pmap.h revision 1.130.2.1       1  1.130.2.1       tls /*	$NetBSD: pmap.h,v 1.130.2.1 2014/08/10 06:53:51 tls Exp $	*/
      2       1.46   thorpej 
      3       1.46   thorpej /*
      4       1.65       scw  * Copyright (c) 2002, 2003 Wasabi Systems, Inc.
      5       1.46   thorpej  * All rights reserved.
      6       1.46   thorpej  *
      7       1.65       scw  * Written by Jason R. Thorpe & Steve C. Woodford for Wasabi Systems, Inc.
      8       1.46   thorpej  *
      9       1.46   thorpej  * Redistribution and use in source and binary forms, with or without
     10       1.46   thorpej  * modification, are permitted provided that the following conditions
     11       1.46   thorpej  * are met:
     12       1.46   thorpej  * 1. Redistributions of source code must retain the above copyright
     13       1.46   thorpej  *    notice, this list of conditions and the following disclaimer.
     14       1.46   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     15       1.46   thorpej  *    notice, this list of conditions and the following disclaimer in the
     16       1.46   thorpej  *    documentation and/or other materials provided with the distribution.
     17       1.46   thorpej  * 3. All advertising materials mentioning features or use of this software
     18       1.46   thorpej  *    must display the following acknowledgement:
     19       1.46   thorpej  *	This product includes software developed for the NetBSD Project by
     20       1.46   thorpej  *	Wasabi Systems, Inc.
     21       1.46   thorpej  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22       1.46   thorpej  *    or promote products derived from this software without specific prior
     23       1.46   thorpej  *    written permission.
     24       1.46   thorpej  *
     25       1.46   thorpej  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26       1.46   thorpej  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27       1.46   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28       1.46   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29       1.46   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30       1.46   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31       1.46   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32       1.46   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33       1.46   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34       1.46   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35       1.46   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     36       1.46   thorpej  */
     37        1.1   reinoud 
     38        1.1   reinoud /*
     39        1.1   reinoud  * Copyright (c) 1994,1995 Mark Brinicombe.
     40        1.1   reinoud  * All rights reserved.
     41        1.1   reinoud  *
     42        1.1   reinoud  * Redistribution and use in source and binary forms, with or without
     43        1.1   reinoud  * modification, are permitted provided that the following conditions
     44        1.1   reinoud  * are met:
     45        1.1   reinoud  * 1. Redistributions of source code must retain the above copyright
     46        1.1   reinoud  *    notice, this list of conditions and the following disclaimer.
     47        1.1   reinoud  * 2. Redistributions in binary form must reproduce the above copyright
     48        1.1   reinoud  *    notice, this list of conditions and the following disclaimer in the
     49        1.1   reinoud  *    documentation and/or other materials provided with the distribution.
     50        1.1   reinoud  * 3. All advertising materials mentioning features or use of this software
     51        1.1   reinoud  *    must display the following acknowledgement:
     52        1.1   reinoud  *	This product includes software developed by Mark Brinicombe
     53        1.1   reinoud  * 4. The name of the author may not be used to endorse or promote products
     54        1.1   reinoud  *    derived from this software without specific prior written permission.
     55        1.1   reinoud  *
     56        1.1   reinoud  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     57        1.1   reinoud  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     58        1.1   reinoud  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     59        1.1   reinoud  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     60        1.1   reinoud  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     61        1.1   reinoud  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     62        1.1   reinoud  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     63        1.1   reinoud  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     64        1.1   reinoud  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     65        1.1   reinoud  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     66        1.1   reinoud  */
     67        1.1   reinoud 
     68        1.1   reinoud #ifndef	_ARM32_PMAP_H_
     69        1.1   reinoud #define	_ARM32_PMAP_H_
     70        1.1   reinoud 
     71       1.18   thorpej #ifdef _KERNEL
     72       1.18   thorpej 
     73       1.52   thorpej #include <arm/cpuconf.h>
     74       1.75       bsh #include <arm/arm32/pte.h>
     75       1.75       bsh #ifndef _LOCORE
     76       1.85      matt #if defined(_KERNEL_OPT)
     77       1.85      matt #include "opt_arm32_pmap.h"
     78       1.85      matt #endif
     79       1.19   thorpej #include <arm/cpufunc.h>
     80       1.12     chris #include <uvm/uvm_object.h>
     81       1.75       bsh #endif
     82        1.1   reinoud 
     83      1.124      matt #ifdef ARM_MMU_EXTENDED
     84      1.124      matt #define PMAP_TLB_MAX			1
     85      1.124      matt #define PMAP_TLB_HWPAGEWALKER		1
     86      1.126      matt #if PMAP_TLB_MAX > 1
     87  1.130.2.1       tls #define PMAP_NEED_TLB_SHOOTDOWN		1
     88      1.126      matt #endif
     89      1.126      matt #define PMAP_TLB_FLUSH_ASID_ON_RESET	(arm_has_tlbiasid_p)
     90      1.124      matt #define PMAP_TLB_NUM_PIDS		256
     91      1.124      matt #define cpu_set_tlb_info(ci, ti)        ((void)((ci)->ci_tlb_info = (ti)))
     92      1.124      matt #if PMAP_TLB_MAX > 1
     93      1.124      matt #define cpu_tlb_info(ci)		((ci)->ci_tlb_info)
     94      1.124      matt #else
     95      1.124      matt #define cpu_tlb_info(ci)		(&pmap_tlb0_info)
     96      1.124      matt #endif
     97      1.124      matt #define pmap_md_tlb_asid_max()		(PMAP_TLB_NUM_PIDS - 1)
     98      1.124      matt #include <uvm/pmap/tlb.h>
     99      1.124      matt #include <uvm/pmap/pmap_tlb.h>
    100      1.124      matt 
    101  1.130.2.1       tls /*
    102      1.124      matt  * If we have an EXTENDED MMU and the address space is split evenly between
    103      1.124      matt  * user and kernel, we can use the TTBR0/TTBR1 to have separate L1 tables for
    104      1.124      matt  * user and kernel address spaces.
    105  1.130.2.1       tls  */
    106      1.128      matt #if (KERNEL_BASE & 0x80000000) == 0
    107      1.128      matt #error ARMv6 or later systems must have a KERNEL_BASE >= 0x80000000
    108  1.130.2.1       tls #endif
    109      1.124      matt #endif  /* ARM_MMU_EXTENDED */
    110      1.124      matt 
    111        1.1   reinoud /*
    112       1.11     chris  * a pmap describes a processes' 4GB virtual address space.  this
    113       1.11     chris  * virtual address space can be broken up into 4096 1MB regions which
    114       1.38   thorpej  * are described by L1 PTEs in the L1 table.
    115       1.11     chris  *
    116       1.38   thorpej  * There is a line drawn at KERNEL_BASE.  Everything below that line
    117       1.38   thorpej  * changes when the VM context is switched.  Everything above that line
    118       1.38   thorpej  * is the same no matter which VM context is running.  This is achieved
    119       1.38   thorpej  * by making the L1 PTEs for those slots above KERNEL_BASE reference
    120       1.38   thorpej  * kernel L2 tables.
    121       1.11     chris  *
    122       1.38   thorpej  * The basic layout of the virtual address space thus looks like this:
    123       1.38   thorpej  *
    124       1.38   thorpej  *	0xffffffff
    125       1.38   thorpej  *	.
    126       1.38   thorpej  *	.
    127       1.38   thorpej  *	.
    128       1.38   thorpej  *	KERNEL_BASE
    129       1.38   thorpej  *	--------------------
    130       1.38   thorpej  *	.
    131       1.38   thorpej  *	.
    132       1.38   thorpej  *	.
    133       1.38   thorpej  *	0x00000000
    134       1.11     chris  */
    135       1.11     chris 
    136       1.65       scw /*
    137       1.65       scw  * The number of L2 descriptor tables which can be tracked by an l2_dtable.
    138       1.65       scw  * A bucket size of 16 provides for 16MB of contiguous virtual address
    139       1.65       scw  * space per l2_dtable. Most processes will, therefore, require only two or
    140       1.65       scw  * three of these to map their whole working set.
    141       1.65       scw  */
    142      1.124      matt #define	L2_BUCKET_XLOG2	(L1_S_SHIFT)
    143      1.124      matt #define L2_BUCKET_XSIZE	(1 << L2_BUCKET_XLOG2)
    144       1.65       scw #define	L2_BUCKET_LOG2	4
    145       1.65       scw #define	L2_BUCKET_SIZE	(1 << L2_BUCKET_LOG2)
    146       1.65       scw 
    147       1.65       scw /*
    148       1.65       scw  * Given the above "L2-descriptors-per-l2_dtable" constant, the number
    149       1.65       scw  * of l2_dtable structures required to track all possible page descriptors
    150       1.65       scw  * mappable by an L1 translation table is given by the following constants:
    151       1.65       scw  */
    152      1.124      matt #define	L2_LOG2		(32 - (L2_BUCKET_XLOG2 + L2_BUCKET_LOG2))
    153       1.65       scw #define	L2_SIZE		(1 << L2_LOG2)
    154       1.65       scw 
    155       1.90      matt /*
    156       1.90      matt  * tell MI code that the cache is virtually-indexed.
    157       1.90      matt  * ARMv6 is physically-tagged but all others are virtually-tagged.
