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pmap.h revision 1.102.16.1
      1  1.102.16.1      haad /*	$NetBSD: pmap.h,v 1.102.16.1 2008/12/13 01:13:14 haad Exp $	*/
      2        1.38   mycroft 
      3        1.40   thorpej /*
      4        1.40   thorpej  *
      5        1.40   thorpej  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      6        1.38   mycroft  * All rights reserved.
      7        1.38   mycroft  *
      8        1.38   mycroft  * Redistribution and use in source and binary forms, with or without
      9        1.38   mycroft  * modification, are permitted provided that the following conditions
     10        1.38   mycroft  * are met:
     11        1.38   mycroft  * 1. Redistributions of source code must retain the above copyright
     12        1.38   mycroft  *    notice, this list of conditions and the following disclaimer.
     13        1.38   mycroft  * 2. Redistributions in binary form must reproduce the above copyright
     14        1.38   mycroft  *    notice, this list of conditions and the following disclaimer in the
     15        1.38   mycroft  *    documentation and/or other materials provided with the distribution.
     16        1.38   mycroft  * 3. All advertising materials mentioning features or use of this software
     17        1.40   thorpej  *    must display the following acknowledgment:
     18        1.40   thorpej  *      This product includes software developed by Charles D. Cranor and
     19        1.40   thorpej  *      Washington University.
     20        1.40   thorpej  * 4. The name of the author may not be used to endorse or promote products
     21        1.40   thorpej  *    derived from this software without specific prior written permission.
     22         1.1       cgd  *
     23        1.40   thorpej  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     24        1.40   thorpej  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     25        1.40   thorpej  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     26        1.40   thorpej  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     27        1.40   thorpej  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     28        1.40   thorpej  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     29        1.40   thorpej  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     30        1.40   thorpej  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     31        1.40   thorpej  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     32        1.40   thorpej  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     33         1.1       cgd  */
     34         1.1       cgd 
     35         1.1       cgd /*
     36        1.94      yamt  * Copyright (c) 2001 Wasabi Systems, Inc.
     37        1.94      yamt  * All rights reserved.
     38        1.94      yamt  *
     39        1.94      yamt  * Written by Frank van der Linden for Wasabi Systems, Inc.
     40        1.94      yamt  *
     41        1.94      yamt  * Redistribution and use in source and binary forms, with or without
     42        1.94      yamt  * modification, are permitted provided that the following conditions
     43        1.94      yamt  * are met:
     44        1.94      yamt  * 1. Redistributions of source code must retain the above copyright
     45        1.94      yamt  *    notice, this list of conditions and the following disclaimer.
     46        1.94      yamt  * 2. Redistributions in binary form must reproduce the above copyright
     47        1.94      yamt  *    notice, this list of conditions and the following disclaimer in the
     48        1.94      yamt  *    documentation and/or other materials provided with the distribution.
     49        1.94      yamt  * 3. All advertising materials mentioning features or use of this software
     50        1.94      yamt  *    must display the following acknowledgement:
     51        1.94      yamt  *      This product includes software developed for the NetBSD Project by
     52        1.94      yamt  *      Wasabi Systems, Inc.
     53        1.94      yamt  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     54        1.94      yamt  *    or promote products derived from this software without specific prior
     55        1.94      yamt  *    written permission.
     56        1.94      yamt  *
     57        1.94      yamt  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     58        1.94      yamt  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     59        1.94      yamt  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     60        1.94      yamt  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     61        1.94      yamt  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     62        1.94      yamt  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     63        1.94      yamt  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     64        1.94      yamt  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     65        1.94      yamt  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     66        1.94      yamt  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     67        1.94      yamt  * POSSIBILITY OF SUCH DAMAGE.
