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pmap.h revision 1.92
      1 /*	$NetBSD: pmap.h,v 1.92 2018/12/06 17:26:18 maxv Exp $	*/
      2 
      3 /*
      4  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      5  * All rights reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  *
     16  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     17  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     18  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     19  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     20  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     21  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     22  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     23  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     24  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     25  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     26  */
     27 
     28 /*
     29  * Copyright (c) 2001 Wasabi Systems, Inc.
     30  * All rights reserved.
     31  *
     32  * Written by Frank van der Linden for Wasabi Systems, Inc.
     33  *
     34  * Redistribution and use in source and binary forms, with or without
     35  * modification, are permitted provided that the following conditions
     36  * are met:
     37  * 1. Redistributions of source code must retain the above copyright
     38  *    notice, this list of conditions and the following disclaimer.
     39  * 2. Redistributions in binary form must reproduce the above copyright
     40  *    notice, this list of conditions and the following disclaimer in the
     41  *    documentation and/or other materials provided with the distribution.
     42  * 3. All advertising materials mentioning features or use of this software
     43  *    must display the following acknowledgement:
     44  *      This product includes software developed for the NetBSD Project by
     45  *      Wasabi Systems, Inc.
     46  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     47  *    or promote products derived from this software without specific prior
     48  *    written permission.
     49  *
     50  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     51  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     52  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     53  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     54  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     55  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     56  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     57  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     58  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     59  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     60  * POSSIBILITY OF SUCH DAMAGE.
     61  */
     62 
     63 /*
     64  * pmap.h: see pmap.c for the history of this pmap module.
     65  */
     66 
     67 #ifndef _X86_PMAP_H_
     68 #define	_X86_PMAP_H_
     69 
     70 /*
     71  * pl*_pi: index in the ptp page for a pde mapping a VA.
     72  * (pl*_i below is the index in the virtual array of all pdes per level)
     73  */
     74 #define pl1_pi(VA)	(((VA_SIGN_POS(VA)) & L1_MASK) >> L1_SHIFT)
     75 #define pl2_pi(VA)	(((VA_SIGN_POS(VA)) & L2_MASK) >> L2_SHIFT)
     76 #define pl3_pi(VA)	(((VA_SIGN_POS(VA)) & L3_MASK) >> L3_SHIFT)
     77 #define pl4_pi(VA)	(((VA_SIGN_POS(VA)) & L4_MASK) >> L4_SHIFT)
     78 #define pl_pi(va, lvl) \
     79         (((VA_SIGN_POS(va)) & ptp_masks[(lvl)-1]) >> ptp_shifts[(lvl)-1])
     80 
     81 /*
     82  * pl*_i: generate index into pde/pte arrays in virtual space
     83  *
     84  * pl_i(va, X) == plX_i(va) <= pl_i_roundup(va, X)
     85  */
     86 #define pl1_i(VA)	(((VA_SIGN_POS(VA)) & L1_FRAME) >> L1_SHIFT)
     87 #define pl2_i(VA)	(((VA_SIGN_POS(VA)) & L2_FRAME) >> L2_SHIFT)
     88 #define pl3_i(VA)	(((VA_SIGN_POS(VA)) & L3_FRAME) >> L3_SHIFT)
     89 #define pl4_i(VA)	(((VA_SIGN_POS(VA)) & L4_FRAME) >> L4_SHIFT)
     90 #define pl_i(va, lvl) \
     91         (((VA_SIGN_POS(va)) & ptp_frames[(lvl)-1]) >> ptp_shifts[(lvl)-1])
     92 
     93 #define	pl_i_roundup(va, lvl)	pl_i((va)+ ~ptp_frames[(lvl)-1], (lvl))
     94 
     95 /*
     96  * PTP macros:
     97  *   a PTP's index is the PD index of the PDE that points to it
     98  *   a PTP's offset is the byte-offset in the PTE space that this PTP is at
     99  *   a PTP's VA is the first VA mapped by that PTP
    100  */
    101 
    102 #define ptp_va2o(va, lvl)	(pl_i(va, (lvl)+1) * PAGE_SIZE)
    103 
    104 /* size of a PDP: usually one page, except for PAE */
    105 #ifdef PAE
    106 #define PDP_SIZE 4
    107 #else
    108 #define PDP_SIZE 1
    109 #endif
    110 
    111 
    112 #if defined(_KERNEL)
    113 #include <sys/kcpuset.h>
    114 #include <uvm/pmap/pmap_pvt.h>
    115 
    116 #define BTSEG_NONE	0
    117 #define BTSEG_TEXT	1
    118 #define BTSEG_RODATA	2
    119 #define BTSEG_DATA	3
    120 #define BTSPACE_NSEGS	64
    121 
    122 struct bootspace {
    123 	struct {
    124 		vaddr_t va;
    125 		paddr_t pa;
    126 		size_t sz;
    127 	} head;
    128 
    129 	/* Kernel segments. */
    130 	struct {
    131 		int type;
    132 		vaddr_t va;
    133 		paddr_t pa;
    134 		size_t sz;
    135 	} segs[BTSPACE_NSEGS];
    136 
    137 	/*
    138 	 * The area used by the early kernel bootstrap. It contains the kernel
    139 	 * symbols, the preloaded modules, the bootstrap tables, and the ISA I/O
    140 	 * mem.