    158       1.90      matt  */
    159       1.95  jmcneill #if (ARM_MMU_V6 + ARM_MMU_V7) > 0
    160       1.90      matt #define PMAP_CACHE_VIPT
    161       1.90      matt #else
    162       1.90      matt #define PMAP_CACHE_VIVT
    163       1.90      matt #endif
    164       1.90      matt 
    165       1.75       bsh #ifndef _LOCORE
    166       1.75       bsh 
    167      1.124      matt #ifndef PMAP_MMU_EXTENDED
    168       1.65       scw struct l1_ttable;
    169       1.65       scw struct l2_dtable;
    170       1.65       scw 
    171       1.65       scw /*
    172       1.65       scw  * Track cache/tlb occupancy using the following structure
    173       1.65       scw  */
    174       1.65       scw union pmap_cache_state {
    175       1.65       scw 	struct {
    176       1.65       scw 		union {
    177      1.115     skrll 			uint8_t csu_cache_b[2];
    178      1.115     skrll 			uint16_t csu_cache;
    179       1.65       scw 		} cs_cache_u;
    180       1.65       scw 
    181       1.65       scw 		union {
    182      1.115     skrll 			uint8_t csu_tlb_b[2];
    183      1.115     skrll 			uint16_t csu_tlb;
    184       1.65       scw 		} cs_tlb_u;
    185       1.65       scw 	} cs_s;
    186      1.115     skrll 	uint32_t cs_all;
    187       1.65       scw };
    188       1.65       scw #define	cs_cache_id	cs_s.cs_cache_u.csu_cache_b[0]
    189       1.65       scw #define	cs_cache_d	cs_s.cs_cache_u.csu_cache_b[1]
    190       1.65       scw #define	cs_cache	cs_s.cs_cache_u.csu_cache
    191       1.65       scw #define	cs_tlb_id	cs_s.cs_tlb_u.csu_tlb_b[0]
    192       1.65       scw #define	cs_tlb_d	cs_s.cs_tlb_u.csu_tlb_b[1]
    193       1.65       scw #define	cs_tlb		cs_s.cs_tlb_u.csu_tlb
    194       1.65       scw 
    195       1.65       scw /*
    196       1.65       scw  * Assigned to cs_all to force cacheops to work for a particular pmap
    197       1.65       scw  */
    198       1.65       scw #define	PMAP_CACHE_STATE_ALL	0xffffffffu
    199      1.124      matt #endif /* !ARM_MMU_EXTENDED */
    200       1.65       scw 
    201       1.65       scw /*
    202       1.73   thorpej  * This structure is used by machine-dependent code to describe
    203       1.73   thorpej  * static mappings of devices, created at bootstrap time.
    204       1.73   thorpej  */
    205       1.73   thorpej struct pmap_devmap {
    206       1.73   thorpej 	vaddr_t		pd_va;		/* virtual address */
    207       1.73   thorpej 	paddr_t		pd_pa;		/* physical address */
    208       1.73   thorpej 	psize_t		pd_size;	/* size of region */
    209       1.73   thorpej 	vm_prot_t	pd_prot;	/* protection code */
    210       1.73   thorpej 	int		pd_cache;	/* cache attributes */
    211       1.73   thorpej };
    212       1.73   thorpej 
    213       1.73   thorpej /*
    214       1.65       scw  * The pmap structure itself
    215       1.65       scw  */
    216       1.65       scw struct pmap {
    217      1.124      matt 	struct uvm_object	pm_obj;
    218      1.124      matt 	kmutex_t		pm_obj_lock;
    219      1.124      matt #define	pm_lock pm_obj.vmobjlock
    220      1.120      matt #ifndef ARM_HAS_VBAR
    221       1.82       scw 	pd_entry_t		*pm_pl1vec;
    222      1.124      matt 	pd_entry_t		pm_l1vec;
    223      1.120      matt #endif
    224       1.65       scw 	struct l2_dtable	*pm_l2[L2_SIZE];
    225       1.65       scw 	struct pmap_statistics	pm_stats;
    226       1.65       scw 	LIST_ENTRY(pmap)	pm_list;
    227      1.124      matt #ifdef ARM_MMU_EXTENDED
    228      1.124      matt 	pd_entry_t		*pm_l1;
    229      1.124      matt 	paddr_t			pm_l1_pa;
    230      1.124      matt 	bool			pm_remove_all;
    231      1.124      matt #ifdef MULTIPROCESSOR
    232      1.124      matt 	kcpuset_t		*pm_onproc;
    233      1.124      matt 	kcpuset_t		*pm_active;
    234      1.126      matt #if PMAP_TLB_MAX > 1
    235      1.126      matt 	u_int			pm_shootdown_pending;
    236      1.126      matt #endif
    237      1.124      matt #endif
    238      1.126      matt 	struct pmap_asid_info	pm_pai[PMAP_TLB_MAX];
    239      1.124      matt #else
    240      1.124      matt 	struct l1_ttable	*pm_l1;
    241      1.124      matt 	union pmap_cache_state	pm_cstate;
    242      1.124      matt 	uint8_t			pm_domain;
    243      1.124      matt 	bool			pm_activated;
    244      1.124      matt 	bool			pm_remove_all;
    245      1.124      matt #endif
    246      1.124      matt };
    247      1.124      matt 
    248      1.124      matt struct pmap_kernel {
    249      1.124      matt 	struct pmap		kernel_pmap;
    250       1.65       scw };
    251       1.65       scw 
    252      1.106    martin /*
    253      1.106    martin  * Physical / virtual address structure. In a number of places (particularly
    254      1.106    martin  * during bootstrapping) we need to keep track of the physical and virtual
    255      1.106    martin  * addresses of various pages
    256      1.106    martin  */
    257      1.106    martin typedef struct pv_addr {
    258      1.106    martin 	SLIST_ENTRY(pv_addr) pv_list;
    259      1.106    martin 	paddr_t pv_pa;
    260      1.106    martin 	vaddr_t pv_va;
    261      1.106    martin 	vsize_t pv_size;
    262      1.106    martin 	uint8_t pv_cache;
    263      1.106    martin 	uint8_t pv_prot;
    264      1.106    martin } pv_addr_t;
    265      1.106    martin typedef SLIST_HEAD(, pv_addr) pv_addrqh_t;
    266      1.106    martin 
    267       1.85      matt extern pv_addrqh_t pmap_freeq;
    268      1.102      matt extern pv_addr_t kernelstack;
    269      1.102      matt extern pv_addr_t abtstack;
    270      1.102      matt extern pv_addr_t fiqstack;
    271      1.102      matt extern pv_addr_t irqstack;
    272      1.102      matt extern pv_addr_t undstack;
    273      1.103      matt extern pv_addr_t idlestack;
    274       1.85      matt extern pv_addr_t systempage;
    275       1.85      matt extern pv_addr_t kernel_l1pt;
    276        1.1   reinoud 
    277      1.126      matt #ifdef ARM_MMU_EXTENDED
    278      1.126      matt extern bool arm_has_tlbiasid_p;	/* also in <arm/locore.h> */
    279      1.126      matt #endif
    280      1.126      matt 
    281        1.1   reinoud /*
    282       1.24   thorpej  * Determine various modes for PTEs (user vs. kernel, cacheable
    283       1.24   thorpej  * vs. non-cacheable).
    284       1.24   thorpej  */
    285       1.24   thorpej #define	PTE_KERNEL	0
    286       1.24   thorpej #define	PTE_USER	1
    287       1.24   thorpej #define	PTE_NOCACHE	0
    288       1.24   thorpej #define	PTE_CACHE	1
    289       1.65       scw #define	PTE_PAGETABLE	2
    290       1.24   thorpej 
    291       1.24   thorpej /*
    292       1.43   thorpej  * Flags that indicate attributes of pages or mappings of pages.
    293       1.43   thorpej  *
    294       1.43   thorpej  * The PVF_MOD and PVF_REF flags are stored in the mdpage for each
    295       1.43   thorpej  * page.  PVF_WIRED, PVF_WRITE, and PVF_NC are kept in individual
    296       1.43   thorpej  * pv_entry's for each page.  They live in the same "namespace" so
    297       1.43   thorpej  * that we can clear multiple attributes at a time.
    298       1.43   thorpej  *
    299       1.43   thorpej  * Note the "non-cacheable" flag generally means the page has
    300       1.43   thorpej  * multiple mappings in a given address space.