     68         1.1       cgd  */
     69        1.34       mrg 
     70        1.40   thorpej #ifndef	_I386_PMAP_H_
     71        1.40   thorpej #define	_I386_PMAP_H_
     72        1.40   thorpej 
     73        1.58       mrg #if defined(_KERNEL_OPT)
     74        1.39   thorpej #include "opt_user_ldt.h"
     75        1.98    bouyer #include "opt_xen.h"
     76        1.34       mrg #endif
     77         1.1       cgd 
     78        1.96        ad #include <sys/atomic.h>
     79        1.96        ad 
     80  1.102.16.1      haad #include <i386/pte.h>
     81        1.39   thorpej #include <machine/segments.h>
     82        1.92        ad #if defined(_KERNEL)
     83        1.91        ad #include <machine/cpufunc.h>
     84        1.91        ad #endif
     85        1.90        ad 
     86        1.40   thorpej #include <uvm/uvm_object.h>
     87        1.98    bouyer #ifdef XEN
     88        1.98    bouyer #include <xen/xenfunc.h>
     89        1.98    bouyer #include <xen/xenpmap.h>
     90        1.98    bouyer #endif /* XEN */
     91         1.1       cgd 
     92         1.1       cgd /*
     93        1.40   thorpej  * see pte.h for a description of i386 MMU terminology and hardware
     94        1.40   thorpej  * interface.
     95        1.40   thorpej  *
     96       1.102    bouyer  * a pmap describes a processes' 4GB virtual address space.  when PAE
     97       1.102    bouyer  * is not in use, this virtual address space can be broken up into 1024 4MB
     98       1.102    bouyer  * regions which are described by PDEs in the PDP.  the PDEs are defined as
     99       1.102    bouyer  * follows:
    100        1.40   thorpej  *
    101        1.40   thorpej  * (ranges are inclusive -> exclusive, just like vm_map_entry start/end)
    102        1.43   thorpej  * (the following assumes that KERNBASE is 0xc0000000)
    103        1.40   thorpej  *
    104        1.40   thorpej  * PDE#s	VA range		usage
    105        1.68  drochner  * 0->766	0x0 -> 0xbfc00000	user address space
    106        1.61      yamt  * 767		0xbfc00000->		recursive mapping of PDP (used for
    107        1.43   thorpej  *			0xc0000000	linear mapping of PTPs)
    108        1.43   thorpej  * 768->1023	0xc0000000->		kernel address space (constant
    109        1.40   thorpej  *			0xffc00000	across all pmap's/processes)
    110        1.40   thorpej  * 1023		0xffc00000->		"alternate" recursive PDP mapping
    111        1.40   thorpej  *			<end>		(for other pmaps)
    112        1.40   thorpej  *
    113        1.40   thorpej  *
    114        1.40   thorpej  * note: a recursive PDP mapping provides a way to map all the PTEs for
    115        1.41       chs  * a 4GB address space into a linear chunk of virtual memory.  in other
    116        1.41       chs  * words, the PTE for page 0 is the first int mapped into the 4MB recursive
    117        1.41       chs  * area.  the PTE for page 1 is the second int.  the very last int in the
    118        1.81  junyoung  * 4MB range is the PTE that maps VA 0xfffff000 (the last page in a 4GB
    119        1.40   thorpej  * address).
    120        1.40   thorpej  *
    121        1.43   thorpej  * all pmap's PD's must have the same values in slots 768->1023 so that
    122        1.41       chs  * the kernel is always mapped in every process.  these values are loaded
    123        1.40   thorpej  * into the PD at pmap creation time.
    124        1.40   thorpej  *
    125        1.41       chs  * at any one time only one pmap can be active on a processor.  this is
    126        1.41       chs  * the pmap whose PDP is pointed to by processor register %cr3.  this pmap
    127        1.40   thorpej  * will have all its PTEs mapped into memory at the recursive mapping
    128        1.43   thorpej  * point (slot #767 as show above).  when the pmap code wants to find the
    129        1.40   thorpej  * PTE for a virtual address, all it has to do is the following:
    130        1.40   thorpej  *
    131        1.71   thorpej  * address of PTE = (767 * 4MB) + (VA / PAGE_SIZE) * sizeof(pt_entry_t)
    132        1.43   thorpej  *                = 0xbfc00000 + (VA / 4096) * 4
    133        1.40   thorpej  *
    134        1.40   thorpej  * what happens if the pmap layer is asked to perform an operation
    135        1.41       chs  * on a pmap that is not the one which is currently active?  in that
    136        1.41       chs  * case we take the PA of the PDP of non-active pmap and put it in
    137        1.41       chs  * slot 1023 of the active pmap.  this causes the non-active pmap's
    138        1.40   thorpej  * PTEs to get mapped in the final 4MB of the 4GB address space
    139        1.40   thorpej  * (e.g. starting at 0xffc00000).