    141 	 */
    142 	struct {
    143 		vaddr_t va;
    144 		paddr_t pa;
    145 		size_t sz;
    146 	} boot;
    147 
    148 	/* A magic VA usable by the bootstrap code. */
    149 	vaddr_t spareva;
    150 
    151 	/* Virtual address of the page directory. */
    152 	vaddr_t pdir;
    153 
    154 	/* Area dedicated to kernel modules (amd64 only). */
    155 	vaddr_t smodule;
    156 	vaddr_t emodule;
    157 };
    158 
    159 #define SLAREA_USER	0
    160 #define SLAREA_PTE	1
    161 #define SLAREA_MAIN	2
    162 #define SLAREA_PCPU	3
    163 #define SLAREA_DMAP	4
    164 #define SLAREA_HYPV	5
    165 #define SLAREA_ASAN	6
    166 #define SLAREA_KERN	7
    167 #define SLSPACE_NAREAS	8
    168 
    169 struct slotspace {
    170 	struct {
    171 		size_t sslot; /* start slot */
    172 		size_t nslot; /* # of slots */
    173 		bool active;  /* area is active */
    174 	} area[SLSPACE_NAREAS];
    175 };
    176 
    177 extern struct slotspace slotspace;
    178 
    179 #ifndef MAXGDTSIZ
    180 #define MAXGDTSIZ 65536 /* XXX */
    181 #endif
    182 
    183 struct pcpu_entry {
    184 	uint8_t gdt[MAXGDTSIZ];
    185 	uint8_t tss[PAGE_SIZE];
    186 	uint8_t ist0[PAGE_SIZE];
    187 	uint8_t ist1[PAGE_SIZE];
    188 	uint8_t ist2[PAGE_SIZE];
    189 	uint8_t ist3[PAGE_SIZE];
    190 	uint8_t rsp0[2 * PAGE_SIZE];
    191 } __packed;
    192 
    193 struct pcpu_area {
    194 #ifdef SVS
    195 	uint8_t utls[PAGE_SIZE];
    196 #endif
    197 	uint8_t idt[PAGE_SIZE];
    198 	uint8_t ldt[PAGE_SIZE];
    199 	struct pcpu_entry ent[MAXCPUS];
    200 } __packed;
    201 
    202 extern struct pcpu_area *pcpuarea;
    203 
    204 /*
    205  * pmap data structures: see pmap.c for details of locking.
    206  */
    207 
    208 /*
    209  * we maintain a list of all non-kernel pmaps
    210  */
    211 
    212 LIST_HEAD(pmap_head, pmap); /* struct pmap_head: head of a pmap list */
    213 
    214 /*
    215  * linked list of all non-kernel pmaps
    216  */
    217 extern struct pmap_head pmaps;
    218 extern kmutex_t pmaps_lock;    /* protects pmaps */
    219 
    220 /*
    221  * pool_cache(9) that PDPs are allocated from
    222  */
    223 extern struct pool_cache pmap_pdp_cache;
    224 
    225 /*
    226  * the pmap structure
    227  *
    228  * note that the pm_obj contains the lock pointer, the reference count,
    229  * page list, and number of PTPs within the pmap.