    301       1.43   thorpej  */
    302       1.43   thorpej #define	PVF_MOD		0x01		/* page is modified */
    303       1.43   thorpej #define	PVF_REF		0x02		/* page is referenced */
    304       1.43   thorpej #define	PVF_WIRED	0x04		/* mapping is wired */
    305       1.43   thorpej #define	PVF_WRITE	0x08		/* mapping is writable */
    306       1.56   thorpej #define	PVF_EXEC	0x10		/* mapping is executable */
    307       1.90      matt #ifdef PMAP_CACHE_VIVT
    308       1.65       scw #define	PVF_UNC		0x20		/* mapping is 'user' non-cacheable */
    309       1.65       scw #define	PVF_KNC		0x40		/* mapping is 'kernel' non-cacheable */
    310       1.90      matt #define	PVF_NC		(PVF_UNC|PVF_KNC)
    311       1.90      matt #endif
    312       1.90      matt #ifdef PMAP_CACHE_VIPT
    313       1.90      matt #define	PVF_NC		0x20		/* mapping is 'kernel' non-cacheable */
    314       1.90      matt #define	PVF_MULTCLR	0x40		/* mapping is multi-colored */
    315       1.90      matt #endif
    316       1.85      matt #define	PVF_COLORED	0x80		/* page has or had a color */
    317       1.85      matt #define	PVF_KENTRY	0x0100		/* page entered via pmap_kenter_pa */
    318       1.86      matt #define	PVF_KMPAGE	0x0200		/* page is used for kmem */
    319       1.87      matt #define	PVF_DIRTY	0x0400		/* page may have dirty cache lines */
    320       1.88      matt #define	PVF_KMOD	0x0800		/* unmanaged page is modified  */
    321       1.88      matt #define	PVF_KWRITE	(PVF_KENTRY|PVF_WRITE)
    322       1.88      matt #define	PVF_DMOD	(PVF_MOD|PVF_KMOD|PVF_KMPAGE)
    323       1.43   thorpej 
    324       1.43   thorpej /*
    325        1.1   reinoud  * Commonly referenced structures
    326        1.1   reinoud  */
    327        1.4      matt extern int		pmap_debug_level; /* Only exists if PMAP_DEBUG */
    328      1.113      matt extern int		arm_poolpage_vmfreelist;
    329        1.1   reinoud 
    330        1.1   reinoud /*
    331        1.1   reinoud  * Macros that we need to export
    332        1.1   reinoud  */
    333        1.1   reinoud #define	pmap_resident_count(pmap)	((pmap)->pm_stats.resident_count)
    334        1.1   reinoud #define	pmap_wired_count(pmap)		((pmap)->pm_stats.wired_count)
    335       1.31   thorpej 
    336       1.43   thorpej #define	pmap_is_modified(pg)	\
    337       1.43   thorpej 	(((pg)->mdpage.pvh_attrs & PVF_MOD) != 0)
    338       1.43   thorpej #define	pmap_is_referenced(pg)	\
    339       1.43   thorpej 	(((pg)->mdpage.pvh_attrs & PVF_REF) != 0)
    340       1.96  uebayasi #define	pmap_is_page_colored_p(md)	\
    341       1.96  uebayasi 	(((md)->pvh_attrs & PVF_COLORED) != 0)
    342       1.41   thorpej 
    343       1.41   thorpej #define	pmap_copy(dp, sp, da, l, sa)	/* nothing */
    344       1.60       chs 
    345       1.35   thorpej #define pmap_phys_address(ppn)		(arm_ptob((ppn)))
    346       1.98  macallan u_int arm32_mmap_flags(paddr_t);
    347       1.98  macallan #define ARM32_MMAP_WRITECOMBINE	0x40000000
    348       1.98  macallan #define ARM32_MMAP_CACHEABLE		0x20000000
    349       1.98  macallan #define pmap_mmap_flags(ppn)			arm32_mmap_flags(ppn)
    350        1.1   reinoud 
    351      1.123      matt #define	PMAP_PTE			0x10000000 /* kenter_pa */
    352      1.123      matt 
    353        1.1   reinoud /*
    354        1.1   reinoud  * Functions that we need to export
    355        1.1   reinoud  */
    356       1.39   thorpej void	pmap_procwr(struct proc *, vaddr_t, int);
    357       1.65       scw void	pmap_remove_all(pmap_t);
    358       1.80   thorpej bool	pmap_extract(pmap_t, vaddr_t, paddr_t *);
    359       1.39   thorpej 
    360        1.1   reinoud #define	PMAP_NEED_PROCWR
    361       1.29     chris #define PMAP_GROWKERNEL		/* turn on pmap_growkernel interface */
    362       1.92   thorpej #define	PMAP_ENABLE_PMAP_KMPAGE	/* enable the PMAP_KMPAGE flag */
    363        1.4      matt 
    364       1.95  jmcneill #if (ARM_MMU_V6 + ARM_MMU_V7) > 0
    365       1.85      matt #define	PMAP_PREFER(hint, vap, sz, td)	pmap_prefer((hint), (vap), (td))
    366       1.85      matt void	pmap_prefer(vaddr_t, vaddr_t *, int);
    367       1.85      matt #endif
    368       1.85      matt 
    369       1.85      matt void	pmap_icache_sync_range(pmap_t, vaddr_t, vaddr_t);
    370       1.85      matt 
    371       1.39   thorpej /* Functions we use internally. */
    372       1.85      matt #ifdef PMAP_STEAL_MEMORY
    373       1.85      matt void	pmap_boot_pagealloc(psize_t, psize_t, psize_t, pv_addr_t *);
    374       1.85      matt void	pmap_boot_pageadd(pv_addr_t *);
    375       1.85      matt vaddr_t	pmap_steal_memory(vsize_t, vaddr_t *, vaddr_t *);
    376       1.85      matt #endif
    377       1.85      matt void	pmap_bootstrap(vaddr_t, vaddr_t);
    378       1.65       scw 
    379       1.78       scw void	pmap_do_remove(pmap_t, vaddr_t, vaddr_t, int);
    380       1.70       scw int	pmap_fault_fixup(pmap_t, vaddr_t, vm_prot_t, int);
    381      1.124      matt int	pmap_prefetchabt_fixup(void *);
    382       1.80   thorpej bool	pmap_get_pde_pte(pmap_t, vaddr_t, pd_entry_t **, pt_entry_t **);
    383       1.80   thorpej bool	pmap_get_pde(pmap_t, vaddr_t, pd_entry_t **);
    384      1.122      matt struct pcb;
    385       1.65       scw void	pmap_set_pcb_pagedir(pmap_t, struct pcb *);
    386       1.65       scw 
    387       1.65       scw void	pmap_debug(int);
    388       1.39   thorpej void	pmap_postinit(void);
    389       1.42   thorpej 
    390       1.42   thorpej void	vector_page_setprot(int);
    391       1.24   thorpej 
    392       1.73   thorpej const struct pmap_devmap *pmap_devmap_find_pa(paddr_t, psize_t);
    393       1.73   thorpej const struct pmap_devmap *pmap_devmap_find_va(vaddr_t, vsize_t);
    394       1.73   thorpej 
    395       1.24   thorpej /* Bootstrapping routines. */
    396       1.24   thorpej void	pmap_map_section(vaddr_t, vaddr_t, paddr_t, int, int);
    397       1.25   thorpej void	pmap_map_entry(vaddr_t, vaddr_t, paddr_t, int, int);
    398       1.28   thorpej vsize_t	pmap_map_chunk(vaddr_t, vaddr_t, paddr_t, vsize_t, int, int);
    399       1.28   thorpej void	pmap_link_l2pt(vaddr_t, vaddr_t, pv_addr_t *);
    400       1.73   thorpej void	pmap_devmap_bootstrap(vaddr_t, const struct pmap_devmap *);
    401       1.74   thorpej void	pmap_devmap_register(const struct pmap_devmap *);
    402       1.13     chris 
    403       1.13     chris /*
    404  1.130.2.1       tls  * Special page zero routine for use by the idle loop (no cache cleans).
    405       1.13     chris  */
    406       1.80   thorpej bool	pmap_pageidlezero(paddr_t);
    407       1.13     chris #define PMAP_PAGEIDLEZERO(pa)	pmap_pageidlezero((pa))
    408        1.1   reinoud 
    409  1.130.2.1       tls #ifdef __HAVE_MM_MD_DIRECT_MAPPED_PHYS
    410  1.130.2.1       tls /*
    411  1.130.2.1       tls  * For the pmap, this is a more useful way to map a direct mapped page.
    412  1.130.2.1       tls  * It returns either the direct-mapped VA or the VA supplied if it can't
    413  1.130.2.1       tls  * be direct mapped.
    414  1.130.2.1       tls  */
    415  1.130.2.1       tls vaddr_t	pmap_direct_mapped_phys(paddr_t, bool *, vaddr_t);
    416  1.130.2.1       tls #endif
    417  1.130.2.1       tls 
    418       1.29     chris /*
    419       1.84     chris  * used by dumpsys to record the PA of the L1 table
    420       1.84     chris  */
    421       1.84     chris uint32_t pmap_kernel_L1_addr(void);
    422       1.84     chris /*
    423       1.29     chris  * The current top of kernel VM
    424       1.29     chris  */
    425       1.29     chris extern vaddr_t	pmap_curmaxkvaddr;
    426        1.1   reinoud 
    427  1.130.2.1       tls #if defined(ARM_MMU_EXTENDED) && defined(__HAVE_MM_MD_DIRECT_MAPPED_PHYS)
    428  1.130.2.1       tls /*
    429  1.130.2.1       tls  * Starting VA of direct mapped memory (usually KERNEL_BASE).
    430  1.130.2.1       tls  */
    431  1.130.2.1       tls extern vaddr_t pmap_directbase;
    432  1.130.2.1       tls #endif
    433  1.130.2.1       tls 
    434        1.1   reinoud /*
    435  1.130.2.1       tls  * Useful macros and constants
    436        1.1   reinoud  */
    437       1.59   thorpej 
    438       1.65       scw /* Virtual address to page table entry */
    439       1.79     perry static inline pt_entry_t *
    440       1.65       scw vtopte(vaddr_t va)
    441       1.65       scw {
    442       1.65       scw 	pd_entry_t *pdep;
    443       1.65       scw 	pt_entry_t *ptep;
    444       1.65       scw 
    445      1.124      matt 	KASSERT(trunc_page(va) == va);
    446      1.124      matt 
    447       1.81   thorpej 	if (pmap_get_pde_pte(pmap_kernel(), va, &pdep, &ptep) == false)
    448       1.65       scw 		return (NULL);
    449       1.65       scw 	return (ptep);
    450       1.65       scw }
    451       1.65       scw 
    452       1.65       scw /*
    453       1.65       scw  * Virtual address to physical address
    454       1.65       scw  */
    455       1.79     perry static inline paddr_t
    456       1.65       scw vtophys(vaddr_t va)
    457       1.65       scw {
    458       1.65       scw 	paddr_t pa;
    459       1.65       scw 
    460       1.81   thorpej 	if (pmap_extract(pmap_kernel(), va, &pa) == false)
    461       1.65       scw 		return (0);	/* XXXSCW: Panic? */
    462       1.65       scw 
    463       1.65       scw 	return (pa);
    464       1.65       scw }
    465       1.65       scw 
    466       1.65       scw /*
    467       1.65       scw  * The new pmap ensures that page-tables are always mapping Write-Thru.
    468       1.65       scw  * Thus, on some platforms we can run fast and loose and avoid syncing PTEs
    469       1.65       scw  * on every change.
    470       1.65       scw  *
    471       1.69   thorpej  * Unfortunately, not all CPUs have a write-through cache mode.  So we
    472       1.69   thorpej  * define PMAP_NEEDS_PTE_SYNC for C code to conditionally do PTE syncs,
    473       1.69   thorpej  * and if there is the chance for PTE syncs to be needed, we define
    474       1.69   thorpej  * PMAP_INCLUDE_PTE_SYNC so e.g. assembly code can include (and run)
    475       1.69   thorpej  * the code.
    476       1.69   thorpej  */
    477       1.69   thorpej extern int pmap_needs_pte_sync;
    478       1.69   thorpej #if defined(_KERNEL_OPT)
    479       1.69   thorpej /*
    480       1.69   thorpej  * StrongARM SA-1 caches do not have a write-through mode.  So, on these,
    481       1.69   thorpej  * we need to do PTE syncs.  If only SA-1 is configured, then evaluate
    482       1.69   thorpej  * this at compile time.
    483       1.69   thorpej  */
    484  1.130.2.1       tls #if (ARM_MMU_SA1 + ARM_MMU_V6 != 0) && (ARM_NMMUS == 1)
    485      1.104      matt #define	PMAP_INCLUDE_PTE_SYNC
    486      1.112      matt #if (ARM_MMU_V6 > 0)
    487      1.109      matt #define	PMAP_NEEDS_PTE_SYNC	1
    488       1.69   thorpej #elif (ARM_MMU_SA1 == 0)
    489       1.69   thorpej #define	PMAP_NEEDS_PTE_SYNC	0
    490       1.69   thorpej #endif
    491      1.112      matt #endif
    492       1.69   thorpej #endif /* _KERNEL_OPT */
    493       1.69   thorpej 
    494       1.69   thorpej /*
    495       1.69   thorpej  * Provide a fallback in case we were not able to determine it at
    496       1.69   thorpej  * compile-time.
