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pmap.c revision 1.103
      1  1.103   thorpej /*	$NetBSD: pmap.c,v 1.103 2021/03/11 04:43:47 thorpej Exp $	*/
      2    1.1      matt /*-
      3    1.1      matt  * Copyright (c) 2001 The NetBSD Foundation, Inc.
      4    1.1      matt  * All rights reserved.
      5    1.1      matt  *
      6    1.1      matt  * This code is derived from software contributed to The NetBSD Foundation
      7    1.1      matt  * by Matt Thomas <matt (at) 3am-software.com> of Allegro Networks, Inc.
      8    1.1      matt  *
      9   1.38   sanjayl  * Support for PPC64 Bridge mode added by Sanjay Lal <sanjayl (at) kymasys.com>
     10   1.38   sanjayl  * of Kyma Systems LLC.
     11   1.38   sanjayl  *
     12    1.1      matt  * Redistribution and use in source and binary forms, with or without
     13    1.1      matt  * modification, are permitted provided that the following conditions
     14    1.1      matt  * are met:
     15    1.1      matt  * 1. Redistributions of source code must retain the above copyright
     16    1.1      matt  *    notice, this list of conditions and the following disclaimer.
     17    1.1      matt  * 2. Redistributions in binary form must reproduce the above copyright
     18    1.1      matt  *    notice, this list of conditions and the following disclaimer in the
     19    1.1      matt  *    documentation and/or other materials provided with the distribution.
     20    1.1      matt  *
     21    1.1      matt  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     22    1.1      matt  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     23    1.1      matt  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     24    1.1      matt  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     25    1.1      matt  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     26    1.1      matt  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     27    1.1      matt  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     28    1.1      matt  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     29    1.1      matt  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     30    1.1      matt  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     31    1.1      matt  * POSSIBILITY OF SUCH DAMAGE.
     32    1.1      matt  */
     33    1.1      matt 
     34    1.1      matt /*
     35    1.1      matt  * Copyright (C) 1995, 1996 Wolfgang Solfrank.
     36    1.1      matt  * Copyright (C) 1995, 1996 TooLs GmbH.
     37    1.1      matt  * All rights reserved.
     38    1.1      matt  *
     39    1.1      matt  * Redistribution and use in source and binary forms, with or without
     40    1.1      matt  * modification, are permitted provided that the following conditions
     41    1.1      matt  * are met:
     42    1.1      matt  * 1. Redistributions of source code must retain the above copyright
     43    1.1      matt  *    notice, this list of conditions and the following disclaimer.
     44    1.1      matt  * 2. Redistributions in binary form must reproduce the above copyright
     45    1.1      matt  *    notice, this list of conditions and the following disclaimer in the
     46    1.1      matt  *    documentation and/or other materials provided with the distribution.
     47    1.1      matt  * 3. All advertising materials mentioning features or use of this software
     48    1.1      matt  *    must display the following acknowledgement:
     49    1.1      matt  *	This product includes software developed by TooLs GmbH.
     50    1.1      matt  * 4. The name of TooLs GmbH may not be used to endorse or promote products
     51    1.1      matt  *    derived from this software without specific prior written permission.
     52    1.1      matt  *
     53    1.1      matt  * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR
     54    1.1      matt  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     55    1.1      matt  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     56    1.1      matt  * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
     57    1.1      matt  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
     58    1.1      matt  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
     59    1.1      matt  * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
     60    1.1      matt  * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
     61    1.1      matt  * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
     62    1.1      matt  * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     63    1.1      matt  */
     64   1.11     lukem 
     65   1.11     lukem #include <sys/cdefs.h>
     66  1.103   thorpej __KERNEL_RCSID(0, "$NetBSD: pmap.c,v 1.103 2021/03/11 04:43:47 thorpej Exp $");
     67   1.53   garbled 
     68   1.53   garbled #define	PMAP_NOOPNAMES
     69    1.1      matt 
     70   1.98       rin #ifdef _KERNEL_OPT
     71    1.1      matt #include "opt_altivec.h"
     72   1.57      matt #include "opt_multiprocessor.h"
     73    1.1      matt #include "opt_pmap.h"
     74   1.98       rin #include "opt_ppcarch.h"
     75   1.98       rin #endif
     76   1.57      matt 
     77    1.1      matt #include <sys/param.h>
     78    1.1      matt #include <sys/proc.h>
     79    1.1      matt #include <sys/pool.h>
     80    1.1      matt #include <sys/queue.h>
     81    1.1      matt #include <sys/device.h>		/* for evcnt */
     82    1.1      matt #include <sys/systm.h>
     83   1.50        ad #include <sys/atomic.h>
     84    1.1      matt 
     85    1.1      matt #include <uvm/uvm.h>
     86   1.94    cherry #include <uvm/uvm_physseg.h>
     87    1.1      matt 
     88    1.1      matt #include <machine/powerpc.h>
     89   1.80      matt #include <powerpc/bat.h>
     90   1.80      matt #include <powerpc/pcb.h>
     91   1.80      matt #include <powerpc/psl.h>
     92    1.1      matt #include <powerpc/spr.h>
     93   1.71      matt #include <powerpc/oea/spr.h>
     94   1.71      matt #include <powerpc/oea/sr_601.h>
     95    1.1      matt 
     96    1.1      matt #ifdef ALTIVEC
     97   1.86      matt extern int pmap_use_altivec;
     98    1.1      matt #endif
     99    1.1      matt 
    100   1.21   aymeric #ifdef PMAP_MEMLIMIT
    101   1.53   garbled static paddr_t pmap_memlimit = PMAP_MEMLIMIT;
    102   1.21   aymeric #else
    103   1.53   garbled static paddr_t pmap_memlimit = -PAGE_SIZE;		/* there is no limit */
    104   1.21   aymeric #endif
    105    1.1      matt 
    106   1.86      matt extern struct pmap kernel_pmap_;
    107   1.86      matt static unsigned int pmap_pages_stolen;
    108   1.86      matt static u_long pmap_pte_valid;
    109    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
    110   1.86      matt static u_long pmap_pvo_enter_depth;
    111   1.86      matt static u_long pmap_pvo_remove_depth;
    112    1.1      matt #endif
    113    1.1      matt 
    114    1.1      matt #ifndef MSGBUFADDR
    115    1.1      matt extern paddr_t msgbuf_paddr;
    116    1.1      matt #endif
    117    1.1      matt 
    118    1.1      matt static struct mem_region *mem, *avail;
    119    1.1      matt static u_int mem_cnt, avail_cnt;
    120    1.1      matt 
    121   1.53   garbled #if !defined(PMAP_OEA64) && !defined(PMAP_OEA64_BRIDGE)
    122   1.53   garbled # define	PMAP_OEA 1
    123   1.53   garbled #endif
    124   1.53   garbled 
    125   1.53   garbled #if defined(PMAP_OEA)
    126   1.53   garbled #define	_PRIxpte	"lx"
    127   1.53   garbled #else
    128   1.53   garbled #define	_PRIxpte	PRIx64
    129   1.53   garbled #endif
    130   1.53   garbled #define	_PRIxpa		"lx"
    131   1.53   garbled #define	_PRIxva		"lx"
    132   1.54   mlelstv #define	_PRIsr  	"lx"
    133   1.53   garbled 
    134   1.76      matt #ifdef PMAP_NEEDS_FIXUP
    135   1.53   garbled #if defined(PMAP_OEA)
    136   1.53   garbled #define	PMAPNAME(name)	pmap32_##name
    137   1.53   garbled #elif defined(PMAP_OEA64)
    138   1.53   garbled #define	PMAPNAME(name)	pmap64_##name
    139   1.53   garbled #elif defined(PMAP_OEA64_BRIDGE)
    140   1.53   garbled #define	PMAPNAME(name)	pmap64bridge_##name
    141   1.53   garbled #else
    142   1.53   garbled #error unknown variant for pmap
    143   1.53   garbled #endif
    144   1.76      matt #endif /* PMAP_NEEDS_FIXUP */
    145   1.53   garbled 
    146   1.76      matt #ifdef PMAPNAME
    147   1.53   garbled #define	STATIC			static
    148   1.53   garbled #define pmap_pte_spill		PMAPNAME(pte_spill)
    149   1.53   garbled #define pmap_real_memory	PMAPNAME(real_memory)
    150   1.53   garbled #define pmap_init		PMAPNAME(init)
    151   1.53   garbled #define pmap_virtual_space	PMAPNAME(virtual_space)
    152   1.53   garbled #define pmap_create		PMAPNAME(create)
    153   1.53   garbled #define pmap_reference		PMAPNAME(reference)
    154   1.53   garbled #define pmap_destroy		PMAPNAME(destroy)
    155   1.53   garbled #define pmap_copy		PMAPNAME(copy)
    156   1.53   garbled #define pmap_update		PMAPNAME(update)
    157   1.53   garbled #define pmap_enter		PMAPNAME(enter)
    158   1.53   garbled #define pmap_remove		PMAPNAME(remove)
    159   1.53   garbled #define pmap_kenter_pa		PMAPNAME(kenter_pa)
    160   1.53   garbled #define pmap_kremove		PMAPNAME(kremove)
    161   1.53   garbled #define pmap_extract		PMAPNAME(extract)
    162   1.53   garbled #define pmap_protect		PMAPNAME(protect)
    163   1.53   garbled #define pmap_unwire		PMAPNAME(unwire)
    164   1.53   garbled #define pmap_page_protect	PMAPNAME(page_protect)
    165   1.53   garbled #define pmap_query_bit		PMAPNAME(query_bit)
    166   1.53   garbled #define pmap_clear_bit		PMAPNAME(clear_bit)
    167   1.53   garbled 
    168   1.53   garbled #define pmap_activate		PMAPNAME(activate)
    169   1.53   garbled #define pmap_deactivate		PMAPNAME(deactivate)
    170   1.53   garbled 
    171   1.53   garbled #define pmap_pinit		PMAPNAME(pinit)
    172   1.53   garbled #define pmap_procwr		PMAPNAME(procwr)
    173   1.53   garbled 
    174   1.86      matt #define pmap_pool		PMAPNAME(pool)
    175   1.86      matt #define pmap_upvo_pool		PMAPNAME(upvo_pool)
    176   1.86      matt #define pmap_mpvo_pool		PMAPNAME(mpvo_pool)
    177   1.86      matt #define pmap_pvo_table		PMAPNAME(pvo_table)