    230  *
    231  * pm_lock is the same as the lock for vm object 0.  Changes to
    232  * the other objects may only be made if that lock has been taken
    233  * (the other object locks are only used when uvm_pagealloc is called)
    234  */
    235 
    236 struct pmap {
    237 	struct uvm_object pm_obj[PTP_LEVELS-1]; /* objects for lvl >= 1) */
    238 #define	pm_lock	pm_obj[0].vmobjlock
    239 	kmutex_t pm_obj_lock[PTP_LEVELS-1];	/* locks for pm_objs */
    240 	LIST_ENTRY(pmap) pm_list;	/* list (lck by pm_list lock) */
    241 	pd_entry_t *pm_pdir;		/* VA of PD (lck by object lock) */
    242 	paddr_t pm_pdirpa[PDP_SIZE];	/* PA of PDs (read-only after create) */
    243 	struct vm_page *pm_ptphint[PTP_LEVELS-1];
    244 					/* pointer to a PTP in our pmap */
    245 	struct pmap_statistics pm_stats;  /* pmap stats (lck by object lock) */
    246 
    247 #if !defined(__x86_64__)
    248 	vaddr_t pm_hiexec;		/* highest executable mapping */
    249 #endif /* !defined(__x86_64__) */
    250 	int pm_flags;			/* see below */
    251 
    252 	union descriptor *pm_ldt;	/* user-set LDT */
    253 	size_t pm_ldt_len;		/* size of LDT in bytes */
    254 	int pm_ldt_sel;			/* LDT selector */
    255 	kcpuset_t *pm_cpus;		/* mask of CPUs using pmap */
    256 	kcpuset_t *pm_kernel_cpus;	/* mask of CPUs using kernel part
    257 					 of pmap */
    258 	kcpuset_t *pm_xen_ptp_cpus;	/* mask of CPUs which have this pmap's
    259 					 ptp mapped */
    260 	uint64_t pm_ncsw;		/* for assertions */
    261 	struct vm_page *pm_gc_ptp;	/* pages from pmap g/c */
    262 
    263 	/* Used by NVMM. */
    264 	void (*pm_tlb_flush)(struct pmap *);
    265 	void *pm_data;
    266 };
    267 
    268 /* macro to access pm_pdirpa slots */
    269 #ifdef PAE
    270 #define pmap_pdirpa(pmap, index) \
    271 	((pmap)->pm_pdirpa[l2tol3(index)] + l2tol2(index) * sizeof(pd_entry_t))
    272 #else
    273 #define pmap_pdirpa(pmap, index) \
    274 	((pmap)->pm_pdirpa[0] + (index) * sizeof(pd_entry_t))
    275 #endif
    276 
    277 /*
    278  * MD flags that we use for pmap_enter and pmap_kenter_pa:
    279  */
    280 
    281 /*
    282  * global kernel variables
    283  */
    284 
    285 /*
    286  * PDPpaddr is the physical address of the kernel's PDP.
    287  * - i386 non-PAE and amd64: PDPpaddr corresponds directly to the %cr3
    288  * value associated to the kernel process, proc0.
    289  * - i386 PAE: it still represents the PA of the kernel's PDP (L2). Due to
    290  * the L3 PD, it cannot be considered as the equivalent of a %cr3 any more.
    291  * - Xen: it corresponds to the PFN of the kernel's PDP.