    497       1.65       scw  */
    498       1.69   thorpej #ifndef PMAP_NEEDS_PTE_SYNC
    499       1.69   thorpej #define	PMAP_NEEDS_PTE_SYNC	pmap_needs_pte_sync
    500       1.69   thorpej #define	PMAP_INCLUDE_PTE_SYNC
    501       1.69   thorpej #endif
    502       1.65       scw 
    503      1.104      matt static inline void
    504      1.104      matt pmap_ptesync(pt_entry_t *ptep, size_t cnt)
    505      1.104      matt {
    506  1.130.2.1       tls 	if (PMAP_NEEDS_PTE_SYNC) {
    507      1.104      matt 		cpu_dcache_wb_range((vaddr_t)ptep, cnt * sizeof(pt_entry_t));
    508  1.130.2.1       tls #ifdef SHEEVA_L2_CACHE
    509  1.130.2.1       tls 		cpu_sdcache_wb_range((vaddr_t)ptep, -1,
    510  1.130.2.1       tls 		    cnt * sizeof(pt_entry_t));
    511  1.130.2.1       tls #endif
    512  1.130.2.1       tls 	}
    513      1.104      matt #if ARM_MMU_V7 > 0
    514      1.104      matt 	__asm("dsb");
    515      1.104      matt #endif
    516      1.104      matt }
    517       1.69   thorpej 
    518      1.124      matt #define	PDE_SYNC(pdep)			pmap_ptesync((pdep), 1)
    519      1.124      matt #define	PDE_SYNC_RANGE(pdep, cnt)	pmap_ptesync((pdep), (cnt))
    520      1.124      matt #define	PTE_SYNC(ptep)			pmap_ptesync((ptep), PAGE_SIZE / L2_S_SIZE)
    521      1.104      matt #define	PTE_SYNC_RANGE(ptep, cnt)	pmap_ptesync((ptep), (cnt))
    522       1.65       scw 
    523      1.124      matt #define l1pte_valid_p(pde)	((pde) != 0)
    524      1.124      matt #define l1pte_section_p(pde)	(((pde) & L1_TYPE_MASK) == L1_TYPE_S)
    525      1.124      matt #define l1pte_supersection_p(pde) (l1pte_section_p(pde)	\
    526      1.104      matt 				&& ((pde) & L1_S_V6_SUPER) != 0)
    527      1.124      matt #define l1pte_page_p(pde)	(((pde) & L1_TYPE_MASK) == L1_TYPE_C)
    528      1.124      matt #define l1pte_fpage_p(pde)	(((pde) & L1_TYPE_MASK) == L1_TYPE_F)
    529      1.124      matt #define l1pte_pa(pde)		((pde) & L1_C_ADDR_MASK)
    530      1.124      matt #define l1pte_index(v)		((vaddr_t)(v) >> L1_S_SHIFT)
    531      1.124      matt #define l1pte_pgindex(v)	l1pte_index((v) & L1_ADDR_BITS \
    532      1.124      matt 		& ~(PAGE_SIZE * PAGE_SIZE / sizeof(pt_entry_t) - 1))
    533      1.124      matt 
    534      1.124      matt static inline void
    535      1.124      matt l1pte_setone(pt_entry_t *pdep, pt_entry_t pde)
    536      1.124      matt {
    537      1.124      matt 	*pdep = pde;
    538      1.124      matt }
    539       1.36   thorpej 
    540      1.124      matt static inline void
    541      1.124      matt l1pte_set(pt_entry_t *pdep, pt_entry_t pde)
    542      1.124      matt {
    543      1.124      matt 	*pdep = pde;
    544      1.124      matt 	if (l1pte_page_p(pde)) {
    545      1.124      matt 		KASSERTMSG((((uintptr_t)pdep / sizeof(pde)) & (PAGE_SIZE / L2_T_SIZE - 1)) == 0, "%p", pdep);
    546      1.124      matt 		for (size_t k = 1; k < PAGE_SIZE / L2_T_SIZE; k++) {
    547      1.124      matt 			pde += L2_T_SIZE;
    548      1.124      matt 			pdep[k] = pde;
    549      1.124      matt 		}
    550      1.124      matt 	} else if (l1pte_supersection_p(pde)) {
    551      1.124      matt 		KASSERTMSG((((uintptr_t)pdep / sizeof(pde)) & (L1_SS_SIZE / L1_S_SIZE - 1)) == 0, "%p", pdep);
    552      1.124      matt 		for (size_t k = 1; k < L1_SS_SIZE / L1_S_SIZE; k++) {
    553      1.124      matt 			pdep[k] = pde;
    554      1.124      matt 		}
    555      1.124      matt 	}
    556      1.124      matt }
    557      1.124      matt 
    558      1.124      matt #define l2pte_index(v)		((((v) & L2_ADDR_BITS) >> PGSHIFT) << (PGSHIFT-L2_S_SHIFT))
    559      1.124      matt #define l2pte_valid_p(pte)	(((pte) & L2_TYPE_MASK) != L2_TYPE_INV)
    560      1.124      matt #define l2pte_pa(pte)		((pte) & L2_S_FRAME)
    561      1.124      matt #define l1pte_lpage_p(pte)	(((pte) & L2_TYPE_MASK) == L2_TYPE_L)
    562      1.124      matt #define l2pte_minidata_p(pte)	(((pte) & \
    563       1.85      matt 				 (L2_B | L2_C | L2_XS_T_TEX(TEX_XSCALE_X)))\
    564       1.85      matt 				 == (L2_C | L2_XS_T_TEX(TEX_XSCALE_X)))
    565       1.35   thorpej 
    566      1.121      matt static inline void
    567      1.121      matt l2pte_set(pt_entry_t *ptep, pt_entry_t pte, pt_entry_t opte)
    568      1.121      matt {
    569      1.129     skrll 	if (l1pte_lpage_p(pte)) {
    570      1.129     skrll 		for (size_t k = 0; k < L2_L_SIZE / L2_S_SIZE; k++) {
    571      1.129     skrll 			*ptep++ = pte;
    572      1.129     skrll 		}
    573      1.129     skrll 	} else {
    574      1.129     skrll 		for (size_t k = 0; k < PAGE_SIZE / L2_S_SIZE; k++) {
    575      1.129     skrll 			KASSERTMSG(*ptep == opte, "%#x [*%p] != %#x", *ptep, ptep, opte);
    576      1.129     skrll 			*ptep++ = pte;
    577      1.129     skrll 			pte += L2_S_SIZE;
    578      1.129     skrll 			if (opte)
    579      1.129     skrll 				opte += L2_S_SIZE;
    580      1.129     skrll 		}
    581      1.121      matt 	}
    582      1.129     skrll }
    583      1.121      matt 
    584      1.121      matt static inline void
    585      1.121      matt l2pte_reset(pt_entry_t *ptep)
    586      1.121      matt {
    587      1.121      matt 	*ptep = 0;
    588      1.121      matt 	for (vsize_t k = 1; k < PAGE_SIZE / L2_S_SIZE; k++) {
    589      1.121      matt 		ptep[k] = 0;
    590      1.121      matt 	}
    591  1.130.2.1       tls }
    592      1.121      matt 
    593        1.1   reinoud /* L1 and L2 page table macros */
    594       1.36   thorpej #define pmap_pde_v(pde)		l1pte_valid(*(pde))
    595       1.36   thorpej #define pmap_pde_section(pde)	l1pte_section_p(*(pde))
    596      1.107      matt #define pmap_pde_supersection(pde)	l1pte_supersection_p(*(pde))
    597       1.36   thorpej #define pmap_pde_page(pde)	l1pte_page_p(*(pde))
    598       1.36   thorpej #define pmap_pde_fpage(pde)	l1pte_fpage_p(*(pde))
    599       1.16  rearnsha 
    600      1.124      matt #define	pmap_pte_v(pte)		l2pte_valid_p(*(pte))
    601       1.36   thorpej #define	pmap_pte_pa(pte)	l2pte_pa(*(pte))
    602       1.35   thorpej 
    603        1.1   reinoud /* Size of the kernel part of the L1 page table */
    604        1.1   reinoud #define KERNEL_PD_SIZE	\
    605       1.44   thorpej 	(L1_TABLE_SIZE - (KERNEL_BASE >> L1_S_SHIFT) * sizeof(pd_entry_t))
    606       1.20       chs 
    607      1.117      matt void	bzero_page(vaddr_t);
    608      1.117      matt void	bcopy_page(vaddr_t, vaddr_t);
    609       1.46   thorpej 
    610      1.116      matt #ifdef FPU_VFP
    611      1.117      matt void	bzero_page_vfp(vaddr_t);
    612      1.117      matt void	bcopy_page_vfp(vaddr_t, vaddr_t);
    613      1.116      matt #endif
    614      1.116      matt 
    615      1.117      matt /************************* ARM MMU configuration *****************************/
    616      1.117      matt 