    178   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
    179   1.53   garbled #define pmap_pte_print		PMAPNAME(pte_print)
    180   1.53   garbled #define pmap_pteg_check		PMAPNAME(pteg_check)
    181   1.53   garbled #define pmap_print_mmruregs	PMAPNAME(print_mmuregs)
    182   1.53   garbled #define pmap_print_pte		PMAPNAME(print_pte)
    183   1.53   garbled #define pmap_pteg_dist		PMAPNAME(pteg_dist)
    184   1.53   garbled #endif
    185   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK)
    186   1.53   garbled #define	pmap_pvo_verify		PMAPNAME(pvo_verify)
    187   1.56       phx #define pmapcheck		PMAPNAME(check)
    188   1.56       phx #endif
    189   1.56       phx #if defined(DEBUG) || defined(PMAPDEBUG)
    190   1.56       phx #define pmapdebug		PMAPNAME(debug)
    191   1.53   garbled #endif
    192   1.53   garbled #define pmap_steal_memory	PMAPNAME(steal_memory)
    193   1.53   garbled #define pmap_bootstrap		PMAPNAME(bootstrap)
    194  1.100       rin #define pmap_bootstrap1		PMAPNAME(bootstrap1)
    195  1.100       rin #define pmap_bootstrap2		PMAPNAME(bootstrap2)
    196   1.53   garbled #else
    197   1.53   garbled #define	STATIC			/* nothing */
    198   1.53   garbled #endif /* PMAPNAME */
    199   1.53   garbled 
    200   1.53   garbled STATIC int pmap_pte_spill(struct pmap *, vaddr_t, bool);
    201   1.53   garbled STATIC void pmap_real_memory(paddr_t *, psize_t *);
    202   1.53   garbled STATIC void pmap_init(void);
    203   1.53   garbled STATIC void pmap_virtual_space(vaddr_t *, vaddr_t *);
    204   1.53   garbled STATIC pmap_t pmap_create(void);
    205   1.53   garbled STATIC void pmap_reference(pmap_t);
    206   1.53   garbled STATIC void pmap_destroy(pmap_t);
    207   1.53   garbled STATIC void pmap_copy(pmap_t, pmap_t, vaddr_t, vsize_t, vaddr_t);
    208   1.53   garbled STATIC void pmap_update(pmap_t);
    209   1.65    cegger STATIC int pmap_enter(pmap_t, vaddr_t, paddr_t, vm_prot_t, u_int);
    210   1.53   garbled STATIC void pmap_remove(pmap_t, vaddr_t, vaddr_t);
    211   1.68    cegger STATIC void pmap_kenter_pa(vaddr_t, paddr_t, vm_prot_t, u_int);
    212   1.53   garbled STATIC void pmap_kremove(vaddr_t, vsize_t);
    213   1.53   garbled STATIC bool pmap_extract(pmap_t, vaddr_t, paddr_t *);
    214   1.53   garbled 
    215   1.53   garbled STATIC void pmap_protect(pmap_t, vaddr_t, vaddr_t, vm_prot_t);
    216   1.53   garbled STATIC void pmap_unwire(pmap_t, vaddr_t);
    217   1.53   garbled STATIC void pmap_page_protect(struct vm_page *, vm_prot_t);
    218   1.53   garbled STATIC bool pmap_query_bit(struct vm_page *, int);
    219   1.53   garbled STATIC bool pmap_clear_bit(struct vm_page *, int);
    220   1.53   garbled 
    221   1.53   garbled STATIC void pmap_activate(struct lwp *);
    222   1.53   garbled STATIC void pmap_deactivate(struct lwp *);
    223   1.53   garbled 
    224   1.53   garbled STATIC void pmap_pinit(pmap_t pm);
    225   1.53   garbled STATIC void pmap_procwr(struct proc *, vaddr_t, size_t);
    226   1.53   garbled 
    227   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
    228   1.53   garbled STATIC void pmap_pte_print(volatile struct pte *);
    229   1.53   garbled STATIC void pmap_pteg_check(void);
    230   1.53   garbled STATIC void pmap_print_mmuregs(void);
    231   1.53   garbled STATIC void pmap_print_pte(pmap_t, vaddr_t);
    232   1.53   garbled STATIC void pmap_pteg_dist(void);
    233   1.53   garbled #endif
    234   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK)
    235   1.53   garbled STATIC void pmap_pvo_verify(void);
    236   1.53   garbled #endif
    237   1.53   garbled STATIC vaddr_t pmap_steal_memory(vsize_t, vaddr_t *, vaddr_t *);
    238   1.53   garbled STATIC void pmap_bootstrap(paddr_t, paddr_t);
    239  1.100       rin STATIC void pmap_bootstrap1(paddr_t, paddr_t);
    240  1.100       rin STATIC void pmap_bootstrap2(void);
    241   1.53   garbled 
    242   1.53   garbled #ifdef PMAPNAME
    243   1.53   garbled const struct pmap_ops PMAPNAME(ops) = {
    244   1.53   garbled 	.pmapop_pte_spill = pmap_pte_spill,
    245   1.53   garbled 	.pmapop_real_memory = pmap_real_memory,
    246   1.53   garbled 	.pmapop_init = pmap_init,
    247   1.53   garbled 	.pmapop_virtual_space = pmap_virtual_space,
    248   1.53   garbled 	.pmapop_create = pmap_create,
    249   1.53   garbled 	.pmapop_reference = pmap_reference,
    250   1.53   garbled 	.pmapop_destroy = pmap_destroy,
    251   1.53   garbled 	.pmapop_copy = pmap_copy,
    252   1.53   garbled 	.pmapop_update = pmap_update,
    253   1.53   garbled 	.pmapop_enter = pmap_enter,
    254   1.53   garbled 	.pmapop_remove = pmap_remove,
    255   1.53   garbled 	.pmapop_kenter_pa = pmap_kenter_pa,
    256   1.53   garbled 	.pmapop_kremove = pmap_kremove,
    257   1.53   garbled 	.pmapop_extract = pmap_extract,
    258   1.53   garbled 	.pmapop_protect = pmap_protect,
    259   1.53   garbled 	.pmapop_unwire = pmap_unwire,
    260   1.53   garbled 	.pmapop_page_protect = pmap_page_protect,
    261   1.53   garbled 	.pmapop_query_bit = pmap_query_bit,
    262   1.53   garbled 	.pmapop_clear_bit = pmap_clear_bit,
    263   1.53   garbled 	.pmapop_activate = pmap_activate,
    264   1.53   garbled 	.pmapop_deactivate = pmap_deactivate,
    265   1.53   garbled 	.pmapop_pinit = pmap_pinit,
    266   1.53   garbled 	.pmapop_procwr = pmap_procwr,
    267   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
    268   1.53   garbled 	.pmapop_pte_print = pmap_pte_print,
    269   1.53   garbled 	.pmapop_pteg_check = pmap_pteg_check,
    270   1.53   garbled 	.pmapop_print_mmuregs = pmap_print_mmuregs,
    271   1.53   garbled 	.pmapop_print_pte = pmap_print_pte,
    272   1.53   garbled 	.pmapop_pteg_dist = pmap_pteg_dist,
    273   1.53   garbled #else
    274   1.53   garbled 	.pmapop_pte_print = NULL,
    275   1.53   garbled 	.pmapop_pteg_check = NULL,
    276   1.53   garbled 	.pmapop_print_mmuregs = NULL,
    277   1.53   garbled 	.pmapop_print_pte = NULL,
    278   1.53   garbled 	.pmapop_pteg_dist = NULL,
    279   1.53   garbled #endif
    280   1.53   garbled #if defined(DEBUG) || defined(PMAPCHECK)
    281   1.53   garbled 	.pmapop_pvo_verify = pmap_pvo_verify,
    282   1.53   garbled #else
    283   1.53   garbled 	.pmapop_pvo_verify = NULL,
    284    1.1      matt #endif
    285   1.53   garbled 	.pmapop_steal_memory = pmap_steal_memory,
    286   1.53   garbled 	.pmapop_bootstrap = pmap_bootstrap,
    287  1.101   thorpej 	.pmapop_bootstrap1 = pmap_bootstrap1,
    288  1.101   thorpej 	.pmapop_bootstrap2 = pmap_bootstrap2,
    289   1.53   garbled };
    290   1.53   garbled #endif /* !PMAPNAME */
    291    1.1      matt 
    292    1.1      matt /*
    293   1.38   sanjayl  * The following structure is aligned to 32 bytes
    294    1.1      matt  */
    295    1.1      matt struct pvo_entry {
    296    1.1      matt 	LIST_ENTRY(pvo_entry) pvo_vlink;	/* Link to common virt page */
    297    1.1      matt 	TAILQ_ENTRY(pvo_entry) pvo_olink;	/* Link to overflow entry */
    298    1.1      matt 	struct pte pvo_pte;			/* Prebuilt PTE */
    299    1.1      matt 	pmap_t pvo_pmap;			/* ptr to owning pmap */
    300    1.1      matt 	vaddr_t pvo_vaddr;			/* VA of entry */
    301    1.1      matt #define	PVO_PTEGIDX_MASK	0x0007		/* which PTEG slot */
    302    1.1      matt #define	PVO_PTEGIDX_VALID	0x0008		/* slot is valid */
    303    1.1      matt #define	PVO_WIRED		0x0010		/* PVO entry is wired */
    304    1.1      matt #define	PVO_MANAGED		0x0020		/* PVO e. for managed page */
    305    1.1      matt #define	PVO_EXECUTABLE		0x0040		/* PVO e. for executable page */
    306   1.39      matt #define	PVO_WIRED_P(pvo)	((pvo)->pvo_vaddr & PVO_WIRED)
    307   1.39      matt #define	PVO_MANAGED_P(pvo)	((pvo)->pvo_vaddr & PVO_MANAGED)
    308   1.39      matt #define	PVO_EXECUTABLE_P(pvo)	((pvo)->pvo_vaddr & PVO_EXECUTABLE)
    309   1.12      matt #define	PVO_ENTER_INSERT	0		/* PVO has been removed */
    310   1.12      matt #define	PVO_SPILL_UNSET		1		/* PVO has been evicted */
    311   1.12      matt #define	PVO_SPILL_SET		2		/* PVO has been spilled */
    312   1.12      matt #define	PVO_SPILL_INSERT	3		/* PVO has been inserted */
    313   1.12      matt #define	PVO_PMAP_PAGE_PROTECT	4		/* PVO has changed */
    314   1.12      matt #define	PVO_PMAP_PROTECT	5		/* PVO has changed */
    315   1.12      matt #define	PVO_REMOVE		6		/* PVO has been removed */
    316   1.12      matt #define	PVO_WHERE_MASK		15
    317   1.12      matt #define	PVO_WHERE_SHFT		8
    318   1.38   sanjayl } __attribute__ ((aligned (32)));
    319    1.1      matt #define	PVO_VADDR(pvo)		((pvo)->pvo_vaddr & ~ADDR_POFF)
    320    1.1      matt #define	PVO_PTEGIDX_GET(pvo)	((pvo)->pvo_vaddr & PVO_PTEGIDX_MASK)
    321    1.1      matt #define	PVO_PTEGIDX_ISSET(pvo)	((pvo)->pvo_vaddr & PVO_PTEGIDX_VALID)
    322    1.1      matt #define	PVO_PTEGIDX_CLR(pvo)	\
    323    1.1      matt 	((void)((pvo)->pvo_vaddr &= ~(PVO_PTEGIDX_VALID|PVO_PTEGIDX_MASK)))
    324    1.1      matt #define	PVO_PTEGIDX_SET(pvo,i)	\
    325    1.1      matt 	((void)((pvo)->pvo_vaddr |= (i)|PVO_PTEGIDX_VALID))
    326   1.12      matt #define	PVO_WHERE(pvo,w)	\
    327   1.12      matt 	((pvo)->pvo_vaddr &= ~(PVO_WHERE_MASK << PVO_WHERE_SHFT), \
    328   1.12      matt 	 (pvo)->pvo_vaddr |= ((PVO_ ## w) << PVO_WHERE_SHFT))
    329    1.1      matt 
    330    1.1      matt TAILQ_HEAD(pvo_tqhead, pvo_entry);
    331    1.1      matt struct pvo_tqhead *pmap_pvo_table;	/* pvo entries by ptegroup index */
    332   1.53   garbled static struct pvo_head pmap_pvo_kunmanaged = LIST_HEAD_INITIALIZER(pmap_pvo_kunmanaged);	/* list of unmanaged pages */
    333   1.53   garbled static struct pvo_head pmap_pvo_unmanaged = LIST_HEAD_INITIALIZER(pmap_pvo_unmanaged);	/* list of unmanaged pages */
    334    1.1      matt 
    335    1.1      matt struct pool pmap_pool;		/* pool for pmap structures */
    336    1.1      matt struct pool pmap_upvo_pool;	/* pool for pvo entries for unmanaged pages */
    337    1.1      matt struct pool pmap_mpvo_pool;	/* pool for pvo entries for managed pages */
    338    1.1      matt 
    339    1.1      matt /*
    340    1.1      matt  * We keep a cache of unmanaged pages to be used for pvo entries for
    341    1.1      matt  * unmanaged pages.