    140        1.40   thorpej  *
    141        1.40   thorpej  * the following figure shows the effects of the recursive PDP mapping:
    142        1.40   thorpej  *
    143        1.40   thorpej  *   PDP (%cr3)
    144        1.40   thorpej  *   +----+
    145        1.40   thorpej  *   |   0| -> PTP#0 that maps VA 0x0 -> 0x400000
    146        1.40   thorpej  *   |    |
    147        1.40   thorpej  *   |    |
    148        1.43   thorpej  *   | 767| -> points back to PDP (%cr3) mapping VA 0xbfc00000 -> 0xc0000000
    149        1.83  junyoung  *   | 768| -> first kernel PTP (maps 0xc0000000 -> 0xc0400000)
    150        1.40   thorpej  *   |    |
    151        1.40   thorpej  *   |1023| -> points to alternate pmap's PDP (maps 0xffc00000 -> end)
    152        1.40   thorpej  *   +----+
    153        1.40   thorpej  *
    154        1.43   thorpej  * note that the PDE#767 VA (0xbfc00000) is defined as "PTE_BASE"
    155        1.40   thorpej  * note that the PDE#1023 VA (0xffc00000) is defined as "APTE_BASE"
    156        1.40   thorpej  *
    157        1.43   thorpej  * starting at VA 0xbfc00000 the current active PDP (%cr3) acts as a
    158        1.40   thorpej  * PTP:
    159        1.40   thorpej  *
    160        1.43   thorpej  * PTP#767 == PDP(%cr3) => maps VA 0xbfc00000 -> 0xc0000000
    161        1.40   thorpej  *   +----+
    162        1.43   thorpej  *   |   0| -> maps the contents of PTP#0 at VA 0xbfc00000->0xbfc01000
    163        1.40   thorpej  *   |    |
    164        1.40   thorpej  *   |    |
    165        1.81  junyoung  *   | 767| -> maps contents of PTP#767 (the PDP) at VA 0xbfeff000
    166        1.43   thorpej  *   | 768| -> maps contents of first kernel PTP
    167        1.40   thorpej  *   |    |
    168        1.40   thorpej  *   |1023|
    169        1.40   thorpej  *   +----+
    170        1.40   thorpej  *
    171        1.81  junyoung  * note that mapping of the PDP at PTP#767's VA (0xbfeff000) is
    172        1.40   thorpej  * defined as "PDP_BASE".... within that mapping there are two
    173        1.41       chs  * defines:
    174        1.59       chs  *   "PDP_PDE" (0xbfeffbfc) is the VA of the PDE in the PDP
    175        1.41       chs  *      which points back to itself.
    176        1.59       chs  *   "APDP_PDE" (0xbfeffffc) is the VA of the PDE in the PDP which
    177        1.40   thorpej  *      establishes the recursive mapping of the alternate pmap.
    178        1.40   thorpej  *      to set the alternate PDP, one just has to put the correct
    179        1.40   thorpej  *	PA info in *APDP_PDE.
    180        1.40   thorpej  *
    181        1.41       chs  * note that in the APTE_BASE space, the APDP appears at VA
    182        1.40   thorpej  * "APDP_BASE" (0xfffff000).
    183       1.102    bouyer  *
    184       1.102    bouyer  * When PAE is in use, the L3 page directory breaks up the address space in
    185       1.102    bouyer  * 4 1GB * regions, each of them broken in 512 2MB regions by the L2 PD
    186       1.102    bouyer  * (the size of the pages at the L1 level is still 4K).
    187       1.102    bouyer  * The kernel virtual space is mapped by the last entry in the L3 page,
    188       1.102    bouyer  * the first 3 entries mapping the user VA space.