    617       1.95  jmcneill #if (ARM_MMU_GENERIC + ARM_MMU_SA1 + ARM_MMU_V6 + ARM_MMU_V7) != 0
    618       1.51   thorpej void	pmap_copy_page_generic(paddr_t, paddr_t);
    619       1.51   thorpej void	pmap_zero_page_generic(paddr_t);
    620       1.51   thorpej 
    621       1.46   thorpej void	pmap_pte_init_generic(void);
    622       1.69   thorpej #if defined(CPU_ARM8)
    623       1.69   thorpej void	pmap_pte_init_arm8(void);
    624       1.69   thorpej #endif
    625       1.46   thorpej #if defined(CPU_ARM9)
    626       1.46   thorpej void	pmap_pte_init_arm9(void);
    627       1.46   thorpej #endif /* CPU_ARM9 */
    628       1.76  rearnsha #if defined(CPU_ARM10)
    629       1.76  rearnsha void	pmap_pte_init_arm10(void);
    630       1.76  rearnsha #endif /* CPU_ARM10 */
    631      1.103      matt #if defined(CPU_ARM11)	/* ARM_MMU_V6 */
    632       1.94  uebayasi void	pmap_pte_init_arm11(void);
    633       1.94  uebayasi #endif /* CPU_ARM11 */
    634      1.103      matt #if defined(CPU_ARM11MPCORE)	/* ARM_MMU_V6 */
    635       1.99       bsh void	pmap_pte_init_arm11mpcore(void);
    636       1.99       bsh #endif
    637      1.103      matt #if ARM_MMU_V7 == 1
    638      1.103      matt void	pmap_pte_init_armv7(void);
    639      1.103      matt #endif /* ARM_MMU_V7 */
    640       1.69   thorpej #endif /* (ARM_MMU_GENERIC + ARM_MMU_SA1) != 0 */
    641       1.69   thorpej 
    642       1.69   thorpej #if ARM_MMU_SA1 == 1
    643       1.69   thorpej void	pmap_pte_init_sa1(void);
    644       1.69   thorpej #endif /* ARM_MMU_SA1 == 1 */
    645       1.46   thorpej 
    646       1.52   thorpej #if ARM_MMU_XSCALE == 1
    647       1.51   thorpej void	pmap_copy_page_xscale(paddr_t, paddr_t);
    648       1.51   thorpej void	pmap_zero_page_xscale(paddr_t);
    649       1.51   thorpej 
    650       1.46   thorpej void	pmap_pte_init_xscale(void);
    651       1.50   thorpej 
    652       1.50   thorpej void	xscale_setup_minidata(vaddr_t, vaddr_t, paddr_t);
    653       1.77       scw 
    654       1.77       scw #define	PMAP_UAREA(va)		pmap_uarea(va)
    655       1.77       scw void	pmap_uarea(vaddr_t);
    656       1.52   thorpej #endif /* ARM_MMU_XSCALE == 1 */
    657       1.46   thorpej 
    658       1.49   thorpej extern pt_entry_t		pte_l1_s_cache_mode;
    659       1.49   thorpej extern pt_entry_t		pte_l1_s_cache_mask;
    660       1.49   thorpej 
    661       1.49   thorpej extern pt_entry_t		pte_l2_l_cache_mode;
    662       1.49   thorpej extern pt_entry_t		pte_l2_l_cache_mask;
    663       1.49   thorpej 
    664       1.49   thorpej extern pt_entry_t		pte_l2_s_cache_mode;
    665       1.49   thorpej extern pt_entry_t		pte_l2_s_cache_mask;
    666       1.46   thorpej 
    667       1.65       scw extern pt_entry_t		pte_l1_s_cache_mode_pt;
    668       1.65       scw extern pt_entry_t		pte_l2_l_cache_mode_pt;
    669       1.65       scw extern pt_entry_t		pte_l2_s_cache_mode_pt;
    670       1.65       scw 
    671       1.98  macallan extern pt_entry_t		pte_l1_s_wc_mode;
    672       1.98  macallan extern pt_entry_t		pte_l2_l_wc_mode;
    673       1.98  macallan extern pt_entry_t		pte_l2_s_wc_mode;
    674       1.98  macallan 
    675       1.95  jmcneill extern pt_entry_t		pte_l1_s_prot_u;
    676       1.95  jmcneill extern pt_entry_t		pte_l1_s_prot_w;
    677       1.95  jmcneill extern pt_entry_t		pte_l1_s_prot_ro;
    678       1.95  jmcneill extern pt_entry_t		pte_l1_s_prot_mask;
    679       1.95  jmcneill 
    680       1.46   thorpej extern pt_entry_t		pte_l2_s_prot_u;
    681       1.46   thorpej extern pt_entry_t		pte_l2_s_prot_w;
    682       1.95  jmcneill extern pt_entry_t		pte_l2_s_prot_ro;
    683       1.46   thorpej extern pt_entry_t		pte_l2_s_prot_mask;
    684       1.95  jmcneill 
    685       1.95  jmcneill extern pt_entry_t		pte_l2_l_prot_u;
    686       1.95  jmcneill extern pt_entry_t		pte_l2_l_prot_w;
    687       1.95  jmcneill extern pt_entry_t		pte_l2_l_prot_ro;
    688       1.95  jmcneill extern pt_entry_t		pte_l2_l_prot_mask;
    689       1.95  jmcneill 
    690      1.103      matt extern pt_entry_t		pte_l1_ss_proto;
    691       1.46   thorpej extern pt_entry_t		pte_l1_s_proto;
    692       1.46   thorpej extern pt_entry_t		pte_l1_c_proto;
    693       1.46   thorpej extern pt_entry_t		pte_l2_s_proto;
    694       1.46   thorpej 
    695       1.51   thorpej extern void (*pmap_copy_page_func)(paddr_t, paddr_t);
    696       1.51   thorpej extern void (*pmap_zero_page_func)(paddr_t);
    697       1.75       bsh 
    698       1.75       bsh #endif /* !_LOCORE */
    699       1.51   thorpej 
    700       1.46   thorpej /*****************************************************************************/
    701       1.46   thorpej 
    702      1.124      matt #define	KERNEL_PID		0	/* The kernel uses ASID 0 */
    703      1.124      matt 
    704       1.20       chs /*
    705       1.65       scw  * Definitions for MMU domains
    706       1.65       scw  */
    707      1.103      matt #define	PMAP_DOMAINS		15	/* 15 'user' domains (1-15) */
    708      1.124      matt #define	PMAP_DOMAIN_KERNEL	0	/* The kernel pmap uses domain #0 */
    709      1.124      matt #ifdef ARM_MMU_EXTENDED
    710      1.124      matt #define	PMAP_DOMAIN_USER	1	/* User pmaps use domain #1 */
    711      1.124      matt #endif
    712       1.45   thorpej 
    713       1.45   thorpej /*
    714       1.45   thorpej  * These macros define the various bit masks in the PTE.
    715       1.45   thorpej  *
    716       1.45   thorpej  * We use these macros since we use different bits on different processor
    717       1.45   thorpej  * models.
    718       1.45   thorpej  */
    719       1.95  jmcneill #define	L1_S_PROT_U_generic	(L1_S_AP(AP_U))
    720       1.95  jmcneill #define	L1_S_PROT_W_generic	(L1_S_AP(AP_W))
    721       1.95  jmcneill #define	L1_S_PROT_RO_generic	(0)
    722       1.95  jmcneill #define	L1_S_PROT_MASK_generic	(L1_S_PROT_U|L1_S_PROT_W|L1_S_PROT_RO)
    723       1.95  jmcneill 
    724       1.95  jmcneill #define	L1_S_PROT_U_xscale	(L1_S_AP(AP_U))
    725       1.95  jmcneill #define	L1_S_PROT_W_xscale	(L1_S_AP(AP_W))
    726       1.95  jmcneill #define	L1_S_PROT_RO_xscale	(0)
    727       1.95  jmcneill #define	L1_S_PROT_MASK_xscale	(L1_S_PROT_U|L1_S_PROT_W|L1_S_PROT_RO)
    728       1.95  jmcneill 
    729       1.99       bsh #define	L1_S_PROT_U_armv6	(L1_S_AP(AP_R) | L1_S_AP(AP_U))
    730       1.99       bsh #define	L1_S_PROT_W_armv6	(L1_S_AP(AP_W))
    731       1.99       bsh #define	L1_S_PROT_RO_armv6	(L1_S_AP(AP_R) | L1_S_AP(AP_RO))
    732       1.99       bsh #define	L1_S_PROT_MASK_armv6	(L1_S_PROT_U|L1_S_PROT_W|L1_S_PROT_RO)
    733       1.99       bsh 
    734       1.95  jmcneill #define	L1_S_PROT_U_armv7	(L1_S_AP(AP_R) | L1_S_AP(AP_U))
    735       1.95  jmcneill #define	L1_S_PROT_W_armv7	(L1_S_AP(AP_W))
    736       1.95  jmcneill #define	L1_S_PROT_RO_armv7	(L1_S_AP(AP_R) | L1_S_AP(AP_RO))
