process only, but
2487 * can have the more generic (and slightly slower)
2488 * mode enabled.  This is much faster than pmap_remove
2489 * in the case of running down an entire address space.
2490 */
2491void
2492pmap_remove_pages(pmap, sva, eva)
2493	pmap_t pmap;
2494	vm_offset_t sva, eva;
2495{
2496	pt_entry_t *pte, tpte;
2497	vm_page_t m;
2498	pv_entry_t pv, npv;
2499
2500#ifdef PMAP_REMOVE_PAGES_CURPROC_ONLY
2501	if (!curthread || (pmap != vmspace_pmap(curthread->td_proc->p_vmspace))) {
2502		printf("warning: pmap_remove_pages called with non-current pmap\n");
2503		return;
2504	}
2505#endif
2506	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
2507	sched_pin();
2508	for (pv = TAILQ_FIRST(&pmap->pm_pvlist); pv; pv = npv) {
2509
2510		if (pv->pv_va >= eva || pv->pv_va < sva) {
2511			npv = TAILQ_NEXT(pv, pv_plist);
2512			continue;
2513		}
2514
2515#ifdef PMAP_REMOVE_PAGES_CURPROC_ONLY
2516		pte = vtopte(pv->pv_va);
2517#else
2518		pte = pmap_pte_quick(pv->pv_pmap, pv->pv_va);
2519#endif
2520		tpte = *pte;
2521
2522		if (tpte == 0) {
2523			printf("TPTE at %p  IS ZERO @ VA %08x\n",
2524							pte, pv->pv_va);
2525			panic("bad pte");
2526		}
2527
2528/*
2529 * We cannot remove wired pages from a process' mapping at this time
2530 */
2531		if (tpte & PG_W) {
2532			npv = TAILQ_NEXT(pv, pv_plist);
2533			continue;
2534		}
2535
2536		m = PHYS_TO_VM_PAGE(tpte);
2537		KASSERT(m->phys_addr == (tpte & PG_FRAME),
2538		    ("vm_page_t %p phys_addr mismatch %016jx %016jx",
2539		    m, (uintmax_t)m->phys_addr, (uintmax_t)tpte));
2540
2541		KASSERT(m < &vm_page_array[vm_page_array_size],
2542			("pmap_remove_pages: bad tpte %#jx", (uintmax_t)tpte));
2543
2544		pv->pv_pmap->pm_stats.resident_count--;
2545
2546		pte_clear(pte);
2547
2548		/*
2549		 * Update the vm_page_t clean and reference bits.
2550		 */
2551		if (tpte & PG_M) {
2552			vm_page_dirty(m);
2553		}
2554
2555		npv = TAILQ_NEXT(pv, pv_plist);
2556		TAILQ_REMOVE(&pv->pv_pmap->pm_pvlist, pv, pv_plist);
2557
2558		m->md.pv_list_count--;
2559		TAILQ_REMOVE(&m->md.pv_list, pv, pv_list);
2560		if (TAILQ_FIRST(&m->md.pv_list) == NULL) {
2561			vm_page_flag_clear(m, PG_WRITEABLE);
2562		}
2563
2564		pmap_unuse_pt(pv->pv_pmap, pv->pv_va, pv->pv_ptem);
2565		free_pv_entry(pv);
2566	}
2567	sched_unpin();
2568	pmap_invalidate_all(pmap);
2569}
2570
2571/*
2572 *	pmap_is_modified:
2573 *
2574 *	Return whether or not the specified physical page was modified
2575 *	in any physical maps.
2576 */
2577boolean_t
2578pmap_is_modified(vm_page_t m)
2579{
2580	pv_entry_t pv;
2581	pt_entry_t *pte;
2582
2583	if (!pmap_initialized || (m->flags & PG_FICTITIOUS))
2584		return FALSE;
2585
2586	sched_pin();
2587	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
2588	TAILQ_FOREACH(pv, &m->md.pv_list, pv_list) {
2589		/*
2590		 * if the bit being tested is the modified bit, then
2591		 * mark clean_map and ptes as never
2592		 * modified.