    342    1.1      matt  */
    343    1.1      matt struct pvo_page {
    344    1.1      matt 	SIMPLEQ_ENTRY(pvo_page) pvop_link;
    345    1.1      matt };
    346    1.1      matt SIMPLEQ_HEAD(pvop_head, pvo_page);
    347   1.53   garbled static struct pvop_head pmap_upvop_head = SIMPLEQ_HEAD_INITIALIZER(pmap_upvop_head);
    348   1.53   garbled static struct pvop_head pmap_mpvop_head = SIMPLEQ_HEAD_INITIALIZER(pmap_mpvop_head);
    349   1.86      matt static u_long pmap_upvop_free;
    350   1.86      matt static u_long pmap_upvop_maxfree;
    351   1.86      matt static u_long pmap_mpvop_free;
    352   1.86      matt static u_long pmap_mpvop_maxfree;
    353    1.1      matt 
    354   1.53   garbled static void *pmap_pool_ualloc(struct pool *, int);
    355   1.53   garbled static void *pmap_pool_malloc(struct pool *, int);
    356    1.1      matt 
    357   1.53   garbled static void pmap_pool_ufree(struct pool *, void *);
    358   1.53   garbled static void pmap_pool_mfree(struct pool *, void *);
    359    1.1      matt 
    360    1.1      matt static struct pool_allocator pmap_pool_mallocator = {
    361   1.43   garbled 	.pa_alloc = pmap_pool_malloc,
    362   1.43   garbled 	.pa_free = pmap_pool_mfree,
    363   1.43   garbled 	.pa_pagesz = 0,
    364    1.1      matt };
    365    1.1      matt 
    366    1.1      matt static struct pool_allocator pmap_pool_uallocator = {
    367   1.43   garbled 	.pa_alloc = pmap_pool_ualloc,
    368   1.43   garbled 	.pa_free = pmap_pool_ufree,
    369   1.43   garbled 	.pa_pagesz = 0,
    370    1.1      matt };
    371    1.1      matt 
    372    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
    373    1.2      matt void pmap_pte_print(volatile struct pte *);
    374    1.1      matt void pmap_pteg_check(void);
    375    1.1      matt void pmap_pteg_dist(void);
    376    1.1      matt void pmap_print_pte(pmap_t, vaddr_t);
    377    1.1      matt void pmap_print_mmuregs(void);
    378    1.1      matt #endif
    379    1.1      matt 
    380    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK)
    381    1.1      matt #ifdef PMAPCHECK
    382    1.1      matt int pmapcheck = 1;
    383    1.1      matt #else
    384    1.1      matt int pmapcheck = 0;
    385    1.1      matt #endif
    386    1.1      matt void pmap_pvo_verify(void);
    387   1.53   garbled static void pmap_pvo_check(const struct pvo_entry *);
    388    1.1      matt #define	PMAP_PVO_CHECK(pvo)	 		\
    389    1.1      matt 	do {					\
    390    1.1      matt 		if (pmapcheck)			\
    391    1.1      matt 			pmap_pvo_check(pvo);	\
    392    1.1      matt 	} while (0)
    393    1.1      matt #else
    394    1.1      matt #define	PMAP_PVO_CHECK(pvo)	do { } while (/*CONSTCOND*/0)
    395    1.1      matt #endif
    396   1.53   garbled static int pmap_pte_insert(int, struct pte *);
    397   1.53   garbled static int pmap_pvo_enter(pmap_t, struct pool *, struct pvo_head *,
    398    1.2      matt 	vaddr_t, paddr_t, register_t, int);
    399   1.53   garbled static void pmap_pvo_remove(struct pvo_entry *, int, struct pvo_head *);
    400   1.53   garbled static void pmap_pvo_free(struct pvo_entry *);
    401   1.53   garbled static void pmap_pvo_free_list(struct pvo_head *);
    402   1.53   garbled static struct pvo_entry *pmap_pvo_find_va(pmap_t, vaddr_t, int *);
    403   1.53   garbled static volatile struct pte *pmap_pvo_to_pte(const struct pvo_entry *, int);
    404   1.53   garbled static struct pvo_entry *pmap_pvo_reclaim(struct pmap *);
    405   1.53   garbled static void pvo_set_exec(struct pvo_entry *);
    406   1.53   garbled static void pvo_clear_exec(struct pvo_entry *);
    407    1.1      matt 
    408   1.53   garbled static void tlbia(void);
    409    1.1      matt 
    410   1.53   garbled static void pmap_release(pmap_t);
    411   1.53   garbled static paddr_t pmap_boot_find_memory(psize_t, psize_t, int);
    412    1.1      matt 
    413   1.25       chs static uint32_t pmap_pvo_reclaim_nextidx;
    414   1.25       chs #ifdef DEBUG
    415   1.25       chs static int pmap_pvo_reclaim_debugctr;
    416   1.25       chs #endif
    417   1.25       chs 
    418    1.1      matt #define	VSID_NBPW	(sizeof(uint32_t) * 8)
    419    1.1      matt static uint32_t pmap_vsid_bitmap[NPMAPS / VSID_NBPW];
    420    1.1      matt 
    421    1.1      matt static int pmap_initialized;
    422    1.1      matt 
    423    1.1      matt #if defined(DEBUG) || defined(PMAPDEBUG)
    424    1.1      matt #define	PMAPDEBUG_BOOT		0x0001
    425    1.1      matt #define	PMAPDEBUG_PTE		0x0002
    426    1.1      matt #define	PMAPDEBUG_EXEC		0x0008
    427    1.1      matt #define	PMAPDEBUG_PVOENTER	0x0010
    428    1.1      matt #define	PMAPDEBUG_PVOREMOVE	0x0020
    429    1.1      matt #define	PMAPDEBUG_ACTIVATE	0x0100
    430    1.1      matt #define	PMAPDEBUG_CREATE	0x0200
    431    1.1      matt #define	PMAPDEBUG_ENTER		0x1000
    432    1.1      matt #define	PMAPDEBUG_KENTER	0x2000
    433    1.1      matt #define	PMAPDEBUG_KREMOVE	0x4000
    434    1.1      matt #define	PMAPDEBUG_REMOVE	0x8000
    435   1.38   sanjayl 
    436    1.1      matt unsigned int pmapdebug = 0;
    437   1.38   sanjayl 
    438   1.85      matt # define DPRINTF(x, ...)	printf(x, __VA_ARGS__)
    439   1.85      matt # define DPRINTFN(n, x, ...)	do if (pmapdebug & PMAPDEBUG_ ## n) printf(x, __VA_ARGS__); while (0)
    440    1.1      matt #else
    441   1.85      matt # define DPRINTF(x, ...)	do { } while (0)
    442   1.85      matt # define DPRINTFN(n, x, ...)	do { } while (0)
    443    1.1      matt #endif
    444    1.1      matt 
    445    1.1      matt 
    446    1.1      matt #ifdef PMAPCOUNTERS
    447    1.1      matt /*
    448    1.1      matt  * From pmap_subr.c
    449    1.1      matt  */
    450   1.53   garbled extern struct evcnt pmap_evcnt_mappings;
    451   1.53   garbled extern struct evcnt pmap_evcnt_unmappings;
    452   1.53   garbled 
    453   1.53   garbled extern struct evcnt pmap_evcnt_kernel_mappings;
    454   1.53   garbled extern struct evcnt pmap_evcnt_kernel_unmappings;
    455   1.53   garbled 
    456   1.53   garbled extern struct evcnt pmap_evcnt_mappings_replaced;
    457   1.53   garbled 
    458   1.53   garbled extern struct evcnt pmap_evcnt_exec_mappings;
    459   1.53   garbled extern struct evcnt pmap_evcnt_exec_cached;
    460   1.53   garbled 
    461   1.53   garbled extern struct evcnt pmap_evcnt_exec_synced;
    462   1.53   garbled extern struct evcnt pmap_evcnt_exec_synced_clear_modify;
    463   1.53   garbled extern struct evcnt pmap_evcnt_exec_synced_pvo_remove;
    464   1.53   garbled 
    465   1.53   garbled extern struct evcnt pmap_evcnt_exec_uncached_page_protect;
    466   1.53   garbled extern struct evcnt pmap_evcnt_exec_uncached_clear_modify;
    467   1.53   garbled extern struct evcnt pmap_evcnt_exec_uncached_zero_page;
    468   1.53   garbled extern struct evcnt pmap_evcnt_exec_uncached_copy_page;
    469   1.53   garbled extern struct evcnt pmap_evcnt_exec_uncached_pvo_remove;
    470   1.53   garbled 
    471   1.53   garbled extern struct evcnt pmap_evcnt_updates;
    472   1.53   garbled extern struct evcnt pmap_evcnt_collects;
    473   1.53   garbled extern struct evcnt pmap_evcnt_copies;
    474   1.53   garbled 
    475   1.53   garbled extern struct evcnt pmap_evcnt_ptes_spilled;
    476   1.53   garbled extern struct evcnt pmap_evcnt_ptes_unspilled;
    477   1.53   garbled extern struct evcnt pmap_evcnt_ptes_evicted;
    478   1.53   garbled 
    479   1.53   garbled extern struct evcnt pmap_evcnt_ptes_primary[8];
    480   1.53   garbled extern struct evcnt pmap_evcnt_ptes_secondary[8];
    481   1.53   garbled extern struct evcnt pmap_evcnt_ptes_removed;
    482   1.53   garbled extern struct evcnt pmap_evcnt_ptes_changed;
    483   1.53   garbled extern struct evcnt pmap_evcnt_pvos_reclaimed;
    484   1.53   garbled extern struct evcnt pmap_evcnt_pvos_failed;
    485   1.53   garbled 
    486    1.1      matt extern struct evcnt pmap_evcnt_zeroed_pages;
    487    1.1      matt extern struct evcnt pmap_evcnt_copied_pages;
    488    1.1      matt extern struct evcnt pmap_evcnt_idlezeroed_pages;
    489   1.26      matt 
    490   1.53   garbled #define	PMAPCOUNT(ev)	((pmap_evcnt_ ## ev).ev_count++)
    491   1.53   garbled #define	PMAPCOUNT2(ev)	((ev).ev_count++)
    492    1.1      matt #else
    493    1.1      matt #define	PMAPCOUNT(ev)	((void) 0)
    494    1.1      matt #define	PMAPCOUNT2(ev)	((void) 0)
    495    1.1      matt #endif
    496    1.1      matt 
    497   1.35     perry #define	TLBIE(va)	__asm volatile("tlbie %0" :: "r"(va))
    498   1.38   sanjayl 
    499   1.38   sanjayl /* XXXSL: this needs to be moved to assembler */
    500   1.38   sanjayl #define	TLBIEL(va)	__asm __volatile("tlbie %0" :: "r"(va))
    501   1.38   sanjayl 
    502   1.87  kiyohara #ifdef MD_TLBSYNC
    503   1.87  kiyohara #define TLBSYNC()	MD_TLBSYNC()
    504   1.87  kiyohara #else
    505   1.35     perry #define	TLBSYNC()	__asm volatile("tlbsync")
    506   1.87  kiyohara #endif
    507   1.35     perry #define	SYNC()		__asm volatile("sync")
    508   1.35     perry #define	EIEIO()		__asm volatile("eieio")
    509   1.57      matt #define	DCBST(va)	__asm __volatile("dcbst 0,%0" :: "r"(va))
    510    1.1      matt #define	MFMSR()		mfmsr()
    511    1.1      matt #define	MTMSR(psl)	mtmsr(psl)
    512    1.1      matt #define	MFPVR()		mfpvr()
    513    1.1      matt #define	MFSRIN(va)	mfsrin(va)
    514    1.1      matt #define	MFTB()		mfrtcltbl()
    515    1.1      matt 
    516   1.92     joerg #if defined(DDB) && !defined(PMAP_OEA64)
    517   1.35     perry static inline register_t
    518    1.1      matt mfsrin(vaddr_t va)
