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pmap.c revision 1.14.2.1
      1  1.14.2.1    lukem /*	$NetBSD: pmap.c,v 1.14.2.1 2001/08/03 04:10:58 lukem Exp $	*/
      2      1.12    chris 
      3      1.12    chris /*
      4      1.12    chris  * Copyright (c) 2001 Richard Earnshaw
      5      1.12    chris  * Copyright (c) 2001 Christopher Gilbert
      6      1.12    chris  * All rights reserved.
      7      1.12    chris  *
      8      1.12    chris  * 1. Redistributions of source code must retain the above copyright
      9      1.12    chris  *    notice, this list of conditions and the following disclaimer.
     10      1.12    chris  * 2. Redistributions in binary form must reproduce the above copyright
     11      1.12    chris  *    notice, this list of conditions and the following disclaimer in the
     12      1.12    chris  *    documentation and/or other materials provided with the distribution.
     13      1.12    chris  * 3. The name of the company nor the name of the author may be used to
     14      1.12    chris  *    endorse or promote products derived from this software without specific
     15      1.12    chris  *    prior written permission.
     16      1.12    chris  *
     17      1.12    chris  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
     18      1.12    chris  * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     19      1.12    chris  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     20      1.12    chris  * IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
     21      1.12    chris  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     22      1.12    chris  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     23      1.12    chris  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     24      1.12    chris  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     25      1.12    chris  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     26      1.12    chris  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     27      1.12    chris  * SUCH DAMAGE.
     28      1.12    chris  */
     29       1.1     matt 
     30       1.1     matt /*-
     31       1.1     matt  * Copyright (c) 1999 The NetBSD Foundation, Inc.
     32       1.1     matt  * All rights reserved.
     33       1.1     matt  *
     34       1.1     matt  * This code is derived from software contributed to The NetBSD Foundation
     35       1.1     matt  * by Charles M. Hannum.
     36       1.1     matt  *
     37       1.1     matt  * Redistribution and use in source and binary forms, with or without
     38       1.1     matt  * modification, are permitted provided that the following conditions
     39       1.1     matt  * are met:
     40       1.1     matt  * 1. Redistributions of source code must retain the above copyright
     41       1.1     matt  *    notice, this list of conditions and the following disclaimer.
     42       1.1     matt  * 2. Redistributions in binary form must reproduce the above copyright
     43       1.1     matt  *    notice, this list of conditions and the following disclaimer in the
     44       1.1     matt  *    documentation and/or other materials provided with the distribution.
     45       1.1     matt  * 3. All advertising materials mentioning features or use of this software
     46       1.1     matt  *    must display the following acknowledgement:
     47       1.1     matt  *        This product includes software developed by the NetBSD
     48       1.1     matt  *        Foundation, Inc. and its contributors.
     49       1.1     matt  * 4. Neither the name of The NetBSD Foundation nor the names of its
     50       1.1     matt  *    contributors may be used to endorse or promote products derived
     51       1.1     matt  *    from this software without specific prior written permission.
     52       1.1     matt  *
     53       1.1     matt  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     54       1.1     matt  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     55       1.1     matt  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     56       1.1     matt  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     57       1.1     matt  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     58       1.1     matt  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     59       1.1     matt  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     60       1.1     matt  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     61       1.1     matt  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     62       1.1     matt  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     63       1.1     matt  * POSSIBILITY OF SUCH DAMAGE.
     64       1.1     matt  */
     65       1.1     matt 
     66       1.1     matt /*
     67       1.1     matt  * Copyright (c) 1994-1998 Mark Brinicombe.
     68       1.1     matt  * Copyright (c) 1994 Brini.
     69       1.1     matt  * All rights reserved.
     70       1.1     matt  *
     71       1.1     matt  * This code is derived from software written for Brini by Mark Brinicombe
     72       1.1     matt  *
     73       1.1     matt  * Redistribution and use in source and binary forms, with or without
     74       1.1     matt  * modification, are permitted provided that the following conditions
     75       1.1     matt  * are met:
     76       1.1     matt  * 1. Redistributions of source code must retain the above copyright
     77       1.1     matt  *    notice, this list of conditions and the following disclaimer.
     78       1.1     matt  * 2. Redistributions in binary form must reproduce the above copyright
     79       1.1     matt  *    notice, this list of conditions and the following disclaimer in the
     80       1.1     matt  *    documentation and/or other materials provided with the distribution.
     81       1.1     matt  * 3. All advertising materials mentioning features or use of this software
     82       1.1     matt  *    must display the following acknowledgement:
     83       1.1     matt  *	This product includes software developed by Mark Brinicombe.
     84       1.1     matt  * 4. The name of the author may not be used to endorse or promote products
     85       1.1     matt  *    derived from this software without specific prior written permission.
     86       1.1     matt  *
     87       1.1     matt  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     88       1.1     matt  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     89       1.1     matt  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     90       1.1     matt  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     91       1.1     matt  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     92       1.1     matt  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     93       1.1     matt  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     94       1.1     matt  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     95       1.1     matt  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     96       1.1     matt  *
     97       1.1     matt  * RiscBSD kernel project
     98       1.1     matt  *
     99       1.1     matt  * pmap.c
    100       1.1     matt  *
    101       1.1     matt  * Machine dependant vm stuff
    102       1.1     matt  *
    103       1.1     matt  * Created      : 20/09/94
    104       1.1     matt  */
    105       1.1     matt 
    106       1.1     matt /*
    107       1.1     matt  * Performance improvements, UVM changes, overhauls and part-rewrites
    108       1.1     matt  * were contributed by Neil A. Carson <neil (at) causality.com>.
    109       1.1     matt  */
    110       1.1     matt 
    111       1.1     matt /*
    112       1.1     matt  * The dram block info is currently referenced from the bootconfig.
    113       1.1     matt  * This should be placed in a separate structure.
    114       1.1     matt  */
    115       1.1     matt 
    116       1.1     matt /*
    117       1.1     matt  * Special compilation symbols
    118       1.1     matt  * PMAP_DEBUG		- Build in pmap_debug_level code
    119       1.1     matt  */
    120       1.1     matt 
    121       1.1     matt /* Include header files */
    122       1.1     matt 
    123       1.1     matt #include "opt_pmap_debug.h"
    124       1.1     matt #include "opt_ddb.h"
    125       1.1     matt 
    126       1.1     matt #include <sys/types.h>
    127       1.1     matt #include <sys/param.h>
    128       1.1     matt #include <sys/kernel.h>
    129       1.1     matt #include <sys/systm.h>
    130       1.1     matt #include <sys/proc.h>
    131       1.1     matt #include <sys/malloc.h>
    132       1.1     matt #include <sys/user.h>
    133      1.10    chris #include <sys/pool.h>
    134  1.14.2.1    lukem #include <sys/cdefs.h>
    135  1.14.2.1    lukem 
    136       1.1     matt #include <uvm/uvm.h>
    137       1.1     matt 
    138       1.1     matt #include <machine/bootconfig.h>
    139       1.1     matt #include <machine/bus.h>
    140       1.1     matt #include <machine/pmap.h>
    141       1.1     matt #include <machine/pcb.h>
    142       1.1     matt #include <machine/param.h>
    143       1.1     matt #include <machine/katelib.h>
    144  1.14.2.1    lukem 
    145  1.14.2.1    lukem __KERNEL_RCSID(0, "$NetBSD: pmap.c,v 1.14.2.1 2001/08/03 04:10:58 lukem Exp $");
    146  1.14.2.1    lukem 
    147       1.1     matt #ifdef PMAP_DEBUG
    148       1.1     matt #define	PDEBUG(_lev_,_stat_) \
    149       1.1     matt 	if (pmap_debug_level >= (_lev_)) \
    150       1.1     matt         	((_stat_))
    151       1.1     matt int pmap_debug_level = -2;
    152       1.1     matt #else	/* PMAP_DEBUG */
    153       1.1     matt #define	PDEBUG(_lev_,_stat_) /* Nothing */
    154       1.1     matt #endif	/* PMAP_DEBUG */
    155       1.1     matt 
    156       1.1     matt struct pmap     kernel_pmap_store;
    157       1.1     matt 
    158      1.10    chris /*
    159      1.10    chris  * pool that pmap structures are allocated from
    160      1.10    chris  */
    161      1.10    chris 
    162      1.10    chris struct pool pmap_pmap_pool;
    163      1.10    chris 
    164       1.1     matt pagehook_t page_hook0;
    165       1.1     matt pagehook_t page_hook1;
    166       1.1     matt char *memhook;
    167       1.1     matt pt_entry_t msgbufpte;
    168       1.1     matt extern caddr_t msgbufaddr;
    169       1.1     matt 
    170       1.1     matt #ifdef DIAGNOSTIC
    171       1.1     matt boolean_t pmap_initialized = FALSE;	/* Has pmap_init completed? */
    172       1.1     matt #endif
    173       1.1     matt 
    174       1.1     matt TAILQ_HEAD(pv_page_list, pv_page) pv_page_freelist;
    175       1.1     matt 
    176       1.1     matt int pv_nfree = 0;
    177       1.1     matt 
    178       1.2     matt vsize_t npages;
    179       1.1     matt 
    180       1.2     matt extern paddr_t physical_start;
    181       1.2     matt extern paddr_t physical_freestart;
    182       1.2     matt extern paddr_t physical_end;
    183       1.2     matt extern paddr_t physical_freeend;
    184       1.1     matt extern unsigned int free_pages;
    185       1.1     matt extern int max_processes;
    186       1.1     matt 
    187       1.1     matt vaddr_t virtual_start;
    188       1.1     matt vaddr_t virtual_end;
    189       1.1     matt 
    190       1.1     matt vaddr_t avail_start;
    191       1.1     matt vaddr_t avail_end;
    192       1.1     matt 
    193       1.1     matt extern pv_addr_t systempage;
    194       1.1     matt 
    195       1.1     matt #define ALLOC_PAGE_HOOK(x, s) \
    196       1.1     matt 	x.va = virtual_start; \
    197  1.14.2.1    lukem 	x.pte = (pt_entry_t *)pmap_pte(pmap_kernel(), virtual_start); \
    198       1.1     matt 	virtual_start += s;
    199       1.1     matt 
    200       1.1     matt /* Variables used by the L1 page table queue code */
    201       1.1     matt SIMPLEQ_HEAD(l1pt_queue, l1pt);
    202       1.1     matt struct l1pt_queue l1pt_static_queue;	/* head of our static l1 queue */
    203       1.1     matt int l1pt_static_queue_count;		/* items in the static l1 queue */
    204       1.1     matt int l1pt_static_create_count;		/* static l1 items created */
    205       1.1     matt struct l1pt_queue l1pt_queue;		/* head of our l1 queue */
    206       1.1     matt int l1pt_queue_count;			/* items in the l1 queue */
    207       1.1     matt int l1pt_create_count;			/* stat - L1's create count */
    208       1.1     matt int l1pt_reuse_count;			/* stat - L1's reused count */
    209       1.1     matt 
    210       1.1     matt /* Local function prototypes (not used outside this file) */
    211  1.14.2.1    lukem pt_entry_t *pmap_pte __P((struct pmap *pmap, vaddr_t va));
    212       1.1     matt void map_pagetable __P((vaddr_t pagetable, vaddr_t va,
    213       1.2     matt     paddr_t pa, unsigned int flags));
    214       1.2     matt void pmap_copy_on_write __P((paddr_t pa));
    215  1.14.2.1    lukem void pmap_pinit __P((struct pmap *));
    216  1.14.2.1    lukem void pmap_freepagedir __P((struct pmap *));
    217  1.14.2.1    lukem void pmap_release __P((struct pmap *));
    218       1.1     matt 
    219       1.1     matt /* Other function prototypes */
    220       1.1     matt extern void bzero_page __P((vaddr_t));
    221       1.1     matt extern void bcopy_page __P((vaddr_t, vaddr_t));
    222       1.1     matt 
    223       1.1     matt struct l1pt *pmap_alloc_l1pt __P((void));
    224  1.14.2.1    lukem static __inline void pmap_map_in_l1 __P((struct pmap *pmap, vaddr_t va,
    225       1.1     matt      vaddr_t l2pa));
    226       1.1     matt 
    227      1.11    chris static pt_entry_t *pmap_map_ptes __P((struct pmap *));
    228      1.11    chris /* eventually this will be a function */
    229      1.11    chris #define pmap_unmap_ptes(a)
    230      1.11    chris 
    231      1.11    chris void pmap_vac_me_harder __P((struct pmap *, struct pv_entry *,
    232      1.12    chris 	    pt_entry_t *, boolean_t));
    233      1.11    chris 
    234       1.1     matt #ifdef MYCROFT_HACK
    235       1.1     matt int mycroft_hack = 0;
    236       1.1     matt #endif
    237       1.1     matt 
    238       1.1     matt /* Function to set the debug level of the pmap code */
    239       1.1     matt 
    240       1.1     matt #ifdef PMAP_DEBUG
    241       1.1     matt void
    242       1.1     matt pmap_debug(level)
    243       1.1     matt 	int level;
    244       1.1     matt {
    245       1.1     matt 	pmap_debug_level = level;
    246       1.1     matt 	printf("pmap_debug: level=%d\n", pmap_debug_level);
    247       1.1     matt }
    248       1.1     matt #endif	/* PMAP_DEBUG */
    249       1.1     matt 
    250       1.1     matt #include "isadma.h"
    251       1.1     matt 
    252       1.1     matt #if NISADMA > 0
    253       1.1     matt /*
    254       1.1     matt  * Used to protect memory for ISA DMA bounce buffers.  If, when loading
    255       1.1     matt  * pages into the system, memory intersects with any of these ranges,
    256       1.1     matt  * the intersecting memory will be loaded into a lower-priority free list.
    257       1.1     matt  */
    258       1.1     matt bus_dma_segment_t *pmap_isa_dma_ranges;
    259       1.1     matt int pmap_isa_dma_nranges;
    260       1.1     matt 
    261       1.2     matt boolean_t pmap_isa_dma_range_intersect __P((paddr_t, psize_t,
    262       1.2     matt 	    paddr_t *, psize_t *));
    263       1.1     matt 
    264       1.1     matt /*
    265       1.1     matt  * Check if a memory range intersects with an ISA DMA range, and
    266       1.1     matt  * return the page-rounded intersection if it does.  The intersection
    267       1.1     matt  * will be placed on a lower-priority free list.
    268       1.1     matt  */
    269       1.1     matt boolean_t
    270       1.1     matt pmap_isa_dma_range_intersect(pa, size, pap, sizep)
    271       1.2     matt 	paddr_t pa;
    272       1.2     matt 	psize_t size;
    273       1.2     matt 	paddr_t *pap;
    274       1.2     matt 	psize_t *sizep;
    275       1.1     matt {
    276       1.1     matt 	bus_dma_segment_t *ds;
    277       1.1     matt 	int i;
    278       1.1     matt 
    279       1.1     matt 	if (pmap_isa_dma_ranges == NULL)
    280       1.1     matt 		return (FALSE);
    281       1.1     matt 
    282       1.1     matt 	for (i = 0, ds = pmap_isa_dma_ranges;
    283       1.1     matt 	     i < pmap_isa_dma_nranges; i++, ds++) {
    284       1.1     matt 		if (ds->ds_addr <= pa && pa < (ds->ds_addr + ds->ds_len)) {
    285       1.1     matt 			/*
    286       1.1     matt 			 * Beginning of region intersects with this range.
    287       1.1     matt 			 */
    288       1.1     matt 			*pap = trunc_page(pa);
    289       1.1     matt 			*sizep = round_page(min(pa + size,
    290       1.1     matt 			    ds->ds_addr + ds->ds_len) - pa);
    291       1.1     matt 			return (TRUE);
    292       1.1     matt 		}
    293       1.1     matt 		if (pa < ds->ds_addr && ds->ds_addr < (pa + size)) {
    294       1.1     matt 			/*
    295       1.1     matt 			 * End of region intersects with this range.
    296       1.1     matt 			 */
    297       1.1     matt 			*pap = trunc_page(ds->ds_addr);
    298       1.1     matt 			*sizep = round_page(min((pa + size) - ds->ds_addr,
    299       1.1     matt 			    ds->ds_len));
    300       1.1     matt 			return (TRUE);
    301       1.1     matt 		}
    302       1.1     matt 	}
    303       1.1     matt 
    304       1.1     matt 	/*
    305       1.1     matt 	 * No intersection found.
    306       1.1     matt 	 */
    307       1.1     matt 	return (FALSE);
    308       1.1     matt }
    309       1.1     matt #endif /* NISADMA > 0 */
    310       1.1     matt 
    311       1.1     matt /*
    312       1.1     matt  * Functions for manipluation pv_entry structures. These are used to keep a
    313       1.1     matt  * record of the mappings of virtual addresses and the associated physical
    314       1.1     matt  * pages.
    315       1.1     matt  */
    316       1.1     matt 
    317       1.1     matt /*
    318       1.1     matt  * Allocate a new pv_entry structure from the freelist. If the list is
    319       1.1     matt  * empty allocate a new page and fill the freelist.
    320       1.1     matt  */
    321       1.1     matt struct pv_entry *
    322       1.1     matt pmap_alloc_pv()
    323       1.1     matt {
    324       1.1     matt 	struct pv_page *pvp;
    325       1.1     matt 	struct pv_entry *pv;
    326       1.1     matt 	int i;
    327       1.1     matt 
    328       1.1     matt 	/*
    329       1.1     matt 	 * Do we have any free pv_entry structures left ?
    330       1.1     matt 	 * If not allocate a page of them
    331       1.1     matt 	 */
    332       1.1     matt 
    333       1.1     matt 	if (pv_nfree == 0) {
    334       1.1     matt 		/* NOTE: can't lock kernel_map here */
    335       1.1     matt 		MALLOC(pvp, struct pv_page *, NBPG, M_VMPVENT, M_WAITOK);
    336       1.1     matt 		if (pvp == 0)
    337       1.1     matt 			panic("pmap_alloc_pv: kmem_alloc() failed");
    338       1.1     matt 		pvp->pvp_pgi.pgi_freelist = pv = &pvp->pvp_pv[1];
    339       1.1     matt 		for (i = NPVPPG - 2; i; i--, pv++)
    340       1.1     matt 			pv->pv_next = pv + 1;
    341       1.1     matt 		pv->pv_next = 0;
    342       1.1     matt 		pv_nfree += pvp->pvp_pgi.pgi_nfree = NPVPPG - 1;
    343       1.1     matt 		TAILQ_INSERT_HEAD(&pv_page_freelist, pvp, pvp_pgi.pgi_list);
    344       1.1     matt 		pv = &pvp->pvp_pv[0];
    345       1.1     matt 	} else {
    346       1.1     matt 		--pv_nfree;
    347       1.1     matt 		pvp = pv_page_freelist.tqh_first;
    348       1.1     matt 		if (--pvp->pvp_pgi.pgi_nfree == 0) {
    349       1.1     matt 			TAILQ_REMOVE(&pv_page_freelist, pvp, pvp_pgi.pgi_list);
    350       1.1     matt 		}
    351       1.1     matt 		pv = pvp->pvp_pgi.pgi_freelist;
    352       1.1     matt #ifdef DIAGNOSTIC
    353       1.1     matt 		if (pv == 0)
    354       1.1     matt 			panic("pmap_alloc_pv: pgi_nfree inconsistent");
    355       1.1     matt #endif	/* DIAGNOSTIC */
    356       1.1     matt 		pvp->pvp_pgi.pgi_freelist = pv->pv_next;
    357       1.1     matt 	}
    358       1.1     matt 	return pv;
    359       1.1     matt }
    360       1.1     matt 
    361       1.1     matt /*
    362       1.1     matt  * Release a pv_entry structure putting it back on the freelist.