    189       1.102    bouyer  * Because the L3 has only 4 entries of 1GB each, we can't use recursive
    190       1.102    bouyer  * mappings at this level for PDP_PDE and APDP_PDE (this would eat 2 of the
    191       1.102    bouyer  * 4GB virtual space). There's also restrictions imposed by Xen on the
    192       1.102    bouyer  * last entry of the L3 PD, which makes it hard to use one L3 page per pmap
    193       1.102    bouyer  * switch %cr3 to switch pmaps. So we use one static L3 page which is
    194       1.102    bouyer  * always loaded in %cr3, and we use it as 2 virtual PD pointers: one for
    195       1.102    bouyer  * kenrel space (L3[3], always loaded), and one for user space (in fact the
    196       1.102    bouyer  * first 3 entries of the L3 PD), and we claim the VM has only a 2-level
    197       1.102    bouyer  * PTP (with the L2 index extended by 2 bytes).
    198       1.102    bouyer  * PTE_BASE and APTE_BASE will need 4 entries in the L2 page table.
    199       1.102    bouyer  * In addition, we can't recursively map L3[3] (Xen wants the ref count on
    200       1.102    bouyer  * this page to be exactly once), so we use a shadow PD page for the last
    201       1.102    bouyer  * L2 PD. The shadow page could be static too, but to make pm_pdir[]
    202       1.102    bouyer  * contigous we'll allocate/copy one page per pmap.
    203         1.1       cgd  */
    204        1.65      fvdl /* XXX MP should we allocate one APDP_PDE per processor?? */
    205        1.33       mrg 
    206        1.33       mrg /*
    207        1.94      yamt  * Mask to get rid of the sign-extended part of addresses.
    208        1.94      yamt  */
    209        1.94      yamt #define VA_SIGN_MASK		0
    210        1.94      yamt #define VA_SIGN_NEG(va)		((va) | VA_SIGN_MASK)
    211        1.94      yamt /*
    212        1.94      yamt  * XXXfvdl this one's not right.
    213        1.94      yamt  */
    214        1.94      yamt #define VA_SIGN_POS(va)		((va) & ~VA_SIGN_MASK)
    215        1.94      yamt 
    216        1.94      yamt /*
    217        1.40   thorpej  * the following defines identify the slots used as described above.
    218        1.33       mrg  */
    219       1.102    bouyer #ifdef PAE
    220       1.102    bouyer #define L2_SLOT_PTE	(KERNBASE/NBPD_L2-4) /* 1532: for recursive PDP map */
    221       1.102    bouyer #define L2_SLOT_KERN	(KERNBASE/NBPD_L2)   /* 1536: start of kernel space */
    222       1.102    bouyer #define	L2_SLOT_KERNBASE L2_SLOT_KERN
    223       1.102    bouyer #define L2_SLOT_APTE	1960                 /* 1964-2047 reserved by Xen */
    224       1.102    bouyer #else /* PAE */
    225       1.102    bouyer #define L2_SLOT_PTE	(KERNBASE/NBPD_L2-1) /* 767: for recursive PDP map */
    226       1.102    bouyer #define L2_SLOT_KERN	(KERNBASE/NBPD_L2)   /* 768: start of kernel space */
    227        1.94      yamt #define	L2_SLOT_KERNBASE L2_SLOT_KERN
    228        1.98    bouyer #ifndef XEN
    229       1.102    bouyer #define L2_SLOT_APTE	1023		 /* 1023: alternative recursive slot */
    230        1.98    bouyer #else
    231        1.98    bouyer #define L2_SLOT_APTE	1007		/* 1008-1023 reserved by Xen */
    232        1.98    bouyer #endif
    233       1.102    bouyer #endif /* PAE */
    234        1.98    bouyer 
    235        1.94      yamt 
    236        1.94      yamt #define PDIR_SLOT_KERN	L2_SLOT_KERN