    292  */
    293 extern u_long PDPpaddr;
    294 
    295 extern pd_entry_t pmap_pg_g;			/* do we support PG_G? */
    296 extern pd_entry_t pmap_pg_nx;			/* do we support PG_NX? */
    297 extern int pmap_largepages;
    298 extern long nkptp[PTP_LEVELS];
    299 
    300 /*
    301  * macros
    302  */
    303 
    304 #define	pmap_resident_count(pmap)	((pmap)->pm_stats.resident_count)
    305 #define	pmap_wired_count(pmap)		((pmap)->pm_stats.wired_count)
    306 
    307 #define pmap_clear_modify(pg)		pmap_clear_attrs(pg, PG_M)
    308 #define pmap_clear_reference(pg)	pmap_clear_attrs(pg, PG_U)
    309 #define pmap_copy(DP,SP,D,L,S)		__USE(L)
    310 #define pmap_is_modified(pg)		pmap_test_attrs(pg, PG_M)
    311 #define pmap_is_referenced(pg)		pmap_test_attrs(pg, PG_U)
    312 #define pmap_move(DP,SP,D,L,S)
    313 #define pmap_phys_address(ppn)		(x86_ptob(ppn) & ~X86_MMAP_FLAG_MASK)
    314 #define pmap_mmap_flags(ppn)		x86_mmap_flags(ppn)
    315 #define pmap_valid_entry(E) 		((E) & PG_V) /* is PDE or PTE valid? */
    316 
    317 #if defined(__x86_64__) || defined(PAE)
    318 #define X86_MMAP_FLAG_SHIFT	(64 - PGSHIFT)
    319 #else
    320 #define X86_MMAP_FLAG_SHIFT	(32 - PGSHIFT)
    321 #endif
    322 
    323 #define X86_MMAP_FLAG_MASK	0xf
    324 #define X86_MMAP_FLAG_PREFETCH	0x1
    325 
    326 /*
    327  * prototypes
    328  */
    329 
    330 void		pmap_activate(struct lwp *);
    331 void		pmap_bootstrap(vaddr_t);
    332 bool		pmap_clear_attrs(struct vm_page *, unsigned);
    333 bool		pmap_pv_clear_attrs(paddr_t, unsigned);
    334 void		pmap_deactivate(struct lwp *);
    335 void		pmap_page_remove(struct vm_page *);
    336 void		pmap_pv_remove(paddr_t);
    337 void		pmap_remove(struct pmap *, vaddr_t, vaddr_t);
    338 bool		pmap_test_attrs(struct vm_page *, unsigned);
    339 void		pmap_write_protect(struct pmap *, vaddr_t, vaddr_t, vm_prot_t);
    340 void		pmap_load(void);
    341 paddr_t		pmap_init_tmp_pgtbl(paddr_t);
    342 void		pmap_remove_all(struct pmap *);
    343 void		pmap_ldt_cleanup(struct lwp *);
    344 void		pmap_ldt_sync(struct pmap *);
    345 void		pmap_kremove_local(vaddr_t, vsize_t);
    346 
    347 #define	__HAVE_PMAP_PV_TRACK	1
    348 void		pmap_pv_init(void);
    349 void		pmap_pv_track(paddr_t, psize_t);
    350 void		pmap_pv_untrack(paddr_t, psize_t);
    351 
    352 void		pmap_map_ptes(struct pmap *, struct pmap **, pd_entry_t **,
    353 		    pd_entry_t * const **);
    354 void		pmap_unmap_ptes(struct pmap *, struct pmap *);
    355 
    356 int		pmap_pdes_invalid(vaddr_t, pd_entry_t * const *, pd_entry_t *);
    357 
    358 u_int		x86_mmap_flags(paddr_t);
    359 
    360 bool		pmap_is_curpmap(struct pmap *);
    361 
    362 #ifndef __HAVE_DIRECT_MAP
    363 void		pmap_vpage_cpu_init(struct cpu_info *);
    364 #endif
    365 vaddr_t		slotspace_rand(int, size_t, size_t);
    366 
    367 vaddr_t reserve_dumppages(vaddr_t); /* XXX: not a pmap fn */
    368 
    369 typedef enum tlbwhy {
    370 	TLBSHOOT_APTE,
    371 	TLBSHOOT_KENTER,
    372 	TLBSHOOT_KREMOVE,
    373 	TLBSHOOT_FREE_PTP1,
    374 	TLBSHOOT_FREE_PTP2,
    375 	TLBSHOOT_REMOVE_PTE,
    376 	TLBSHOOT_REMOVE_PTES,
    377 	TLBSHOOT_SYNC_PV1,
    378 	TLBSHOOT_SYNC_PV2,
    379 	TLBSHOOT_WRITE_PROTECT,
    380 	TLBSHOOT_ENTER,
    381 	TLBSHOOT_UPDATE,
    382 	TLBSHOOT_BUS_DMA,
    383 	TLBSHOOT_BUS_SPACE,
    384 	TLBSHOOT__MAX,
    385 } tlbwhy_t;
    386 
    387 void		pmap_tlb_init(void);
    388 void		pmap_tlb_cpu_init(struct cpu_info *);
    389 void		pmap_tlb_shootdown(pmap_t, vaddr_t, pt_entry_t, tlbwhy_t);
    390 void		pmap_tlb_shootnow(void);
    391 void		pmap_tlb_intr(void);
    392 
    393 #define PMAP_GROWKERNEL		/* turn on pmap_growkernel interface */
    394 #define PMAP_FORK		/* turn on pmap_fork interface */
    395 
    396 /*
    397  * Do idle page zero'ing uncached to avoid polluting the cache.