2593		 */
2594		if (!pmap_track_modified(pv->pv_va))
2595			continue;
2596#if defined(PMAP_DIAGNOSTIC)
2597		if (!pv->pv_pmap) {
2598			printf("Null pmap (tb) at va: 0x%x\n", pv->pv_va);
2599			continue;
2600		}
2601#endif
2602		pte = pmap_pte_quick(pv->pv_pmap, pv->pv_va);
2603		if (*pte & PG_M) {
2604			sched_unpin();
2605			return TRUE;
2606		}
2607	}
2608	sched_unpin();
2609	return (FALSE);
2610}
2611
2612/*
2613 *	pmap_is_prefaultable:
2614 *
2615 *	Return whether or not the specified virtual address is elgible
2616 *	for prefault.
2617 */
2618boolean_t
2619pmap_is_prefaultable(pmap_t pmap, vm_offset_t addr)
2620{
2621	pt_entry_t *pte;
2622
2623	if ((*pmap_pde(pmap, addr)) == 0)
2624		return (FALSE);
2625	pte = vtopte(addr);
2626	if (*pte)
2627		return (FALSE);
2628	return (TRUE);
2629}
2630
2631/*
2632 *	Clear the given bit in each of the given page's ptes.
2633 */
2634static __inline void
2635pmap_clear_ptes(vm_page_t m, int bit)
2636{
2637	register pv_entry_t pv;
2638	pt_entry_t pbits, *pte;
2639
2640	if (!pmap_initialized || (m->flags & PG_FICTITIOUS) ||
2641	    (bit == PG_RW && (m->flags & PG_WRITEABLE) == 0))
2642		return;
2643
2644	sched_pin();
2645	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
2646	/*
2647	 * Loop over all current mappings setting/clearing as appropos If
2648	 * setting RO do we need to clear the VAC?
2649	 */
2650	TAILQ_FOREACH(pv, &m->md.pv_list, pv_list) {
2651		/*
2652		 * don't write protect pager mappings
2653		 */
2654		if (bit == PG_RW) {
2655			if (!pmap_track_modified(pv->pv_va))
2656				continue;
2657		}
2658
2659#if defined(PMAP_DIAGNOSTIC)
2660		if (!pv->pv_pmap) {
2661			printf("Null pmap (cb) at va: 0x%x\n", pv->pv_va);
2662			continue;
2663		}
2664#endif
2665
2666		pte = pmap_pte_quick(pv->pv_pmap, pv->pv_va);
2667		pbits = *pte;
2668		if (pbits & bit) {
2669			if (bit == PG_RW) {
2670				if (pbits & PG_M) {
2671					vm_page_dirty(m);
2672				}
2673				pte_store(pte, pbits & ~(PG_M|PG_RW));
2674			} else {
2675				pte_store(pte, pbits & ~bit);
2676			}
2677			pmap_invalidate_page(pv->pv_pmap, pv->pv_va);
2678		}
2679	}
2680	if (bit == PG_RW)
2681		vm_page_flag_clear(m, PG_WRITEABLE);
2682	sched_unpin();
2683}
2684
2685/*
2686 *      pmap_page_protect:
2687 *
2688 *      Lower the permission for all mappings to a given page.
2689 */
2690void
2691pmap_page_protect(vm_page_t m, vm_prot_t prot)
2692{
2693	if ((prot & VM_PROT_WRITE) == 0) {
2694		if (prot & (VM_PROT_READ | VM_PROT_EXECUTE)) {
2695			pmap_clear_ptes(m, PG_RW);
2696		} else {
2697			pmap_remove_all(m);
2698		}
2699	}
2700}
2701
2702/*
2703 *	pmap_ts_referenced:
2704 *
2705 *	Return a count of reference bits for a page, clearing those bits.
2706 *	It is not necessary for every reference bit to be cleared, but it
2707 *	is necessary that 0 only be returned when there are truly no
2708 *	reference bits set.