    363       1.1     matt  */
    364       1.1     matt 
    365       1.1     matt void
    366       1.1     matt pmap_free_pv(pv)
    367       1.1     matt 	struct pv_entry *pv;
    368       1.1     matt {
    369       1.1     matt 	struct pv_page *pvp;
    370       1.1     matt 
    371       1.1     matt 	pvp = (struct pv_page *) trunc_page((vaddr_t)pv);
    372       1.1     matt 	switch (++pvp->pvp_pgi.pgi_nfree) {
    373       1.1     matt 	case 1:
    374       1.1     matt 		TAILQ_INSERT_TAIL(&pv_page_freelist, pvp, pvp_pgi.pgi_list);
    375       1.1     matt 	default:
    376       1.1     matt 		pv->pv_next = pvp->pvp_pgi.pgi_freelist;
    377       1.1     matt 		pvp->pvp_pgi.pgi_freelist = pv;
    378       1.1     matt 		++pv_nfree;
    379       1.1     matt 		break;
    380       1.1     matt 	case NPVPPG:
    381       1.1     matt 		pv_nfree -= NPVPPG - 1;
    382       1.1     matt 		TAILQ_REMOVE(&pv_page_freelist, pvp, pvp_pgi.pgi_list);
    383       1.1     matt 		FREE((vaddr_t)pvp, M_VMPVENT);
    384       1.1     matt 		break;
    385       1.1     matt 	}
    386       1.1     matt }
    387       1.1     matt 
    388       1.1     matt #if 0
    389       1.1     matt void
    390       1.1     matt pmap_collect_pv()
    391       1.1     matt {
    392       1.1     matt 	struct pv_page_list pv_page_collectlist;
    393       1.1     matt 	struct pv_page *pvp, *npvp;
    394       1.1     matt 	struct pv_entry *ph, *ppv, *pv, *npv;
    395       1.1     matt 	int s;
    396       1.1     matt 
    397       1.1     matt 	TAILQ_INIT(&pv_page_collectlist);
    398       1.1     matt 
    399       1.1     matt 	for (pvp = pv_page_freelist.tqh_first; pvp; pvp = npvp) {
    400       1.1     matt 		if (pv_nfree < NPVPPG)
    401       1.1     matt 			break;
    402       1.1     matt 		npvp = pvp->pvp_pgi.pgi_list.tqe_next;
    403       1.1     matt 		if (pvp->pvp_pgi.pgi_nfree > NPVPPG / 3) {
    404       1.1     matt 			TAILQ_REMOVE(&pv_page_freelist, pvp, pvp_pgi.pgi_list);
    405       1.1     matt 			TAILQ_INSERT_TAIL(&pv_page_collectlist, pvp,
    406       1.1     matt 			    pvp_pgi.pgi_list);
    407       1.1     matt 			pv_nfree -= NPVPPG;
    408       1.1     matt 			pvp->pvp_pgi.pgi_nfree = -1;
    409       1.1     matt 		}
    410       1.1     matt 	}
    411       1.1     matt 
    412       1.1     matt 	if (pv_page_collectlist.tqh_first == 0)
    413       1.1     matt 		return;
    414       1.1     matt 
    415       1.1     matt 	for (ph = &pv_table[npages - 1]; ph >= &pv_table[0]; ph--) {
    416       1.1     matt 		if (ph->pv_pmap == 0)
    417       1.1     matt 			continue;
    418       1.1     matt 		s = splvm();
    419       1.1     matt 		for (ppv = ph; (pv = ppv->pv_next) != 0; ) {
    420       1.1     matt 			pvp = (struct pv_page *) trunc_page((vaddr_t)pv);
    421       1.1     matt 			if (pvp->pvp_pgi.pgi_nfree == -1) {
    422       1.1     matt 				pvp = pv_page_freelist.tqh_first;
    423       1.1     matt 				if (--pvp->pvp_pgi.pgi_nfree == 0) {
    424       1.1     matt 					TAILQ_REMOVE(&pv_page_freelist,
    425       1.1     matt 					    pvp, pvp_pgi.pgi_list);
    426       1.1     matt 				}
    427       1.1     matt 				npv = pvp->pvp_pgi.pgi_freelist;
    428       1.1     matt #ifdef DIAGNOSTIC
    429       1.1     matt 				if (npv == 0)
    430       1.1     matt 					panic("pmap_collect_pv: pgi_nfree inconsistent");
    431       1.1     matt #endif	/* DIAGNOSTIC */
    432       1.1     matt 				pvp->pvp_pgi.pgi_freelist = npv->pv_next;
    433       1.1     matt 				*npv = *pv;
    434       1.1     matt 				ppv->pv_next = npv;
    435       1.1     matt 				ppv = npv;
    436       1.1     matt 			} else
    437       1.1     matt 				ppv = pv;
    438       1.1     matt 		}
    439       1.1     matt 		splx(s);
    440       1.1     matt 	}
    441       1.1     matt 
    442       1.1     matt 	for (pvp = pv_page_collectlist.tqh_first; pvp; pvp = npvp) {
    443       1.1     matt 		npvp = pvp->pvp_pgi.pgi_list.tqe_next;
    444       1.1     matt 		FREE((vaddr_t)pvp, M_VMPVENT);
    445       1.1     matt 	}
    446       1.1     matt }
    447       1.1     matt #endif
    448       1.1     matt 
    449       1.1     matt /*
    450       1.1     matt  * Enter a new physical-virtual mapping into the pv table
    451       1.1     matt  */
    452       1.1     matt 
    453       1.1     matt /*__inline*/ void
    454       1.1     matt pmap_enter_pv(pmap, va, pv, flags)
    455  1.14.2.1    lukem 	struct pmap *pmap;
    456       1.1     matt 	vaddr_t va;
    457       1.1     matt 	struct pv_entry *pv;
    458       1.1     matt 	u_int flags;
    459       1.1     matt {
    460       1.1     matt 	struct pv_entry *npv;
    461       1.1     matt 	u_int s;
    462       1.1     matt 
    463       1.1     matt #ifdef DIAGNOSTIC
    464       1.1     matt 	if (!pmap_initialized)
    465       1.1     matt 		panic("pmap_enter_pv: !pmap_initialized");
    466       1.1     matt #endif
    467       1.1     matt 
    468       1.1     matt 	s = splvm();
    469       1.1     matt 
    470       1.1     matt 	PDEBUG(5, printf("pmap_enter_pv: pv %p: %08lx/%p/%p\n",
    471       1.1     matt 	    pv, pv->pv_va, pv->pv_pmap, pv->pv_next));
    472       1.1     matt 
    473       1.1     matt 	if (pv->pv_pmap == NULL) {
    474       1.1     matt 		/*
    475       1.1     matt 		 * No entries yet, use header as the first entry
    476       1.1     matt 		 */
    477       1.1     matt 		pv->pv_va = va;
    478       1.1     matt 		pv->pv_pmap = pmap;
    479       1.1     matt 		pv->pv_next = NULL;
    480       1.1     matt 		pv->pv_flags = flags;
    481       1.1     matt 	} else {
    482       1.1     matt 		/*
    483       1.1     matt 		 * There is at least one other VA mapping this page.
    484       1.1     matt 		 * Place this entry after the header.
    485       1.1     matt 		 */
    486       1.1     matt #ifdef PMAP_DEBUG
    487       1.1     matt 		for (npv = pv; npv; npv = npv->pv_next)
    488       1.1     matt 			if (pmap == npv->pv_pmap && va == npv->pv_va)
    489       1.1     matt 				panic("pmap_enter_pv: already in pv_tab pv %p: %08lx/%p/%p",
    490       1.1     matt 				    pv, pv->pv_va, pv->pv_pmap, pv->pv_next);
    491       1.1     matt #endif
    492       1.1     matt 		npv = pmap_alloc_pv();
    493      1.12    chris 		/* Must make sure that the new entry is before any others
    494      1.12    chris 		 * for the same pmap.  Otherwise the vac handling code
    495      1.12    chris 		 * will get confused.
    496      1.12    chris 		 * XXX this would be better if we used lists like i386 (infact
    497      1.12    chris 		 * this would be a lot simpler)
    498      1.12    chris 		 */
    499      1.12    chris 		*npv = *pv;
    500      1.12    chris  		pv->pv_va = va;
    501      1.12    chris  		pv->pv_pmap = pmap;
    502      1.12    chris  		pv->pv_flags = flags;
    503       1.1     matt 		pv->pv_next = npv;
    504       1.1     matt 	}
    505       1.1     matt 
    506       1.1     matt 	if (flags & PT_W)
    507       1.1     matt 		++pmap->pm_stats.wired_count;
    508       1.1     matt 
    509       1.1     matt 	splx(s);
    510       1.1     matt }
    511       1.1     matt 
    512       1.1     matt 
    513       1.1     matt /*
    514       1.1     matt  * Remove a physical-virtual mapping from the pv table
    515       1.1     matt  */
    516       1.1     matt 
    517       1.1     matt /*__inline*/ void
    518       1.1     matt pmap_remove_pv(pmap, va, pv)
    519  1.14.2.1    lukem 	struct pmap *pmap;
    520       1.1     matt 	vaddr_t va;
    521       1.1     matt 	struct pv_entry *pv;
    522       1.1     matt {
    523       1.1     matt 	struct pv_entry *npv;
    524       1.1     matt 	u_int s;
    525       1.1     matt 	u_int flags = 0;
    526       1.1     matt 
    527       1.1     matt #ifdef DIAGNOSTIC
    528       1.1     matt 	if (!pmap_initialized)
    529       1.1     matt 		panic("pmap_remove_pv: !pmap_initialized");
    530       1.1     matt #endif
    531       1.1     matt 
    532       1.1     matt 	s = splvm();
    533       1.1     matt 
    534       1.1     matt 	/*
    535       1.1     matt 	 * If it is the first entry on the list, it is actually
    536       1.1     matt 	 * in the header and we must copy the following entry up
    537       1.1     matt 	 * to the header.  Otherwise we must search the list for
    538       1.1     matt 	 * the entry.  In either case we free the now unused entry.
    539       1.1     matt 	 */
    540       1.1     matt 
    541       1.1     matt 	if (pmap == pv->pv_pmap && va == pv->pv_va) {
    542       1.1     matt 		npv = pv->pv_next;
    543       1.1     matt 		if (npv) {
    544       1.1     matt 			*pv = *npv;
    545       1.1     matt 			flags = npv->pv_flags;
    546       1.1     matt 			pmap_free_pv(npv);
    547       1.1     matt 		} else {
    548       1.1     matt 			flags = pv->pv_flags;
    549       1.1     matt 			pv->pv_pmap = NULL;
    550       1.1     matt 		}
    551       1.1     matt 	} else {
    552       1.1     matt 		for (npv = pv->pv_next; npv; pv = npv, npv = npv->pv_next) {
    553       1.1     matt 			if (pmap == npv->pv_pmap && va == npv->pv_va)
    554       1.1     matt 				break;
    555       1.1     matt 		}
    556       1.1     matt 		if (npv) {
    557       1.1     matt 			pv->pv_next = npv->pv_next;
    558       1.1     matt 			flags = npv->pv_flags;
    559       1.1     matt 			pmap_free_pv(npv);
    560       1.1     matt 		} else
    561       1.1     matt 			panic("pmap_remove_pv: lost entry");
    562       1.1     matt 	}
    563       1.1     matt 
    564       1.1     matt 	if (flags & PT_W)
    565       1.1     matt 		--pmap->pm_stats.wired_count;
    566       1.1     matt 
    567       1.1     matt 	splx(s);
    568       1.1     matt }
    569       1.1     matt 
    570       1.1     matt /*
    571       1.1     matt  * Modify a physical-virtual mapping in the pv table
    572       1.1     matt  */
    573       1.1     matt 
    574       1.1     matt /*__inline */ u_int
    575       1.1     matt pmap_modify_pv(pmap, va, pv, bic_mask, eor_mask)
    576  1.14.2.1    lukem 	struct pmap *pmap;
    577       1.1     matt 	vaddr_t va;
    578       1.1     matt 	struct pv_entry *pv;
    579       1.1     matt 	u_int bic_mask;
    580       1.1     matt 	u_int eor_mask;
    581       1.1     matt {
    582       1.1     matt 	struct pv_entry *npv;
    583       1.1     matt 	u_int s;
    584       1.1     matt 	u_int flags, oflags;
    585       1.1     matt 
    586       1.1     matt 	PDEBUG(5, printf("pmap_modify_pv(pmap=%p, va=%08lx, pv=%p, bic_mask=%08x, eor_mask=%08x)\n",
    587       1.1     matt 	    pmap, va, pv, bic_mask, eor_mask));
    588       1.1     matt 
    589       1.1     matt #ifdef DIAGNOSTIC
    590       1.1     matt 	if (!pmap_initialized)
    591       1.1     matt 		panic("pmap_modify_pv: !pmap_initialized");
    592       1.1     matt #endif
    593       1.1     matt 
    594       1.1     matt 	s = splvm();
    595       1.1     matt 
    596       1.1     matt 	PDEBUG(5, printf("pmap_modify_pv: pv %p: %08lx/%p/%p/%08x ",
    597       1.1     matt 	    pv, pv->pv_va, pv->pv_pmap, pv->pv_next, pv->pv_flags));
    598       1.1     matt 
    599       1.1     matt 	/*
    600       1.1     matt 	 * There is at least one VA mapping this page.
    601       1.1     matt 	 */
    602       1.1     matt 
    603       1.1     matt 	for (npv = pv; npv; npv = npv->pv_next) {
    604       1.1     matt 		if (pmap == npv->pv_pmap && va == npv->pv_va) {
    605       1.1     matt 			oflags = npv->pv_flags;
    606       1.1     matt 			npv->pv_flags = flags =
    607       1.1     matt 			    ((oflags & ~bic_mask) ^ eor_mask);
    608       1.1     matt 			if ((flags ^ oflags) & PT_W) {
    609       1.1     matt 				if (flags & PT_W)
    610       1.1     matt 					++pmap->pm_stats.wired_count;
    611       1.1     matt 				else
    612       1.1     matt 					--pmap->pm_stats.wired_count;
    613       1.1     matt 			}
    614       1.1     matt 			PDEBUG(0, printf("done flags=%08x\n", flags));
    615       1.1     matt 			splx(s);
    616       1.1     matt 			return (oflags);
    617       1.1     matt 		}
    618       1.1     matt 	}
    619       1.1     matt 
    620       1.1     matt 	PDEBUG(0, printf("done.\n"));
    621       1.1     matt 	splx(s);
    622       1.1     matt 	return (0);
    623       1.1     matt }
    624       1.1     matt 
    625       1.1     matt 
    626       1.1     matt /*
    627       1.1     matt  * Map the specified level 2 pagetable into the level 1 page table for
    628       1.1     matt  * the given pmap to cover a chunk of virtual address space starting from the
    629       1.1     matt  * address specified.
    630       1.1     matt  */
    631       1.1     matt static /*__inline*/ void
    632       1.1     matt pmap_map_in_l1(pmap, va, l2pa)
    633  1.14.2.1    lukem 	struct pmap *pmap;
    634       1.1     matt 	vaddr_t va, l2pa;
    635       1.1     matt {
    636       1.1     matt 	vaddr_t ptva;
    637       1.1     matt 
    638       1.1     matt 	/* Calculate the index into the L1 page table. */
    639       1.1     matt 	ptva = (va >> PDSHIFT) & ~3;
    640       1.1     matt 
    641       1.1     matt 	PDEBUG(0, printf("wiring %08lx in to pd%p pte0x%lx va0x%lx\n", l2pa,
    642       1.1     matt 	    pmap->pm_pdir, L1_PTE(l2pa), ptva));
    643       1.1     matt 
    644       1.1     matt 	/* Map page table into the L1. */
    645       1.1     matt 	pmap->pm_pdir[ptva + 0] = L1_PTE(l2pa + 0x000);
    646       1.1     matt 	pmap->pm_pdir[ptva + 1] = L1_PTE(l2pa + 0x400);
    647       1.1     matt 	pmap->pm_pdir[ptva + 2] = L1_PTE(l2pa + 0x800);
    648       1.1     matt 	pmap->pm_pdir[ptva + 3] = L1_PTE(l2pa + 0xc00);
    649       1.1     matt 
    650       1.1     matt 	PDEBUG(0, printf("pt self reference %lx in %lx\n",
    651       1.1     matt 	    L2_PTE_NC_NB(l2pa, AP_KRW), pmap->pm_vptpt));
    652       1.1     matt 
    653       1.1     matt 	/* Map the page table into the page table area. */
    654       1.1     matt 	*((pt_entry_t *)(pmap->pm_vptpt + ptva)) = L2_PTE_NC_NB(l2pa, AP_KRW);
    655       1.1     matt 
    656       1.1     matt 	/* XXX should be a purge */
    657       1.1     matt /*	cpu_tlb_flushD();*/
    658       1.1     matt }
    659       1.1     matt 
    660       1.1     matt #if 0
    661       1.1     matt static /*__inline*/ void
    662       1.1     matt pmap_unmap_in_l1(pmap, va)
    663  1.14.2.1    lukem 	struct pmap *pmap;
    664       1.1     matt 	vaddr_t va;
    665       1.1     matt {
    666       1.1     matt 	vaddr_t ptva;
    667       1.1     matt 
    668       1.1     matt 	/* Calculate the index into the L1 page table. */
    669       1.1     matt 	ptva = (va >> PDSHIFT) & ~3;
    670       1.1     matt 
    671       1.1     matt 	/* Unmap page table from the L1. */
    672       1.1     matt 	pmap->pm_pdir[ptva + 0] = 0;
    673       1.1     matt 	pmap->pm_pdir[ptva + 1] = 0;
    674       1.1     matt 	pmap->pm_pdir[ptva + 2] = 0;
    675       1.1     matt 	pmap->pm_pdir[ptva + 3] = 0;
    676       1.1     matt 
    677       1.1     matt 	/* Unmap the page table from the page table area. */
    678       1.1     matt 	*((pt_entry_t *)(pmap->pm_vptpt + ptva)) = 0;
    679       1.1     matt 
    680       1.1     matt 	/* XXX should be a purge */
    681       1.1     matt /*	cpu_tlb_flushD();*/
    682       1.1     matt }
    683       1.1     matt #endif
    684       1.1     matt 
    685       1.1     matt 
    686       1.1     matt /*
    687       1.1     matt  *	Used to map a range of physical addresses into kernel
    688       1.1     matt  *	virtual address space.
    689       1.1     matt  *
    690       1.1     matt  *	For now, VM is already on, we only need to map the
    691       1.1     matt  *	specified memory.
    692       1.1     matt  */
    693       1.1     matt vaddr_t
    694       1.1     matt pmap_map(va, spa, epa, prot)
    695       1.1     matt 	vaddr_t va, spa, epa;
    696       1.1     matt 	int prot;
    697       1.1     matt {
    698       1.1     matt 	while (spa < epa) {
    699       1.1     matt 		pmap_enter(pmap_kernel(), va, spa, prot, 0);
    700       1.1     matt 		va += NBPG;
    701       1.1     matt 		spa += NBPG;
    702       1.1     matt 	}
    703       1.7  thorpej 	pmap_update();
    704       1.1     matt 	return(va);
    705       1.1     matt }
    706       1.1     matt 
    707       1.1     matt 
    708       1.1     matt /*
    709       1.3     matt  * void pmap_bootstrap(pd_entry_t *kernel_l1pt, pv_addr_t kernel_ptpt)
    710       1.1     matt  *
    711       1.1     matt  * bootstrap the pmap system. This is called from initarm and allows
    712       1.1     matt  * the pmap system to initailise any structures it requires.
    713       1.1     matt  *
    714       1.1     matt  * Currently this sets up the kernel_pmap that is statically allocated
    715       1.1     matt  * and also allocated virtual addresses for certain page hooks.
    716       1.1     matt  * Currently the only one page hook is allocated that is used
    717       1.1     matt  * to zero physical pages of memory.
    718       1.1     matt  * It also initialises the start and end address of the kernel data space.
    719       1.1     matt  */
    720       1.2     matt extern paddr_t physical_freestart;
    721       1.2     matt extern paddr_t physical_freeend;
    722       1.1     matt 
    723       1.1     matt struct pv_entry *boot_pvent;
    724       1.1     matt char *boot_attrs;
    725       1.1     matt 
    726       1.1     matt void
    727       1.1     matt pmap_bootstrap(kernel_l1pt, kernel_ptpt)
    728       1.1     matt 	pd_entry_t *kernel_l1pt;
    729       1.1     matt 	pv_addr_t kernel_ptpt;
    730       1.1     matt {
    731       1.1     matt 	int loop;
    732       1.2     matt 	paddr_t start, end;
    733       1.1     matt #if NISADMA > 0
    734       1.2     matt 	paddr_t istart;
    735       1.2     matt 	psize_t isize;
    736       1.1     matt #endif
    737       1.1     matt 	vsize_t size;
    738       1.1     matt 
    739  1.14.2.1    lukem 	pmap_kernel()->pm_pdir = kernel_l1pt;
    740  1.14.2.1    lukem 	pmap_kernel()->pm_pptpt = kernel_ptpt.pv_pa;
    741  1.14.2.1    lukem 	pmap_kernel()->pm_vptpt = kernel_ptpt.pv_va;
    742  1.14.2.1    lukem 	simple_lock_init(&pmap_kernel()->pm_lock);
    743  1.14.2.1    lukem 	pmap_kernel()->pm_obj.pgops = NULL;
    744  1.14.2.1    lukem 	TAILQ_INIT(&(pmap_kernel()->pm_obj.memq));
    745  1.14.2.1    lukem 	pmap_kernel()->pm_obj.uo_npages = 0;
    746  1.14.2.1    lukem 	pmap_kernel()->pm_obj.uo_refs = 1;
    747  1.14.2.1    lukem 
    748       1.1     matt 	/*
    749       1.1     matt 	 * Initialize PAGE_SIZE-dependent variables.
    750       1.1     matt 	 */
    751       1.1     matt 	uvm_setpagesize();
    752       1.1     matt 
    753       1.1     matt 	npages = 0;
    754       1.1     matt 	loop = 0;
    755       1.1     matt 	while (loop < bootconfig.dramblocks) {
    756       1.2     matt 		start = (paddr_t)bootconfig.dram[loop].address;
    757       1.1     matt 		end = start + (bootconfig.dram[loop].pages * NBPG);
    758       1.1     matt 		if (start < physical_freestart)
    759       1.1     matt 			start = physical_freestart;
    760       1.1     matt 		if (end > physical_freeend)
    761       1.1     matt 			end = physical_freeend;
    762       1.1     matt #if 0
    763       1.1     matt 		printf("%d: %lx -> %lx\n", loop, start, end - 1);
    764       1.1     matt #endif
    765       1.1     matt #if NISADMA > 0
    766       1.1     matt 		if (pmap_isa_dma_range_intersect(start, end - start,
    767       1.1     matt 		    &istart, &isize)) {
    768       1.1     matt 			/*
    769       1.1     matt 			 * Place the pages that intersect with the
    770       1.1     matt 			 * ISA DMA range onto the ISA DMA free list.