    519    1.1      matt {
    520    1.2      matt 	register_t sr;
    521   1.35     perry 	__asm volatile ("mfsrin %0,%1" : "=r"(sr) : "r"(va));
    522    1.1      matt 	return sr;
    523    1.1      matt }
    524   1.92     joerg #endif	/* DDB && !PMAP_OEA64 */
    525   1.38   sanjayl 
    526   1.53   garbled #if defined (PMAP_OEA64_BRIDGE)
    527   1.38   sanjayl extern void mfmsr64 (register64_t *result);
    528   1.53   garbled #endif /* PMAP_OEA64_BRIDGE */
    529   1.38   sanjayl 
    530   1.50        ad #define	PMAP_LOCK()		KERNEL_LOCK(1, NULL)
    531   1.50        ad #define	PMAP_UNLOCK()		KERNEL_UNLOCK_ONE(NULL)
    532    1.1      matt 
    533   1.35     perry static inline register_t
    534    1.1      matt pmap_interrupts_off(void)
    535    1.1      matt {
    536    1.2      matt 	register_t msr = MFMSR();
    537    1.1      matt 	if (msr & PSL_EE)
    538    1.1      matt 		MTMSR(msr & ~PSL_EE);
    539    1.1      matt 	return msr;
    540    1.1      matt }
    541    1.1      matt 
    542    1.1      matt static void
    543    1.2      matt pmap_interrupts_restore(register_t msr)
    544    1.1      matt {
    545    1.1      matt 	if (msr & PSL_EE)
    546    1.1      matt 		MTMSR(msr);
    547    1.1      matt }
    548    1.1      matt 
    549   1.35     perry static inline u_int32_t
    550    1.1      matt mfrtcltbl(void)
    551    1.1      matt {
    552   1.55   garbled #ifdef PPC_OEA601
    553    1.1      matt 	if ((MFPVR() >> 16) == MPC601)
    554    1.1      matt 		return (mfrtcl() >> 7);
    555    1.1      matt 	else
    556   1.55   garbled #endif
    557    1.1      matt 		return (mftbl());
    558    1.1      matt }
    559    1.1      matt 
    560    1.1      matt /*
    561    1.1      matt  * These small routines may have to be replaced,
    562    1.1      matt  * if/when we support processors other that the 604.
    563    1.1      matt  */
    564    1.1      matt 
    565    1.1      matt void
    566    1.1      matt tlbia(void)
    567    1.1      matt {
    568   1.47  macallan 	char *i;
    569    1.1      matt 
    570    1.1      matt 	SYNC();
    571   1.53   garbled #if defined(PMAP_OEA)
    572    1.1      matt 	/*
    573    1.1      matt 	 * Why not use "tlbia"?  Because not all processors implement it.
    574    1.1      matt 	 *
    575   1.20       wiz 	 * This needs to be a per-CPU callback to do the appropriate thing
    576    1.1      matt 	 * for the CPU. XXX
    577    1.1      matt 	 */
    578   1.47  macallan 	for (i = 0; i < (char *)0x00040000; i += 0x00001000) {
    579    1.1      matt 		TLBIE(i);
    580    1.1      matt 		EIEIO();
    581    1.1      matt 		SYNC();
    582    1.1      matt 	}
    583   1.53   garbled #elif defined (PMAP_OEA64) || defined (PMAP_OEA64_BRIDGE)
    584   1.38   sanjayl 	/* This is specifically for the 970, 970UM v1.6 pp. 140. */
    585   1.51   garbled 	for (i = 0; i <= (char *)0xFF000; i += 0x00001000) {
    586   1.38   sanjayl 		TLBIEL(i);
    587   1.38   sanjayl 		EIEIO();
    588   1.38   sanjayl 		SYNC();
    589   1.38   sanjayl 	}
    590   1.38   sanjayl #endif
    591    1.1      matt 	TLBSYNC();
    592    1.1      matt 	SYNC();
    593    1.1      matt }
    594    1.1      matt 
    595   1.35     perry static inline register_t
    596    1.2      matt va_to_vsid(const struct pmap *pm, vaddr_t addr)
    597    1.1      matt {
    598   1.18      matt 	/*
    599  1.102   thorpej 	 * Rather than searching the STE groups for the VSID or extracting
    600  1.102   thorpej 	 * it from the SR, we know how we generate that from the ESID and
    601  1.102   thorpej 	 * so do that.
    602  1.102   thorpej 	 *
    603  1.102   thorpej 	 * This makes the code the same for OEA and OEA64, and also allows
    604  1.102   thorpej 	 * us to generate a correct-for-that-address-space VSID even if the
    605  1.102   thorpej 	 * pmap contains a different SR value at any given moment (e.g.
    606  1.102   thorpej 	 * kernel pmap on a 601 that is using I/O segments).
    607   1.18      matt 	 */
    608   1.18      matt 	return VSID_MAKE(addr >> ADDR_SR_SHFT, pm->pm_vsid) >> SR_VSID_SHFT;
    609    1.1      matt }
    610    1.1      matt 
    611   1.35     perry static inline register_t
    612    1.2      matt va_to_pteg(const struct pmap *pm, vaddr_t addr)
    613    1.1      matt {
    614    1.2      matt 	register_t hash;
    615    1.2      matt 
    616    1.2      matt 	hash = va_to_vsid(pm, addr) ^ ((addr & ADDR_PIDX) >> ADDR_PIDX_SHFT);
    617    1.1      matt 	return hash & pmap_pteg_mask;
    618    1.1      matt }
    619    1.1      matt 
    620    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
    621    1.1      matt /*
    622    1.1      matt  * Given a PTE in the page table, calculate the VADDR that hashes to it.
    623    1.1      matt  * The only bit of magic is that the top 4 bits of the address doesn't
    624    1.1      matt  * technically exist in the PTE.  But we know we reserved 4 bits of the
    625    1.1      matt  * VSID for it so that's how we get it.
    626    1.1      matt  */
    627    1.1      matt static vaddr_t
    628    1.2      matt pmap_pte_to_va(volatile const struct pte *pt)
    629    1.1      matt {
    630    1.1      matt 	vaddr_t va;
    631    1.1      matt 	uintptr_t ptaddr = (uintptr_t) pt;
    632    1.1      matt 
    633    1.1      matt 	if (pt->pte_hi & PTE_HID)
    634    1.2      matt 		ptaddr ^= (pmap_pteg_mask * sizeof(struct pteg));
    635    1.1      matt 
    636   1.18      matt 	/* PPC Bits 10-19  PPC64 Bits 42-51 */
    637   1.53   garbled #if defined(PMAP_OEA)
    638    1.4      matt 	va = ((pt->pte_hi >> PTE_VSID_SHFT) ^ (ptaddr / sizeof(struct pteg))) & 0x3ff;
    639   1.53   garbled #elif defined (PMAP_OEA64) || defined (PMAP_OEA64_BRIDGE)
    640   1.38   sanjayl 	va = ((pt->pte_hi >> PTE_VSID_SHFT) ^ (ptaddr / sizeof(struct pteg))) & 0x7ff;
    641   1.38   sanjayl #endif
    642    1.1      matt 	va <<= ADDR_PIDX_SHFT;
    643    1.1      matt 
    644   1.18      matt 	/* PPC Bits 4-9  PPC64 Bits 36-41 */
    645    1.1      matt 	va |= (pt->pte_hi & PTE_API) << ADDR_API_SHFT;
    646    1.1      matt 
    647   1.53   garbled #if defined(PMAP_OEA64)
    648   1.18      matt 	/* PPC63 Bits 0-35 */
    649   1.18      matt 	/* va |= VSID_TO_SR(pt->pte_hi >> PTE_VSID_SHFT) << ADDR_SR_SHFT; */
    650   1.53   garbled #elif defined(PMAP_OEA) || defined(PMAP_OEA64_BRIDGE)
    651    1.1      matt 	/* PPC Bits 0-3 */
    652    1.1      matt 	va |= VSID_TO_SR(pt->pte_hi >> PTE_VSID_SHFT) << ADDR_SR_SHFT;
    653   1.18      matt #endif
    654    1.1      matt 
    655    1.1      matt 	return va;
    656    1.1      matt }
    657    1.1      matt #endif
    658    1.1      matt 
    659   1.35     perry static inline struct pvo_head *
    660    1.1      matt pa_to_pvoh(paddr_t pa, struct vm_page **pg_p)
    661    1.1      matt {
    662    1.1      matt 	struct vm_page *pg;
    663   1.72  uebayasi 	struct vm_page_md *md;
    664    1.1      matt 
    665    1.1      matt 	pg = PHYS_TO_VM_PAGE(pa);
    666    1.1      matt 	if (pg_p != NULL)
    667    1.1      matt 		*pg_p = pg;
    668    1.1      matt 	if (pg == NULL)
    669    1.1      matt 		return &pmap_pvo_unmanaged;
    670   1.72  uebayasi 	md = VM_PAGE_TO_MD(pg);
    671   1.72  uebayasi 	return &md->mdpg_pvoh;
    672    1.1      matt }
    673    1.1      matt 
    674   1.35     perry static inline struct pvo_head *
    675    1.1      matt vm_page_to_pvoh(struct vm_page *pg)
    676    1.1      matt {
    677   1.72  uebayasi 	struct vm_page_md * const md = VM_PAGE_TO_MD(pg);
    678   1.72  uebayasi 
    679   1.72  uebayasi 	return &md->mdpg_pvoh;
    680    1.1      matt }
    681    1.1      matt 
    682    1.1      matt 
    683   1.35     perry static inline void
    684    1.1      matt pmap_attr_clear(struct vm_page *pg, int ptebit)
    685    1.1      matt {
    686   1.72  uebayasi 	struct vm_page_md * const md = VM_PAGE_TO_MD(pg);
    687   1.72  uebayasi 
    688   1.72  uebayasi 	md->mdpg_attrs &= ~ptebit;
    689    1.1      matt }
    690    1.1      matt 
    691   1.35     perry static inline int
    692    1.1      matt pmap_attr_fetch(struct vm_page *pg)
    693    1.1      matt {
    694   1.72  uebayasi 	struct vm_page_md * const md = VM_PAGE_TO_MD(pg);
    695   1.72  uebayasi 
    696   1.72  uebayasi 	return md->mdpg_attrs;
    697    1.1      matt }
    698    1.1      matt 
    699   1.35     perry static inline void
    700    1.1      matt pmap_attr_save(struct vm_page *pg, int ptebit)
    701    1.1      matt {
    702   1.72  uebayasi 	struct vm_page_md * const md = VM_PAGE_TO_MD(pg);
    703   1.72  uebayasi 
    704   1.72  uebayasi 	md->mdpg_attrs |= ptebit;
    705    1.1      matt }
    706    1.1      matt 
    707   1.35     perry static inline int
    708    1.2      matt pmap_pte_compare(const volatile struct pte *pt, const struct pte *pvo_pt)
    709    1.1      matt {
    710    1.1      matt 	if (pt->pte_hi == pvo_pt->pte_hi
    711    1.1      matt #if 0
    712    1.1      matt 	    && ((pt->pte_lo ^ pvo_pt->pte_lo) &
    713    1.1      matt 	        ~(PTE_REF|PTE_CHG)) == 0
    714    1.1      matt #endif
    715    1.1      matt 	    )
    716    1.1      matt 		return 1;
    717    1.1      matt 	return 0;
    718    1.1      matt }
    719    1.1      matt 
    720   1.35     perry static inline void
    721    1.2      matt pmap_pte_create(struct pte *pt, const struct pmap *pm, vaddr_t va, register_t pte_lo)
    722    1.1      matt {
    723    1.1      matt 	/*
    724    1.1      matt 	 * Construct the PTE.  Default to IMB initially.  Valid bit
    725    1.1      matt 	 * only gets set when the real pte is set in memory.