2709 *
2710 *	XXX: The exact number of bits to check and clear is a matter that
2711 *	should be tested and standardized at some point in the future for
2712 *	optimal aging of shared pages.
2713 */
2714int
2715pmap_ts_referenced(vm_page_t m)
2716{
2717	register pv_entry_t pv, pvf, pvn;
2718	pt_entry_t *pte;
2719	pt_entry_t v;
2720	int rtval = 0;
2721
2722	if (!pmap_initialized || (m->flags & PG_FICTITIOUS))
2723		return (rtval);
2724
2725	sched_pin();
2726	mtx_assert(&vm_page_queue_mtx, MA_OWNED);
2727	if ((pv = TAILQ_FIRST(&m->md.pv_list)) != NULL) {
2728
2729		pvf = pv;
2730
2731		do {
2732			pvn = TAILQ_NEXT(pv, pv_list);
2733
2734			TAILQ_REMOVE(&m->md.pv_list, pv, pv_list);
2735
2736			TAILQ_INSERT_TAIL(&m->md.pv_list, pv, pv_list);
2737
2738			if (!pmap_track_modified(pv->pv_va))
2739				continue;
2740
2741			pte = pmap_pte_quick(pv->pv_pmap, pv->pv_va);
2742
2743			if (pte && ((v = pte_load(pte)) & PG_A) != 0) {
2744				atomic_clear_int((u_int *)pte, PG_A);
2745				pmap_invalidate_page(pv->pv_pmap, pv->pv_va);
2746
2747				rtval++;
2748				if (rtval > 4) {
2749					break;
2750				}
2751			}
2752		} while ((pv = pvn) != NULL && pv != pvf);
2753	}
2754	sched_unpin();
2755
2756	return (rtval);
2757}
2758
2759/*
2760 *	Clear the modify bits on the specified physical page.
2761 */
2762void
2763pmap_clear_modify(vm_page_t m)
2764{
2765	pmap_clear_ptes(m, PG_M);
2766}
2767
2768/*
2769 *	pmap_clear_reference:
2770 *
2771 *	Clear the reference bit on the specified physical page.
2772 */
2773void
2774pmap_clear_reference(vm_page_t m)
2775{
2776	pmap_clear_ptes(m, PG_A);
2777}
2778
2779/*
2780 * Miscellaneous support routines follow
2781 */
2782
2783/*
2784 * Map a set of physical memory pages into the kernel virtual
2785 * address space. Return a pointer to where it is mapped. This
2786 * routine is intended to be used for mapping device memory,
2787 * NOT real memory.
2788 */
2789void *
2790pmap_mapdev(pa, size)
2791	vm_paddr_t pa;
2792	vm_size_t size;
2793{
2794	vm_offset_t va, tmpva, offset;
2795
2796	offset = pa & PAGE_MASK;
2797	size = roundup(offset + size, PAGE_SIZE);
2798	pa = pa & PG_FRAME;
2799
2800	if (pa < KERNLOAD && pa + size <= KERNLOAD)
2801		va = KERNBASE + pa;
2802	else
2803		va = kmem_alloc_nofault(kernel_map, size);
2804	if (!va)
2805		panic("pmap_mapdev: Couldn't alloc kernel virtual memory");
2806
2807	for (tmpva = va; size > 0; ) {
2808		pmap_kenter(tmpva, pa);
2809		size -= PAGE_SIZE;
2810		tmpva += PAGE_SIZE;
2811		pa += PAGE_SIZE;
2812	}