    771       1.1     matt 			 */
    772       1.1     matt #if 0
    773       1.1     matt 			printf("    ISADMA 0x%lx -> 0x%lx\n", istart,
    774       1.1     matt 			    istart + isize - 1);
    775       1.1     matt #endif
    776       1.1     matt 			uvm_page_physload(atop(istart),
    777       1.1     matt 			    atop(istart + isize), atop(istart),
    778       1.1     matt 			    atop(istart + isize), VM_FREELIST_ISADMA);
    779       1.1     matt 			npages += atop(istart + isize) - atop(istart);
    780       1.1     matt 
    781       1.1     matt 			/*
    782       1.1     matt 			 * Load the pieces that come before
    783       1.1     matt 			 * the intersection into the default
    784       1.1     matt 			 * free list.
    785       1.1     matt 			 */
    786       1.1     matt 			if (start < istart) {
    787       1.1     matt #if 0
    788       1.1     matt 				printf("    BEFORE 0x%lx -> 0x%lx\n",
    789       1.1     matt 				    start, istart - 1);
    790       1.1     matt #endif
    791       1.1     matt 				uvm_page_physload(atop(start),
    792       1.1     matt 				    atop(istart), atop(start),
    793       1.1     matt 				    atop(istart), VM_FREELIST_DEFAULT);
    794       1.1     matt 				npages += atop(istart) - atop(start);
    795       1.1     matt 			}
    796       1.1     matt 
    797       1.1     matt 			/*
    798       1.1     matt 			 * Load the pieces that come after
    799       1.1     matt 			 * the intersection into the default
    800       1.1     matt 			 * free list.
    801       1.1     matt 			 */
    802       1.1     matt 			if ((istart + isize) < end) {
    803       1.1     matt #if 0
    804       1.1     matt 				printf("     AFTER 0x%lx -> 0x%lx\n",
    805       1.1     matt 				    (istart + isize), end - 1);
    806       1.1     matt #endif
    807       1.1     matt 				uvm_page_physload(atop(istart + isize),
    808       1.1     matt 				    atop(end), atop(istart + isize),
    809       1.1     matt 				    atop(end), VM_FREELIST_DEFAULT);
    810       1.1     matt 				npages += atop(end) - atop(istart + isize);
    811       1.1     matt 			}
    812       1.1     matt 		} else {
    813       1.1     matt 			uvm_page_physload(atop(start), atop(end),
    814       1.1     matt 			    atop(start), atop(end), VM_FREELIST_DEFAULT);
    815       1.1     matt 			npages += atop(end) - atop(start);
    816       1.1     matt 		}
    817       1.1     matt #else	/* NISADMA > 0 */
    818       1.1     matt 		uvm_page_physload(atop(start), atop(end),
    819       1.1     matt 		    atop(start), atop(end), VM_FREELIST_DEFAULT);
    820       1.1     matt 		npages += atop(end) - atop(start);
    821       1.1     matt #endif /* NISADMA > 0 */
    822       1.1     matt 		++loop;
    823       1.1     matt 	}
    824       1.1     matt 
    825       1.1     matt #ifdef MYCROFT_HACK
    826       1.1     matt 	printf("npages = %ld\n", npages);
    827       1.1     matt #endif
    828       1.1     matt 
    829       1.1     matt 	virtual_start = KERNEL_VM_BASE;
    830       1.1     matt 	virtual_end = virtual_start + KERNEL_VM_SIZE - 1;
    831       1.1     matt 
    832       1.1     matt 	ALLOC_PAGE_HOOK(page_hook0, NBPG);
    833       1.1     matt 	ALLOC_PAGE_HOOK(page_hook1, NBPG);
    834       1.1     matt 
    835       1.1     matt 	/*
    836       1.1     matt 	 * The mem special device needs a virtual hook but we don't
    837       1.1     matt 	 * need a pte
    838       1.1     matt 	 */
    839       1.1     matt 	memhook = (char *)virtual_start;
    840       1.1     matt 	virtual_start += NBPG;
    841       1.1     matt 
    842       1.1     matt 	msgbufaddr = (caddr_t)virtual_start;
    843  1.14.2.1    lukem 	msgbufpte = (pt_entry_t)pmap_pte(pmap_kernel(), virtual_start);
    844       1.1     matt 	virtual_start += round_page(MSGBUFSIZE);
    845       1.1     matt 
    846       1.1     matt 	size = npages * sizeof(struct pv_entry);
    847       1.1     matt 	boot_pvent = (struct pv_entry *)uvm_pageboot_alloc(size);
    848       1.1     matt 	bzero(boot_pvent, size);
    849       1.1     matt 	size = npages * sizeof(char);
    850       1.1     matt 	boot_attrs = (char *)uvm_pageboot_alloc(size);
    851       1.1     matt 	bzero(boot_attrs, size);
    852       1.1     matt 
    853      1.10    chris 	/*
    854      1.10    chris 	 * initialize the pmap pool.
    855      1.10    chris 	 */
    856      1.10    chris 
    857      1.10    chris 	pool_init(&pmap_pmap_pool, sizeof(struct pmap), 0, 0, 0, "pmappl",
    858      1.10    chris 		  0, pool_page_alloc_nointr, pool_page_free_nointr, M_VMPMAP);
    859      1.10    chris 
    860       1.1     matt 	cpu_cache_cleanD();
    861       1.1     matt }
    862       1.1     matt 
    863       1.1     matt /*
    864       1.1     matt  * void pmap_init(void)
    865       1.1     matt  *
    866       1.1     matt  * Initialize the pmap module.
    867       1.1     matt  * Called by vm_init() in vm/vm_init.c in order to initialise
    868       1.1     matt  * any structures that the pmap system needs to map virtual memory.
    869       1.1     matt  */
    870       1.1     matt 
    871       1.1     matt extern int physmem;
    872       1.1     matt 
    873       1.1     matt void
    874       1.1     matt pmap_init()
    875       1.1     matt {
    876       1.1     matt 	int lcv;
    877       1.1     matt 
    878       1.1     matt #ifdef MYCROFT_HACK
    879       1.1     matt 	printf("physmem = %d\n", physmem);
    880       1.1     matt #endif
    881       1.1     matt 
    882       1.1     matt 	/*
    883       1.1     matt 	 * Set the available memory vars - These do not map to real memory
    884       1.1     matt 	 * addresses and cannot as the physical memory is fragmented.
    885       1.1     matt 	 * They are used by ps for %mem calculations.
    886       1.1     matt 	 * One could argue whether this should be the entire memory or just
    887       1.1     matt 	 * the memory that is useable in a user process.
    888       1.1     matt 	 */
    889       1.1     matt 	avail_start = 0;
    890       1.1     matt 	avail_end = physmem * NBPG;
    891       1.1     matt 
    892       1.1     matt 	/* Set up pmap info for physsegs. */
    893       1.1     matt 	for (lcv = 0; lcv < vm_nphysseg; lcv++) {
    894       1.1     matt 		vm_physmem[lcv].pmseg.pvent = boot_pvent;
    895       1.1     matt 		boot_pvent += vm_physmem[lcv].end - vm_physmem[lcv].start;
    896       1.1     matt 		vm_physmem[lcv].pmseg.attrs = boot_attrs;
    897       1.1     matt 		boot_attrs += vm_physmem[lcv].end - vm_physmem[lcv].start;
    898       1.1     matt 	}
    899       1.1     matt #ifdef MYCROFT_HACK
    900       1.1     matt 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++) {
    901       1.1     matt 		printf("physseg[%d] pvent=%p attrs=%p start=%ld end=%ld\n",
    902       1.1     matt 		    lcv,
    903       1.1     matt 		    vm_physmem[lcv].pmseg.pvent, vm_physmem[lcv].pmseg.attrs,
    904       1.1     matt 		    vm_physmem[lcv].start, vm_physmem[lcv].end);
    905       1.1     matt 	}
    906       1.1     matt #endif
    907       1.1     matt 	TAILQ_INIT(&pv_page_freelist);
    908       1.1     matt 
    909       1.1     matt #ifdef DIAGNOSTIC
    910       1.1     matt 	/* Now it is safe to enable pv_entry recording. */
    911       1.1     matt 	pmap_initialized = TRUE;
    912       1.1     matt #endif
    913       1.1     matt 
    914       1.1     matt 	/* Initialise our L1 page table queues and counters */
    915       1.1     matt 	SIMPLEQ_INIT(&l1pt_static_queue);
    916       1.1     matt 	l1pt_static_queue_count = 0;
    917       1.1     matt 	l1pt_static_create_count = 0;
    918       1.1     matt 	SIMPLEQ_INIT(&l1pt_queue);
    919       1.1     matt 	l1pt_queue_count = 0;
    920       1.1     matt 	l1pt_create_count = 0;
    921       1.1     matt 	l1pt_reuse_count = 0;
    922       1.1     matt }
    923       1.1     matt 
    924       1.1     matt /*
    925       1.1     matt  * pmap_postinit()
    926       1.1     matt  *
    927       1.1     matt  * This routine is called after the vm and kmem subsystems have been
    928       1.1     matt  * initialised. This allows the pmap code to perform any initialisation
    929       1.1     matt  * that can only be done one the memory allocation is in place.
    930       1.1     matt  */
    931       1.1     matt 
    932       1.1     matt void
    933       1.1     matt pmap_postinit()
    934       1.1     matt {
    935       1.1     matt 	int loop;
    936       1.1     matt 	struct l1pt *pt;
    937       1.1     matt 
    938       1.1     matt #ifdef PMAP_STATIC_L1S
    939       1.1     matt 	for (loop = 0; loop < PMAP_STATIC_L1S; ++loop) {
    940       1.1     matt #else	/* PMAP_STATIC_L1S */
    941       1.1     matt 	for (loop = 0; loop < max_processes; ++loop) {
    942       1.1     matt #endif	/* PMAP_STATIC_L1S */
    943       1.1     matt 		/* Allocate a L1 page table */
    944       1.1     matt 		pt = pmap_alloc_l1pt();
    945       1.1     matt 		if (!pt)
    946       1.1     matt 			panic("Cannot allocate static L1 page tables\n");
    947       1.1     matt 
    948       1.1     matt 		/* Clean it */
    949       1.1     matt 		bzero((void *)pt->pt_va, PD_SIZE);
    950       1.1     matt 		pt->pt_flags |= (PTFLAG_STATIC | PTFLAG_CLEAN);
    951       1.1     matt 		/* Add the page table to the queue */
    952       1.1     matt 		SIMPLEQ_INSERT_TAIL(&l1pt_static_queue, pt, pt_queue);
    953       1.1     matt 		++l1pt_static_queue_count;
    954       1.1     matt 		++l1pt_static_create_count;
    955       1.1     matt 	}
    956       1.1     matt }
    957       1.1     matt 
    958       1.1     matt 
    959       1.1     matt /*
    960       1.1     matt  * Create and return a physical map.
    961       1.1     matt  *
    962       1.1     matt  * If the size specified for the map is zero, the map is an actual physical
    963       1.1     matt  * map, and may be referenced by the hardware.
    964       1.1     matt  *
    965       1.1     matt  * If the size specified is non-zero, the map will be used in software only,
    966       1.1     matt  * and is bounded by that size.
    967       1.1     matt  */
    968       1.1     matt 
    969       1.1     matt pmap_t
    970       1.1     matt pmap_create()
    971       1.1     matt {
    972  1.14.2.1    lukem 	struct pmap *pmap;
    973       1.1     matt 
    974      1.10    chris 	/*
    975      1.10    chris 	 * Fetch pmap entry from the pool
    976      1.10    chris 	 */
    977      1.10    chris 
    978      1.10    chris 	pmap = pool_get(&pmap_pmap_pool, PR_WAITOK);
    979       1.1     matt 	bzero(pmap, sizeof(*pmap));
    980       1.1     matt 
    981  1.14.2.1    lukem 	simple_lock_init(&pmap->pm_obj.vmobjlock);
    982  1.14.2.1    lukem 	pmap->pm_obj.pgops = NULL;	/* currently not a mappable object */
    983  1.14.2.1    lukem 	TAILQ_INIT(&pmap->pm_obj.memq);
    984  1.14.2.1    lukem 	pmap->pm_obj.uo_npages = 0;
    985  1.14.2.1    lukem 	pmap->pm_obj.uo_refs = 1;
    986  1.14.2.1    lukem 	pmap->pm_stats.wired_count = 0;
    987  1.14.2.1    lukem 	pmap->pm_stats.resident_count = 1;
    988  1.14.2.1    lukem 
    989       1.1     matt 	/* Now init the machine part of the pmap */
    990       1.1     matt 	pmap_pinit(pmap);
    991       1.1     matt 	return(pmap);
    992       1.1     matt }
    993       1.1     matt 
    994       1.1     matt /*
    995       1.1     matt  * pmap_alloc_l1pt()
    996       1.1     matt  *
    997       1.1     matt  * This routine allocates physical and virtual memory for a L1 page table
    998       1.1     matt  * and wires it.
    999       1.1     matt  * A l1pt structure is returned to describe the allocated page table.
   1000       1.1     matt  *
   1001       1.1     matt  * This routine is allowed to fail if the required memory cannot be allocated.
   1002       1.1     matt  * In this case NULL is returned.
   1003       1.1     matt  */
   1004       1.1     matt 
   1005       1.1     matt struct l1pt *
   1006       1.1     matt pmap_alloc_l1pt(void)
   1007       1.1     matt {
   1008       1.2     matt 	paddr_t pa;
   1009       1.2     matt 	vaddr_t va;
   1010       1.1     matt 	struct l1pt *pt;
   1011       1.1     matt 	int error;
   1012       1.9      chs 	struct vm_page *m;
   1013      1.11    chris 	pt_entry_t *ptes;
   1014       1.1     matt 
   1015       1.1     matt 	/* Allocate virtual address space for the L1 page table */
   1016       1.1     matt 	va = uvm_km_valloc(kernel_map, PD_SIZE);
   1017       1.1     matt 	if (va == 0) {
   1018       1.1     matt #ifdef DIAGNOSTIC
   1019       1.1     matt 		printf("pmap: Cannot allocate pageable memory for L1\n");
   1020       1.1     matt #endif	/* DIAGNOSTIC */
   1021       1.1     matt 		return(NULL);
   1022       1.1     matt 	}
   1023       1.1     matt 
   1024       1.1     matt 	/* Allocate memory for the l1pt structure */
   1025       1.1     matt 	pt = (struct l1pt *)malloc(sizeof(struct l1pt), M_VMPMAP, M_WAITOK);
   1026       1.1     matt 
   1027       1.1     matt 	/*
   1028       1.1     matt 	 * Allocate pages from the VM system.
   1029       1.1     matt 	 */
   1030       1.1     matt 	TAILQ_INIT(&pt->pt_plist);
   1031       1.1     matt 	error = uvm_pglistalloc(PD_SIZE, physical_start, physical_end,
   1032       1.1     matt 	    PD_SIZE, 0, &pt->pt_plist, 1, M_WAITOK);
   1033       1.1     matt 	if (error) {
   1034       1.1     matt #ifdef DIAGNOSTIC
   1035       1.1     matt 		printf("pmap: Cannot allocate physical memory for L1 (%d)\n",
   1036       1.1     matt 		    error);
   1037       1.1     matt #endif	/* DIAGNOSTIC */
   1038       1.1     matt 		/* Release the resources we already have claimed */
   1039       1.1     matt 		free(pt, M_VMPMAP);
   1040       1.1     matt 		uvm_km_free(kernel_map, va, PD_SIZE);
   1041       1.1     matt 		return(NULL);
   1042       1.1     matt 	}
   1043       1.1     matt 
   1044       1.1     matt 	/* Map our physical pages into our virtual space */
   1045       1.1     matt 	pt->pt_va = va;
   1046       1.1     matt 	m = pt->pt_plist.tqh_first;
   1047      1.11    chris 	ptes = pmap_map_ptes(pmap_kernel());
   1048       1.1     matt 	while (m && va < (pt->pt_va + PD_SIZE)) {
   1049       1.1     matt 		pa = VM_PAGE_TO_PHYS(m);
   1050       1.1     matt 
   1051       1.1     matt 		pmap_enter(pmap_kernel(), va, pa,
   1052       1.1     matt 		    VM_PROT_READ | VM_PROT_WRITE, PMAP_WIRED);
   1053       1.1     matt 
   1054       1.1     matt 		/* Revoke cacheability and bufferability */
   1055       1.1     matt 		/* XXX should be done better than this */
   1056      1.11    chris 		ptes[arm_byte_to_page(va)] &= ~(PT_C | PT_B);
   1057       1.1     matt 
   1058       1.1     matt 		va += NBPG;
   1059       1.1     matt 		m = m->pageq.tqe_next;
   1060       1.1     matt 	}
   1061      1.11    chris 	pmap_unmap_ptes(pmap_kernel());
   1062       1.7  thorpej 	pmap_update();
   1063       1.1     matt 
   1064       1.1     matt #ifdef DIAGNOSTIC
   1065       1.1     matt 	if (m)
   1066       1.1     matt 		panic("pmap_alloc_l1pt: pglist not empty\n");
   1067       1.1     matt #endif	/* DIAGNOSTIC */
   1068       1.1     matt 
   1069       1.1     matt 	pt->pt_flags = 0;
   1070       1.1     matt 	return(pt);
   1071       1.1     matt }
   1072       1.1     matt 
   1073       1.1     matt /*
   1074       1.1     matt  * Free a L1 page table previously allocated with pmap_alloc_l1pt().
   1075       1.1     matt  */
   1076       1.1     matt void
   1077       1.1     matt pmap_free_l1pt(pt)
   1078       1.1     matt 	struct l1pt *pt;
   1079       1.1     matt {
   1080       1.1     matt 	/* Separate the physical memory for the virtual space */
   1081  1.14.2.1    lukem 	pmap_remove(pmap_kernel(), pt->pt_va, pt->pt_va + PD_SIZE);
   1082       1.7  thorpej 	pmap_update();
   1083       1.1     matt 
   1084       1.1     matt 	/* Return the physical memory */
   1085       1.1     matt 	uvm_pglistfree(&pt->pt_plist);
   1086       1.1     matt 
   1087       1.1     matt 	/* Free the virtual space */
   1088       1.1     matt 	uvm_km_free(kernel_map, pt->pt_va, PD_SIZE);
   1089       1.1     matt 
   1090       1.1     matt 	/* Free the l1pt structure */
   1091       1.1     matt 	free(pt, M_VMPMAP);
   1092       1.1     matt }
   1093       1.1     matt 
   1094       1.1     matt /*
   1095       1.1     matt  * Allocate a page directory.
   1096       1.1     matt  * This routine will either allocate a new page directory from the pool
   1097       1.1     matt  * of L1 page tables currently held by the kernel or it will allocate
   1098       1.1     matt  * a new one via pmap_alloc_l1pt().
   1099       1.1     matt  * It will then initialise the l1 page table for use.