    398  */
    399 bool	pmap_pageidlezero(paddr_t);
    400 #define	PMAP_PAGEIDLEZERO(pa)	pmap_pageidlezero((pa))
    401 
    402 /*
    403  * inline functions
    404  */
    405 
    406 __inline static bool __unused
    407 pmap_pdes_valid(vaddr_t va, pd_entry_t * const *pdes, pd_entry_t *lastpde)
    408 {
    409 	return pmap_pdes_invalid(va, pdes, lastpde) == 0;
    410 }
    411 
    412 /*
    413  * pmap_update_pg: flush one page from the TLB (or flush the whole thing
    414  *	if hardware doesn't support one-page flushing)
    415  */
    416 
    417 __inline static void __unused
    418 pmap_update_pg(vaddr_t va)
    419 {
    420 	invlpg(va);
    421 }
    422 
    423 /*
    424  * pmap_page_protect: change the protection of all recorded mappings
    425  *	of a managed page
    426  *
    427  * => this function is a frontend for pmap_page_remove/pmap_clear_attrs
    428  * => we only have to worry about making the page more protected.
    429  *	unprotecting a page is done on-demand at fault time.
    430  */
    431 
    432 __inline static void __unused
    433 pmap_page_protect(struct vm_page *pg, vm_prot_t prot)
    434 {
    435 	if ((prot & VM_PROT_WRITE) == 0) {
    436 		if (prot & (VM_PROT_READ|VM_PROT_EXECUTE)) {
    437 			(void) pmap_clear_attrs(pg, PG_RW);
    438 		} else {
    439 			pmap_page_remove(pg);
    440 		}
    441 	}
    442 }
    443 
    444 /*
    445  * pmap_pv_protect: change the protection of all recorded mappings
    446  *	of an unmanaged page
    447  */
    448 
    449 __inline static void __unused
    450 pmap_pv_protect(paddr_t pa, vm_prot_t prot)
    451 {
    452 	if ((prot & VM_PROT_WRITE) == 0) {
    453 		if (prot & (VM_PROT_READ|VM_PROT_EXECUTE)) {
    454 			(void) pmap_pv_clear_attrs(pa, PG_RW);
    455 		} else {
    456 			pmap_pv_remove(pa);
    457 		}
    458 	}
    459 }
    460 
    461 /*
    462  * pmap_protect: change the protection of pages in a pmap
    463  *
    464  * => this function is a frontend for pmap_remove/pmap_write_protect
    465  * => we only have to worry about making the page more protected.
    466  *	unprotecting a page is done on-demand at fault time.
    467  */
    468 
    469 __inline static void __unused
    470 pmap_protect(struct pmap *pmap, vaddr_t sva, vaddr_t eva, vm_prot_t prot)
    471 {
    472 	if ((prot & VM_PROT_WRITE) == 0) {
    473 		if (prot & (VM_PROT_READ|VM_PROT_EXECUTE)) {
    474 			pmap_write_protect(pmap, sva, eva, prot);
    475 		} else {
    476 			pmap_remove(pmap, sva, eva);
    477 		}
    478 	}
    479 }
    480 
    481 /*
    482  * various address inlines
    483  *
    484  *  vtopte: return a pointer to the PTE mapping a VA, works only for
    485  *  user and PT addresses
    486  *
    487  *  kvtopte: return a pointer to the PTE mapping a kernel VA
    488  */
    489 
    490 #include <lib/libkern/libkern.h>
    491 
    492 static __inline pt_entry_t * __unused
    493 vtopte(vaddr_t va)
    494 {
    495 
    496 	KASSERT(va < VM_MIN_KERNEL_ADDRESS);
    497 
    498 	return (PTE_BASE + pl1_i(va));
    499 }
    500 