    726    1.1      matt 	 *
    727    1.1      matt 	 * Note: Don't set the valid bit for correct operation of tlb update.
    728    1.1      matt 	 */
    729   1.53   garbled #if defined(PMAP_OEA)
    730    1.2      matt 	pt->pte_hi = (va_to_vsid(pm, va) << PTE_VSID_SHFT)
    731    1.2      matt 	    | (((va & ADDR_PIDX) >> (ADDR_API_SHFT - PTE_API_SHFT)) & PTE_API);
    732    1.1      matt 	pt->pte_lo = pte_lo;
    733   1.79      matt #elif defined (PMAP_OEA64_BRIDGE) || defined (PMAP_OEA64)
    734   1.38   sanjayl 	pt->pte_hi = ((u_int64_t)va_to_vsid(pm, va) << PTE_VSID_SHFT)
    735   1.38   sanjayl 	    | (((va & ADDR_PIDX) >> (ADDR_API_SHFT - PTE_API_SHFT)) & PTE_API);
    736   1.38   sanjayl 	pt->pte_lo = (u_int64_t) pte_lo;
    737   1.53   garbled #endif /* PMAP_OEA */
    738    1.1      matt }
    739    1.1      matt 
    740   1.35     perry static inline void
    741    1.2      matt pmap_pte_synch(volatile struct pte *pt, struct pte *pvo_pt)
    742    1.1      matt {
    743    1.1      matt 	pvo_pt->pte_lo |= pt->pte_lo & (PTE_REF|PTE_CHG);
    744    1.1      matt }
    745    1.1      matt 
    746   1.35     perry static inline void
    747    1.2      matt pmap_pte_clear(volatile struct pte *pt, vaddr_t va, int ptebit)
    748    1.1      matt {
    749    1.1      matt 	/*
    750    1.1      matt 	 * As shown in Section 7.6.3.2.3
    751    1.1      matt 	 */
    752    1.1      matt 	pt->pte_lo &= ~ptebit;
    753    1.1      matt 	TLBIE(va);
    754    1.1      matt 	SYNC();
    755    1.1      matt 	EIEIO();
    756    1.1      matt 	TLBSYNC();
    757    1.1      matt 	SYNC();
    758   1.57      matt #ifdef MULTIPROCESSOR
    759   1.57      matt 	DCBST(pt);
    760   1.57      matt #endif
    761    1.1      matt }
    762    1.1      matt 
    763   1.35     perry static inline void
    764    1.2      matt pmap_pte_set(volatile struct pte *pt, struct pte *pvo_pt)
    765    1.1      matt {
    766    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
    767    1.1      matt 	if (pvo_pt->pte_hi & PTE_VALID)
    768    1.1      matt 		panic("pte_set: setting an already valid pte %p", pvo_pt);
    769    1.1      matt #endif
    770    1.1      matt 	pvo_pt->pte_hi |= PTE_VALID;
    771   1.38   sanjayl 
    772    1.1      matt 	/*
    773    1.1      matt 	 * Update the PTE as defined in section 7.6.3.1
    774    1.1      matt 	 * Note that the REF/CHG bits are from pvo_pt and thus should
    775    1.1      matt 	 * have been saved so this routine can restore them (if desired).
    776    1.1      matt 	 */
    777    1.1      matt 	pt->pte_lo = pvo_pt->pte_lo;
    778    1.1      matt 	EIEIO();
    779    1.1      matt 	pt->pte_hi = pvo_pt->pte_hi;
    780   1.38   sanjayl 	TLBSYNC();
    781    1.1      matt 	SYNC();
    782   1.57      matt #ifdef MULTIPROCESSOR
    783   1.57      matt 	DCBST(pt);
    784   1.57      matt #endif
    785    1.1      matt 	pmap_pte_valid++;
    786    1.1      matt }
    787    1.1      matt 
    788   1.35     perry static inline void
    789    1.2      matt pmap_pte_unset(volatile struct pte *pt, struct pte *pvo_pt, vaddr_t va)
    790    1.1      matt {
    791    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
    792    1.1      matt 	if ((pvo_pt->pte_hi & PTE_VALID) == 0)
    793    1.1      matt 		panic("pte_unset: attempt to unset an inactive pte#1 %p/%p", pvo_pt, pt);
    794    1.1      matt 	if ((pt->pte_hi & PTE_VALID) == 0)
    795    1.1      matt 		panic("pte_unset: attempt to unset an inactive pte#2 %p/%p", pvo_pt, pt);
    796    1.1      matt #endif
    797    1.1      matt 
    798    1.1      matt 	pvo_pt->pte_hi &= ~PTE_VALID;
    799    1.1      matt 	/*
    800    1.1      matt 	 * Force the ref & chg bits back into the PTEs.
    801    1.1      matt 	 */
    802    1.1      matt 	SYNC();
    803    1.1      matt 	/*
    804    1.1      matt 	 * Invalidate the pte ... (Section 7.6.3.3)
    805    1.1      matt 	 */
    806    1.1      matt 	pt->pte_hi &= ~PTE_VALID;
    807    1.1      matt 	SYNC();
    808    1.1      matt 	TLBIE(va);
    809    1.1      matt 	SYNC();
    810    1.1      matt 	EIEIO();
    811    1.1      matt 	TLBSYNC();
    812    1.1      matt 	SYNC();
    813    1.1      matt 	/*
    814    1.1      matt 	 * Save the ref & chg bits ...
    815    1.1      matt 	 */
    816    1.1      matt 	pmap_pte_synch(pt, pvo_pt);
    817    1.1      matt 	pmap_pte_valid--;
    818    1.1      matt }
    819    1.1      matt 
    820   1.35     perry static inline void
    821    1.2      matt pmap_pte_change(volatile struct pte *pt, struct pte *pvo_pt, vaddr_t va)
    822    1.1      matt {
    823    1.1      matt 	/*
    824    1.1      matt 	 * Invalidate the PTE
    825    1.1      matt 	 */
    826    1.1      matt 	pmap_pte_unset(pt, pvo_pt, va);
    827    1.1      matt 	pmap_pte_set(pt, pvo_pt);
    828    1.1      matt }
    829    1.1      matt 
    830    1.1      matt /*
    831    1.1      matt  * Try to insert the PTE @ *pvo_pt into the pmap_pteg_table at ptegidx
    832    1.1      matt  * (either primary or secondary location).
    833    1.1      matt  *
    834    1.1      matt  * Note: both the destination and source PTEs must not have PTE_VALID set.
    835    1.1      matt  */
    836    1.1      matt 
    837   1.53   garbled static int
    838    1.2      matt pmap_pte_insert(int ptegidx, struct pte *pvo_pt)
    839    1.1      matt {
    840    1.2      matt 	volatile struct pte *pt;
    841    1.1      matt 	int i;
    842    1.1      matt 
    843    1.1      matt #if defined(DEBUG)
    844   1.85      matt 	DPRINTFN(PTE, "pmap_pte_insert: idx %#x, pte %#" _PRIxpte " %#" _PRIxpte "\n",
    845   1.85      matt 		ptegidx, pvo_pt->pte_hi, pvo_pt->pte_lo);
    846    1.1      matt #endif
    847    1.1      matt 	/*
    848    1.1      matt 	 * First try primary hash.
    849    1.1      matt 	 */
    850    1.1      matt 	for (pt = pmap_pteg_table[ptegidx].pt, i = 0; i < 8; i++, pt++) {
    851    1.1      matt 		if ((pt->pte_hi & PTE_VALID) == 0) {
    852    1.1      matt 			pvo_pt->pte_hi &= ~PTE_HID;
    853    1.1      matt 			pmap_pte_set(pt, pvo_pt);
    854    1.1      matt 			return i;
    855    1.1      matt 		}
    856    1.1      matt 	}
    857    1.1      matt 
    858    1.1      matt 	/*
    859    1.1      matt 	 * Now try secondary hash.
    860    1.1      matt 	 */
    861    1.1      matt 	ptegidx ^= pmap_pteg_mask;
    862    1.1      matt 	for (pt = pmap_pteg_table[ptegidx].pt, i = 0; i < 8; i++, pt++) {
    863    1.1      matt 		if ((pt->pte_hi & PTE_VALID) == 0) {
    864    1.1      matt 			pvo_pt->pte_hi |= PTE_HID;
    865    1.1      matt 			pmap_pte_set(pt, pvo_pt);
    866    1.1      matt 			return i;
    867    1.1      matt 		}
    868    1.1      matt 	}
    869    1.1      matt 	return -1;
    870    1.1      matt }
    871    1.1      matt 
    872    1.1      matt /*
    873    1.1      matt  * Spill handler.