   1100       1.1     matt  */
   1101       1.1     matt int
   1102       1.1     matt pmap_allocpagedir(pmap)
   1103       1.1     matt 	struct pmap *pmap;
   1104       1.1     matt {
   1105       1.2     matt 	paddr_t pa;
   1106       1.1     matt 	struct l1pt *pt;
   1107       1.1     matt 	pt_entry_t *pte;
   1108       1.1     matt 
   1109       1.1     matt 	PDEBUG(0, printf("pmap_allocpagedir(%p)\n", pmap));
   1110       1.1     matt 
   1111       1.1     matt 	/* Do we have any spare L1's lying around ? */
   1112       1.1     matt 	if (l1pt_static_queue_count) {
   1113       1.1     matt 		--l1pt_static_queue_count;
   1114       1.1     matt 		pt = l1pt_static_queue.sqh_first;
   1115       1.1     matt 		SIMPLEQ_REMOVE_HEAD(&l1pt_static_queue, pt, pt_queue);
   1116       1.1     matt 	} else if (l1pt_queue_count) {
   1117       1.1     matt 		--l1pt_queue_count;
   1118       1.1     matt 		pt = l1pt_queue.sqh_first;
   1119       1.1     matt 		SIMPLEQ_REMOVE_HEAD(&l1pt_queue, pt, pt_queue);
   1120       1.1     matt 		++l1pt_reuse_count;
   1121       1.1     matt 	} else {
   1122       1.1     matt 		pt = pmap_alloc_l1pt();
   1123       1.1     matt 		if (!pt)
   1124       1.1     matt 			return(ENOMEM);
   1125       1.1     matt 		++l1pt_create_count;
   1126       1.1     matt 	}
   1127       1.1     matt 
   1128       1.1     matt 	/* Store the pointer to the l1 descriptor in the pmap. */
   1129       1.1     matt 	pmap->pm_l1pt = pt;
   1130       1.1     matt 
   1131       1.1     matt 	/* Get the physical address of the start of the l1 */
   1132       1.1     matt 	pa = VM_PAGE_TO_PHYS(pt->pt_plist.tqh_first);
   1133       1.1     matt 
   1134       1.1     matt 	/* Store the virtual address of the l1 in the pmap. */
   1135       1.1     matt 	pmap->pm_pdir = (pd_entry_t *)pt->pt_va;
   1136       1.1     matt 
   1137       1.1     matt 	/* Clean the L1 if it is dirty */
   1138       1.1     matt 	if (!(pt->pt_flags & PTFLAG_CLEAN))
   1139       1.1     matt 		bzero((void *)pmap->pm_pdir, (PD_SIZE - KERNEL_PD_SIZE));
   1140       1.1     matt 
   1141       1.1     matt 	/* Do we already have the kernel mappings ? */
   1142       1.1     matt 	if (!(pt->pt_flags & PTFLAG_KPT)) {
   1143       1.1     matt 		/* Duplicate the kernel mapping i.e. all mappings 0xf0000000+ */
   1144       1.1     matt 
   1145  1.14.2.1    lukem 		bcopy((char *)pmap_kernel()->pm_pdir + (PD_SIZE - KERNEL_PD_SIZE),
   1146       1.1     matt 		    (char *)pmap->pm_pdir + (PD_SIZE - KERNEL_PD_SIZE),
   1147       1.1     matt 		    KERNEL_PD_SIZE);
   1148       1.1     matt 		pt->pt_flags |= PTFLAG_KPT;
   1149       1.1     matt 	}
   1150       1.1     matt 
   1151       1.1     matt 	/* Allocate a page table to map all the page tables for this pmap */
   1152       1.1     matt 
   1153       1.1     matt #ifdef DIAGNOSTIC
   1154       1.1     matt 	if (pmap->pm_vptpt) {
   1155       1.1     matt 		/* XXX What if we have one already ? */
   1156       1.1     matt 		panic("pmap_allocpagedir: have pt already\n");
   1157       1.1     matt 	}
   1158       1.1     matt #endif	/* DIAGNOSTIC */
   1159       1.1     matt 	pmap->pm_vptpt = uvm_km_zalloc(kernel_map, NBPG);
   1160       1.5   toshii 	if (pmap->pm_vptpt == 0) {
   1161       1.5   toshii 		pmap_freepagedir(pmap);
   1162       1.5   toshii 		return(ENOMEM);
   1163       1.5   toshii 	}
   1164       1.5   toshii 
   1165  1.14.2.1    lukem 	(void) pmap_extract(pmap_kernel(), pmap->pm_vptpt, &pmap->pm_pptpt);
   1166       1.1     matt 	pmap->pm_pptpt &= PG_FRAME;
   1167       1.1     matt 	/* Revoke cacheability and bufferability */
   1168       1.1     matt 	/* XXX should be done better than this */
   1169  1.14.2.1    lukem 	pte = pmap_pte(pmap_kernel(), pmap->pm_vptpt);
   1170       1.1     matt 	*pte = *pte & ~(PT_C | PT_B);
   1171       1.1     matt 
   1172       1.1     matt 	/* Wire in this page table */
   1173       1.1     matt 	pmap_map_in_l1(pmap, PROCESS_PAGE_TBLS_BASE, pmap->pm_pptpt);
   1174       1.1     matt 
   1175       1.1     matt 	pt->pt_flags &= ~PTFLAG_CLEAN;	/* L1 is dirty now */
   1176       1.1     matt 
   1177       1.1     matt 	/*
   1178       1.1     matt 	 * Map the kernel page tables for 0xf0000000 +
   1179       1.1     matt 	 * into the page table used to map the
   1180       1.1     matt 	 * pmap's page tables
   1181       1.1     matt 	 */
   1182       1.1     matt 	bcopy((char *)(PROCESS_PAGE_TBLS_BASE
   1183       1.1     matt 	    + (PROCESS_PAGE_TBLS_BASE >> (PGSHIFT - 2))
   1184       1.1     matt 	    + ((PD_SIZE - KERNEL_PD_SIZE) >> 2)),
   1185       1.1     matt 	    (char *)pmap->pm_vptpt + ((PD_SIZE - KERNEL_PD_SIZE) >> 2),
   1186       1.1     matt 	    (KERNEL_PD_SIZE >> 2));
   1187       1.1     matt 
   1188       1.1     matt 	return(0);
   1189       1.1     matt }
   1190       1.1     matt 
   1191       1.1     matt 
   1192       1.1     matt /*
   1193       1.1     matt  * Initialize a preallocated and zeroed pmap structure,
   1194       1.1     matt  * such as one in a vmspace structure.
   1195       1.1     matt  */
   1196       1.1     matt 
   1197       1.1     matt static int pmap_pagedir_ident;	/* tsleep() ident */
   1198       1.1     matt 
   1199       1.1     matt void
   1200       1.1     matt pmap_pinit(pmap)
   1201       1.1     matt 	struct pmap *pmap;
   1202       1.1     matt {
   1203       1.1     matt 	PDEBUG(0, printf("pmap_pinit(%p)\n", pmap));
   1204       1.1     matt 
   1205       1.1     matt 	/* Keep looping until we succeed in allocating a page directory */
   1206       1.1     matt 	while (pmap_allocpagedir(pmap) != 0) {
   1207       1.1     matt 		/*
   1208       1.1     matt 		 * Ok we failed to allocate a suitable block of memory for an
   1209       1.1     matt 		 * L1 page table. This means that either:
   1210       1.1     matt 		 * 1. 16KB of virtual address space could not be allocated
   1211       1.1     matt 		 * 2. 16KB of physically contiguous memory on a 16KB boundary
   1212       1.1     matt 		 *    could not be allocated.
   1213       1.1     matt 		 *
   1214       1.1     matt 		 * Since we cannot fail we will sleep for a while and try
   1215       1.1     matt 		 * again. Although we will be wakened when another page table
   1216       1.1     matt 		 * is freed other memory releasing and swapping may occur
   1217       1.1     matt 		 * that will mean we can succeed so we will keep trying
   1218       1.1     matt 		 * regularly just in case.
   1219       1.1     matt 		 */
   1220       1.1     matt 
   1221       1.1     matt 		if (tsleep((caddr_t)&pmap_pagedir_ident, PZERO,
   1222       1.1     matt 		   "l1ptwait", 1000) == EWOULDBLOCK)
   1223       1.1     matt 			printf("pmap: Cannot allocate L1 page table, sleeping ...\n");
   1224       1.1     matt 	}
   1225       1.1     matt 
   1226       1.1     matt 	/* Map zero page for the pmap. This will also map the L2 for it */
   1227       1.1     matt 	pmap_enter(pmap, 0x00000000, systempage.pv_pa,
   1228       1.1     matt 	    VM_PROT_READ, VM_PROT_READ | PMAP_WIRED);
   1229       1.7  thorpej 	pmap_update();
   1230       1.1     matt }
   1231       1.1     matt 
   1232       1.1     matt 
   1233       1.1     matt void
   1234       1.1     matt pmap_freepagedir(pmap)
   1235  1.14.2.1    lukem 	struct pmap *pmap;
   1236       1.1     matt {
   1237       1.1     matt 	/* Free the memory used for the page table mapping */
   1238       1.5   toshii 	if (pmap->pm_vptpt != 0)
   1239       1.5   toshii 		uvm_km_free(kernel_map, (vaddr_t)pmap->pm_vptpt, NBPG);
   1240       1.1     matt 
   1241       1.1     matt 	/* junk the L1 page table */
   1242       1.1     matt 	if (pmap->pm_l1pt->pt_flags & PTFLAG_STATIC) {
   1243       1.1     matt 		/* Add the page table to the queue */
   1244       1.1     matt 		SIMPLEQ_INSERT_TAIL(&l1pt_static_queue, pmap->pm_l1pt, pt_queue);
   1245       1.1     matt 		++l1pt_static_queue_count;
   1246       1.1     matt 		/* Wake up any sleeping processes waiting for a l1 page table */
   1247       1.1     matt 		wakeup((caddr_t)&pmap_pagedir_ident);
   1248       1.1     matt 	} else if (l1pt_queue_count < 8) {
   1249       1.1     matt 		/* Add the page table to the queue */
   1250       1.1     matt 		SIMPLEQ_INSERT_TAIL(&l1pt_queue, pmap->pm_l1pt, pt_queue);
   1251       1.1     matt 		++l1pt_queue_count;
   1252       1.1     matt 		/* Wake up any sleeping processes waiting for a l1 page table */
   1253       1.1     matt 		wakeup((caddr_t)&pmap_pagedir_ident);
   1254       1.1     matt 	} else
   1255       1.1     matt 		pmap_free_l1pt(pmap->pm_l1pt);
   1256       1.1     matt }
   1257       1.1     matt 
   1258       1.1     matt 
   1259       1.1     matt /*
   1260       1.1     matt  * Retire the given physical map from service.
   1261       1.1     matt  * Should only be called if the map contains no valid mappings.
   1262       1.1     matt  */
   1263       1.1     matt 
   1264       1.1     matt void
   1265       1.1     matt pmap_destroy(pmap)
   1266  1.14.2.1    lukem 	struct pmap *pmap;
   1267       1.1     matt {
   1268       1.1     matt 	int count;
   1269       1.1     matt 
   1270       1.1     matt 	if (pmap == NULL)
   1271       1.1     matt 		return;
   1272       1.1     matt 
   1273       1.1     matt 	PDEBUG(0, printf("pmap_destroy(%p)\n", pmap));
   1274       1.1     matt 	simple_lock(&pmap->pm_lock);
   1275  1.14.2.1    lukem 	count = --pmap->pm_obj.uo_refs;
   1276       1.1     matt 	simple_unlock(&pmap->pm_lock);
   1277       1.1     matt 	if (count == 0) {
   1278       1.1     matt 		pmap_release(pmap);
   1279      1.10    chris 		pool_put(&pmap_pmap_pool, pmap);
   1280       1.1     matt 	}
   1281       1.1     matt }
   1282       1.1     matt 
   1283       1.1     matt 
   1284       1.1     matt /*
   1285       1.1     matt  * Release any resources held by the given physical map.
   1286       1.1     matt  * Called when a pmap initialized by pmap_pinit is being released.
   1287       1.1     matt  * Should only be called if the map contains no valid mappings.
   1288       1.1     matt  */
   1289       1.1     matt 
   1290       1.1     matt void
   1291       1.1     matt pmap_release(pmap)
   1292  1.14.2.1    lukem 	struct pmap *pmap;
   1293       1.1     matt {
   1294       1.1     matt 	struct vm_page *page;
   1295       1.1     matt 
   1296       1.1     matt 	PDEBUG(0, printf("pmap_release(%p)\n", pmap));
   1297       1.1     matt 
   1298       1.1     matt 	/* Remove the zero page mapping */
   1299       1.1     matt 	pmap_remove(pmap, 0x00000000, 0x00000000 + NBPG);
   1300       1.7  thorpej 	pmap_update();
   1301       1.1     matt 
   1302       1.1     matt 	/*
   1303       1.1     matt 	 * Free any page tables still mapped
   1304       1.1     matt 	 * This is only temporay until pmap_enter can count the number
   1305       1.1     matt 	 * of mappings made in a page table. Then pmap_remove() can
   1306       1.1     matt 	 * reduce the count and free the pagetable when the count
   1307  1.14.2.1    lukem 	 * reaches zero.  Note that entries in this list should match the
   1308  1.14.2.1    lukem 	 * contents of the ptpt, however this is faster than walking a 1024
   1309  1.14.2.1    lukem 	 * entries looking for pt's
   1310  1.14.2.1    lukem 	 * taken from i386 pmap.c
   1311       1.1     matt 	 */
   1312  1.14.2.1    lukem 	while (pmap->pm_obj.memq.tqh_first != NULL) {
   1313  1.14.2.1    lukem 		page = pmap->pm_obj.memq.tqh_first;
   1314  1.14.2.1    lukem #ifdef DIAGNOSTIC
   1315  1.14.2.1    lukem 		if (page->flags & PG_BUSY)
   1316  1.14.2.1    lukem 			panic("pmap_release: busy page table page");
   1317  1.14.2.1    lukem #endif
   1318  1.14.2.1    lukem 		/* pmap_page_protect?  currently no need for it. */
   1319  1.14.2.1    lukem 
   1320  1.14.2.1    lukem 		page->wire_count = 0;
   1321  1.14.2.1    lukem 		uvm_pagefree(page);
   1322       1.1     matt 	}
   1323  1.14.2.1    lukem 
   1324       1.1     matt 	/* Free the page dir */
   1325       1.1     matt 	pmap_freepagedir(pmap);
   1326       1.1     matt }
   1327       1.1     matt 
   1328       1.1     matt 
   1329       1.1     matt /*
   1330  1.14.2.1    lukem  * void pmap_reference(struct pmap *pmap)
   1331       1.1     matt  *
   1332       1.1     matt  * Add a reference to the specified pmap.
   1333       1.1     matt  */
   1334       1.1     matt 
   1335       1.1     matt void
   1336       1.1     matt pmap_reference(pmap)
   1337  1.14.2.1    lukem 	struct pmap *pmap;
   1338       1.1     matt {
   1339       1.1     matt 	if (pmap == NULL)
   1340       1.1     matt 		return;
   1341       1.1     matt 
   1342       1.1     matt 	simple_lock(&pmap->pm_lock);
   1343  1.14.2.1    lukem 	pmap->pm_obj.uo_refs++;
   1344       1.1     matt 	simple_unlock(&pmap->pm_lock);
   1345       1.1     matt }
   1346       1.1     matt 
   1347       1.1     matt /*
   1348       1.1     matt  * void pmap_virtual_space(vaddr_t *start, vaddr_t *end)
   1349       1.1     matt  *
   1350       1.1     matt  * Return the start and end addresses of the kernel's virtual space.
   1351       1.1     matt  * These values are setup in pmap_bootstrap and are updated as pages
   1352       1.1     matt  * are allocated.
   1353       1.1     matt  */
   1354       1.1     matt 
   1355       1.1     matt void
   1356       1.1     matt pmap_virtual_space(start, end)
   1357       1.1     matt 	vaddr_t *start;
   1358       1.1     matt 	vaddr_t *end;
   1359       1.1     matt {
   1360       1.1     matt 	*start = virtual_start;
   1361       1.1     matt 	*end = virtual_end;
   1362       1.1     matt }
   1363       1.1     matt 
   1364       1.1     matt 
   1365       1.1     matt /*
   1366       1.1     matt  * Activate the address space for the specified process.  If the process
   1367       1.1     matt  * is the current process, load the new MMU context.
   1368       1.1     matt  */
   1369       1.1     matt void
   1370       1.1     matt pmap_activate(p)
   1371       1.1     matt 	struct proc *p;
   1372       1.1     matt {
   1373  1.14.2.1    lukem 	struct pmap *pmap = p->p_vmspace->vm_map.pmap;
   1374       1.1     matt 	struct pcb *pcb = &p->p_addr->u_pcb;
   1375       1.1     matt 
   1376  1.14.2.1    lukem 	(void) pmap_extract(pmap_kernel(), (vaddr_t)pmap->pm_pdir,
   1377       1.1     matt 	    (paddr_t *)&pcb->pcb_pagedir);
   1378       1.1     matt 
   1379       1.1     matt 	PDEBUG(0, printf("pmap_activate: p=%p pmap=%p pcb=%p pdir=%p l1=%p\n",
   1380       1.1     matt 	    p, pmap, pcb, pmap->pm_pdir, pcb->pcb_pagedir));
   1381       1.1     matt 
   1382       1.1     matt 	if (p == curproc) {
   1383       1.1     matt 		PDEBUG(0, printf("pmap_activate: setting TTB\n"));
   1384       1.1     matt 		setttb((u_int)pcb->pcb_pagedir);
   1385       1.1     matt 	}
   1386       1.1     matt #if 0
   1387       1.1     matt 	pmap->pm_pdchanged = FALSE;
   1388       1.1     matt #endif
   1389       1.1     matt }
   1390       1.1     matt 
   1391       1.1     matt 
   1392       1.1     matt /*
   1393       1.1     matt  * Deactivate the address space of the specified process.
   1394       1.1     matt  */
   1395       1.1     matt void
   1396       1.1     matt pmap_deactivate(p)
   1397       1.1     matt 	struct proc *p;
   1398       1.1     matt {
   1399       1.1     matt }
   1400       1.1     matt 
   1401       1.1     matt 
   1402       1.1     matt /*
   1403       1.1     matt  * pmap_clean_page()
   1404       1.1     matt  *
   1405       1.1     matt  * This is a local function used to work out the best strategy to clean
   1406       1.1     matt  * a single page referenced by its entry in the PV table. It's used by
   1407       1.1     matt  * pmap_copy_page, pmap_zero page and maybe some others later on.
   1408       1.1     matt  *
   1409       1.1     matt  * Its policy is effectively:
   1410       1.1     matt  *  o If there are no mappings, we don't bother doing anything with the cache.
   1411       1.1     matt  *  o If there is one mapping, we clean just that page.
   1412       1.1     matt  *  o If there are multiple mappings, we clean the entire cache.
   1413       1.1     matt  *
   1414       1.1     matt  * So that some functions can be further optimised, it returns 0 if it didn't
   1415       1.1     matt  * clean the entire cache, or 1 if it did.
   1416       1.1     matt  *
   1417       1.1     matt  * XXX One bug in this routine is that if the pv_entry has a single page
   1418       1.1     matt  * mapped at 0x00000000 a whole cache clean will be performed rather than
   1419       1.1     matt  * just the 1 page. Since this should not occur in everyday use and if it does
   1420       1.1     matt  * it will just result in not the most efficient clean for the page.
   1421       1.1     matt  */
   1422       1.1     matt static int
   1423       1.1     matt pmap_clean_page(pv)
   1424       1.1     matt 	struct pv_entry *pv;
   1425       1.1     matt {
   1426       1.1     matt 	int s;
   1427       1.1     matt 	int cache_needs_cleaning = 0;
   1428       1.1     matt 	vaddr_t page_to_clean = 0;
   1429       1.1     matt 
   1430       1.1     matt 	/* Go to splvm() so we get exclusive lock for a mo */
   1431       1.1     matt 	s = splvm();
   1432       1.1     matt 	if (pv->pv_pmap) {
   1433       1.1     matt 		cache_needs_cleaning = 1;
   1434       1.1     matt 		if (!pv->pv_next)
   1435       1.1     matt 			page_to_clean = pv->pv_va;
   1436       1.1     matt 	}
   1437       1.1     matt 	splx(s);
   1438       1.1     matt 
   1439       1.1     matt 	/* Do cache ops outside the splvm. */
   1440       1.1     matt 	if (page_to_clean)
   1441       1.1     matt 		cpu_cache_purgeID_rng(page_to_clean, NBPG);
   1442       1.1     matt 	else if (cache_needs_cleaning) {
   1443       1.1     matt 		cpu_cache_purgeID();
   1444       1.1     matt 		return (1);
   1445       1.1     matt 	}
   1446       1.1     matt 	return (0);
   1447       1.1     matt }
   1448       1.1     matt 
   1449       1.1     matt /*
   1450       1.1     matt  * pmap_find_pv()
   1451       1.1     matt  *
   1452       1.1     matt  * This is a local function that finds a PV entry for a given physical page.
   1453       1.1     matt  * This is a common op, and this function removes loads of ifdefs in the code.
   1454       1.1     matt  */
   1455       1.1     matt static __inline struct pv_entry *
   1456       1.1     matt pmap_find_pv(phys)
   1457       1.2     matt 	paddr_t phys;
   1458       1.1     matt {
   1459       1.1     matt 	int bank, off;
   1460       1.1     matt 	struct pv_entry *pv;
   1461       1.1     matt 
   1462       1.1     matt #ifdef DIAGNOSTIC
   1463       1.1     matt 	if (!pmap_initialized)
   1464       1.1     matt 		panic("pmap_find_pv: !pmap_initialized");
   1465       1.1     matt #endif
   1466       1.1     matt 
   1467       1.1     matt 	if ((bank = vm_physseg_find(atop(phys), &off)) == -1)
   1468       1.1     matt 		panic("pmap_find_pv: not a real page, phys=%lx\n", phys);
   1469       1.1     matt 	pv = &vm_physmem[bank].pmseg.pvent[off];
   1470       1.1     matt 	return (pv);
   1471       1.1     matt }
   1472       1.1     matt 
   1473       1.1     matt /*
   1474       1.1     matt  * pmap_zero_page()
   1475       1.1     matt  *
   1476       1.1     matt  * Zero a given physical page by mapping it at a page hook point.
   1477       1.1     matt  * In doing the zero page op, the page we zero is mapped cachable, as with
   1478       1.1     matt  * StrongARM accesses to non-cached pages are non-burst making writing
   1479       1.1     matt  * _any_ bulk data very slow.
   1480       1.1     matt  */
   1481       1.1     matt void
   1482       1.1     matt pmap_zero_page(phys)
   1483       1.2     matt 	paddr_t phys;
   1484       1.1     matt {
   1485       1.1     matt 	struct pv_entry *pv;
   1486       1.1     matt 
   1487       1.1     matt 	/* Get an entry for this page, and clean it it. */
   1488       1.1     matt 	pv = pmap_find_pv(phys);
   1489       1.1     matt 	pmap_clean_page(pv);
   1490       1.1     matt 
   1491       1.1     matt 	/*
   1492       1.1     matt 	 * Hook in the page, zero it, and purge the cache for that
   1493       1.1     matt 	 * zeroed page. Invalidate the TLB as needed.