    501 static __inline pt_entry_t * __unused
    502 kvtopte(vaddr_t va)
    503 {
    504 	pd_entry_t *pde;
    505 
    506 	KASSERT(va >= VM_MIN_KERNEL_ADDRESS);
    507 
    508 	pde = L2_BASE + pl2_i(va);
    509 	if (*pde & PG_PS)
    510 		return ((pt_entry_t *)pde);
    511 
    512 	return (PTE_BASE + pl1_i(va));
    513 }
    514 
    515 paddr_t vtophys(vaddr_t);
    516 vaddr_t	pmap_map(vaddr_t, paddr_t, paddr_t, vm_prot_t);
    517 void	pmap_cpu_init_late(struct cpu_info *);
    518 bool	sse2_idlezero_page(void *);
    519 
    520 #ifdef XEN
    521 #include <sys/bitops.h>
    522 
    523 #define XPTE_MASK	L1_FRAME
    524 /* Selects the index of a PTE in (A)PTE_BASE */
    525 #define XPTE_SHIFT	(L1_SHIFT - ilog2(sizeof(pt_entry_t)))
    526 
    527 /* PTE access inline fuctions */
    528 
    529 /*
    530  * Get the machine address of the pointed pte
    531  * We use hardware MMU to get value so works only for levels 1-3
    532  */
    533 
    534 static __inline paddr_t
    535 xpmap_ptetomach(pt_entry_t *pte)
    536 {
    537 	pt_entry_t *up_pte;
    538 	vaddr_t va = (vaddr_t) pte;
    539 
    540 	va = ((va & XPTE_MASK) >> XPTE_SHIFT) | (vaddr_t) PTE_BASE;
    541 	up_pte = (pt_entry_t *) va;
    542 
    543 	return (paddr_t) (((*up_pte) & PG_FRAME) + (((vaddr_t) pte) & (~PG_FRAME & ~VA_SIGN_MASK)));
    544 }
    545 
    546 /* Xen helpers to change bits of a pte */
    547 #define XPMAP_UPDATE_DIRECT	1	/* Update direct map entry flags too */
    548 
    549 paddr_t	vtomach(vaddr_t);
    550 #define vtomfn(va) (vtomach(va) >> PAGE_SHIFT)
    551 #endif	/* XEN */
    552 
    553 /* pmap functions with machine addresses */
    554 void	pmap_kenter_ma(vaddr_t, paddr_t, vm_prot_t, u_int);
    555 int	pmap_enter_ma(struct pmap *, vaddr_t, paddr_t, paddr_t,
    556 	    vm_prot_t, u_int, int);
    557 bool	pmap_extract_ma(pmap_t, vaddr_t, paddr_t *);
    558 void	pmap_free_ptps(struct vm_page *);
    559 
    560 paddr_t pmap_get_physpage(void);
    561 
    562 /*
    563  * Hooks for the pool allocator.
    564  */
    565 #define	POOL_VTOPHYS(va)	vtophys((vaddr_t) (va))
    566 
    567 #ifdef __HAVE_PCPU_AREA
    568 extern struct pcpu_area *pcpuarea;
    569 #define PDIR_SLOT_PCPU		510
    570 #define PMAP_PCPU_BASE		(VA_SIGN_NEG((PDIR_SLOT_PCPU * NBPD_L4)))
    571 #endif
    572 
    573 #ifdef __HAVE_DIRECT_MAP
    574 
    575 extern vaddr_t pmap_direct_base;
    576 extern vaddr_t pmap_direct_end;
    577 
    578 #define PMAP_DIRECT_BASE	pmap_direct_base
    579 #define PMAP_DIRECT_END		pmap_direct_end
    580 
    581 #define PMAP_DIRECT_MAP(pa)	((vaddr_t)PMAP_DIRECT_BASE + (pa))
    582 #define PMAP_DIRECT_UNMAP(va)	((paddr_t)(va) - PMAP_DIRECT_BASE)
    583 
    584 /*
    585  * Alternate mapping hooks for pool pages.
    586  */
    587 #define PMAP_MAP_POOLPAGE(pa)	PMAP_DIRECT_MAP((pa))
    588 #define PMAP_UNMAP_POOLPAGE(va)	PMAP_DIRECT_UNMAP((va))
    589 
    590 void	pagezero(vaddr_t);
    591 
    592 #endif /* __HAVE_DIRECT_MAP */
    593 
    594 #endif /* _KERNEL */
    595 
    596 #endif /* _X86_PMAP_H_ */
    597