    874    1.1      matt  *
    875    1.1      matt  * Tries to spill a page table entry from the overflow area.
    876    1.1      matt  * This runs in either real mode (if dealing with a exception spill)
    877    1.1      matt  * or virtual mode when dealing with manually spilling one of the
    878    1.1      matt  * kernel's pte entries.  In either case, interrupts are already
    879    1.1      matt  * disabled.
    880    1.1      matt  */
    881   1.14       chs 
    882    1.1      matt int
    883   1.44   thorpej pmap_pte_spill(struct pmap *pm, vaddr_t addr, bool exec)
    884    1.1      matt {
    885    1.1      matt 	struct pvo_entry *source_pvo, *victim_pvo, *next_pvo;
    886    1.1      matt 	struct pvo_entry *pvo;
    887   1.15    dyoung 	/* XXX: gcc -- vpvoh is always set at either *1* or *2* */
    888   1.15    dyoung 	struct pvo_tqhead *pvoh, *vpvoh = NULL;
    889    1.1      matt 	int ptegidx, i, j;
    890    1.2      matt 	volatile struct pteg *pteg;
    891    1.2      matt 	volatile struct pte *pt;
    892    1.1      matt 
    893   1.50        ad 	PMAP_LOCK();
    894   1.50        ad 
    895    1.2      matt 	ptegidx = va_to_pteg(pm, addr);
    896    1.1      matt 
    897    1.1      matt 	/*
    898    1.1      matt 	 * Have to substitute some entry. Use the primary hash for this.
    899   1.12      matt 	 * Use low bits of timebase as random generator.  Make sure we are
    900   1.12      matt 	 * not picking a kernel pte for replacement.
    901    1.1      matt 	 */
    902    1.1      matt 	pteg = &pmap_pteg_table[ptegidx];
    903    1.1      matt 	i = MFTB() & 7;
    904   1.12      matt 	for (j = 0; j < 8; j++) {
    905   1.12      matt 		pt = &pteg->pt[i];
    906   1.53   garbled 		if ((pt->pte_hi & PTE_VALID) == 0)
    907   1.53   garbled 			break;
    908   1.53   garbled 		if (VSID_TO_HASH((pt->pte_hi & PTE_VSID) >> PTE_VSID_SHFT)
    909   1.53   garbled 				< PHYSMAP_VSIDBITS)
    910   1.12      matt 			break;
    911   1.12      matt 		i = (i + 1) & 7;
    912   1.12      matt 	}
    913   1.12      matt 	KASSERT(j < 8);
    914    1.1      matt 
    915    1.1      matt 	source_pvo = NULL;
    916    1.1      matt 	victim_pvo = NULL;
    917    1.1      matt 	pvoh = &pmap_pvo_table[ptegidx];
    918    1.1      matt 	TAILQ_FOREACH(pvo, pvoh, pvo_olink) {
    919    1.1      matt 
    920    1.1      matt 		/*
    921    1.1      matt 		 * We need to find pvo entry for this address...
    922    1.1      matt 		 */
    923    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
    924    1.1      matt 
    925    1.1      matt 		/*
    926    1.1      matt 		 * If we haven't found the source and we come to a PVO with
    927    1.1      matt 		 * a valid PTE, then we know we can't find it because all
    928    1.1      matt 		 * evicted PVOs always are first in the list.
    929    1.1      matt 		 */
    930    1.1      matt 		if (source_pvo == NULL && (pvo->pvo_pte.pte_hi & PTE_VALID))
    931    1.1      matt 			break;
    932    1.2      matt 		if (source_pvo == NULL && pm == pvo->pvo_pmap &&
    933    1.2      matt 		    addr == PVO_VADDR(pvo)) {
    934    1.1      matt 
    935    1.1      matt 			/*
    936    1.1      matt 			 * Now we have found the entry to be spilled into the
    937    1.1      matt 			 * pteg.  Attempt to insert it into the page table.
    938    1.1      matt 			 */
    939    1.1      matt 			j = pmap_pte_insert(ptegidx, &pvo->pvo_pte);
    940    1.1      matt 			if (j >= 0) {
    941    1.1      matt 				PVO_PTEGIDX_SET(pvo, j);
    942    1.1      matt 				PMAP_PVO_CHECK(pvo);	/* sanity check */
    943   1.12      matt 				PVO_WHERE(pvo, SPILL_INSERT);
    944    1.1      matt 				pvo->pvo_pmap->pm_evictions--;
    945    1.1      matt 				PMAPCOUNT(ptes_spilled);
    946    1.1      matt 				PMAPCOUNT2(((pvo->pvo_pte.pte_hi & PTE_HID)
    947    1.1      matt 				    ? pmap_evcnt_ptes_secondary
    948    1.1      matt 				    : pmap_evcnt_ptes_primary)[j]);
    949    1.1      matt 
    950    1.1      matt 				/*
    951    1.1      matt 				 * Since we keep the evicted entries at the
    952    1.1      matt 				 * from of the PVO list, we need move this
    953    1.1      matt 				 * (now resident) PVO after the evicted
    954    1.1      matt 				 * entries.
    955    1.1      matt 				 */
    956    1.1      matt 				next_pvo = TAILQ_NEXT(pvo, pvo_olink);
    957    1.1      matt 
    958    1.1      matt 				/*
    959    1.5      matt 				 * If we don't have to move (either we were the
    960    1.5      matt 				 * last entry or the next entry was valid),
    961    1.1      matt 				 * don't change our position.  Otherwise
    962    1.1      matt 				 * move ourselves to the tail of the queue.
    963    1.1      matt 				 */
    964    1.1      matt 				if (next_pvo != NULL &&
    965    1.1      matt 				    !(next_pvo->pvo_pte.pte_hi & PTE_VALID)) {
    966    1.1      matt 					TAILQ_REMOVE(pvoh, pvo, pvo_olink);
    967    1.1      matt 					TAILQ_INSERT_TAIL(pvoh, pvo, pvo_olink);
    968    1.1      matt 				}
    969   1.50        ad 				PMAP_UNLOCK();
    970    1.1      matt 				return 1;
    971    1.1      matt 			}
    972    1.1      matt 			source_pvo = pvo;
    973   1.39      matt 			if (exec && !PVO_EXECUTABLE_P(source_pvo)) {
    974   1.96       rin 				PMAP_UNLOCK();
    975   1.14       chs 				return 0;
    976   1.14       chs 			}
    977    1.1      matt 			if (victim_pvo != NULL)
    978    1.1      matt 				break;
    979    1.1      matt 		}
    980    1.1      matt 
    981    1.1      matt 		/*
    982    1.1      matt 		 * We also need the pvo entry of the victim we are replacing
    983    1.1      matt 		 * so save the R & C bits of the PTE.
    984    1.1      matt 		 */
    985    1.1      matt 		if ((pt->pte_hi & PTE_HID) == 0 && victim_pvo == NULL &&
    986    1.1      matt 		    pmap_pte_compare(pt, &pvo->pvo_pte)) {
    987   1.15    dyoung 			vpvoh = pvoh;			/* *1* */
    988    1.1      matt 			victim_pvo = pvo;
    989    1.1      matt 			if (source_pvo != NULL)
    990    1.1      matt 				break;
    991    1.1      matt 		}
    992    1.1      matt 	}
    993    1.1      matt 
    994    1.1      matt 	if (source_pvo == NULL) {
    995    1.1      matt 		PMAPCOUNT(ptes_unspilled);
    996   1.50        ad 		PMAP_UNLOCK();
    997    1.1      matt 		return 0;
    998    1.1      matt 	}
    999    1.1      matt 
   1000    1.1      matt 	if (victim_pvo == NULL) {
   1001    1.1      matt 		if ((pt->pte_hi & PTE_HID) == 0)
   1002    1.1      matt 			panic("pmap_pte_spill: victim p-pte (%p) has "
   1003    1.1      matt 			    "no pvo entry!", pt);
   1004    1.1      matt 
   1005    1.1      matt 		/*
   1006    1.1      matt 		 * If this is a secondary PTE, we need to search
   1007    1.1      matt 		 * its primary pvo bucket for the matching PVO.
   1008    1.1      matt 		 */
   1009   1.15    dyoung 		vpvoh = &pmap_pvo_table[ptegidx ^ pmap_pteg_mask]; /* *2* */
   1010    1.1      matt 		TAILQ_FOREACH(pvo, vpvoh, pvo_olink) {
   1011    1.1      matt 			PMAP_PVO_CHECK(pvo);		/* sanity check */
   1012    1.1      matt 
   1013    1.1      matt 			/*
   1014    1.1      matt 			 * We also need the pvo entry of the victim we are
   1015    1.1      matt 			 * replacing so save the R & C bits of the PTE.
   1016    1.1      matt 			 */
   1017    1.1      matt 			if (pmap_pte_compare(pt, &pvo->pvo_pte)) {
   1018    1.1      matt 				victim_pvo = pvo;
   1019    1.1      matt 				break;
   1020    1.1      matt 			}
   1021    1.1      matt 		}
   1022    1.1      matt 		if (victim_pvo == NULL)
   1023    1.1      matt 			panic("pmap_pte_spill: victim s-pte (%p) has "
   1024    1.1      matt 			    "no pvo entry!", pt);
   1025    1.1      matt 	}
   1026    1.1      matt 
   1027    1.1      matt 	/*
   1028   1.12      matt 	 * The victim should be not be a kernel PVO/PTE entry.
   1029   1.12      matt 	 */
   1030   1.12      matt 	KASSERT(victim_pvo->pvo_pmap != pmap_kernel());
   1031   1.12      matt 	KASSERT(PVO_PTEGIDX_ISSET(victim_pvo));
   1032   1.12      matt 	KASSERT(PVO_PTEGIDX_GET(victim_pvo) == i);
   1033   1.12      matt 
   1034   1.12      matt 	/*
   1035    1.1      matt 	 * We are invalidating the TLB entry for the EA for the
   1036    1.1      matt 	 * we are replacing even though its valid; If we don't
   1037    1.1      matt 	 * we lose any ref/chg bit changes contained in the TLB
   1038    1.1      matt 	 * entry.
   1039    1.1      matt 	 */
   1040    1.1      matt 	source_pvo->pvo_pte.pte_hi &= ~PTE_HID;
   1041    1.1      matt 
   1042    1.1      matt 	/*
   1043    1.1      matt 	 * To enforce the PVO list ordering constraint that all
   1044    1.1      matt 	 * evicted entries should come before all valid entries,
   1045    1.1      matt 	 * move the source PVO to the tail of its list and the
   1046    1.1      matt 	 * victim PVO to the head of its list (which might not be
   1047    1.1      matt 	 * the same list, if the victim was using the secondary hash).