   1494       1.1     matt 	 */
   1495       1.1     matt 	*page_hook0.pte = L2_PTE(phys & PG_FRAME, AP_KRW);
   1496       1.1     matt 	cpu_tlb_flushD_SE(page_hook0.va);
   1497       1.1     matt 	bzero_page(page_hook0.va);
   1498       1.1     matt 	cpu_cache_purgeD_rng(page_hook0.va, NBPG);
   1499       1.1     matt }
   1500       1.1     matt 
   1501       1.1     matt /*
   1502       1.1     matt  * pmap_copy_page()
   1503       1.1     matt  *
   1504       1.1     matt  * Copy one physical page into another, by mapping the pages into
   1505       1.1     matt  * hook points. The same comment regarding cachability as in
   1506       1.1     matt  * pmap_zero_page also applies here.
   1507       1.1     matt  */
   1508       1.1     matt void
   1509       1.1     matt pmap_copy_page(src, dest)
   1510       1.2     matt 	paddr_t src;
   1511       1.2     matt 	paddr_t dest;
   1512       1.1     matt {
   1513       1.1     matt 	struct pv_entry *src_pv, *dest_pv;
   1514       1.1     matt 
   1515       1.1     matt 	/* Get PV entries for the pages, and clean them if needed. */
   1516       1.1     matt 	src_pv = pmap_find_pv(src);
   1517       1.1     matt 	dest_pv = pmap_find_pv(dest);
   1518       1.1     matt 	if (!pmap_clean_page(src_pv))
   1519       1.1     matt 		pmap_clean_page(dest_pv);
   1520       1.1     matt 
   1521       1.1     matt 	/*
   1522       1.1     matt 	 * Map the pages into the page hook points, copy them, and purge
   1523       1.1     matt 	 * the cache for the appropriate page. Invalidate the TLB
   1524       1.1     matt 	 * as required.
   1525       1.1     matt 	 */
   1526       1.1     matt 	*page_hook0.pte = L2_PTE(src & PG_FRAME, AP_KRW);
   1527       1.1     matt 	*page_hook1.pte = L2_PTE(dest & PG_FRAME, AP_KRW);
   1528       1.1     matt 	cpu_tlb_flushD_SE(page_hook0.va);
   1529       1.1     matt 	cpu_tlb_flushD_SE(page_hook1.va);
   1530       1.1     matt 	bcopy_page(page_hook0.va, page_hook1.va);
   1531       1.1     matt 	cpu_cache_purgeD_rng(page_hook0.va, NBPG);
   1532       1.1     matt 	cpu_cache_purgeD_rng(page_hook1.va, NBPG);
   1533       1.1     matt }
   1534       1.1     matt 
   1535       1.1     matt /*
   1536       1.2     matt  * int pmap_next_phys_page(paddr_t *addr)
   1537       1.1     matt  *
   1538       1.1     matt  * Allocate another physical page returning true or false depending
   1539       1.1     matt  * on whether a page could be allocated.
   1540       1.1     matt  */
   1541       1.1     matt 
   1542       1.2     matt paddr_t
   1543       1.1     matt pmap_next_phys_page(addr)
   1544       1.2     matt 	paddr_t addr;
   1545       1.1     matt 
   1546       1.1     matt {
   1547       1.1     matt 	int loop;
   1548       1.1     matt 
   1549       1.1     matt 	if (addr < bootconfig.dram[0].address)
   1550       1.1     matt 		return(bootconfig.dram[0].address);
   1551       1.1     matt 
   1552       1.1     matt 	loop = 0;
   1553       1.1     matt 
   1554       1.1     matt 	while (bootconfig.dram[loop].address != 0
   1555       1.1     matt 	    && addr > (bootconfig.dram[loop].address + bootconfig.dram[loop].pages * NBPG))
   1556       1.1     matt 		++loop;
   1557       1.1     matt 
   1558       1.1     matt 	if (bootconfig.dram[loop].address == 0)
   1559       1.1     matt 		return(0);
   1560       1.1     matt 
   1561       1.1     matt 	addr += NBPG;
   1562       1.1     matt 
   1563       1.1     matt 	if (addr >= (bootconfig.dram[loop].address + bootconfig.dram[loop].pages * NBPG)) {
   1564       1.1     matt 		if (bootconfig.dram[loop + 1].address == 0)
   1565       1.1     matt 			return(0);
   1566       1.1     matt 		addr = bootconfig.dram[loop + 1].address;
   1567       1.1     matt 	}
   1568       1.1     matt 
   1569       1.1     matt 	return(addr);
   1570       1.1     matt }
   1571       1.1     matt 
   1572       1.1     matt #if 0
   1573       1.1     matt void
   1574       1.1     matt pmap_pte_addref(pmap, va)
   1575  1.14.2.1    lukem 	struct pmap *pmap;
   1576       1.1     matt 	vaddr_t va;
   1577       1.1     matt {
   1578       1.1     matt 	pd_entry_t *pde;
   1579       1.2     matt 	paddr_t pa;
   1580       1.1     matt 	struct vm_page *m;
   1581       1.1     matt 
   1582       1.1     matt 	if (pmap == pmap_kernel())
   1583       1.1     matt 		return;
   1584       1.1     matt 
   1585       1.1     matt 	pde = pmap_pde(pmap, va & ~(3 << PDSHIFT));
   1586       1.1     matt 	pa = pmap_pte_pa(pde);
   1587       1.1     matt 	m = PHYS_TO_VM_PAGE(pa);
   1588       1.1     matt 	++m->wire_count;
   1589       1.1     matt #ifdef MYCROFT_HACK
   1590       1.1     matt 	printf("addref pmap=%p va=%08lx pde=%p pa=%08lx m=%p wire=%d\n",
   1591       1.1     matt 	    pmap, va, pde, pa, m, m->wire_count);
   1592       1.1     matt #endif
   1593       1.1     matt }
   1594       1.1     matt 
   1595       1.1     matt void
   1596       1.1     matt pmap_pte_delref(pmap, va)
   1597  1.14.2.1    lukem 	struct pmap *pmap;
   1598       1.1     matt 	vaddr_t va;
   1599       1.1     matt {
   1600       1.1     matt 	pd_entry_t *pde;
   1601       1.2     matt 	paddr_t pa;
   1602       1.1     matt 	struct vm_page *m;
   1603       1.1     matt 
   1604       1.1     matt 	if (pmap == pmap_kernel())
   1605       1.1     matt 		return;
   1606       1.1     matt 
   1607       1.1     matt 	pde = pmap_pde(pmap, va & ~(3 << PDSHIFT));
   1608       1.1     matt 	pa = pmap_pte_pa(pde);
   1609       1.1     matt 	m = PHYS_TO_VM_PAGE(pa);
   1610       1.1     matt 	--m->wire_count;
   1611       1.1     matt #ifdef MYCROFT_HACK
   1612       1.1     matt 	printf("delref pmap=%p va=%08lx pde=%p pa=%08lx m=%p wire=%d\n",
   1613       1.1     matt 	    pmap, va, pde, pa, m, m->wire_count);
   1614       1.1     matt #endif
   1615       1.1     matt 	if (m->wire_count == 0) {
   1616       1.1     matt #ifdef MYCROFT_HACK
   1617       1.1     matt 		printf("delref pmap=%p va=%08lx pde=%p pa=%08lx m=%p\n",
   1618       1.1     matt 		    pmap, va, pde, pa, m);
   1619       1.1     matt #endif
   1620       1.1     matt 		pmap_unmap_in_l1(pmap, va);
   1621       1.1     matt 		uvm_pagefree(m);
   1622       1.1     matt 		--pmap->pm_stats.resident_count;
   1623       1.1     matt 	}
   1624       1.1     matt }
   1625       1.1     matt #else
   1626       1.1     matt #define	pmap_pte_addref(pmap, va)
   1627       1.1     matt #define	pmap_pte_delref(pmap, va)
   1628       1.1     matt #endif
   1629       1.1     matt 
   1630       1.1     matt /*
   1631       1.1     matt  * Since we have a virtually indexed cache, we may need to inhibit caching if
   1632       1.1     matt  * there is more than one mapping and at least one of them is writable.
   1633       1.1     matt  * Since we purge the cache on every context switch, we only need to check for
   1634       1.1     matt  * other mappings within the same pmap, or kernel_pmap.
   1635       1.1     matt  * This function is also called when a page is unmapped, to possibly reenable
   1636       1.1     matt  * caching on any remaining mappings.
   1637      1.11    chris  *
   1638      1.11    chris  * Note that the pmap must have it's ptes mapped in, and passed with ptes.
   1639       1.1     matt  */
   1640       1.1     matt void
   1641      1.12    chris pmap_vac_me_harder(struct pmap *pmap, struct pv_entry *pv, pt_entry_t *ptes,
   1642      1.12    chris 	boolean_t clear_cache)
   1643       1.1     matt {
   1644       1.1     matt 	struct pv_entry *npv;
   1645       1.1     matt 	pt_entry_t *pte;
   1646       1.1     matt 	int entries = 0;
   1647       1.1     matt 	int writeable = 0;
   1648      1.12    chris 	int cacheable_entries = 0;
   1649       1.1     matt 
   1650       1.1     matt 	if (pv->pv_pmap == NULL)
   1651       1.1     matt 		return;
   1652      1.11    chris 	KASSERT(ptes != NULL);
   1653       1.1     matt 
   1654       1.1     matt 	/*
   1655       1.1     matt 	 * Count mappings and writable mappings in this pmap.
   1656       1.1     matt 	 * Keep a pointer to the first one.
   1657       1.1     matt 	 */
   1658       1.1     matt 	for (npv = pv; npv; npv = npv->pv_next) {
   1659       1.1     matt 		/* Count mappings in the same pmap */
   1660       1.1     matt 		if (pmap == npv->pv_pmap) {
   1661       1.1     matt 			if (entries++ == 0)
   1662       1.1     matt 				pv = npv;
   1663      1.12    chris 			/* Cacheable mappings */
   1664      1.12    chris 			if ((npv->pv_flags & PT_NC) == 0)
   1665      1.12    chris 				cacheable_entries++;
   1666       1.1     matt 			/* Writeable mappings */
   1667       1.1     matt 			if (npv->pv_flags & PT_Wr)
   1668       1.1     matt 				++writeable;
   1669       1.1     matt 		}
   1670       1.1     matt 	}
   1671       1.1     matt 
   1672      1.12    chris 	PDEBUG(3,printf("pmap_vac_me_harder: pmap %p Entries %d, "
   1673      1.12    chris 		"writeable %d cacheable %d %s\n", pmap, entries, writeable,
   1674      1.12    chris 	    	cacheable_entries, clear_cache ? "clean" : "no clean"));
   1675      1.12    chris 
   1676       1.1     matt 	/*
   1677       1.1     matt 	 * Enable or disable caching as necessary.
   1678       1.1     matt 	 * We do a quick check of the first PTE to avoid walking the list if
   1679       1.1     matt 	 * we're already in the right state.
   1680       1.1     matt 	 */
   1681       1.1     matt 	if (entries > 1 && writeable) {
   1682      1.12    chris 		if (cacheable_entries == 0)
   1683      1.12    chris 		    return;
   1684      1.12    chris 		if (pv->pv_flags & PT_NC) {
   1685      1.12    chris #ifdef DIAGNOSTIC
   1686      1.12    chris     			/* We have cacheable entries, but the first one
   1687      1.12    chris  			isn't among them. Something is wrong.  */
   1688      1.12    chris     			if (cacheable_entries)
   1689      1.12    chris 				panic("pmap_vac_me_harder: "
   1690      1.12    chris 	    				"cacheable inconsistent");
   1691      1.12    chris #endif
   1692       1.1     matt 			return;
   1693      1.11    chris 		}
   1694      1.12    chris 		pte =  &ptes[arm_byte_to_page(pv->pv_va)];
   1695      1.11    chris 		*pte &= ~(PT_C | PT_B);
   1696      1.12    chris 		pv->pv_flags |= PT_NC;
   1697      1.12    chris 		if (clear_cache && cacheable_entries < 4) {
   1698      1.12    chris 			cpu_cache_purgeID_rng(pv->pv_va, NBPG);
   1699      1.12    chris 			cpu_tlb_flushID_SE(pv->pv_va);
   1700      1.12    chris 		}
   1701       1.1     matt 		for (npv = pv->pv_next; npv; npv = npv->pv_next) {
   1702      1.12    chris 			if (pmap == npv->pv_pmap &&
   1703      1.12    chris 			    (npv->pv_flags & PT_NC) == 0) {
   1704      1.12    chris 				ptes[arm_byte_to_page(npv->pv_va)] &=
   1705      1.11    chris 				    ~(PT_C | PT_B);
   1706      1.12    chris  				npv->pv_flags |= PT_NC;
   1707      1.12    chris 				if (clear_cache && cacheable_entries < 4) {
   1708      1.12    chris 					cpu_cache_purgeID_rng(npv->pv_va,
   1709      1.12    chris 					    NBPG);
   1710      1.12    chris 					cpu_tlb_flushID_SE(npv->pv_va);
   1711      1.12    chris 				}
   1712       1.1     matt 			}
   1713       1.1     matt 		}
   1714      1.12    chris 		if (clear_cache && cacheable_entries >= 4) {
   1715      1.12    chris 			cpu_cache_purgeID();
   1716      1.12    chris 			cpu_tlb_flushID();
   1717      1.12    chris 		}
   1718       1.1     matt 	} else if (entries > 0) {
   1719      1.12    chris 		if ((pv->pv_flags & PT_NC) == 0)
   1720      1.12    chris 			return;
   1721      1.11    chris 		pte = &ptes[arm_byte_to_page(pv->pv_va)];
   1722      1.11    chris 		*pte |= (PT_C | PT_B);
   1723      1.12    chris 		pv->pv_flags &= ~PT_NC;
   1724       1.1     matt 		for (npv = pv->pv_next; npv; npv = npv->pv_next) {
   1725      1.12    chris 			if (pmap == npv->pv_pmap &&
   1726      1.12    chris 				(npv->pv_flags & PT_NC)) {
   1727      1.11    chris 				ptes[arm_byte_to_page(npv->pv_va)] |=
   1728      1.12    chris 				    (PT_C | PT_B);
   1729      1.12    chris 				npv->pv_flags &= ~PT_NC;
   1730       1.1     matt 			}
   1731       1.1     matt 		}
   1732       1.1     matt 	}
   1733       1.1     matt }
   1734       1.1     matt 
   1735       1.1     matt /*
   1736       1.1     matt  * pmap_remove()
   1737       1.1     matt  *
   1738       1.1     matt  * pmap_remove is responsible for nuking a number of mappings for a range
   1739       1.1     matt  * of virtual address space in the current pmap. To do this efficiently
   1740       1.1     matt  * is interesting, because in a number of cases a wide virtual address
   1741       1.1     matt  * range may be supplied that contains few actual mappings. So, the
   1742       1.1     matt  * optimisations are:
   1743       1.1     matt  *  1. Try and skip over hunks of address space for which an L1 entry
   1744       1.1     matt  *     does not exist.
   1745       1.1     matt  *  2. Build up a list of pages we've hit, up to a maximum, so we can
   1746       1.1     matt  *     maybe do just a partial cache clean. This path of execution is
   1747       1.1     matt  *     complicated by the fact that the cache must be flushed _before_
   1748       1.1     matt  *     the PTE is nuked, being a VAC :-)
   1749       1.1     matt  *  3. Maybe later fast-case a single page, but I don't think this is
   1750       1.1     matt  *     going to make _that_ much difference overall.
   1751       1.1     matt  */
   1752       1.1     matt 
   1753       1.1     matt #define PMAP_REMOVE_CLEAN_LIST_SIZE	3
   1754       1.1     matt 
   1755       1.1     matt void
   1756       1.1     matt pmap_remove(pmap, sva, eva)
   1757  1.14.2.1    lukem 	struct pmap *pmap;
   1758       1.1     matt 	vaddr_t sva;
   1759       1.1     matt 	vaddr_t eva;
   1760       1.1     matt {
   1761       1.1     matt 	int cleanlist_idx = 0;
   1762       1.1     matt 	struct pagelist {
   1763       1.1     matt 		vaddr_t va;
   1764       1.1     matt 		pt_entry_t *pte;
   1765       1.1     matt 	} cleanlist[PMAP_REMOVE_CLEAN_LIST_SIZE];
   1766      1.11    chris 	pt_entry_t *pte = 0, *ptes;
   1767       1.2     matt 	paddr_t pa;
   1768       1.1     matt 	int pmap_active;
   1769       1.1     matt 	struct pv_entry *pv;
   1770       1.1     matt 
   1771       1.1     matt 	/* Exit quick if there is no pmap */
   1772       1.1     matt 	if (!pmap)
   1773       1.1     matt 		return;
   1774       1.1     matt 
   1775       1.1     matt 	PDEBUG(0, printf("pmap_remove: pmap=%p sva=%08lx eva=%08lx\n", pmap, sva, eva));
   1776       1.1     matt 
   1777       1.1     matt 	sva &= PG_FRAME;
   1778       1.1     matt 	eva &= PG_FRAME;
   1779       1.1     matt 
   1780      1.11    chris 	ptes = pmap_map_ptes(pmap);
   1781       1.1     matt 	/* Get a page table pointer */
   1782       1.1     matt 	while (sva < eva) {
   1783      1.11    chris 		if (pmap_pde_v(pmap_pde(pmap, sva)))
   1784       1.1     matt 			break;
   1785       1.1     matt 		sva = (sva & PD_MASK) + NBPD;
   1786       1.1     matt 	}
   1787      1.11    chris 
   1788      1.11    chris 	pte = &ptes[arm_byte_to_page(sva)];
   1789       1.1     matt 	/* Note if the pmap is active thus require cache and tlb cleans */
   1790       1.1     matt 	if ((curproc && curproc->p_vmspace->vm_map.pmap == pmap)
   1791  1.14.2.1    lukem 	    || (pmap == pmap_kernel()))
   1792       1.1     matt 		pmap_active = 1;
   1793       1.1     matt 	else
   1794       1.1     matt 		pmap_active = 0;
   1795       1.1     matt 
   1796       1.1     matt 	/* Now loop along */
   1797       1.1     matt 	while (sva < eva) {
   1798       1.1     matt 		/* Check if we can move to the next PDE (l1 chunk) */
   1799       1.1     matt 		if (!(sva & PT_MASK))
   1800       1.1     matt 			if (!pmap_pde_v(pmap_pde(pmap, sva))) {
   1801       1.1     matt 				sva += NBPD;
   1802       1.1     matt 				pte += arm_byte_to_page(NBPD);
   1803       1.1     matt 				continue;
   1804       1.1     matt 			}
   1805       1.1     matt 
   1806       1.1     matt 		/* We've found a valid PTE, so this page of PTEs has to go. */
   1807       1.1     matt 		if (pmap_pte_v(pte)) {
   1808       1.1     matt 			int bank, off;
   1809       1.1     matt 
   1810       1.1     matt 			/* Update statistics */
   1811       1.1     matt 			--pmap->pm_stats.resident_count;
   1812       1.1     matt 
   1813       1.1     matt 			/*
   1814       1.1     matt 			 * Add this page to our cache remove list, if we can.
   1815       1.1     matt 			 * If, however the cache remove list is totally full,
   1816       1.1     matt 			 * then do a complete cache invalidation taking note
   1817       1.1     matt 			 * to backtrack the PTE table beforehand, and ignore
   1818       1.1     matt 			 * the lists in future because there's no longer any
   1819       1.1     matt 			 * point in bothering with them (we've paid the
   1820       1.1     matt 			 * penalty, so will carry on unhindered). Otherwise,
   1821       1.1     matt 			 * when we fall out, we just clean the list.
   1822       1.1     matt 			 */
   1823       1.1     matt 			PDEBUG(10, printf("remove: inv pte at %p(%x) ", pte, *pte));
   1824       1.1     matt 			pa = pmap_pte_pa(pte);
   1825       1.1     matt 
   1826       1.1     matt 			if (cleanlist_idx < PMAP_REMOVE_CLEAN_LIST_SIZE) {
   1827       1.1     matt 				/* Add to the clean list. */
   1828       1.1     matt 				cleanlist[cleanlist_idx].pte = pte;
   1829       1.1     matt 				cleanlist[cleanlist_idx].va = sva;
   1830       1.1     matt 				cleanlist_idx++;
   1831       1.1     matt 			} else if (cleanlist_idx == PMAP_REMOVE_CLEAN_LIST_SIZE) {
   1832       1.1     matt 				int cnt;
   1833       1.1     matt 
   1834       1.1     matt 				/* Nuke everything if needed. */
   1835       1.1     matt 				if (pmap_active) {
   1836       1.1     matt 					cpu_cache_purgeID();
   1837       1.1     matt 					cpu_tlb_flushID();
   1838       1.1     matt 				}
   1839       1.1     matt 
   1840       1.1     matt 				/*
   1841       1.1     matt 				 * Roll back the previous PTE list,
   1842       1.1     matt 				 * and zero out the current PTE.