    737       1.95  jmcneill #define	L1_S_PROT_MASK_armv7	(L1_S_PROT_U|L1_S_PROT_W|L1_S_PROT_RO)
    738       1.45   thorpej 
    739       1.49   thorpej #define	L1_S_CACHE_MASK_generic	(L1_S_B|L1_S_C)
    740       1.85      matt #define	L1_S_CACHE_MASK_xscale	(L1_S_B|L1_S_C|L1_S_XS_TEX(TEX_XSCALE_X))
    741       1.99       bsh #define	L1_S_CACHE_MASK_armv6	(L1_S_B|L1_S_C|L1_S_XS_TEX(TEX_ARMV6_TEX))
    742  1.130.2.1       tls #define	L1_S_CACHE_MASK_armv6n	(L1_S_B|L1_S_C|L1_S_XS_TEX(TEX_ARMV6_TEX)|L1_S_V6_S)
    743      1.111      matt #define	L1_S_CACHE_MASK_armv7	(L1_S_B|L1_S_C|L1_S_XS_TEX(TEX_ARMV6_TEX)|L1_S_V6_S)
    744       1.45   thorpej 
    745       1.95  jmcneill #define	L2_L_PROT_U_generic	(L2_AP(AP_U))
    746       1.95  jmcneill #define	L2_L_PROT_W_generic	(L2_AP(AP_W))
    747       1.95  jmcneill #define	L2_L_PROT_RO_generic	(0)
    748       1.95  jmcneill #define	L2_L_PROT_MASK_generic	(L2_L_PROT_U|L2_L_PROT_W|L2_L_PROT_RO)
    749       1.95  jmcneill 
    750       1.95  jmcneill #define	L2_L_PROT_U_xscale	(L2_AP(AP_U))
    751       1.95  jmcneill #define	L2_L_PROT_W_xscale	(L2_AP(AP_W))
    752       1.95  jmcneill #define	L2_L_PROT_RO_xscale	(0)
    753       1.95  jmcneill #define	L2_L_PROT_MASK_xscale	(L2_L_PROT_U|L2_L_PROT_W|L2_L_PROT_RO)
    754       1.95  jmcneill 
    755       1.99       bsh #define	L2_L_PROT_U_armv6n	(L2_AP0(AP_R) | L2_AP0(AP_U))
    756       1.99       bsh #define	L2_L_PROT_W_armv6n	(L2_AP0(AP_W))
    757       1.99       bsh #define	L2_L_PROT_RO_armv6n	(L2_AP0(AP_R) | L2_AP0(AP_RO))
    758       1.99       bsh #define	L2_L_PROT_MASK_armv6n	(L2_L_PROT_U|L2_L_PROT_W|L2_L_PROT_RO)
    759       1.99       bsh 
    760       1.95  jmcneill #define	L2_L_PROT_U_armv7	(L2_AP0(AP_R) | L2_AP0(AP_U))
    761       1.95  jmcneill #define	L2_L_PROT_W_armv7	(L2_AP0(AP_W))
    762       1.95  jmcneill #define	L2_L_PROT_RO_armv7	(L2_AP0(AP_R) | L2_AP0(AP_RO))
    763       1.95  jmcneill #define	L2_L_PROT_MASK_armv7	(L2_L_PROT_U|L2_L_PROT_W|L2_L_PROT_RO)
    764       1.45   thorpej 
    765       1.49   thorpej #define	L2_L_CACHE_MASK_generic	(L2_B|L2_C)
    766       1.85      matt #define	L2_L_CACHE_MASK_xscale	(L2_B|L2_C|L2_XS_L_TEX(TEX_XSCALE_X))
    767       1.99       bsh #define	L2_L_CACHE_MASK_armv6	(L2_B|L2_C|L2_V6_L_TEX(TEX_ARMV6_TEX))
    768  1.130.2.1       tls #define	L2_L_CACHE_MASK_armv6n	(L2_B|L2_C|L2_V6_L_TEX(TEX_ARMV6_TEX)|L2_XS_S)
    769      1.111      matt #define	L2_L_CACHE_MASK_armv7	(L2_B|L2_C|L2_V6_L_TEX(TEX_ARMV6_TEX)|L2_XS_S)
    770       1.49   thorpej 
    771       1.46   thorpej #define	L2_S_PROT_U_generic	(L2_AP(AP_U))
    772       1.46   thorpej #define	L2_S_PROT_W_generic	(L2_AP(AP_W))
    773       1.95  jmcneill #define	L2_S_PROT_RO_generic	(0)
    774       1.95  jmcneill #define	L2_S_PROT_MASK_generic	(L2_S_PROT_U|L2_S_PROT_W|L2_S_PROT_RO)
    775       1.46   thorpej 
    776       1.48   thorpej #define	L2_S_PROT_U_xscale	(L2_AP0(AP_U))
    777       1.48   thorpej #define	L2_S_PROT_W_xscale	(L2_AP0(AP_W))
    778       1.95  jmcneill #define	L2_S_PROT_RO_xscale	(0)
    779       1.95  jmcneill #define	L2_S_PROT_MASK_xscale	(L2_S_PROT_U|L2_S_PROT_W|L2_S_PROT_RO)
    780       1.95  jmcneill 
    781       1.99       bsh #define	L2_S_PROT_U_armv6n	(L2_AP0(AP_R) | L2_AP0(AP_U))
    782       1.99       bsh #define	L2_S_PROT_W_armv6n	(L2_AP0(AP_W))
    783       1.99       bsh #define	L2_S_PROT_RO_armv6n	(L2_AP0(AP_R) | L2_AP0(AP_RO))
    784       1.99       bsh #define	L2_S_PROT_MASK_armv6n	(L2_S_PROT_U|L2_S_PROT_W|L2_S_PROT_RO)
    785       1.99       bsh 
    786       1.95  jmcneill #define	L2_S_PROT_U_armv7	(L2_AP0(AP_R) | L2_AP0(AP_U))
    787       1.95  jmcneill #define	L2_S_PROT_W_armv7	(L2_AP0(AP_W))
    788       1.95  jmcneill #define	L2_S_PROT_RO_armv7	(L2_AP0(AP_R) | L2_AP0(AP_RO))
    789       1.95  jmcneill #define	L2_S_PROT_MASK_armv7	(L2_S_PROT_U|L2_S_PROT_W|L2_S_PROT_RO)
    790       1.46   thorpej 
    791       1.49   thorpej #define	L2_S_CACHE_MASK_generic	(L2_B|L2_C)
    792       1.85      matt #define	L2_S_CACHE_MASK_xscale	(L2_B|L2_C|L2_XS_T_TEX(TEX_XSCALE_X))
    793       1.99       bsh #define	L2_XS_CACHE_MASK_armv6	(L2_B|L2_C|L2_V6_XS_TEX(TEX_ARMV6_TEX))
    794       1.99       bsh #define	L2_S_CACHE_MASK_armv6n	L2_XS_CACHE_MASK_armv6
    795       1.99       bsh #ifdef	ARMV6_EXTENDED_SMALL_PAGE
    796       1.99       bsh #define	L2_S_CACHE_MASK_armv6c	L2_XS_CACHE_MASK_armv6
    797       1.99       bsh #else
    798       1.99       bsh #define	L2_S_CACHE_MASK_armv6c	L2_S_CACHE_MASK_generic
    799       1.99       bsh #endif
    800      1.111      matt #define	L2_S_CACHE_MASK_armv7	(L2_B|L2_C|L2_V6_XS_TEX(TEX_ARMV6_TEX)|L2_XS_S)
    801       1.46   thorpej 
    802       1.99       bsh 
    803       1.46   thorpej #define	L1_S_PROTO_generic	(L1_TYPE_S | L1_S_IMP)
    804       1.47   thorpej #define	L1_S_PROTO_xscale	(L1_TYPE_S)
    805       1.99       bsh #define	L1_S_PROTO_armv6	(L1_TYPE_S)
    806       1.95  jmcneill #define	L1_S_PROTO_armv7	(L1_TYPE_S)
    807       1.46   thorpej 
    808      1.103      matt #define	L1_SS_PROTO_generic	0
    809      1.103      matt #define	L1_SS_PROTO_xscale	0
    810      1.103      matt #define	L1_SS_PROTO_armv6	(L1_TYPE_S | L1_S_V6_SS)
    811      1.103      matt #define	L1_SS_PROTO_armv7	(L1_TYPE_S | L1_S_V6_SS)
    812      1.103      matt 
    813       1.46   thorpej #define	L1_C_PROTO_generic	(L1_TYPE_C | L1_C_IMP2)
    814       1.47   thorpej #define	L1_C_PROTO_xscale	(L1_TYPE_C)
    815       1.99       bsh #define	L1_C_PROTO_armv6	(L1_TYPE_C)
    816       1.95  jmcneill #define	L1_C_PROTO_armv7	(L1_TYPE_C)
    817       1.46   thorpej 
    818       1.46   thorpej #define	L2_L_PROTO		(L2_TYPE_L)
    819       1.46   thorpej 
    820       1.46   thorpej #define	L2_S_PROTO_generic	(L2_TYPE_S)
    821       1.85      matt #define	L2_S_PROTO_xscale	(L2_TYPE_XS)
    822       1.99       bsh #ifdef	ARMV6_EXTENDED_SMALL_PAGE
    823       1.99       bsh #define	L2_S_PROTO_armv6c	(L2_TYPE_XS)    /* XP=0, extended small page */
    824       1.99       bsh #else
    825       1.99       bsh #define	L2_S_PROTO_armv6c	(L2_TYPE_S)	/* XP=0, subpage APs */
    826       1.99       bsh #endif
    827  1.130.2.1       tls #ifdef ARM_MMU_EXTENDED
    828  1.130.2.1       tls #define	L2_S_PROTO_armv6n	(L2_TYPE_S|L2_XS_XN)
    829  1.130.2.1       tls #else
    830       1.99       bsh #define	L2_S_PROTO_armv6n	(L2_TYPE_S)	/* with XP=1 */
    831  1.130.2.1       tls #endif
    832      1.124      matt #ifdef ARM_MMU_EXTENDED
    833      1.124      matt #define	L2_S_PROTO_armv7	(L2_TYPE_S|L2_XS_XN)
    834      1.124      matt #else
    835       1.95  jmcneill #define	L2_S_PROTO_armv7	(L2_TYPE_S)
    836      1.124      matt #endif
    837       1.45   thorpej 
    838       1.46   thorpej /*
    839       1.46   thorpej  * User-visible names for the ones that vary with MMU class.