    237        1.94      yamt #define PDIR_SLOT_PTE	L2_SLOT_PTE
    238        1.94      yamt #define PDIR_SLOT_APTE	L2_SLOT_APTE
    239         1.1       cgd 
    240         1.1       cgd /*
    241        1.41       chs  * the following defines give the virtual addresses of various MMU
    242        1.40   thorpej  * data structures:
    243        1.40   thorpej  * PTE_BASE and APTE_BASE: the base VA of the linear PTE mappings
    244        1.81  junyoung  * PDP_BASE and APDP_BASE: the base VA of the recursive mapping of the PDP
    245        1.40   thorpej  * PDP_PDE and APDP_PDE: the VA of the PDE that points back to the PDP/APDP
    246         1.1       cgd  */
    247        1.29      fvdl 
    248       1.102    bouyer #define PTE_BASE  ((pt_entry_t *) (PDIR_SLOT_PTE * NBPD_L2))
    249       1.102    bouyer #define APTE_BASE ((pt_entry_t *) (VA_SIGN_NEG((PDIR_SLOT_APTE * NBPD_L2))))
    250        1.40   thorpej 
    251        1.94      yamt #define L1_BASE		PTE_BASE
    252        1.94      yamt #define AL1_BASE	APTE_BASE
    253        1.40   thorpej 
    254        1.94      yamt #define L2_BASE ((pd_entry_t *)((char *)L1_BASE + L2_SLOT_PTE * NBPD_L1))
    255        1.94      yamt #define AL2_BASE ((pd_entry_t *)((char *)AL1_BASE + L2_SLOT_PTE * NBPD_L1))
    256        1.40   thorpej 
    257        1.94      yamt #define PDP_PDE		(L2_BASE + PDIR_SLOT_PTE)
    258       1.102    bouyer #ifdef PAE
    259       1.102    bouyer /*
    260       1.102    bouyer  * when PAE is in use we can't write APDP_PDE though the recursive mapping,
    261       1.102    bouyer  * because it points to the shadow PD. Use the kernel PD instead, which is
    262       1.102    bouyer  * static
    263       1.102    bouyer  */
    264       1.102    bouyer #define APDP_PDE	(&pmap_kl2pd[l2tol2(PDIR_SLOT_APTE)])
    265       1.102    bouyer #define APDP_PDE_SHADOW	(L2_BASE + PDIR_SLOT_APTE)
    266       1.102    bouyer #else /* PAE */
    267        1.94      yamt #define APDP_PDE	(L2_BASE + PDIR_SLOT_APTE)
    268       1.102    bouyer #endif /* PAE */
    269        1.40   thorpej 
    270        1.94      yamt #define PDP_BASE	L2_BASE
    271        1.94      yamt #define APDP_BASE	AL2_BASE
    272         1.1       cgd 
    273        1.94      yamt /* largest value (-1 for APTP space) */
    274        1.94      yamt #define NKL2_MAX_ENTRIES	(NTOPLEVEL_PDES - (KERNBASE/NBPD_L2) - 1)
    275        1.94      yamt #define NKL1_MAX_ENTRIES	(unsigned long)(NKL2_MAX_ENTRIES * NPDPG)
    276        1.39   thorpej 
    277        1.94      yamt #define NKL2_KIMG_ENTRIES	0	/* XXX unused */
    278        1.40   thorpej 
    279        1.94      yamt #define NKL2_START_ENTRIES	0	/* XXX computed on runtime */
    280        1.94      yamt #define NKL1_START_ENTRIES	0	/* XXX unused */
    281        1.11   mycroft 
    282       1.102    bouyer #ifdef PAE
    283       1.102    bouyer #define NTOPLEVEL_PDES		(PAGE_SIZE * 4 / (sizeof (pd_entry_t)))
    284       1.102    bouyer #else
    285        1.94      yamt #define NTOPLEVEL_PDES		(PAGE_SIZE / (sizeof (pd_entry_t)))
    286       1.102    bouyer #endif
    287        1.11   mycroft 
    288        1.94      yamt #define NPDPG			(PAGE_SIZE / sizeof (pd_entry_t))
    289         1.1       cgd 
    290        1.94      yamt #define PTP_MASK_INITIALIZER	{ L1_FRAME, L2_FRAME }
    291        1.94      yamt #define PTP_SHIFT_INITIALIZER	{ L1_SHIFT, L2_SHIFT }