   1048    1.1      matt 	 */
   1049    1.1      matt 	TAILQ_REMOVE(pvoh, source_pvo, pvo_olink);
   1050    1.1      matt 	TAILQ_INSERT_TAIL(pvoh, source_pvo, pvo_olink);
   1051    1.1      matt 	TAILQ_REMOVE(vpvoh, victim_pvo, pvo_olink);
   1052    1.1      matt 	TAILQ_INSERT_HEAD(vpvoh, victim_pvo, pvo_olink);
   1053    1.1      matt 	pmap_pte_unset(pt, &victim_pvo->pvo_pte, victim_pvo->pvo_vaddr);
   1054    1.1      matt 	pmap_pte_set(pt, &source_pvo->pvo_pte);
   1055    1.1      matt 	victim_pvo->pvo_pmap->pm_evictions++;
   1056    1.1      matt 	source_pvo->pvo_pmap->pm_evictions--;
   1057   1.12      matt 	PVO_WHERE(victim_pvo, SPILL_UNSET);
   1058   1.12      matt 	PVO_WHERE(source_pvo, SPILL_SET);
   1059    1.1      matt 
   1060    1.1      matt 	PVO_PTEGIDX_CLR(victim_pvo);
   1061    1.1      matt 	PVO_PTEGIDX_SET(source_pvo, i);
   1062    1.1      matt 	PMAPCOUNT2(pmap_evcnt_ptes_primary[i]);
   1063    1.1      matt 	PMAPCOUNT(ptes_spilled);
   1064    1.1      matt 	PMAPCOUNT(ptes_evicted);
   1065    1.1      matt 	PMAPCOUNT(ptes_removed);
   1066    1.1      matt 
   1067    1.1      matt 	PMAP_PVO_CHECK(victim_pvo);
   1068    1.1      matt 	PMAP_PVO_CHECK(source_pvo);
   1069   1.50        ad 
   1070   1.50        ad 	PMAP_UNLOCK();
   1071    1.1      matt 	return 1;
   1072    1.1      matt }
   1073    1.1      matt 
   1074    1.1      matt /*
   1075    1.1      matt  * Restrict given range to physical memory
   1076    1.1      matt  */
   1077    1.1      matt void
   1078    1.1      matt pmap_real_memory(paddr_t *start, psize_t *size)
   1079    1.1      matt {
   1080    1.1      matt 	struct mem_region *mp;
   1081    1.1      matt 
   1082    1.1      matt 	for (mp = mem; mp->size; mp++) {
   1083    1.1      matt 		if (*start + *size > mp->start
   1084    1.1      matt 		    && *start < mp->start + mp->size) {
   1085    1.1      matt 			if (*start < mp->start) {
   1086    1.1      matt 				*size -= mp->start - *start;
   1087    1.1      matt 				*start = mp->start;
   1088    1.1      matt 			}
   1089    1.1      matt 			if (*start + *size > mp->start + mp->size)
   1090    1.1      matt 				*size = mp->start + mp->size - *start;
   1091    1.1      matt 			return;
   1092    1.1      matt 		}
   1093    1.1      matt 	}
   1094    1.1      matt 	*size = 0;
   1095    1.1      matt }
   1096    1.1      matt 
   1097    1.1      matt /*
   1098    1.1      matt  * Initialize anything else for pmap handling.
   1099    1.1      matt  * Called during vm_init().
   1100    1.1      matt  */
   1101    1.1      matt void
   1102    1.1      matt pmap_init(void)
   1103    1.1      matt {
   1104    1.1      matt 	pool_init(&pmap_mpvo_pool, sizeof(struct pvo_entry),
   1105    1.1      matt 	    sizeof(struct pvo_entry), 0, 0, "pmap_mpvopl",
   1106   1.48        ad 	    &pmap_pool_mallocator, IPL_NONE);
   1107    1.1      matt 
   1108    1.1      matt 	pool_setlowat(&pmap_mpvo_pool, 1008);
   1109    1.1      matt 
   1110    1.1      matt 	pmap_initialized = 1;
   1111    1.1      matt 
   1112    1.1      matt }
   1113    1.1      matt 
   1114    1.1      matt /*
   1115   1.10   thorpej  * How much virtual space does the kernel get?
   1116   1.10   thorpej  */
   1117   1.10   thorpej void
   1118   1.10   thorpej pmap_virtual_space(vaddr_t *start, vaddr_t *end)
   1119   1.10   thorpej {
   1120   1.10   thorpej 	/*
   1121   1.10   thorpej 	 * For now, reserve one segment (minus some overhead) for kernel
   1122   1.10   thorpej 	 * virtual memory
   1123   1.10   thorpej 	 */
   1124   1.10   thorpej 	*start = VM_MIN_KERNEL_ADDRESS;
   1125   1.10   thorpej 	*end = VM_MAX_KERNEL_ADDRESS;
   1126   1.10   thorpej }
   1127   1.10   thorpej 
   1128   1.10   thorpej /*
   1129    1.1      matt  * Allocate, initialize, and return a new physical map.
   1130    1.1      matt  */
   1131    1.1      matt pmap_t
   1132    1.1      matt pmap_create(void)
   1133    1.1      matt {
   1134    1.1      matt 	pmap_t pm;
   1135   1.38   sanjayl 
   1136    1.1      matt 	pm = pool_get(&pmap_pool, PR_WAITOK);
   1137   1.84      matt 	KASSERT((vaddr_t)pm < VM_MIN_KERNEL_ADDRESS);
   1138   1.46  christos 	memset((void *)pm, 0, sizeof *pm);
   1139    1.1      matt 	pmap_pinit(pm);
   1140    1.1      matt 
   1141   1.85      matt 	DPRINTFN(CREATE, "pmap_create: pm %p:\n"
   1142   1.54   mlelstv 	    "\t%#" _PRIsr " %#" _PRIsr " %#" _PRIsr " %#" _PRIsr
   1143   1.54   mlelstv 	    "    %#" _PRIsr " %#" _PRIsr " %#" _PRIsr " %#" _PRIsr "\n"
   1144   1.54   mlelstv 	    "\t%#" _PRIsr " %#" _PRIsr " %#" _PRIsr " %#" _PRIsr
   1145   1.54   mlelstv 	    "    %#" _PRIsr " %#" _PRIsr " %#" _PRIsr " %#" _PRIsr "\n",
   1146   1.54   mlelstv 	    pm,
   1147   1.54   mlelstv 	    pm->pm_sr[0], pm->pm_sr[1],
   1148   1.54   mlelstv 	    pm->pm_sr[2], pm->pm_sr[3],
   1149   1.54   mlelstv 	    pm->pm_sr[4], pm->pm_sr[5],
   1150   1.54   mlelstv 	    pm->pm_sr[6], pm->pm_sr[7],
   1151   1.54   mlelstv 	    pm->pm_sr[8], pm->pm_sr[9],
   1152   1.54   mlelstv 	    pm->pm_sr[10], pm->pm_sr[11],
   1153   1.54   mlelstv 	    pm->pm_sr[12], pm->pm_sr[13],
   1154   1.85      matt 	    pm->pm_sr[14], pm->pm_sr[15]);
   1155    1.1      matt 	return pm;
   1156    1.1      matt }
   1157    1.1      matt 
   1158    1.1      matt /*
   1159    1.1      matt  * Initialize a preallocated and zeroed pmap structure.
   1160    1.1      matt  */
   1161    1.1      matt void
   1162    1.1      matt pmap_pinit(pmap_t pm)
   1163    1.1      matt {
   1164    1.2      matt 	register_t entropy = MFTB();
   1165    1.2      matt 	register_t mask;
   1166    1.2      matt 	int i;
   1167    1.1      matt 
   1168    1.1      matt 	/*
   1169    1.1      matt 	 * Allocate some segment registers for this pmap.
   1170    1.1      matt 	 */
   1171    1.1      matt 	pm->pm_refs = 1;
   1172   1.50        ad 	PMAP_LOCK();
   1173    1.2      matt 	for (i = 0; i < NPMAPS; i += VSID_NBPW) {
   1174    1.2      matt 		static register_t pmap_vsidcontext;
   1175    1.2      matt 		register_t hash;
   1176    1.2      matt 		unsigned int n;
   1177    1.1      matt 
   1178    1.1      matt 		/* Create a new value by multiplying by a prime adding in
   1179    1.1      matt 		 * entropy from the timebase register.  This is to make the
   1180    1.1      matt 		 * VSID more random so that the PT Hash function collides
   1181    1.1      matt 		 * less often. (note that the prime causes gcc to do shifts
   1182    1.1      matt 		 * instead of a multiply)
   1183    1.1      matt 		 */
   1184    1.1      matt 		pmap_vsidcontext = (pmap_vsidcontext * 0x1105) + entropy;
   1185    1.1      matt 		hash = pmap_vsidcontext & (NPMAPS - 1);
   1186   1.23   aymeric 		if (hash == 0) {		/* 0 is special, avoid it */
   1187   1.23   aymeric 			entropy += 0xbadf00d;
   1188    1.1      matt 			continue;
   1189   1.23   aymeric 		}
   1190    1.1      matt 		n = hash >> 5;
   1191    1.2      matt 		mask = 1L << (hash & (VSID_NBPW-1));
   1192    1.2      matt 		hash = pmap_vsidcontext;
   1193    1.1      matt 		if (pmap_vsid_bitmap[n] & mask) {	/* collision? */
   1194    1.1      matt 			/* anything free in this bucket? */
   1195    1.2      matt 			if (~pmap_vsid_bitmap[n] == 0) {
   1196   1.23   aymeric 				entropy = hash ^ (hash >> 16);
   1197    1.1      matt 				continue;
   1198    1.1      matt 			}
   1199    1.1      matt 			i = ffs(~pmap_vsid_bitmap[n]) - 1;
   1200    1.2      matt 			mask = 1L << i;
   1201    1.2      matt 			hash &= ~(VSID_NBPW-1);
   1202    1.1      matt 			hash |= i;
   1203    1.1      matt 		}
   1204   1.18      matt 		hash &= PTE_VSID >> PTE_VSID_SHFT;
   1205    1.1      matt 		pmap_vsid_bitmap[n] |= mask;
   1206   1.18      matt 		pm->pm_vsid = hash;
   1207   1.53   garbled #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   1208    1.1      matt 		for (i = 0; i < 16; i++)
   1209   1.14       chs 			pm->pm_sr[i] = VSID_MAKE(i, hash) | SR_PRKEY |
   1210   1.14       chs 			    SR_NOEXEC;
   1211   1.18      matt #endif
   1212   1.50        ad 		PMAP_UNLOCK();
   1213    1.1      matt 		return;
   1214    1.1      matt 	}
   1215   1.50        ad 	PMAP_UNLOCK();
   1216    1.1      matt 	panic("pmap_pinit: out of segments");
   1217    1.1      matt }
   1218    1.1      matt 
   1219    1.1      matt /*
   1220    1.1      matt  * Add a reference to the given pmap.
   1221    1.1      matt  */
   1222    1.1      matt void
   1223    1.1      matt pmap_reference(pmap_t pm)
   1224    1.1      matt {
   1225   1.50        ad 	atomic_inc_uint(&pm->pm_refs);
   1226    1.1      matt }
   1227    1.1      matt 
   1228    1.1      matt /*
   1229    1.1      matt  * Retire the given pmap from service.