   1843       1.1     matt 				 */
   1844       1.1     matt 				for (cnt = 0; cnt < PMAP_REMOVE_CLEAN_LIST_SIZE; cnt++) {
   1845       1.1     matt 					*cleanlist[cnt].pte = 0;
   1846       1.1     matt 					pmap_pte_delref(pmap, cleanlist[cnt].va);
   1847       1.1     matt 				}
   1848       1.1     matt 				*pte = 0;
   1849       1.1     matt 				pmap_pte_delref(pmap, sva);
   1850       1.1     matt 				cleanlist_idx++;
   1851       1.1     matt 			} else {
   1852       1.1     matt 				/*
   1853       1.1     matt 				 * We've already nuked the cache and
   1854       1.1     matt 				 * TLB, so just carry on regardless,
   1855       1.1     matt 				 * and we won't need to do it again
   1856       1.1     matt 				 */
   1857       1.1     matt 				*pte = 0;
   1858       1.1     matt 				pmap_pte_delref(pmap, sva);
   1859       1.1     matt 			}
   1860       1.1     matt 
   1861       1.1     matt 			/*
   1862       1.1     matt 			 * Update flags. In a number of circumstances,
   1863       1.1     matt 			 * we could cluster a lot of these and do a
   1864       1.1     matt 			 * number of sequential pages in one go.
   1865       1.1     matt 			 */
   1866       1.1     matt 			if ((bank = vm_physseg_find(atop(pa), &off)) != -1) {
   1867       1.1     matt 				pv = &vm_physmem[bank].pmseg.pvent[off];
   1868       1.1     matt 				pmap_remove_pv(pmap, sva, pv);
   1869      1.12    chris 				pmap_vac_me_harder(pmap, pv, ptes, FALSE);
   1870       1.1     matt 			}
   1871       1.1     matt 		}
   1872       1.1     matt 		sva += NBPG;
   1873       1.1     matt 		pte++;
   1874       1.1     matt 	}
   1875       1.1     matt 
   1876      1.11    chris 	pmap_unmap_ptes(pmap);
   1877       1.1     matt 	/*
   1878       1.1     matt 	 * Now, if we've fallen through down to here, chances are that there
   1879       1.1     matt 	 * are less than PMAP_REMOVE_CLEAN_LIST_SIZE mappings left.
   1880       1.1     matt 	 */
   1881       1.1     matt 	if (cleanlist_idx <= PMAP_REMOVE_CLEAN_LIST_SIZE) {
   1882       1.1     matt 		u_int cnt;
   1883       1.1     matt 
   1884       1.1     matt 		for (cnt = 0; cnt < cleanlist_idx; cnt++) {
   1885       1.1     matt 			if (pmap_active) {
   1886       1.1     matt 				cpu_cache_purgeID_rng(cleanlist[cnt].va, NBPG);
   1887       1.1     matt 				*cleanlist[cnt].pte = 0;
   1888       1.1     matt 				cpu_tlb_flushID_SE(cleanlist[cnt].va);
   1889       1.1     matt 			} else
   1890       1.1     matt 				*cleanlist[cnt].pte = 0;
   1891       1.1     matt 			pmap_pte_delref(pmap, cleanlist[cnt].va);
   1892       1.1     matt 		}
   1893       1.1     matt 	}
   1894       1.1     matt }
   1895       1.1     matt 
   1896       1.1     matt /*
   1897       1.1     matt  * Routine:	pmap_remove_all
   1898       1.1     matt  * Function:
   1899       1.1     matt  *		Removes this physical page from
   1900       1.1     matt  *		all physical maps in which it resides.
   1901       1.1     matt  *		Reflects back modify bits to the pager.
   1902       1.1     matt  */
   1903       1.1     matt 
   1904       1.1     matt void
   1905       1.1     matt pmap_remove_all(pa)
   1906       1.2     matt 	paddr_t pa;
   1907       1.1     matt {
   1908       1.1     matt 	struct pv_entry *ph, *pv, *npv;
   1909  1.14.2.1    lukem 	struct pmap *pmap;
   1910      1.11    chris 	pt_entry_t *pte, *ptes;
   1911       1.1     matt 	int s;
   1912       1.1     matt 
   1913       1.1     matt 	PDEBUG(0, printf("pmap_remove_all: pa=%lx ", pa));
   1914       1.1     matt 
   1915       1.1     matt 	pv = ph = pmap_find_pv(pa);
   1916       1.1     matt 	pmap_clean_page(pv);
   1917       1.1     matt 
   1918       1.1     matt 	s = splvm();
   1919       1.1     matt 
   1920       1.1     matt 	if (ph->pv_pmap == NULL) {
   1921       1.1     matt 		PDEBUG(0, printf("free page\n"));
   1922       1.1     matt 		splx(s);
   1923       1.1     matt 		return;
   1924       1.1     matt 	}
   1925       1.1     matt 
   1926      1.11    chris 
   1927      1.11    chris 
   1928       1.1     matt 	while (pv) {
   1929       1.1     matt 		pmap = pv->pv_pmap;
   1930      1.11    chris 		ptes = pmap_map_ptes(pmap);
   1931      1.11    chris 		pte = &ptes[arm_byte_to_page(pv->pv_va)];
   1932       1.1     matt 
   1933       1.1     matt 		PDEBUG(0, printf("[%p,%08x,%08lx,%08x] ", pmap, *pte,
   1934       1.1     matt 		    pv->pv_va, pv->pv_flags));
   1935       1.1     matt #ifdef DEBUG
   1936      1.11    chris 		if (!pmap_pde_v(pmap_pde(pmap, va)) || !pmap_pte_v(pte)
   1937      1.11    chris 			    || pmap_pte_pa(pte) != pa)
   1938       1.1     matt 			panic("pmap_remove_all: bad mapping");
   1939       1.1     matt #endif	/* DEBUG */
   1940       1.1     matt 
   1941       1.1     matt 		/*
   1942       1.1     matt 		 * Update statistics
   1943       1.1     matt 		 */
   1944       1.1     matt 		--pmap->pm_stats.resident_count;
   1945       1.1     matt 
   1946       1.1     matt 		/* Wired bit */
   1947       1.1     matt 		if (pv->pv_flags & PT_W)
   1948       1.1     matt 			--pmap->pm_stats.wired_count;
   1949       1.1     matt 
   1950       1.1     matt 		/*
   1951       1.1     matt 		 * Invalidate the PTEs.
   1952       1.1     matt 		 * XXX: should cluster them up and invalidate as many
   1953       1.1     matt 		 * as possible at once.
   1954       1.1     matt 		 */
   1955       1.1     matt 
   1956       1.1     matt #ifdef needednotdone
   1957       1.1     matt reduce wiring count on page table pages as references drop
   1958       1.1     matt #endif
   1959       1.1     matt 
   1960       1.1     matt 		*pte = 0;
   1961       1.1     matt 		pmap_pte_delref(pmap, pv->pv_va);
   1962       1.1     matt 
   1963       1.1     matt 		npv = pv->pv_next;
   1964       1.1     matt 		if (pv == ph)
   1965       1.1     matt 			ph->pv_pmap = NULL;
   1966       1.1     matt 		else
   1967       1.1     matt 			pmap_free_pv(pv);
   1968       1.1     matt 		pv = npv;
   1969      1.11    chris 		pmap_unmap_ptes(pmap);
   1970       1.1     matt 	}
   1971      1.11    chris 
   1972       1.1     matt 	splx(s);
   1973       1.1     matt 
   1974       1.1     matt 	PDEBUG(0, printf("done\n"));
   1975       1.1     matt 	cpu_tlb_flushID();
   1976       1.1     matt }
   1977       1.1     matt 
   1978       1.1     matt 
   1979       1.1     matt /*
   1980       1.1     matt  * Set the physical protection on the specified range of this map as requested.
   1981       1.1     matt  */
   1982       1.1     matt 
   1983       1.1     matt void
   1984       1.1     matt pmap_protect(pmap, sva, eva, prot)
   1985  1.14.2.1    lukem 	struct pmap *pmap;
   1986       1.1     matt 	vaddr_t sva;
   1987       1.1     matt 	vaddr_t eva;
   1988       1.1     matt 	vm_prot_t prot;
   1989       1.1     matt {
   1990      1.11    chris 	pt_entry_t *pte = NULL, *ptes;
   1991       1.1     matt 	int armprot;
   1992       1.1     matt 	int flush = 0;
   1993       1.2     matt 	paddr_t pa;
   1994       1.1     matt 	int bank, off;
   1995       1.1     matt 	struct pv_entry *pv;
   1996       1.1     matt 
   1997       1.1     matt 	/*
   1998       1.1     matt 	 * Make sure pmap is valid. -dct
   1999       1.1     matt 	 */
   2000       1.1     matt 	if (pmap == NULL)
   2001       1.1     matt 		return;
   2002       1.1     matt 	PDEBUG(0, printf("pmap_protect: pmap=%p %08lx->%08lx %x\n",
   2003       1.1     matt 	    pmap, sva, eva, prot));
   2004       1.1     matt 
   2005       1.1     matt 	if (~prot & VM_PROT_READ) {
   2006       1.1     matt 		/* Just remove the mappings. */
   2007       1.1     matt 		pmap_remove(pmap, sva, eva);
   2008       1.1     matt 		return;
   2009       1.1     matt 	}
   2010       1.1     matt 	if (prot & VM_PROT_WRITE) {
   2011       1.1     matt 		/*
   2012       1.1     matt 		 * If this is a read->write transition, just ignore it and let
   2013       1.1     matt 		 * uvm_fault() take care of it later.
   2014       1.1     matt 		 */
   2015       1.1     matt 		return;
   2016       1.1     matt 	}
   2017       1.1     matt 
   2018       1.1     matt 	sva &= PG_FRAME;
   2019       1.1     matt 	eva &= PG_FRAME;
   2020       1.1     matt 
   2021      1.11    chris 	ptes = pmap_map_ptes(pmap);
   2022       1.1     matt 	/*
   2023       1.1     matt 	 * We need to acquire a pointer to a page table page before entering
   2024       1.1     matt 	 * the following loop.
   2025       1.1     matt 	 */
   2026       1.1     matt 	while (sva < eva) {
   2027      1.11    chris 		if (pmap_pde_v(pmap_pde(pmap, sva)))
   2028       1.1     matt 			break;
   2029       1.1     matt 		sva = (sva & PD_MASK) + NBPD;
   2030       1.1     matt 	}
   2031      1.11    chris 
   2032      1.11    chris 	pte = &ptes[arm_byte_to_page(sva)];
   2033       1.1     matt 
   2034       1.1     matt 	while (sva < eva) {
   2035       1.1     matt 		/* only check once in a while */
   2036       1.1     matt 		if ((sva & PT_MASK) == 0) {
   2037       1.1     matt 			if (!pmap_pde_v(pmap_pde(pmap, sva))) {
   2038       1.1     matt 				/* We can race ahead here, to the next pde. */
   2039       1.1     matt 				sva += NBPD;
   2040       1.1     matt 				pte += arm_byte_to_page(NBPD);
   2041       1.1     matt 				continue;
   2042       1.1     matt 			}
   2043       1.1     matt 		}
   2044       1.1     matt 
   2045       1.1     matt 		if (!pmap_pte_v(pte))
   2046       1.1     matt 			goto next;
   2047       1.1     matt 
   2048       1.1     matt 		flush = 1;
   2049       1.1     matt 
   2050       1.1     matt 		armprot = 0;
   2051       1.1     matt 		if (sva < VM_MAXUSER_ADDRESS)
   2052       1.1     matt 			armprot |= PT_AP(AP_U);
   2053       1.1     matt 		else if (sva < VM_MAX_ADDRESS)
   2054       1.1     matt 			armprot |= PT_AP(AP_W);  /* XXX Ekk what is this ? */
   2055       1.1     matt 		*pte = (*pte & 0xfffff00f) | armprot;
   2056       1.1     matt 
   2057       1.1     matt 		pa = pmap_pte_pa(pte);
   2058       1.1     matt 
   2059       1.1     matt 		/* Get the physical page index */
   2060       1.1     matt 
   2061       1.1     matt 		/* Clear write flag */
   2062       1.1     matt 		if ((bank = vm_physseg_find(atop(pa), &off)) != -1) {
   2063       1.1     matt 			pv = &vm_physmem[bank].pmseg.pvent[off];
   2064       1.1     matt 			(void) pmap_modify_pv(pmap, sva, pv, PT_Wr, 0);
   2065      1.12    chris 			pmap_vac_me_harder(pmap, pv, ptes, FALSE);
   2066       1.1     matt 		}
   2067       1.1     matt 
   2068       1.1     matt next:
   2069       1.1     matt 		sva += NBPG;
   2070       1.1     matt 		pte++;
   2071       1.1     matt 	}
   2072      1.11    chris 	pmap_unmap_ptes(pmap);
   2073       1.1     matt 	if (flush)
   2074       1.1     matt 		cpu_tlb_flushID();
   2075       1.1     matt }
   2076       1.1     matt 
   2077       1.1     matt /*
   2078  1.14.2.1    lukem  * void pmap_enter(struct pmap *pmap, vaddr_t va, paddr_t pa, vm_prot_t prot,
   2079       1.1     matt  * int flags)
   2080       1.1     matt  *
   2081       1.1     matt  *      Insert the given physical page (p) at
   2082       1.1     matt  *      the specified virtual address (v) in the
   2083       1.1     matt  *      target physical map with the protection requested.
   2084       1.1     matt  *
   2085       1.1     matt  *      If specified, the page will be wired down, meaning
   2086       1.1     matt  *      that the related pte can not be reclaimed.
   2087       1.1     matt  *
   2088       1.1     matt  *      NB:  This is the only routine which MAY NOT lazy-evaluate
   2089       1.1     matt  *      or lose information.  That is, this routine must actually
   2090       1.1     matt  *      insert this page into the given map NOW.
   2091       1.1     matt  */
   2092       1.1     matt 
   2093       1.1     matt int
   2094       1.1     matt pmap_enter(pmap, va, pa, prot, flags)
   2095  1.14.2.1    lukem 	struct pmap *pmap;
   2096       1.1     matt 	vaddr_t va;
   2097       1.2     matt 	paddr_t pa;
   2098       1.1     matt 	vm_prot_t prot;
   2099       1.1     matt 	int flags;
   2100       1.1     matt {
   2101      1.11    chris 	pt_entry_t *pte, *ptes;
   2102       1.1     matt 	u_int npte;
   2103       1.1     matt 	int bank, off;
   2104       1.1     matt 	struct pv_entry *pv = NULL;
   2105       1.2     matt 	paddr_t opa;
   2106       1.1     matt 	int nflags;
   2107       1.1     matt 	boolean_t wired = (flags & PMAP_WIRED) != 0;
   2108       1.1     matt 
   2109       1.1     matt 	PDEBUG(5, printf("pmap_enter: V%08lx P%08lx in pmap %p prot=%08x, wired = %d\n",
   2110       1.1     matt 	    va, pa, pmap, prot, wired));
   2111       1.1     matt 
   2112       1.1     matt #ifdef DIAGNOSTIC
   2113       1.1     matt 	/* Valid address ? */
   2114       1.1     matt 	if (va >= (KERNEL_VM_BASE + KERNEL_VM_SIZE))
   2115       1.1     matt 		panic("pmap_enter: too big");
   2116       1.1     matt 	if (pmap != pmap_kernel() && va != 0) {
   2117       1.1     matt 		if (va < VM_MIN_ADDRESS || va >= VM_MAXUSER_ADDRESS)
   2118       1.1     matt 			panic("pmap_enter: kernel page in user map");
   2119       1.1     matt 	} else {
   2120       1.1     matt 		if (va >= VM_MIN_ADDRESS && va < VM_MAXUSER_ADDRESS)
   2121       1.1     matt 			panic("pmap_enter: user page in kernel map");
   2122       1.1     matt 		if (va >= VM_MAXUSER_ADDRESS && va < VM_MAX_ADDRESS)
   2123       1.1     matt 			panic("pmap_enter: entering PT page");
   2124       1.1     matt 	}
   2125       1.1     matt #endif
   2126       1.1     matt 
   2127       1.1     matt 	/*
   2128       1.1     matt 	 * Get a pointer to the pte for this virtual address. If the
   2129       1.1     matt 	 * pte pointer is NULL then we are missing the L2 page table
   2130       1.1     matt 	 * so we need to create one.
   2131       1.1     matt 	 */
   2132       1.1     matt 	pte = pmap_pte(pmap, va);
   2133       1.1     matt 	if (!pte) {
   2134       1.2     matt 		paddr_t l2pa;
   2135       1.1     matt 		struct vm_page *m;
   2136       1.1     matt 
   2137       1.1     matt 		/* Allocate a page table */
   2138       1.1     matt 		for (;;) {
   2139  1.14.2.1    lukem 			m = uvm_pagealloc(&(pmap->pm_obj), 0, NULL,
   2140  1.14.2.1    lukem 				UVM_PGA_USERESERVE);
   2141       1.1     matt 			if (m != NULL)
   2142       1.1     matt 				break;
   2143       1.1     matt 
   2144       1.1     matt 			/*
   2145       1.1     matt 			 * No page available.  If we're the kernel
   2146       1.1     matt 			 * pmap, we die, since we might not have
   2147       1.1     matt 			 * a valid thread context.  For user pmaps,
   2148       1.1     matt 			 * we assume that we _do_ have a valid thread
   2149       1.1     matt 			 * context, so we wait here for the pagedaemon
   2150       1.1     matt 			 * to free up some pages.
   2151       1.1     matt 			 *
   2152       1.1     matt 			 * XXX THE VM CODE IS PROBABLY HOLDING LOCKS
   2153       1.1     matt 			 * XXX RIGHT NOW, BUT ONLY ON OUR PARENT VM_MAP
   2154       1.1     matt 			 * XXX SO THIS IS PROBABLY SAFE.  In any case,
   2155       1.1     matt 			 * XXX other pmap modules claim it is safe to
   2156       1.1     matt 			 * XXX sleep here if it's a user pmap.