2813	pmap_invalidate_range(kernel_pmap, va, tmpva);
2814	return ((void *)(va + offset));
2815}
2816
2817void
2818pmap_unmapdev(va, size)
2819	vm_offset_t va;
2820	vm_size_t size;
2821{
2822	vm_offset_t base, offset, tmpva;
2823
2824	if (va >= KERNBASE && va + size <= KERNBASE + KERNLOAD)
2825		return;
2826	base = va & PG_FRAME;
2827	offset = va & PAGE_MASK;
2828	size = roundup(offset + size, PAGE_SIZE);
2829	for (tmpva = base; tmpva < (base + size); tmpva += PAGE_SIZE)
2830		pmap_kremove(tmpva);
2831	pmap_invalidate_range(kernel_pmap, va, tmpva);
2832	kmem_free(kernel_map, base, size);
2833}
2834
2835/*
2836 * perform the pmap work for mincore
2837 */
2838int
2839pmap_mincore(pmap, addr)
2840	pmap_t pmap;
2841	vm_offset_t addr;
2842{
2843	pt_entry_t *ptep, pte;
2844	vm_page_t m;
2845	int val = 0;
2846
2847	ptep = pmap_pte(pmap, addr);
2848	if (ptep == 0) {
2849		return 0;
2850	}
2851
2852	if ((pte = *ptep) != 0) {
2853		vm_paddr_t pa;
2854
2855		val = MINCORE_INCORE;
2856		if ((pte & PG_MANAGED) == 0)
2857			return val;
2858
2859		pa = pte & PG_FRAME;
2860
2861		m = PHYS_TO_VM_PAGE(pa);
2862
2863		/*
2864		 * Modified by us
2865		 */
2866		if (pte & PG_M)
2867			val |= MINCORE_MODIFIED|MINCORE_MODIFIED_OTHER;
2868		else {
2869			/*
2870			 * Modified by someone else
2871			 */
2872			vm_page_lock_queues();
2873			if (m->dirty || pmap_is_modified(m))
2874				val |= MINCORE_MODIFIED_OTHER;
2875			vm_page_unlock_queues();
2876		}
2877		/*
2878		 * Referenced by us
2879		 */
2880		if (pte & PG_A)
2881			val |= MINCORE_REFERENCED|MINCORE_REFERENCED_OTHER;
2882		else {
2883			/*
2884			 * Referenced by someone else
2885			 */
2886			vm_page_lock_queues();
2887			if ((m->flags & PG_REFERENCED) ||
2888			    pmap_ts_referenced(m)) {
2889				val |= MINCORE_REFERENCED_OTHER;
2890				vm_page_flag_set(m, PG_REFERENCED);
2891			}
2892			vm_page_unlock_queues();
2893		}
2894	}
2895	return val;
2896}
2897
2898void
2899pmap_activate(struct thread *td)
2900{
2901	struct proc *p = td->td_proc;
2902	pmap_t	pmap, oldpmap;
2903	u_int32_t  cr3;
2904
2905	critical_enter();
2906	pmap = vmspace_pmap(td->td_proc->p_vmspace);
2907	oldpmap = PCPU_GET(curpmap);
2908#if defined(SMP)
2909	atomic_clear_int(&oldpmap->pm_active, PCPU_GET(cpumask));
2910	atomic_set_int(&pmap->pm_active, PCPU_GET(cpumask));
2911#else
2912	oldpmap->pm_active &= ~1;
2913	pmap->pm_active |= 1;
2914#endif
2915#ifdef PAE
2916	cr3 = vtophys(pmap->pm_pdpt);
2917#else
2918	cr3 = vtophys(pmap->pm_pdir);
2919#endif
2920	/* XXXKSE this is wrong.