    292        1.94      yamt #define NKPTP_INITIALIZER	{ NKL1_START_ENTRIES, NKL2_START_ENTRIES }
    293        1.94      yamt #define NKPTPMAX_INITIALIZER	{ NKL1_MAX_ENTRIES, NKL2_MAX_ENTRIES }
    294        1.94      yamt #define NBPD_INITIALIZER	{ NBPD_L1, NBPD_L2 }
    295        1.94      yamt #define PDES_INITIALIZER	{ L2_BASE }
    296        1.94      yamt #define APDES_INITIALIZER	{ AL2_BASE }
    297        1.40   thorpej 
    298        1.94      yamt #define PTP_LEVELS	2
    299        1.40   thorpej 
    300        1.40   thorpej /*
    301        1.94      yamt  * PG_AVAIL usage: we make use of the ignored bits of the PTE
    302        1.11   mycroft  */
    303         1.1       cgd 
    304        1.94      yamt #define PG_W		PG_AVAIL1	/* "wired" mapping */
    305        1.94      yamt #define PG_PVLIST	PG_AVAIL2	/* mapping has entry on pvlist */
    306        1.94      yamt #define PG_X		PG_AVAIL3	/* executable mapping */
    307        1.40   thorpej 
    308        1.40   thorpej /*
    309        1.94      yamt  * Number of PTE's per cache line.  4 byte pte, 32-byte cache line
    310        1.94      yamt  * Used to avoid false sharing of cache lines.
    311        1.40   thorpej  */
    312       1.102    bouyer #ifdef PAE
    313       1.102    bouyer #define NPTECL		4
    314       1.102    bouyer #else
    315        1.94      yamt #define NPTECL		8
    316       1.102    bouyer #endif
    317        1.70      fvdl 
    318        1.98    bouyer #include <x86/pmap.h>
    319        1.98    bouyer 
    320        1.98    bouyer #ifndef XEN
    321        1.95    bouyer #define pmap_pa2pte(a)			(a)
    322        1.95    bouyer #define pmap_pte2pa(a)			((a) & PG_FRAME)
    323        1.95    bouyer #define pmap_pte_set(p, n)		do { *(p) = (n); } while (0)
    324       1.100      yamt #define pmap_pte_cas(p, o, n)		atomic_cas_32((p), (o), (n))
    325        1.96        ad #define pmap_pte_testset(p, n)		\
    326        1.96        ad     atomic_swap_ulong((volatile unsigned long *)p, n)
    327        1.96        ad #define pmap_pte_setbits(p, b)		\
    328        1.96        ad     atomic_or_ulong((volatile unsigned long *)p, b)
    329        1.96        ad #define pmap_pte_clearbits(p, b)	\
    330        1.96        ad     atomic_and_ulong((volatile unsigned long *)p, ~(b))
    331        1.95    bouyer #define pmap_pte_flush()		/* nothing */
    332        1.98    bouyer #else
    333        1.98    bouyer static __inline pt_entry_t
    334        1.98    bouyer pmap_pa2pte(paddr_t pa)
    335        1.98    bouyer {
    336        1.98    bouyer 	return (pt_entry_t)xpmap_ptom_masked(pa);
    337        1.98    bouyer }
    338        1.98    bouyer 
    339        1.98    bouyer static __inline paddr_t
    340        1.98    bouyer pmap_pte2pa(pt_entry_t pte)
    341        1.98    bouyer {
    342        1.98    bouyer 	return xpmap_mtop_masked(pte & PG_FRAME);
    343        1.98    bouyer }
    344        1.98    bouyer static __inline void
    345        1.98    bouyer pmap_pte_set(pt_entry_t *pte, pt_entry_t npte)
    346        1.98    bouyer {
    347        1.98    bouyer 	int s = splvm();
    348       1.102    bouyer 	xpq_queue_pte_update(xpmap_ptetomach(pte), npte);
    349        1.98    bouyer 	splx(s);
    350        1.98    bouyer }
    351        1.98    bouyer 
    352        1.98    bouyer static __inline pt_entry_t
    353       1.101    bouyer pmap_pte_cas(volatile pt_entry_t *ptep, pt_entry_t o, pt_entry_t n)