   2157       1.1     matt 			 */
   2158       1.1     matt 			if (pmap == pmap_kernel())
   2159       1.1     matt 				panic("pmap_enter: no free pages");
   2160       1.1     matt 			else
   2161       1.1     matt 				uvm_wait("pmap_enter");
   2162       1.1     matt 		}
   2163       1.1     matt 
   2164       1.1     matt 		/* Wire this page table into the L1. */
   2165       1.1     matt 		l2pa = VM_PAGE_TO_PHYS(m);
   2166       1.1     matt 		pmap_zero_page(l2pa);
   2167       1.1     matt 		pmap_map_in_l1(pmap, va, l2pa);
   2168       1.1     matt 		++pmap->pm_stats.resident_count;
   2169  1.14.2.1    lukem 		m->flags &= ~PG_BUSY;	/* never busy */
   2170  1.14.2.1    lukem 		m->wire_count = 1;	/* no mappings yet */
   2171  1.14.2.1    lukem 
   2172       1.1     matt 		pte = pmap_pte(pmap, va);
   2173       1.1     matt #ifdef DIAGNOSTIC
   2174       1.1     matt 		if (!pte)
   2175       1.1     matt 			panic("pmap_enter: no pte");
   2176       1.1     matt #endif
   2177       1.1     matt 	}
   2178       1.1     matt 
   2179       1.1     matt 	nflags = 0;
   2180       1.1     matt 	if (prot & VM_PROT_WRITE)
   2181       1.1     matt 		nflags |= PT_Wr;
   2182       1.1     matt 	if (wired)
   2183       1.1     matt 		nflags |= PT_W;
   2184       1.1     matt 
   2185       1.1     matt 	/* More debugging info */
   2186       1.1     matt 	PDEBUG(5, printf("pmap_enter: pte for V%08lx = V%p (%08x)\n", va, pte,
   2187       1.1     matt 	    *pte));
   2188       1.1     matt 
   2189       1.1     matt 	/* Is the pte valid ? If so then this page is already mapped */
   2190       1.1     matt 	if (pmap_pte_v(pte)) {
   2191       1.1     matt 		/* Get the physical address of the current page mapped */
   2192       1.1     matt 		opa = pmap_pte_pa(pte);
   2193       1.1     matt 
   2194       1.1     matt #ifdef MYCROFT_HACK
   2195       1.1     matt 		printf("pmap_enter: pmap=%p va=%lx pa=%lx opa=%lx\n", pmap, va, pa, opa);
   2196       1.1     matt #endif
   2197       1.1     matt 
   2198       1.1     matt 		/* Are we mapping the same page ? */
   2199       1.1     matt 		if (opa == pa) {
   2200       1.1     matt 			/* All we must be doing is changing the protection */
   2201       1.1     matt 			PDEBUG(0, printf("Case 02 in pmap_enter (V%08lx P%08lx)\n",
   2202       1.1     matt 			    va, pa));
   2203       1.1     matt 
   2204       1.1     matt 			/* Has the wiring changed ? */
   2205       1.1     matt 			if ((bank = vm_physseg_find(atop(pa), &off)) != -1) {
   2206       1.1     matt 				pv = &vm_physmem[bank].pmseg.pvent[off];
   2207       1.1     matt 				(void) pmap_modify_pv(pmap, va, pv,
   2208       1.1     matt 				    PT_Wr | PT_W, nflags);
   2209       1.1     matt  			}
   2210       1.1     matt 		} else {
   2211       1.1     matt 			/* We are replacing the page with a new one. */
   2212       1.1     matt 			cpu_cache_purgeID_rng(va, NBPG);
   2213       1.1     matt 
   2214       1.1     matt 			PDEBUG(0, printf("Case 03 in pmap_enter (V%08lx P%08lx P%08lx)\n",
   2215       1.1     matt 			    va, pa, opa));
   2216       1.1     matt 
   2217       1.1     matt 			/*
   2218       1.1     matt 			 * If it is part of our managed memory then we
   2219       1.1     matt 			 * must remove it from the PV list
   2220       1.1     matt 			 */
   2221       1.1     matt 			if ((bank = vm_physseg_find(atop(opa), &off)) != -1) {
   2222       1.1     matt 				pv = &vm_physmem[bank].pmseg.pvent[off];
   2223       1.1     matt 				pmap_remove_pv(pmap, va, pv);
   2224       1.1     matt 			}
   2225       1.1     matt 
   2226       1.1     matt 			goto enter;
   2227       1.1     matt 		}
   2228       1.1     matt 	} else {
   2229       1.1     matt 		opa = 0;
   2230       1.1     matt 		pmap_pte_addref(pmap, va);
   2231       1.1     matt 
   2232       1.1     matt 		/* pte is not valid so we must be hooking in a new page */
   2233       1.1     matt 		++pmap->pm_stats.resident_count;
   2234       1.1     matt 
   2235       1.1     matt 	enter:
   2236       1.1     matt 		/*
   2237       1.1     matt 		 * Enter on the PV list if part of our managed memory
   2238       1.1     matt 		 */
   2239       1.1     matt 		if ((bank = vm_physseg_find(atop(pa), &off)) != -1) {
   2240       1.1     matt 			pv = &vm_physmem[bank].pmseg.pvent[off];
   2241       1.1     matt 			pmap_enter_pv(pmap, va, pv, nflags);
   2242       1.1     matt 		}
   2243       1.1     matt 	}
   2244       1.1     matt 
   2245       1.1     matt #ifdef MYCROFT_HACK
   2246       1.1     matt 	if (mycroft_hack)
   2247       1.1     matt 		printf("pmap_enter: pmap=%p va=%lx pa=%lx opa=%lx bank=%d off=%d pv=%p\n", pmap, va, pa, opa, bank, off, pv);
   2248       1.1     matt #endif
   2249       1.1     matt 
   2250       1.1     matt 	/* Construct the pte, giving the correct access. */
   2251       1.1     matt 	npte = (pa & PG_FRAME);
   2252       1.1     matt 
   2253       1.1     matt 	/* VA 0 is magic. */
   2254       1.1     matt 	if (pmap != pmap_kernel() && va != 0)
   2255       1.1     matt 		npte |= PT_AP(AP_U);
   2256       1.1     matt 
   2257       1.1     matt 	if (bank != -1) {
   2258       1.1     matt #ifdef DIAGNOSTIC
   2259       1.1     matt 		if ((flags & VM_PROT_ALL) & ~prot)
   2260       1.1     matt 			panic("pmap_enter: access_type exceeds prot");
   2261       1.1     matt #endif
   2262       1.1     matt 		npte |= PT_C | PT_B;
   2263       1.1     matt 		if (flags & VM_PROT_WRITE) {
   2264       1.1     matt 			npte |= L2_SPAGE | PT_AP(AP_W);
   2265       1.1     matt 			vm_physmem[bank].pmseg.attrs[off] |= PT_H | PT_M;
   2266       1.1     matt 		} else if (flags & VM_PROT_ALL) {
   2267       1.1     matt 			npte |= L2_SPAGE;
   2268       1.1     matt 			vm_physmem[bank].pmseg.attrs[off] |= PT_H;
   2269       1.1     matt 		} else
   2270       1.1     matt 			npte |= L2_INVAL;
   2271       1.1     matt 	} else {
   2272       1.1     matt 		if (prot & VM_PROT_WRITE)
   2273       1.1     matt 			npte |= L2_SPAGE | PT_AP(AP_W);
   2274       1.1     matt 		else if (prot & VM_PROT_ALL)
   2275       1.1     matt 			npte |= L2_SPAGE;
   2276       1.1     matt 		else
   2277       1.1     matt 			npte |= L2_INVAL;
   2278       1.1     matt 	}
   2279       1.1     matt 
   2280       1.1     matt #ifdef MYCROFT_HACK
   2281       1.1     matt 	if (mycroft_hack)
   2282       1.1     matt 		printf("pmap_enter: pmap=%p va=%lx pa=%lx prot=%x wired=%d access_type=%x npte=%08x\n", pmap, va, pa, prot, wired, flags & VM_PROT_ALL, npte);
   2283       1.1     matt #endif
   2284       1.1     matt 
   2285       1.1     matt 	*pte = npte;
   2286       1.1     matt 
   2287       1.1     matt 	if (bank != -1)
   2288      1.11    chris 	{
   2289      1.12    chris 		boolean_t pmap_active = FALSE;
   2290      1.11    chris 		/* XXX this will change once the whole of pmap_enter uses
   2291      1.11    chris 		 * map_ptes
   2292      1.11    chris 		 */
   2293      1.11    chris 		ptes = pmap_map_ptes(pmap);
   2294      1.12    chris 		if ((curproc && curproc->p_vmspace->vm_map.pmap == pmap)
   2295  1.14.2.1    lukem 		    || (pmap == pmap_kernel()))
   2296      1.12    chris 			pmap_active = TRUE;
   2297      1.12    chris  		pmap_vac_me_harder(pmap, pv, ptes, pmap_active);
   2298      1.11    chris 		pmap_unmap_ptes(pmap);
   2299      1.11    chris 	}
   2300       1.1     matt 
   2301       1.1     matt 	/* Better flush the TLB ... */
   2302       1.1     matt 	cpu_tlb_flushID_SE(va);
   2303       1.1     matt 
   2304       1.1     matt 	PDEBUG(5, printf("pmap_enter: pte = V%p %08x\n", pte, *pte));
   2305       1.1     matt 
   2306       1.4      chs 	return 0;
   2307       1.1     matt }
   2308       1.1     matt 
   2309       1.1     matt void
   2310       1.1     matt pmap_kenter_pa(va, pa, prot)
   2311       1.1     matt 	vaddr_t va;
   2312       1.1     matt 	paddr_t pa;
   2313       1.1     matt 	vm_prot_t prot;
   2314       1.1     matt {
   2315      1.14      chs 	struct pmap *pmap = pmap_kernel();
   2316      1.13    chris 	pt_entry_t *pte;
   2317      1.14      chs 	struct vm_page *pg;
   2318      1.13    chris 
   2319      1.14      chs 	if (!pmap_pde_v(pmap_pde(pmap, va))) {
   2320      1.14      chs 
   2321      1.13    chris 		/*
   2322      1.13    chris 		 * For the kernel pmaps it would be better to ensure
   2323      1.13    chris 		 * that they are always present, and to grow the
   2324      1.13    chris 		 * kernel as required.
   2325      1.13    chris 		 */
   2326      1.13    chris 
   2327      1.13    chris 		/* Allocate a page table */
   2328  1.14.2.1    lukem 		pg = uvm_pagealloc(&(pmap_kernel()->pm_obj), 0, NULL,
   2329      1.14      chs 		    UVM_PGA_USERESERVE | UVM_PGA_ZERO);
   2330      1.14      chs 		if (pg == NULL) {
   2331      1.13    chris 			panic("pmap_kenter_pa: no free pages");
   2332      1.13    chris 		}
   2333  1.14.2.1    lukem 		pg->flags &= ~PG_BUSY;	/* never busy */
   2334      1.13    chris 
   2335      1.13    chris 		/* Wire this page table into the L1. */
   2336      1.14      chs 		pmap_map_in_l1(pmap, va, VM_PAGE_TO_PHYS(pg));
   2337      1.13    chris 	}
   2338      1.13    chris 	pte = vtopte(va);
   2339      1.14      chs 	KASSERT(!pmap_pte_v(pte));
   2340      1.13    chris 	*pte = L2_PTE(pa, AP_KRW);
   2341       1.1     matt }
   2342       1.1     matt 
   2343       1.1     matt void
   2344       1.1     matt pmap_kremove(va, len)
   2345       1.1     matt 	vaddr_t va;
   2346       1.1     matt 	vsize_t len;
   2347       1.1     matt {
   2348      1.14      chs 	pt_entry_t *pte;
   2349      1.14      chs 
   2350       1.1     matt 	for (len >>= PAGE_SHIFT; len > 0; len--, va += PAGE_SIZE) {
   2351      1.13    chris 
   2352      1.14      chs 		/*
   2353      1.14      chs 		 * We assume that we will only be called with small
   2354      1.14      chs 		 * regions of memory.
   2355      1.14      chs 		 */
   2356      1.14      chs 
   2357      1.14      chs 		KASSERT(pmap_pde_v(pmap_pde(pmap_kernel(), va)));
   2358      1.13    chris 		pte = vtopte(va);
   2359      1.13    chris 		cpu_cache_purgeID_rng(va, PAGE_SIZE);
   2360      1.13    chris 		*pte = 0;
   2361      1.13    chris 		cpu_tlb_flushID_SE(va);
   2362       1.1     matt 	}
   2363       1.1     matt }
   2364       1.1     matt 
   2365       1.1     matt /*
   2366       1.1     matt  * pmap_page_protect:
   2367       1.1     matt  *
   2368       1.1     matt  * Lower the permission for all mappings to a given page.
   2369       1.1     matt  */
   2370       1.1     matt 
   2371       1.1     matt void
   2372       1.1     matt pmap_page_protect(pg, prot)
   2373       1.1     matt 	struct vm_page *pg;
   2374       1.1     matt 	vm_prot_t prot;
   2375       1.1     matt {
   2376       1.1     matt 	paddr_t pa = VM_PAGE_TO_PHYS(pg);
   2377       1.1     matt 
   2378       1.1     matt 	PDEBUG(0, printf("pmap_page_protect(pa=%lx, prot=%d)\n", pa, prot));
   2379       1.1     matt 
   2380       1.1     matt 	switch(prot) {
   2381       1.1     matt 	case VM_PROT_READ:
   2382       1.1     matt 	case VM_PROT_READ|VM_PROT_EXECUTE:
   2383       1.1     matt 		pmap_copy_on_write(pa);
   2384       1.1     matt 		break;
   2385       1.1     matt 
   2386       1.1     matt 	case VM_PROT_ALL:
   2387       1.1     matt 		break;
   2388       1.1     matt 
   2389       1.1     matt 	default:
   2390       1.1     matt 		pmap_remove_all(pa);
   2391       1.1     matt 		break;
   2392       1.1     matt 	}
   2393       1.1     matt }
   2394       1.1     matt 
   2395       1.1     matt 
   2396       1.1     matt /*
   2397       1.1     matt  * Routine:	pmap_unwire
   2398       1.1     matt  * Function:	Clear the wired attribute for a map/virtual-address
   2399       1.1     matt  *		pair.
   2400       1.1     matt  * In/out conditions:
   2401       1.1     matt  *		The mapping must already exist in the pmap.
   2402       1.1     matt  */
   2403       1.1     matt 
   2404       1.1     matt void
   2405       1.1     matt pmap_unwire(pmap, va)
   2406  1.14.2.1    lukem 	struct pmap *pmap;
   2407       1.1     matt 	vaddr_t va;
   2408       1.1     matt {
   2409       1.1     matt 	pt_entry_t *pte;
   2410       1.2     matt 	paddr_t pa;
   2411       1.1     matt 	int bank, off;
   2412       1.1     matt 	struct pv_entry *pv;
   2413       1.1     matt 
   2414       1.1     matt 	/*
   2415       1.1     matt 	 * Make sure pmap is valid. -dct
   2416       1.1     matt 	 */
   2417       1.1     matt 	if (pmap == NULL)
   2418       1.1     matt 		return;
   2419       1.1     matt 
   2420       1.1     matt 	/* Get the pte */
   2421       1.1     matt 	pte = pmap_pte(pmap, va);
   2422       1.1     matt 	if (!pte)
   2423       1.1     matt 		return;
   2424       1.1     matt 
   2425       1.1     matt 	/* Extract the physical address of the page */
   2426       1.1     matt 	pa = pmap_pte_pa(pte);
   2427       1.1     matt 
   2428       1.1     matt 	if ((bank = vm_physseg_find(atop(pa), &off)) == -1)
   2429       1.1     matt 		return;
   2430       1.1     matt 	pv = &vm_physmem[bank].pmseg.pvent[off];
   2431       1.1     matt 	/* Update the wired bit in the pv entry for this page. */
   2432       1.1     matt 	(void) pmap_modify_pv(pmap, va, pv, PT_W, 0);
   2433       1.1     matt }
   2434       1.1     matt 
   2435       1.1     matt /*
   2436  1.14.2.1    lukem  * pt_entry_t *pmap_pte(struct pmap *pmap, vaddr_t va)
   2437       1.1     matt  *
   2438       1.1     matt  * Return the pointer to a page table entry corresponding to the supplied
   2439       1.1     matt  * virtual address.
   2440       1.1     matt  *
   2441       1.1     matt  * The page directory is first checked to make sure that a page table
   2442       1.1     matt  * for the address in question exists and if it does a pointer to the
   2443       1.1     matt  * entry is returned.
   2444       1.1     matt  *
   2445       1.1     matt  * The way this works is that that the kernel page tables are mapped
   2446       1.1     matt  * into the memory map at ALT_PAGE_TBLS_BASE to ALT_PAGE_TBLS_BASE+4MB.
   2447       1.1     matt  * This allows page tables to be located quickly.
   2448       1.1     matt  */
   2449       1.1     matt pt_entry_t *
   2450       1.1     matt pmap_pte(pmap, va)
   2451  1.14.2.1    lukem 	struct pmap *pmap;
   2452       1.1     matt 	vaddr_t va;
   2453       1.1     matt {
   2454       1.1     matt 	pt_entry_t *ptp;
   2455       1.1     matt 	pt_entry_t *result;
   2456       1.1     matt 
   2457       1.1     matt 	/* The pmap must be valid */
   2458       1.1     matt 	if (!pmap)
   2459       1.1     matt 		return(NULL);
   2460       1.1     matt 
   2461       1.1     matt 	/* Return the address of the pte */
   2462       1.1     matt 	PDEBUG(10, printf("pmap_pte: pmap=%p va=V%08lx pde = V%p (%08X)\n",
   2463       1.1     matt 	    pmap, va, pmap_pde(pmap, va), *(pmap_pde(pmap, va))));
   2464       1.1     matt 
   2465       1.1     matt 	/* Do we have a valid pde ? If not we don't have a page table */
   2466       1.1     matt 	if (!pmap_pde_v(pmap_pde(pmap, va))) {
   2467       1.1     matt 		PDEBUG(0, printf("pmap_pte: failed - pde = %p\n",
   2468       1.1     matt 		    pmap_pde(pmap, va)));
   2469       1.1     matt 		return(NULL);
   2470       1.1     matt 	}
   2471       1.1     matt 
   2472       1.1     matt 	PDEBUG(10, printf("pmap pagetable = P%08lx current = P%08x\n",
   2473       1.1     matt 	    pmap->pm_pptpt, (*((pt_entry_t *)(PROCESS_PAGE_TBLS_BASE
   2474       1.1     matt 	    + (PROCESS_PAGE_TBLS_BASE >> (PGSHIFT - 2)) +
   2475       1.1     matt 	    (PROCESS_PAGE_TBLS_BASE >> PDSHIFT))) & PG_FRAME)));
   2476       1.1     matt 
   2477       1.1     matt 	/*
   2478       1.1     matt 	 * If the pmap is the kernel pmap or the pmap is the active one
   2479       1.1     matt 	 * then we can just return a pointer to entry relative to
   2480       1.1     matt 	 * PROCESS_PAGE_TBLS_BASE.
   2481       1.1     matt 	 * Otherwise we need to map the page tables to an alternative
   2482       1.1     matt 	 * address and reference them there.
   2483       1.1     matt 	 */
   2484  1.14.2.1    lukem 	if (pmap == pmap_kernel() || pmap->pm_pptpt
   2485       1.1     matt 	    == (*((pt_entry_t *)(PROCESS_PAGE_TBLS_BASE
   2486       1.1     matt 	    + ((PROCESS_PAGE_TBLS_BASE >> (PGSHIFT - 2)) &
   2487       1.1     matt 	    ~3) + (PROCESS_PAGE_TBLS_BASE >> PDSHIFT))) & PG_FRAME)) {
   2488       1.1     matt 		ptp = (pt_entry_t *)PROCESS_PAGE_TBLS_BASE;
   2489       1.1     matt 	} else {
   2490       1.1     matt 		struct proc *p = curproc;
   2491       1.1     matt 
   2492       1.1     matt 		/* If we don't have a valid curproc use proc0 */
   2493       1.1     matt 		/* Perhaps we should just use kernel_pmap instead */
   2494       1.1     matt 		if (p == NULL)
   2495       1.1     matt 			p = &proc0;
   2496       1.1     matt #ifdef DIAGNOSTIC
   2497       1.1     matt 		/*
   2498       1.1     matt 		 * The pmap should always be valid for the process so
   2499       1.1     matt 		 * panic if it is not.
   2500       1.1     matt 		 */
   2501       1.1     matt 		if (!p->p_vmspace || !p->p_vmspace->vm_map.pmap) {
   2502       1.1     matt 			printf("pmap_pte: va=%08lx p=%p vm=%p\n",
   2503       1.1     matt 			    va, p, p->p_vmspace);
   2504       1.1     matt 			console_debugger();
   2505       1.1     matt 		}
   2506       1.1     matt 		/*
   2507       1.1     matt 		 * The pmap for the current process should be mapped. If it
   2508       1.1     matt 		 * is not then we have a problem.
   2509       1.1     matt 		 */
   2510       1.1     matt 		if (p->p_vmspace->vm_map.pmap->pm_pptpt !=
   2511       1.1     matt 		    (*((pt_entry_t *)(PROCESS_PAGE_TBLS_BASE
   2512       1.1     matt 		    + (PROCESS_PAGE_TBLS_BASE >> (PGSHIFT - 2)) +
   2513       1.1     matt 		    (PROCESS_PAGE_TBLS_BASE >> PDSHIFT))) & PG_FRAME)) {
   2514       1.1     matt 			printf("pmap pagetable = P%08lx current = P%08x ",
   2515       1.1     matt 			    pmap->pm_pptpt, (*((pt_entry_t *)(PROCESS_PAGE_TBLS_BASE
   2516       1.1     matt 			    + (PROCESS_PAGE_TBLS_BASE >> (PGSHIFT - 2)) +
   2517       1.1     matt 			    (PROCESS_PAGE_TBLS_BASE >> PDSHIFT))) &
   2518       1.1     matt 			    PG_FRAME));
   2519       1.1     matt 			printf("pptpt=%lx\n", p->p_vmspace->vm_map.pmap->pm_pptpt);
   2520       1.1     matt 			panic("pmap_pte: current and pmap mismatch\n");
   2521       1.1     matt 		}
   2522       1.1     matt #endif
   2523       1.1     matt 
   2524       1.1     matt 		ptp = (pt_entry_t *)ALT_PAGE_TBLS_BASE;
   2525       1.1     matt 		pmap_map_in_l1(p->p_vmspace->vm_map.pmap, ALT_PAGE_TBLS_BASE,
   2526       1.1     matt 		    pmap->pm_pptpt);
   2527       1.1     matt 		cpu_tlb_flushD();
   2528       1.1     matt 	}
   2529       1.1     matt 	PDEBUG(10, printf("page tables base = %p offset=%lx\n", ptp,
   2530       1.1     matt 	    ((va >> (PGSHIFT-2)) & ~3)));
   2531       1.1     matt 	result = (pt_entry_t *)((char *)ptp + ((va >> (PGSHIFT-2)) & ~3));
   2532       1.1     matt 	return(result);
   2533       1.1     matt }
   2534       1.1     matt 
   2535       1.1     matt /*
   2536       1.1     matt  * Routine:  pmap_extract
   2537       1.1     matt  * Function:
   2538       1.1     matt  *           Extract the physical page address associated
   2539       1.1     matt  *           with the given map/virtual_address pair.
   2540       1.1     matt  */
   2541       1.1     matt boolean_t
   2542       1.1     matt pmap_extract(pmap, va, pap)
   2543  1.14.2.1    lukem 	struct pmap *pmap;
   2544       1.1     matt 	vaddr_t va;
   2545       1.1     matt 	paddr_t *pap;
   2546       1.1     matt {
   2547      1.11    chris 	pt_entry_t *pte, *ptes;
   2548       1.1     matt 	paddr_t pa;
   2549       1.1     matt 
   2550       1.1     matt 	PDEBUG(5, printf("pmap_extract: pmap=%p, va=V%08lx\n", pmap, va));
   2551       1.1     matt 
   2552       1.1     matt 	/*
   2553      1.11    chris 	 * Get the pte for this virtual address.
   2554       1.1     matt 	 */
   2555      1.11    chris 	ptes = pmap_map_ptes(pmap);
   2556      1.11    chris 	pte = &ptes[arm_byte_to_page(va)];
   2557       1.1     matt 
   2558      1.11    chris 	/*
   2559      1.11    chris 	 * If there is no pte then there is no page table etc.