    840       1.46   thorpej  */
    841       1.46   thorpej 
    842       1.46   thorpej #if ARM_NMMUS > 1
    843       1.46   thorpej /* More than one MMU class configured; use variables. */
    844       1.95  jmcneill #define	L1_S_PROT_U		pte_l1_s_prot_u
    845       1.95  jmcneill #define	L1_S_PROT_W		pte_l1_s_prot_w
    846       1.95  jmcneill #define	L1_S_PROT_RO		pte_l1_s_prot_ro
    847       1.95  jmcneill #define	L1_S_PROT_MASK		pte_l1_s_prot_mask
    848       1.95  jmcneill 
    849       1.46   thorpej #define	L2_S_PROT_U		pte_l2_s_prot_u
    850       1.46   thorpej #define	L2_S_PROT_W		pte_l2_s_prot_w
    851       1.95  jmcneill #define	L2_S_PROT_RO		pte_l2_s_prot_ro
    852       1.46   thorpej #define	L2_S_PROT_MASK		pte_l2_s_prot_mask
    853       1.46   thorpej 
    854       1.95  jmcneill #define	L2_L_PROT_U		pte_l2_l_prot_u
    855       1.95  jmcneill #define	L2_L_PROT_W		pte_l2_l_prot_w
    856       1.95  jmcneill #define	L2_L_PROT_RO		pte_l2_l_prot_ro
    857       1.95  jmcneill #define	L2_L_PROT_MASK		pte_l2_l_prot_mask
    858       1.95  jmcneill 
    859       1.49   thorpej #define	L1_S_CACHE_MASK		pte_l1_s_cache_mask
    860       1.49   thorpej #define	L2_L_CACHE_MASK		pte_l2_l_cache_mask
    861       1.49   thorpej #define	L2_S_CACHE_MASK		pte_l2_s_cache_mask
    862       1.49   thorpej 
    863      1.103      matt #define	L1_SS_PROTO		pte_l1_ss_proto
    864       1.46   thorpej #define	L1_S_PROTO		pte_l1_s_proto
    865       1.46   thorpej #define	L1_C_PROTO		pte_l1_c_proto
    866       1.46   thorpej #define	L2_S_PROTO		pte_l2_s_proto
    867       1.51   thorpej 
    868       1.51   thorpej #define	pmap_copy_page(s, d)	(*pmap_copy_page_func)((s), (d))
    869       1.51   thorpej #define	pmap_zero_page(d)	(*pmap_zero_page_func)((d))
    870       1.99       bsh #elif (ARM_MMU_GENERIC + ARM_MMU_SA1) != 0
    871       1.99       bsh #define	L1_S_PROT_U		L1_S_PROT_U_generic
    872       1.99       bsh #define	L1_S_PROT_W		L1_S_PROT_W_generic
    873       1.99       bsh #define	L1_S_PROT_RO		L1_S_PROT_RO_generic
    874       1.99       bsh #define	L1_S_PROT_MASK		L1_S_PROT_MASK_generic
    875       1.99       bsh 
    876       1.99       bsh #define	L2_S_PROT_U		L2_S_PROT_U_generic
    877       1.99       bsh #define	L2_S_PROT_W		L2_S_PROT_W_generic
    878       1.99       bsh #define	L2_S_PROT_RO		L2_S_PROT_RO_generic
    879       1.99       bsh #define	L2_S_PROT_MASK		L2_S_PROT_MASK_generic
    880       1.99       bsh 
    881       1.99       bsh #define	L2_L_PROT_U		L2_L_PROT_U_generic
    882       1.99       bsh #define	L2_L_PROT_W		L2_L_PROT_W_generic
    883       1.99       bsh #define	L2_L_PROT_RO		L2_L_PROT_RO_generic
    884       1.99       bsh #define	L2_L_PROT_MASK		L2_L_PROT_MASK_generic
    885       1.99       bsh 
    886       1.99       bsh #define	L1_S_CACHE_MASK		L1_S_CACHE_MASK_generic
    887       1.99       bsh #define	L2_L_CACHE_MASK		L2_L_CACHE_MASK_generic
    888       1.99       bsh #define	L2_S_CACHE_MASK		L2_S_CACHE_MASK_generic
    889       1.99       bsh 
    890      1.103      matt #define	L1_SS_PROTO		L1_SS_PROTO_generic
    891       1.99       bsh #define	L1_S_PROTO		L1_S_PROTO_generic
    892       1.99       bsh #define	L1_C_PROTO		L1_C_PROTO_generic
    893       1.99       bsh #define	L2_S_PROTO		L2_S_PROTO_generic
    894       1.99       bsh 
    895       1.99       bsh #define	pmap_copy_page(s, d)	pmap_copy_page_generic((s), (d))
    896       1.99       bsh #define	pmap_zero_page(d)	pmap_zero_page_generic((d))
    897       1.99       bsh #elif ARM_MMU_V6N != 0
    898       1.99       bsh #define	L1_S_PROT_U		L1_S_PROT_U_armv6
    899       1.99       bsh #define	L1_S_PROT_W		L1_S_PROT_W_armv6
    900       1.99       bsh #define	L1_S_PROT_RO		L1_S_PROT_RO_armv6
    901       1.99       bsh #define	L1_S_PROT_MASK		L1_S_PROT_MASK_armv6
    902       1.99       bsh 
    903       1.99       bsh #define	L2_S_PROT_U		L2_S_PROT_U_armv6n
    904       1.99       bsh #define	L2_S_PROT_W		L2_S_PROT_W_armv6n
    905       1.99       bsh #define	L2_S_PROT_RO		L2_S_PROT_RO_armv6n
    906       1.99       bsh #define	L2_S_PROT_MASK		L2_S_PROT_MASK_armv6n
    907       1.99       bsh 
    908       1.99       bsh #define	L2_L_PROT_U		L2_L_PROT_U_armv6n
    909       1.99       bsh #define	L2_L_PROT_W		L2_L_PROT_W_armv6n
    910       1.99       bsh #define	L2_L_PROT_RO		L2_L_PROT_RO_armv6n
    911       1.99       bsh #define	L2_L_PROT_MASK		L2_L_PROT_MASK_armv6n
    912       1.99       bsh 
    913  1.130.2.1       tls #define	L1_S_CACHE_MASK		L1_S_CACHE_MASK_armv6n
    914  1.130.2.1       tls #define	L2_L_CACHE_MASK		L2_L_CACHE_MASK_armv6n
    915       1.99       bsh #define	L2_S_CACHE_MASK		L2_S_CACHE_MASK_armv6n
    916       1.99       bsh 
    917       1.99       bsh /* These prototypes make writeable mappings, while the other MMU types
    918       1.99       bsh  * make read-only mappings. */
    919      1.103      matt #define	L1_SS_PROTO		L1_SS_PROTO_armv6
    920       1.99       bsh #define	L1_S_PROTO		L1_S_PROTO_armv6
    921       1.99       bsh #define	L1_C_PROTO		L1_C_PROTO_armv6
    922       1.99       bsh #define	L2_S_PROTO		L2_S_PROTO_armv6n
    923       1.99       bsh 
    924       1.99       bsh #define	pmap_copy_page(s, d)	pmap_copy_page_generic((s), (d))
    925       1.99       bsh #define	pmap_zero_page(d)	pmap_zero_page_generic((d))
    926       1.99       bsh #elif ARM_MMU_V6C != 0
    927       1.95  jmcneill #define	L1_S_PROT_U		L1_S_PROT_U_generic
    928       1.95  jmcneill #define	L1_S_PROT_W		L1_S_PROT_W_generic
    929       1.95  jmcneill #define	L1_S_PROT_RO		L1_S_PROT_RO_generic
    930       1.95  jmcneill #define	L1_S_PROT_MASK		L1_S_PROT_MASK_generic
    931       1.95  jmcneill 
    932       1.46   thorpej #define	L2_S_PROT_U		L2_S_PROT_U_generic
    933       1.46   thorpej #define	L2_S_PROT_W		L2_S_PROT_W_generic
    934       1.95  jmcneill #define	L2_S_PROT_RO		L2_S_PROT_RO_generic
    935       1.46   thorpej #define	L2_S_PROT_MASK		L2_S_PROT_MASK_generic
    936       1.46   thorpej 
    937       1.95  jmcneill #define	L2_L_PROT_U		L2_L_PROT_U_generic
    938       1.95  jmcneill #define	L2_L_PROT_W		L2_L_PROT_W_generic
    939       1.95  jmcneill #define	L2_L_PROT_RO		L2_L_PROT_RO_generic
    940       1.95  jmcneill #define	L2_L_PROT_MASK		L2_L_PROT_MASK_generic
    941       1.95  jmcneill 
    942       1.49   thorpej #define	L1_S_CACHE_MASK		L1_S_CACHE_MASK_generic
    943       1.49   thorpej #define	L2_L_CACHE_MASK		L2_L_CACHE_MASK_generic
    944       1.49   thorpej #define	L2_S_CACHE_MASK		L2_S_CACHE_MASK_generic
    945       1.49   thorpej 
    946      1.130      matt #define	L1_SS_PROTO		L1_SS_PROTO_armv6
    947       1.46   thorpej #define	L1_S_PROTO		L1_S_PROTO_generic
    948       1.46   thorpej #define	L1_C_PROTO		L1_C_PROTO_generic
    949       1.46   thorpej #define	L2_S_PROTO		L2_S_PROTO_generic
    950       1.51   thorpej 
    951       1.51   thorpej #define	pmap_copy_page(s, d)	pmap_copy_page_generic((s), (d))
    952       1.51   thorpej #define	pmap_zero_page(d)	pmap_zero_page_generic((d))
    953       1.46   thorpej #elif ARM_MMU_XSCALE == 1
    954       1.95  jmcneill #define	L1_S_PROT_U		L1_S_PROT_U_generic
    955       1.95  jmcneill #define	L1_S_PROT_W		L1_S_PROT_W_generic
    956       1.95  jmcneill #define	L1_S_PROT_RO		L1_S_PROT_RO_generic
    957       1.95  jmcneill #define	L1_S_PROT_MASK		L1_S_PROT_MASK_generic
    958       1.95  jmcneill 
    959       1.46   thorpej #define	L2_S_PROT_U		L2_S_PROT_U_xscale
    960       1.46   thorpej #define	L2_S_PROT_W		L2_S_PROT_W_xscale
    961       1.95  jmcneill #define	L2_S_PROT_RO		L2_S_PROT_RO_xscale
    962       1.46   thorpej #define	L2_S_PROT_MASK		L2_S_PROT_MASK_xscale
    963       1.49   thorpej 
    964       1.95  jmcneill #define	L2_L_PROT_U		L2_L_PROT_U_generic
    965       1.95  jmcneill #define	L2_L_PROT_W		L2_L_PROT_W_generic
    966       1.95  jmcneill #define	L2_L_PROT_RO		L2_L_PROT_RO_generic
    967       1.95  jmcneill #define	L2_L_PROT_MASK		L2_L_PROT_MASK_generic
    968       1.95  jmcneill 
    969       1.49   thorpej #define	L1_S_CACHE_MASK		L1_S_CACHE_MASK_xscale
    970       1.49   thorpej #define	L2_L_CACHE_MASK		L2_L_CACHE_MASK_xscale
    971       1.49   thorpej #define	L2_S_CACHE_MASK		L2_S_CACHE_MASK_xscale
    972       1.46   thorpej 
    973      1.103      matt #define	L1_SS_PROTO		L1_SS_PROTO_xscale
    974       1.46   thorpej #define	L1_S_PROTO		L1_S_PROTO_xscale
    975       1.46   thorpej #define	L1_C_PROTO		L1_C_PROTO_xscale
    976       1.46   thorpej #define	L2_S_PROTO		L2_S_PROTO_xscale
    977       1.51   thorpej 
    978       1.51   thorpej #define	pmap_copy_page(s, d)	pmap_copy_page_xscale((s), (d))
    979       1.51   thorpej #define	pmap_zero_page(d)	pmap_zero_page_xscale((d))
    980       1.95  jmcneill #elif ARM_MMU_V7 == 1
    981       1.95  jmcneill #define	L1_S_PROT_U		L1_S_PROT_U_armv7
    982       1.95  jmcneill #define	L1_S_PROT_W		L1_S_PROT_W_armv7
    983       1.95  jmcneill #define	L1_S_PROT_RO		L1_S_PROT_RO_armv7
    984       1.95  jmcneill #define	L1_S_PROT_MASK		L1_S_PROT_MASK_armv7
    985       1.95  jmcneill 
    986       1.95  jmcneill #define	L2_S_PROT_U		L2_S_PROT_U_armv7
    987       1.95  jmcneill #define	L2_S_PROT_W		L2_S_PROT_W_armv7
    988       1.95  jmcneill #define	L2_S_PROT_RO		L2_S_PROT_RO_armv7
    989       1.95  jmcneill #define	L2_S_PROT_MASK		L2_S_PROT_MASK_armv7
    990       1.95  jmcneill 
    991       1.95  jmcneill #define	L2_L_PROT_U		L2_L_PROT_U_armv7
    992       1.95  jmcneill #define	L2_L_PROT_W		L2_L_PROT_W_armv7
    993       1.95  jmcneill #define	L2_L_PROT_RO		L2_L_PROT_RO_armv7
    994       1.95  jmcneill #define	L2_L_PROT_MASK		L2_L_PROT_MASK_armv7
    995       1.95  jmcneill 
    996       1.95  jmcneill #define	L1_S_CACHE_MASK		L1_S_CACHE_MASK_armv7
    997       1.95  jmcneill #define	L2_L_CACHE_MASK		L2_L_CACHE_MASK_armv7
    998       1.95  jmcneill #define	L2_S_CACHE_MASK		L2_S_CACHE_MASK_armv7
    999       1.95  jmcneill 
   1000       1.95  jmcneill /* These prototypes make writeable mappings, while the other MMU types
   1001       1.95  jmcneill  * make read-only mappings. */
   1002      1.103      matt #define	L1_SS_PROTO		L1_SS_PROTO_armv7
   1003       1.95  jmcneill #define	L1_S_PROTO		L1_S_PROTO_armv7
   1004       1.95  jmcneill #define	L1_C_PROTO		L1_C_PROTO_armv7
   1005       1.95  jmcneill #define	L2_S_PROTO		L2_S_PROTO_armv7
   1006       1.95  jmcneill 
   1007       1.95  jmcneill #define	pmap_copy_page(s, d)	pmap_copy_page_generic((s), (d))
   1008       1.95  jmcneill #define	pmap_zero_page(d)	pmap_zero_page_generic((d))
   1009       1.46   thorpej #endif /* ARM_NMMUS > 1 */
   1010       1.20       chs 
   1011       1.45   thorpej /*
   1012       1.95  jmcneill  * Macros to set and query the write permission on page descriptors.