    354       1.100      yamt {
    355       1.100      yamt 	int s = splvm();
    356       1.100      yamt 	pt_entry_t opte = *ptep;
    357       1.100      yamt 
    358       1.100      yamt 	if (opte == o) {
    359       1.102    bouyer 		xpq_queue_pte_update(xpmap_ptetomach(__UNVOLATILE(ptep)), n);
    360       1.100      yamt 		xpq_flush_queue();
    361       1.100      yamt 	}
    362       1.100      yamt 	splx(s);
    363       1.100      yamt 	return opte;
    364       1.100      yamt }
    365       1.100      yamt 
    366       1.100      yamt static __inline pt_entry_t
    367        1.98    bouyer pmap_pte_testset(volatile pt_entry_t *pte, pt_entry_t npte)
    368        1.98    bouyer {
    369        1.98    bouyer 	int s = splvm();
    370        1.98    bouyer 	pt_entry_t opte = *pte;
    371       1.102    bouyer 	xpq_queue_pte_update(xpmap_ptetomach(__UNVOLATILE(pte)),
    372        1.98    bouyer 	    npte);
    373        1.98    bouyer 	xpq_flush_queue();
    374        1.98    bouyer 	splx(s);
    375        1.98    bouyer 	return opte;
    376        1.98    bouyer }
    377        1.98    bouyer 
    378        1.98    bouyer static __inline void
    379        1.98    bouyer pmap_pte_setbits(volatile pt_entry_t *pte, pt_entry_t bits)
    380        1.98    bouyer {
    381        1.98    bouyer 	int s = splvm();
    382       1.102    bouyer 	xpq_queue_pte_update(xpmap_ptetomach(__UNVOLATILE(pte)), (*pte) | bits);
    383        1.98    bouyer 	xpq_flush_queue();
    384        1.98    bouyer 	splx(s);
    385        1.98    bouyer }
    386        1.98    bouyer 
    387        1.98    bouyer static __inline void
    388        1.98    bouyer pmap_pte_clearbits(volatile pt_entry_t *pte, pt_entry_t bits)
    389        1.98    bouyer {
    390        1.98    bouyer 	int s = splvm();
    391       1.102    bouyer 	xpq_queue_pte_update(xpmap_ptetomach(__UNVOLATILE(pte)),
    392        1.98    bouyer 	    (*pte) & ~bits);
    393        1.98    bouyer 	xpq_flush_queue();
    394        1.98    bouyer 	splx(s);
    395        1.98    bouyer }
    396        1.98    bouyer 
    397        1.98    bouyer static __inline void
    398        1.98    bouyer pmap_pte_flush(void)
    399        1.98    bouyer {
    400        1.98    bouyer 	int s = splvm();
    401        1.98    bouyer 	xpq_flush_queue();
    402        1.98    bouyer 	splx(s);
    403        1.98    bouyer }
    404       1.102    bouyer 
    405        1.98    bouyer #endif
    406        1.73   thorpej 
    407       1.102    bouyer #ifdef PAE
    408       1.102    bouyer /* addresses of static pages used for PAE pmap: */
    409       1.102    bouyer /* the L3 page */
    410       1.102    bouyer pd_entry_t *pmap_l3pd;
    411       1.102    bouyer paddr_t pmap_l3paddr;
    412       1.102    bouyer /* the kernel's L2 page */
    413       1.102    bouyer pd_entry_t *pmap_kl2pd;
    414       1.102    bouyer paddr_t pmap_kl2paddr;
    415       1.102    bouyer #endif
    416       1.102    bouyer 
    417       1.102    bouyer 
    418        1.94      yamt struct trapframe;
    419         1.1       cgd 
    420        1.94      yamt int	pmap_exec_fixup(struct vm_map *, struct trapframe *, struct pcb *);
    421        1.94      yamt void	pmap_ldt_cleanup(struct lwp *);
    422        1.90        ad 
    423        1.40   thorpej #endif	/* _I386_PMAP_H_ */
    424