   2560      1.11    chris 	 * Is the pte valid ? If not then no paged is actually mapped here
   2561      1.11    chris 	 */
   2562      1.11    chris 	if (!pmap_pde_v(pmap_pde(pmap, va)) || !pmap_pte_v(pte)){
   2563      1.11    chris 	    pmap_unmap_ptes(pmap);
   2564      1.11    chris     	    return (FALSE);
   2565      1.11    chris 	}
   2566       1.1     matt 
   2567       1.1     matt 	/* Return the physical address depending on the PTE type */
   2568       1.1     matt 	/* XXX What about L1 section mappings ? */
   2569       1.1     matt 	if ((*(pte) & L2_MASK) == L2_LPAGE) {
   2570       1.1     matt 		/* Extract the physical address from the pte */
   2571       1.1     matt 		pa = (*(pte)) & ~(L2_LPAGE_SIZE - 1);
   2572       1.1     matt 
   2573       1.1     matt 		PDEBUG(5, printf("pmap_extract: LPAGE pa = P%08lx\n",
   2574       1.1     matt 		    (pa | (va & (L2_LPAGE_SIZE - 1)))));
   2575       1.1     matt 
   2576       1.1     matt 		if (pap != NULL)
   2577       1.1     matt 			*pap = pa | (va & (L2_LPAGE_SIZE - 1));
   2578       1.1     matt 	} else {
   2579       1.1     matt 		/* Extract the physical address from the pte */
   2580       1.1     matt 		pa = pmap_pte_pa(pte);
   2581       1.1     matt 
   2582       1.1     matt 		PDEBUG(5, printf("pmap_extract: SPAGE pa = P%08lx\n",
   2583       1.1     matt 		    (pa | (va & ~PG_FRAME))));
   2584       1.1     matt 
   2585       1.1     matt 		if (pap != NULL)
   2586       1.1     matt 			*pap = pa | (va & ~PG_FRAME);
   2587       1.1     matt 	}
   2588      1.11    chris 	pmap_unmap_ptes(pmap);
   2589      1.11    chris 	return (TRUE);
   2590       1.1     matt }
   2591       1.1     matt 
   2592       1.1     matt 
   2593       1.1     matt /*
   2594       1.1     matt  * Copy the range specified by src_addr/len from the source map to the
   2595       1.1     matt  * range dst_addr/len in the destination map.
   2596       1.1     matt  *
   2597       1.1     matt  * This routine is only advisory and need not do anything.
   2598       1.1     matt  */
   2599       1.1     matt 
   2600       1.1     matt void
   2601       1.1     matt pmap_copy(dst_pmap, src_pmap, dst_addr, len, src_addr)
   2602  1.14.2.1    lukem 	struct pmap *dst_pmap;
   2603  1.14.2.1    lukem 	struct pmap *src_pmap;
   2604       1.1     matt 	vaddr_t dst_addr;
   2605       1.2     matt 	vsize_t len;
   2606       1.1     matt 	vaddr_t src_addr;
   2607       1.1     matt {
   2608       1.1     matt 	PDEBUG(0, printf("pmap_copy(%p, %p, %lx, %lx, %lx)\n",
   2609       1.1     matt 	    dst_pmap, src_pmap, dst_addr, len, src_addr));
   2610       1.1     matt }
   2611       1.1     matt 
   2612       1.1     matt #if defined(PMAP_DEBUG)
   2613       1.1     matt void
   2614       1.1     matt pmap_dump_pvlist(phys, m)
   2615       1.1     matt 	vaddr_t phys;
   2616       1.1     matt 	char *m;
   2617       1.1     matt {
   2618       1.1     matt 	struct pv_entry *pv;
   2619       1.1     matt 	int bank, off;
   2620       1.1     matt 
   2621       1.1     matt 	if ((bank = vm_physseg_find(atop(phys), &off)) == -1) {
   2622       1.1     matt 		printf("INVALID PA\n");
   2623       1.1     matt 		return;
   2624       1.1     matt 	}
   2625       1.1     matt 	pv = &vm_physmem[bank].pmseg.pvent[off];
   2626       1.1     matt 	printf("%s %08lx:", m, phys);
   2627       1.1     matt 	if (pv->pv_pmap == NULL) {
   2628       1.1     matt 		printf(" no mappings\n");
   2629       1.1     matt 		return;
   2630       1.1     matt 	}
   2631       1.1     matt 
   2632       1.1     matt 	for (; pv; pv = pv->pv_next)
   2633       1.1     matt 		printf(" pmap %p va %08lx flags %08x", pv->pv_pmap,
   2634       1.1     matt 		    pv->pv_va, pv->pv_flags);
   2635       1.1     matt 
   2636       1.1     matt 	printf("\n");
   2637       1.1     matt }
   2638       1.1     matt 
   2639       1.1     matt #endif	/* PMAP_DEBUG */
   2640       1.1     matt 
   2641       1.1     matt boolean_t
   2642       1.1     matt pmap_testbit(pa, setbits)
   2643       1.2     matt 	paddr_t pa;
   2644       1.1     matt 	int setbits;
   2645       1.1     matt {
   2646       1.1     matt 	int bank, off;
   2647       1.1     matt 
   2648       1.1     matt 	PDEBUG(1, printf("pmap_testbit: pa=%08lx set=%08x\n", pa, setbits));
   2649       1.1     matt 
   2650       1.1     matt 	if ((bank = vm_physseg_find(atop(pa), &off)) == -1)
   2651       1.1     matt 		return(FALSE);
   2652       1.1     matt 
   2653       1.1     matt 	/*
   2654       1.1     matt 	 * Check saved info only
   2655       1.1     matt 	 */
   2656       1.1     matt 	if (vm_physmem[bank].pmseg.attrs[off] & setbits) {
   2657       1.1     matt 		PDEBUG(0, printf("pmap_attributes = %02x\n",
   2658       1.1     matt 		    vm_physmem[bank].pmseg.attrs[off]));
   2659       1.1     matt 		return(TRUE);
   2660       1.1     matt 	}
   2661       1.1     matt 
   2662       1.1     matt 	return(FALSE);
   2663       1.1     matt }
   2664       1.1     matt 
   2665      1.11    chris static pt_entry_t *
   2666      1.11    chris pmap_map_ptes(struct pmap *pmap)
   2667      1.11    chris {
   2668      1.11    chris     struct proc *p;
   2669      1.11    chris 
   2670      1.11    chris     /* the kernel's pmap is always accessible */
   2671      1.11    chris     if (pmap == pmap_kernel()) {
   2672      1.11    chris 	return (pt_entry_t *)PROCESS_PAGE_TBLS_BASE ;
   2673      1.11    chris     }
   2674      1.11    chris 
   2675      1.11    chris     if (curproc &&
   2676      1.11    chris 	    curproc->p_vmspace->vm_map.pmap == pmap)
   2677      1.11    chris 	return (pt_entry_t *)PROCESS_PAGE_TBLS_BASE;
   2678      1.11    chris 
   2679      1.11    chris     p = curproc;
   2680      1.11    chris 
   2681      1.11    chris     if (p == NULL)
   2682      1.11    chris 	p = &proc0;
   2683      1.11    chris 
   2684      1.11    chris     pmap_map_in_l1(p->p_vmspace->vm_map.pmap, ALT_PAGE_TBLS_BASE,
   2685      1.11    chris 	    pmap->pm_pptpt);
   2686      1.11    chris     cpu_tlb_flushD();
   2687      1.11    chris     return (pt_entry_t *)ALT_PAGE_TBLS_BASE;
   2688      1.11    chris }
   2689       1.1     matt 
   2690       1.1     matt /*
   2691       1.1     matt  * Modify pte bits for all ptes corresponding to the given physical address.
   2692       1.1     matt  * We use `maskbits' rather than `clearbits' because we're always passing
   2693       1.1     matt  * constants and the latter would require an extra inversion at run-time.
   2694       1.1     matt  */
   2695       1.1     matt 
   2696       1.1     matt void
   2697       1.1     matt pmap_clearbit(pa, maskbits)
   2698       1.2     matt 	paddr_t pa;
   2699       1.1     matt 	int maskbits;
   2700       1.1     matt {
   2701       1.1     matt 	struct pv_entry *pv;
   2702       1.1     matt 	pt_entry_t *pte;
   2703       1.1     matt 	vaddr_t va;
   2704       1.1     matt 	int bank, off;
   2705       1.1     matt 	int s;
   2706       1.1     matt 
   2707       1.1     matt 	PDEBUG(1, printf("pmap_clearbit: pa=%08lx mask=%08x\n",
   2708       1.1     matt 	    pa, maskbits));
   2709       1.1     matt 	if ((bank = vm_physseg_find(atop(pa), &off)) == -1)
   2710       1.1     matt 		return;
   2711       1.1     matt 	pv = &vm_physmem[bank].pmseg.pvent[off];
   2712       1.1     matt 	s = splvm();
   2713       1.1     matt 
   2714       1.1     matt 	/*
   2715       1.1     matt 	 * Clear saved attributes (modify, reference)
   2716       1.1     matt 	 */
   2717       1.1     matt 	vm_physmem[bank].pmseg.attrs[off] &= ~maskbits;
   2718       1.1     matt 
   2719       1.1     matt 	if (pv->pv_pmap == NULL) {
   2720       1.1     matt 		splx(s);
   2721       1.1     matt 		return;
   2722       1.1     matt 	}
   2723       1.1     matt 
   2724       1.1     matt 	/*
   2725       1.1     matt 	 * Loop over all current mappings setting/clearing as appropos
   2726       1.1     matt 	 */
   2727       1.1     matt 	for (; pv; pv = pv->pv_next) {
   2728       1.1     matt 		va = pv->pv_va;
   2729       1.1     matt 
   2730       1.1     matt 		/*
   2731       1.1     matt 		 * XXX don't write protect pager mappings
   2732       1.1     matt 		 */
   2733       1.1     matt 		if (va >= uvm.pager_sva && va < uvm.pager_eva) {
   2734      1.11    chris 			printf("pmap_clearbit: found page VA on pv_list\n");
   2735       1.1     matt 			continue;
   2736       1.1     matt 		}
   2737       1.1     matt 
   2738       1.1     matt 		pv->pv_flags &= ~maskbits;
   2739       1.1     matt 		pte = pmap_pte(pv->pv_pmap, va);
   2740       1.1     matt 		if (maskbits & (PT_Wr|PT_M))
   2741       1.1     matt 			*pte = *pte & ~PT_AP(AP_W);
   2742       1.1     matt 		if (maskbits & PT_H)
   2743       1.1     matt 			*pte = (*pte & ~L2_MASK) | L2_INVAL;
   2744       1.1     matt 	}
   2745       1.1     matt 	cpu_tlb_flushID();
   2746       1.1     matt 
   2747       1.1     matt 	splx(s);
   2748       1.1     matt }
   2749       1.1     matt 
   2750       1.1     matt 
   2751       1.1     matt boolean_t
   2752       1.1     matt pmap_clear_modify(pg)
   2753       1.1     matt 	struct vm_page *pg;
   2754       1.1     matt {
   2755       1.1     matt 	paddr_t pa = VM_PAGE_TO_PHYS(pg);
   2756       1.1     matt 	boolean_t rv;
   2757       1.1     matt 
   2758       1.1     matt 	PDEBUG(0, printf("pmap_clear_modify pa=%08lx\n", pa));
   2759       1.1     matt 	rv = pmap_testbit(pa, PT_M);
   2760       1.1     matt 	pmap_clearbit(pa, PT_M);
   2761       1.1     matt 	return rv;
   2762       1.1     matt }
   2763       1.1     matt 
   2764       1.1     matt 
   2765       1.1     matt boolean_t
   2766       1.1     matt pmap_clear_reference(pg)
   2767       1.1     matt 	struct vm_page *pg;
   2768       1.1     matt {
   2769       1.1     matt 	paddr_t pa = VM_PAGE_TO_PHYS(pg);
   2770       1.1     matt 	boolean_t rv;
   2771       1.1     matt 
   2772       1.1     matt 	PDEBUG(0, printf("pmap_clear_reference pa=%08lx\n", pa));
   2773       1.1     matt 	rv = pmap_testbit(pa, PT_H);
   2774       1.1     matt 	pmap_clearbit(pa, PT_H);
   2775       1.1     matt 	return rv;
   2776       1.1     matt }
   2777       1.1     matt 
   2778       1.1     matt 
   2779       1.1     matt void
   2780       1.1     matt pmap_copy_on_write(pa)
   2781       1.2     matt 	paddr_t pa;
   2782       1.1     matt {
   2783       1.1     matt 	PDEBUG(0, printf("pmap_copy_on_write pa=%08lx\n", pa));
   2784       1.1     matt 	pmap_clearbit(pa, PT_Wr);
   2785       1.1     matt }
   2786       1.1     matt 
   2787       1.1     matt 
   2788       1.1     matt boolean_t
   2789       1.1     matt pmap_is_modified(pg)
   2790       1.1     matt 	struct vm_page *pg;
   2791       1.1     matt {
   2792       1.1     matt 	paddr_t pa = VM_PAGE_TO_PHYS(pg);
   2793       1.1     matt 	boolean_t result;
   2794       1.1     matt 
   2795       1.1     matt 	result = pmap_testbit(pa, PT_M);
   2796       1.1     matt 	PDEBUG(0, printf("pmap_is_modified pa=%08lx %x\n", pa, result));
   2797       1.1     matt 	return (result);
   2798       1.1     matt }
   2799       1.1     matt 
   2800       1.1     matt 
   2801       1.1     matt boolean_t
   2802       1.1     matt pmap_is_referenced(pg)
   2803       1.1     matt 	struct vm_page *pg;
   2804       1.1     matt {
   2805       1.1     matt 	paddr_t pa = VM_PAGE_TO_PHYS(pg);
   2806       1.1     matt 	boolean_t result;
   2807       1.1     matt 
   2808       1.1     matt 	result = pmap_testbit(pa, PT_H);
   2809       1.1     matt 	PDEBUG(0, printf("pmap_is_referenced pa=%08lx %x\n", pa, result));
   2810       1.1     matt 	return (result);
   2811       1.1     matt }
   2812       1.1     matt 
   2813       1.1     matt 
   2814       1.1     matt int
   2815       1.1     matt pmap_modified_emulation(pmap, va)
   2816  1.14.2.1    lukem 	struct pmap *pmap;
   2817       1.1     matt 	vaddr_t va;
   2818       1.1     matt {
   2819       1.1     matt 	pt_entry_t *pte;
   2820       1.2     matt 	paddr_t pa;
   2821       1.1     matt 	int bank, off;
   2822       1.1     matt 	struct pv_entry *pv;
   2823       1.1     matt 	u_int flags;
   2824       1.1     matt 
   2825       1.1     matt 	PDEBUG(2, printf("pmap_modified_emulation\n"));
   2826       1.1     matt 
   2827       1.1     matt 	/* Get the pte */
   2828       1.1     matt 	pte = pmap_pte(pmap, va);
   2829       1.1     matt 	if (!pte) {
   2830       1.1     matt 		PDEBUG(2, printf("no pte\n"));
   2831       1.1     matt 		return(0);
   2832       1.1     matt 	}
   2833       1.1     matt 
   2834       1.1     matt 	PDEBUG(1, printf("*pte=%08x\n", *pte));
   2835       1.1     matt 
   2836       1.1     matt 	/* Check for a zero pte */
   2837       1.1     matt 	if (*pte == 0)
   2838       1.1     matt 		return(0);
   2839       1.1     matt 
   2840       1.1     matt 	/* This can happen if user code tries to access kernel memory. */
   2841       1.1     matt 	if ((*pte & PT_AP(AP_W)) != 0)
   2842       1.1     matt 		return (0);
   2843       1.1     matt 
   2844       1.1     matt 	/* Extract the physical address of the page */
   2845       1.1     matt 	pa = pmap_pte_pa(pte);
   2846       1.1     matt 	if ((bank = vm_physseg_find(atop(pa), &off)) == -1)
   2847       1.1     matt 		return(0);
   2848       1.1     matt 
   2849       1.1     matt 	/* Get the current flags for this page. */
   2850       1.1     matt 	pv = &vm_physmem[bank].pmseg.pvent[off];
   2851       1.1     matt 	flags = pmap_modify_pv(pmap, va, pv, 0, 0);
   2852       1.1     matt 	PDEBUG(2, printf("pmap_modified_emulation: flags = %08x\n", flags));
   2853       1.1     matt 
   2854       1.1     matt 	/*
   2855       1.1     matt 	 * Do the flags say this page is writable ? If not then it is a
   2856       1.1     matt 	 * genuine write fault. If yes then the write fault is our fault
   2857       1.1     matt 	 * as we did not reflect the write access in the PTE. Now we know
   2858       1.1     matt 	 * a write has occurred we can correct this and also set the
   2859       1.1     matt 	 * modified bit
   2860       1.1     matt 	 */
   2861       1.1     matt 	if (~flags & PT_Wr)
   2862       1.1     matt 		return(0);
   2863       1.1     matt 
   2864       1.1     matt 	PDEBUG(0, printf("pmap_modified_emulation: Got a hit va=%08lx, pte = %p (%08x)\n",
   2865       1.1     matt 	    va, pte, *pte));
   2866       1.1     matt 	vm_physmem[bank].pmseg.attrs[off] |= PT_H | PT_M;
   2867       1.1     matt 	*pte = (*pte & ~L2_MASK) | L2_SPAGE | PT_AP(AP_W);
   2868       1.1     matt 	PDEBUG(0, printf("->(%08x)\n", *pte));
   2869       1.1     matt 
   2870       1.1     matt 	/* Return, indicating the problem has been dealt with */
   2871       1.1     matt 	cpu_tlb_flushID_SE(va);
   2872       1.1     matt 	return(1);
   2873       1.1     matt }
   2874       1.1     matt 
   2875       1.1     matt 
   2876       1.1     matt int
   2877       1.1     matt pmap_handled_emulation(pmap, va)
   2878  1.14.2.1    lukem 	struct pmap *pmap;
   2879       1.1     matt 	vaddr_t va;
   2880       1.1     matt {
   2881       1.1     matt 	pt_entry_t *pte;
   2882       1.2     matt 	paddr_t pa;
   2883       1.1     matt 	int bank, off;
   2884       1.1     matt 
   2885       1.1     matt 	PDEBUG(2, printf("pmap_handled_emulation\n"));
   2886       1.1     matt 
   2887       1.1     matt 	/* Get the pte */
   2888       1.1     matt 	pte = pmap_pte(pmap, va);
   2889       1.1     matt 	if (!pte) {
   2890       1.1     matt 		PDEBUG(2, printf("no pte\n"));
   2891       1.1     matt 		return(0);
   2892       1.1     matt 	}
   2893       1.1     matt 
   2894       1.1     matt 	PDEBUG(1, printf("*pte=%08x\n", *pte));
   2895       1.1     matt 
   2896       1.1     matt 	/* Check for a zero pte */
   2897       1.1     matt 	if (*pte == 0)
   2898       1.1     matt 		return(0);
   2899       1.1     matt 
   2900       1.1     matt 	/* This can happen if user code tries to access kernel memory. */
   2901       1.1     matt 	if ((*pte & L2_MASK) != L2_INVAL)
   2902       1.1     matt 		return (0);
   2903       1.1     matt 
   2904       1.1     matt 	/* Extract the physical address of the page */
   2905       1.1     matt 	pa = pmap_pte_pa(pte);
   2906       1.1     matt 	if ((bank = vm_physseg_find(atop(pa), &off)) == -1)
   2907       1.1     matt 		return(0);
   2908       1.1     matt 
   2909       1.1     matt 	/*
   2910       1.1     matt 	 * Ok we just enable the pte and mark the attibs as handled
   2911       1.1     matt 	 */
   2912       1.1     matt 	PDEBUG(0, printf("pmap_handled_emulation: Got a hit va=%08lx pte = %p (%08x)\n",
   2913       1.1     matt 	    va, pte, *pte));
   2914       1.1     matt 	vm_physmem[bank].pmseg.attrs[off] |= PT_H;
   2915       1.1     matt 	*pte = (*pte & ~L2_MASK) | L2_SPAGE;
   2916       1.1     matt 	PDEBUG(0, printf("->(%08x)\n", *pte));
   2917       1.1     matt 
   2918       1.1     matt 	/* Return, indicating the problem has been dealt with */
   2919       1.1     matt 	cpu_tlb_flushID_SE(va);
   2920       1.1     matt 	return(1);
   2921       1.1     matt }
   2922       1.1     matt 
   2923       1.1     matt /*
   2924       1.1     matt  * pmap_collect: free resources held by a pmap
   2925       1.1     matt  *
   2926       1.1     matt  * => optional function.
   2927       1.1     matt  * => called when a process is swapped out to free memory.
   2928       1.1     matt  */
   2929       1.1     matt 
   2930       1.1     matt void
   2931       1.1     matt pmap_collect(pmap)
   2932  1.14.2.1    lukem 	struct pmap *pmap;
   2933       1.1     matt {
   2934       1.1     matt }
   2935       1.1     matt 
   2936       1.1     matt /*
   2937       1.1     matt  * Routine:	pmap_procwr
   2938       1.1     matt  *
   2939       1.1     matt  * Function:
   2940       1.1     matt  *	Synchronize caches corresponding to [addr, addr+len) in p.
   2941       1.1     matt  *
   2942       1.1     matt  */
   2943       1.1     matt void
   2944       1.1     matt pmap_procwr(p, va, len)
   2945       1.1     matt 	struct proc	*p;
   2946       1.1     matt 	vaddr_t		va;
   2947       1.3     matt 	int		len;
   2948       1.1     matt {
   2949       1.1     matt 	/* We only need to do anything if it is the current process. */
   2950       1.1     matt 	if (p == curproc)
   2951       1.1     matt 		cpu_cache_syncI_rng(va, len);
   2952       1.1     matt }
   2953       1.1     matt 
   2954       1.1     matt /* End of pmap.c */
   2955