2921	 * pmap_activate is for the current thread on the current cpu
2922	 */
2923	if (p->p_flag & P_SA) {
2924		/* Make sure all other cr3 entries are updated. */
2925		/* what if they are running?  XXXKSE (maybe abort them) */
2926		FOREACH_THREAD_IN_PROC(p, td) {
2927			td->td_pcb->pcb_cr3 = cr3;
2928		}
2929	} else {
2930		td->td_pcb->pcb_cr3 = cr3;
2931	}
2932	load_cr3(cr3);
2933	PCPU_SET(curpmap, pmap);
2934	critical_exit();
2935}
2936
2937vm_offset_t
2938pmap_addr_hint(vm_object_t obj, vm_offset_t addr, vm_size_t size)
2939{
2940
2941	if ((obj == NULL) || (size < NBPDR) || (obj->type != OBJT_DEVICE)) {
2942		return addr;
2943	}
2944
2945	addr = (addr + PDRMASK) & ~PDRMASK;
2946	return addr;
2947}
2948
2949
2950#if defined(PMAP_DEBUG)
2951pmap_pid_dump(int pid)
2952{
2953	pmap_t pmap;
2954	struct proc *p;
2955	int npte = 0;
2956	int index;
2957
2958	sx_slock(&allproc_lock);
2959	LIST_FOREACH(p, &allproc, p_list) {
2960		if (p->p_pid != pid)
2961			continue;
2962
2963		if (p->p_vmspace) {
2964			int i,j;
2965			index = 0;
2966			pmap = vmspace_pmap(p->p_vmspace);
2967			for (i = 0; i < NPDEPTD; i++) {
2968				pd_entry_t *pde;
2969				pt_entry_t *pte;
2970				vm_offset_t base = i << PDRSHIFT;
2971
2972				pde = &pmap->pm_pdir[i];
2973				if (pde && pmap_pde_v(pde)) {
2974					for (j = 0; j < NPTEPG; j++) {
2975						vm_offset_t va = base + (j << PAGE_SHIFT);
2976						if (va >= (vm_offset_t) VM_MIN_KERNEL_ADDRESS) {
2977							if (index) {
2978								index = 0;
2979								printf("\n");
2980							}
2981							sx_sunlock(&allproc_lock);
2982							return npte;
2983						}
2984						pte = pmap_pte(pmap, va);
2985						if (pte && pmap_pte_v(pte)) {
2986							pt_entry_t pa;
2987							vm_page_t m;
2988							pa = *pte;
2989							m = PHYS_TO_VM_PAGE(pa);
2990							printf("va: 0x%x, pt: 0x%x, h: %d, w: %d, f: 0x%x",
2991								va, pa, m->hold_count, m->wire_count, m->flags);
2992							npte++;
2993							index++;
2994							if (index >= 2) {
2995								index = 0;
2996								printf("\n");
2997							} else {
2998								printf(" ");
2999							}
3000						}
3001					}
3002				}
3003			}
3004		}
3005	}
3006	sx_sunlock(&allproc_lock);
3007	return npte;
3008}
3009#endif
3010
3011#if defined(DEBUG)
3012
3013static void	pads(pmap_t pm);
3014void		pmap_pvdump(vm_offset_t pa);
3015
3016/* print address space of pmap*/
3017static void
3018pads(pm)
3019	pmap_t pm;
3020{
3021	int i, j;
3022	vm_paddr_t va;
3023	pt_entry_t *ptep;
3024
3025	if (pm == kernel_pmap)
3026		return;
3027	for (i = 0; i < NPDEPTD; i++)
3028		if (pm->pm_pdir[i])
3029			for (j = 0; j < NPTEPG; j++) {
3030				va = (i << PDRSHIFT) + (j << PAGE_SHIFT);
3031				if (pm == kernel_pmap && va < KERNBASE)
3032					continue;
3033				if (pm != kernel_pmap && va > UPT_MAX_ADDRESS)
3034					continue;
3035				ptep = pmap_pte(pm, va);
3036				if (pmap_pte_v(ptep))
3037					printf("%x:%x ", va, *ptep);
3038			};
3039
3040}
3041
3042void
3043pmap_pvdump(pa)
3044	vm_paddr_t pa;
3045{
3046	pv_entry_t pv;
3047	vm_page_t m;
3048
3049	printf("pa %x", pa);
3050	m = PHYS_TO_VM_PAGE(pa);
3051	TAILQ_FOREACH(pv, &m->md.pv_list, pv_list) {
3052		printf(" -> pmap %p, va %x", (void *)pv->pv_pmap, pv->pv_va);
3053		pads(pv->pv_pmap);
3054	}
3055	printf(" ");
3056}
3057#endif
3058