   1013       1.95  jmcneill  */
   1014       1.95  jmcneill #define l1pte_set_writable(pte)	(((pte) & ~L1_S_PROT_RO) | L1_S_PROT_W)
   1015       1.95  jmcneill #define l1pte_set_readonly(pte)	(((pte) & ~L1_S_PROT_W) | L1_S_PROT_RO)
   1016       1.95  jmcneill #define l2pte_set_writable(pte)	(((pte) & ~L2_S_PROT_RO) | L2_S_PROT_W)
   1017       1.95  jmcneill #define l2pte_set_readonly(pte)	(((pte) & ~L2_S_PROT_W) | L2_S_PROT_RO)
   1018       1.95  jmcneill 
   1019       1.95  jmcneill #define l2pte_writable_p(pte)	(((pte) & L2_S_PROT_W) == L2_S_PROT_W && \
   1020       1.95  jmcneill 				 (L2_S_PROT_RO == 0 || \
   1021       1.95  jmcneill 				  ((pte) & L2_S_PROT_RO) != L2_S_PROT_RO))
   1022       1.95  jmcneill 
   1023       1.95  jmcneill /*
   1024       1.45   thorpej  * These macros return various bits based on kernel/user and protection.
   1025       1.45   thorpej  * Note that the compiler will usually fold these at compile time.
   1026       1.45   thorpej  */
   1027       1.45   thorpej #define	L1_S_PROT(ku, pr)	((((ku) == PTE_USER) ? L1_S_PROT_U : 0) | \
   1028       1.95  jmcneill 				 (((pr) & VM_PROT_WRITE) ? L1_S_PROT_W : L1_S_PROT_RO))
   1029       1.45   thorpej 
   1030       1.45   thorpej #define	L2_L_PROT(ku, pr)	((((ku) == PTE_USER) ? L2_L_PROT_U : 0) | \
   1031       1.95  jmcneill 				 (((pr) & VM_PROT_WRITE) ? L2_L_PROT_W : L2_L_PROT_RO))
   1032       1.45   thorpej 
   1033       1.45   thorpej #define	L2_S_PROT(ku, pr)	((((ku) == PTE_USER) ? L2_S_PROT_U : 0) | \
   1034       1.95  jmcneill 				 (((pr) & VM_PROT_WRITE) ? L2_S_PROT_W : L2_S_PROT_RO))
   1035       1.66   thorpej 
   1036       1.66   thorpej /*
   1037      1.103      matt  * Macros to test if a mapping is mappable with an L1 SuperSection,
   1038      1.103      matt  * L1 Section, or an L2 Large Page mapping.
   1039       1.66   thorpej  */
   1040      1.103      matt #define	L1_SS_MAPPABLE_P(va, pa, size)					\
   1041      1.103      matt 	((((va) | (pa)) & L1_SS_OFFSET) == 0 && (size) >= L1_SS_SIZE)
   1042      1.103      matt 
   1043       1.66   thorpej #define	L1_S_MAPPABLE_P(va, pa, size)					\
   1044       1.66   thorpej 	((((va) | (pa)) & L1_S_OFFSET) == 0 && (size) >= L1_S_SIZE)
   1045       1.66   thorpej 
   1046       1.67   thorpej #define	L2_L_MAPPABLE_P(va, pa, size)					\
   1047       1.68   thorpej 	((((va) | (pa)) & L2_L_OFFSET) == 0 && (size) >= L2_L_SIZE)
   1048       1.64   thorpej 
   1049      1.119      matt #ifndef _LOCORE
   1050       1.64   thorpej /*
   1051       1.64   thorpej  * Hooks for the pool allocator.
   1052       1.64   thorpej  */
   1053       1.64   thorpej #define	POOL_VTOPHYS(va)	vtophys((vaddr_t) (va))
   1054      1.117      matt extern paddr_t physical_start, physical_end;
   1055      1.113      matt #ifdef PMAP_NEED_ALLOC_POOLPAGE
   1056      1.114      matt struct vm_page *arm_pmap_alloc_poolpage(int);
   1057      1.113      matt #define	PMAP_ALLOC_POOLPAGE	arm_pmap_alloc_poolpage
   1058      1.118      matt #endif
   1059      1.118      matt #if defined(PMAP_NEED_ALLOC_POOLPAGE) || defined(__HAVE_MM_MD_DIRECT_MAPPED_PHYS)
   1060  1.130.2.1       tls vaddr_t	pmap_map_poolpage(paddr_t);
   1061  1.130.2.1       tls paddr_t	pmap_unmap_poolpage(vaddr_t);
   1062  1.130.2.1       tls #define	PMAP_MAP_POOLPAGE(pa)	pmap_map_poolpage(pa)
   1063  1.130.2.1       tls #define PMAP_UNMAP_POOLPAGE(va)	pmap_unmap_poolpage(va)
   1064      1.113      matt #endif
   1065       1.18   thorpej 
   1066       1.97  uebayasi /*
   1067       1.97  uebayasi  * pmap-specific data store in the vm_page structure.
   1068       1.97  uebayasi  */
   1069       1.97  uebayasi #define	__HAVE_VM_PAGE_MD
   1070       1.97  uebayasi struct vm_page_md {
   1071       1.97  uebayasi 	SLIST_HEAD(,pv_entry) pvh_list;		/* pv_entry list */
   1072       1.97  uebayasi 	int pvh_attrs;				/* page attributes */
   1073       1.97  uebayasi 	u_int uro_mappings;
   1074       1.97  uebayasi 	u_int urw_mappings;
   1075       1.97  uebayasi 	union {
   1076       1.97  uebayasi 		u_short s_mappings[2];	/* Assume kernel count <= 65535 */
   1077       1.97  uebayasi 		u_int i_mappings;
   1078       1.97  uebayasi 	} k_u;
   1079       1.97  uebayasi #define	kro_mappings	k_u.s_mappings[0]
   1080       1.97  uebayasi #define	krw_mappings	k_u.s_mappings[1]
   1081       1.97  uebayasi #define	k_mappings	k_u.i_mappings
   1082       1.97  uebayasi };
   1083       1.97  uebayasi 
   1084       1.97  uebayasi /*
   1085       1.97  uebayasi  * Set the default color of each page.
   1086       1.97  uebayasi  */
   1087       1.97  uebayasi #if ARM_MMU_V6 > 0
   1088       1.97  uebayasi #define	VM_MDPAGE_PVH_ATTRS_INIT(pg) \
   1089       1.97  uebayasi 	(pg)->mdpage.pvh_attrs = (pg)->phys_addr & arm_cache_prefer_mask
   1090       1.97  uebayasi #else
   1091       1.97  uebayasi #define	VM_MDPAGE_PVH_ATTRS_INIT(pg) \
   1092       1.97  uebayasi 	(pg)->mdpage.pvh_attrs = 0
   1093       1.97  uebayasi #endif
   1094  1.130.2.1       tls 
   1095       1.97  uebayasi #define	VM_MDPAGE_INIT(pg)						\
   1096       1.97  uebayasi do {									\
   1097       1.97  uebayasi 	SLIST_INIT(&(pg)->mdpage.pvh_list);				\
   1098       1.97  uebayasi 	VM_MDPAGE_PVH_ATTRS_INIT(pg);					\
   1099       1.97  uebayasi 	(pg)->mdpage.uro_mappings = 0;					\
   1100       1.97  uebayasi 	(pg)->mdpage.urw_mappings = 0;					\
   1101       1.97  uebayasi 	(pg)->mdpage.k_mappings = 0;					\
   1102       1.97  uebayasi } while (/*CONSTCOND*/0)
   1103       1.97  uebayasi 
   1104       1.97  uebayasi #endif /* !_LOCORE */
   1105       1.97  uebayasi 
   1106       1.18   thorpej #endif /* _KERNEL */
   1107        1.1   reinoud 
   1108        1.1   reinoud #endif	/* _ARM32_PMAP_H_ */
   1109