   1230    1.1      matt  * Should only be called if the map contains no valid mappings.
   1231    1.1      matt  */
   1232    1.1      matt void
   1233    1.1      matt pmap_destroy(pmap_t pm)
   1234    1.1      matt {
   1235   1.50        ad 	if (atomic_dec_uint_nv(&pm->pm_refs) == 0) {
   1236    1.1      matt 		pmap_release(pm);
   1237    1.1      matt 		pool_put(&pmap_pool, pm);
   1238    1.1      matt 	}
   1239    1.1      matt }
   1240    1.1      matt 
   1241    1.1      matt /*
   1242    1.1      matt  * Release any resources held by the given physical map.
   1243    1.1      matt  * Called when a pmap initialized by pmap_pinit is being released.
   1244    1.1      matt  */
   1245    1.1      matt void
   1246    1.1      matt pmap_release(pmap_t pm)
   1247    1.1      matt {
   1248    1.1      matt 	int idx, mask;
   1249   1.39      matt 
   1250   1.39      matt 	KASSERT(pm->pm_stats.resident_count == 0);
   1251   1.39      matt 	KASSERT(pm->pm_stats.wired_count == 0);
   1252    1.1      matt 
   1253   1.50        ad 	PMAP_LOCK();
   1254    1.1      matt 	if (pm->pm_sr[0] == 0)
   1255    1.1      matt 		panic("pmap_release");
   1256   1.22   aymeric 	idx = pm->pm_vsid & (NPMAPS-1);
   1257    1.1      matt 	mask = 1 << (idx % VSID_NBPW);
   1258    1.1      matt 	idx /= VSID_NBPW;
   1259   1.22   aymeric 
   1260   1.22   aymeric 	KASSERT(pmap_vsid_bitmap[idx] & mask);
   1261    1.1      matt 	pmap_vsid_bitmap[idx] &= ~mask;
   1262   1.50        ad 	PMAP_UNLOCK();
   1263    1.1      matt }
   1264    1.1      matt 
   1265    1.1      matt /*
   1266    1.1      matt  * Copy the range specified by src_addr/len
   1267    1.1      matt  * from the source map to the range dst_addr/len
   1268    1.1      matt  * in the destination map.
   1269    1.1      matt  *
   1270    1.1      matt  * This routine is only advisory and need not do anything.
   1271    1.1      matt  */
   1272    1.1      matt void
   1273    1.1      matt pmap_copy(pmap_t dst_pmap, pmap_t src_pmap, vaddr_t dst_addr,
   1274    1.1      matt 	vsize_t len, vaddr_t src_addr)
   1275    1.1      matt {
   1276    1.1      matt 	PMAPCOUNT(copies);
   1277    1.1      matt }
   1278    1.1      matt 
   1279    1.1      matt /*
   1280    1.1      matt  * Require that all active physical maps contain no
   1281    1.1      matt  * incorrect entries NOW.
   1282    1.1      matt  */
   1283    1.1      matt void
   1284    1.1      matt pmap_update(struct pmap *pmap)
   1285    1.1      matt {
   1286    1.1      matt 	PMAPCOUNT(updates);
   1287    1.1      matt 	TLBSYNC();
   1288    1.1      matt }
   1289    1.1      matt 
   1290   1.35     perry static inline int
   1291    1.1      matt pmap_pvo_pte_index(const struct pvo_entry *pvo, int ptegidx)
   1292    1.1      matt {
   1293    1.1      matt 	int pteidx;
   1294    1.1      matt 	/*
   1295    1.1      matt 	 * We can find the actual pte entry without searching by
   1296    1.1      matt 	 * grabbing the PTEG index from 3 unused bits in pte_lo[11:9]
   1297    1.1      matt 	 * and by noticing the HID bit.
   1298    1.1      matt 	 */
   1299    1.1      matt 	pteidx = ptegidx * 8 + PVO_PTEGIDX_GET(pvo);
   1300    1.1      matt 	if (pvo->pvo_pte.pte_hi & PTE_HID)
   1301    1.1      matt 		pteidx ^= pmap_pteg_mask * 8;
   1302    1.1      matt 	return pteidx;
   1303    1.1      matt }
   1304    1.1      matt 
   1305    1.2      matt volatile struct pte *
   1306    1.1      matt pmap_pvo_to_pte(const struct pvo_entry *pvo, int pteidx)
   1307    1.1      matt {
   1308    1.2      matt 	volatile struct pte *pt;
   1309    1.1      matt 
   1310    1.1      matt #if !defined(DIAGNOSTIC) && !defined(DEBUG) && !defined(PMAPCHECK)
   1311    1.1      matt 	if ((pvo->pvo_pte.pte_hi & PTE_VALID) == 0)
   1312    1.1      matt 		return NULL;
   1313    1.1      matt #endif
   1314    1.1      matt 
   1315    1.1      matt 	/*
   1316    1.1      matt 	 * If we haven't been supplied the ptegidx, calculate it.
   1317    1.1      matt 	 */
   1318    1.1      matt 	if (pteidx == -1) {
   1319    1.1      matt 		int ptegidx;
   1320    1.2      matt 		ptegidx = va_to_pteg(pvo->pvo_pmap, pvo->pvo_vaddr);
   1321    1.1      matt 		pteidx = pmap_pvo_pte_index(pvo, ptegidx);
   1322    1.1      matt 	}
   1323    1.1      matt 
   1324    1.1      matt 	pt = &pmap_pteg_table[pteidx >> 3].pt[pteidx & 7];
   1325    1.1      matt 
   1326    1.1      matt #if !defined(DIAGNOSTIC) && !defined(DEBUG) && !defined(PMAPCHECK)
   1327    1.1      matt 	return pt;
   1328    1.1      matt #else
   1329    1.1      matt 	if ((pvo->pvo_pte.pte_hi & PTE_VALID) && !PVO_PTEGIDX_ISSET(pvo)) {
   1330    1.1      matt 		panic("pmap_pvo_to_pte: pvo %p: has valid pte in "
   1331    1.1      matt 		    "pvo but no valid pte index", pvo);
   1332    1.1      matt 	}
   1333    1.1      matt 	if ((pvo->pvo_pte.pte_hi & PTE_VALID) == 0 && PVO_PTEGIDX_ISSET(pvo)) {
   1334    1.1      matt 		panic("pmap_pvo_to_pte: pvo %p: has valid pte index in "
   1335    1.1      matt 		    "pvo but no valid pte", pvo);
   1336    1.1      matt 	}
   1337    1.1      matt 
   1338    1.1      matt 	if ((pt->pte_hi ^ (pvo->pvo_pte.pte_hi & ~PTE_VALID)) == PTE_VALID) {
   1339    1.1      matt 		if ((pvo->pvo_pte.pte_hi & PTE_VALID) == 0) {
   1340    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK)
   1341    1.1      matt 			pmap_pte_print(pt);
   1342    1.1      matt #endif
   1343    1.1      matt 			panic("pmap_pvo_to_pte: pvo %p: has valid pte in "
   1344    1.1      matt 			    "pmap_pteg_table %p but invalid in pvo",
   1345    1.1      matt 			    pvo, pt);
   1346    1.1      matt 		}
   1347    1.1      matt 		if (((pt->pte_lo ^ pvo->pvo_pte.pte_lo) & ~(PTE_CHG|PTE_REF)) != 0) {
   1348    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK)
   1349    1.1      matt 			pmap_pte_print(pt);
   1350    1.1      matt #endif
   1351    1.1      matt 			panic("pmap_pvo_to_pte: pvo %p: pvo pte does "
   1352    1.1      matt 			    "not match pte %p in pmap_pteg_table",
   1353    1.1      matt 			    pvo, pt);
   1354    1.1      matt 		}
   1355    1.1      matt 		return pt;
   1356    1.1      matt 	}
   1357    1.1      matt 
   1358    1.1      matt 	if (pvo->pvo_pte.pte_hi & PTE_VALID) {
   1359    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK)
   1360    1.1      matt 		pmap_pte_print(pt);
   1361    1.1      matt #endif
   1362   1.12      matt 		panic("pmap_pvo_to_pte: pvo %p: has nomatching pte %p in "
   1363    1.1      matt 		    "pmap_pteg_table but valid in pvo", pvo, pt);
   1364    1.1      matt 	}
   1365    1.1      matt 	return NULL;
   1366    1.1      matt #endif	/* !(!DIAGNOSTIC && !DEBUG && !PMAPCHECK) */
   1367    1.1      matt }
   1368    1.1      matt 
   1369    1.1      matt struct pvo_entry *
   1370    1.1      matt pmap_pvo_find_va(pmap_t pm, vaddr_t va, int *pteidx_p)
   1371    1.1      matt {
   1372    1.1      matt 	struct pvo_entry *pvo;
   1373    1.1      matt 	int ptegidx;
   1374    1.1      matt 
   1375    1.1      matt 	va &= ~ADDR_POFF;
   1376    1.2      matt 	ptegidx = va_to_pteg(pm, va);
   1377    1.1      matt 
   1378    1.1      matt 	TAILQ_FOREACH(pvo, &pmap_pvo_table[ptegidx], pvo_olink) {
   1379    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1380    1.1      matt 		if ((uintptr_t) pvo >= SEGMENT_LENGTH)
   1381    1.1      matt 			panic("pmap_pvo_find_va: invalid pvo %p on "
   1382    1.1      matt 			    "list %#x (%p)", pvo, ptegidx,
   1383    1.1      matt 			     &pmap_pvo_table[ptegidx]);
   1384    1.1      matt #endif
   1385    1.1      matt 		if (pvo->pvo_pmap == pm && PVO_VADDR(pvo) == va) {
   1386    1.1      matt 			if (pteidx_p)
   1387    1.1      matt 				*pteidx_p = pmap_pvo_pte_index(pvo, ptegidx);
   1388    1.1      matt 			return pvo;
   1389    1.1      matt 		}
   1390    1.1      matt 	}
   1391   1.38   sanjayl 	if ((pm == pmap_kernel()) && (va < SEGMENT_LENGTH))
   1392   1.54   mlelstv 		panic("%s: returning NULL for %s pmap, va: %#" _PRIxva "\n",
   1393   1.53   garbled 		    __func__, (pm == pmap_kernel() ? "kernel" : "user"), va);
   1394    1.1      matt 	return NULL;
   1395    1.1      matt }
   1396    1.1      matt 
   1397    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK)
   1398    1.1      matt void
   1399    1.1      matt pmap_pvo_check(const struct pvo_entry *pvo)
   1400    1.1      matt {
   1401    1.1      matt 	struct pvo_head *pvo_head;
   1402    1.1      matt 	struct pvo_entry *pvo0;
   1403    1.2      matt 	volatile struct pte *pt;
   1404    1.1      matt 	int failed = 0;
   1405    1.1      matt 
   1406   1.50        ad 	PMAP_LOCK();
   1407   1.50        ad 
   1408    1.1      matt 	if ((uintptr_t)(pvo+1) >= SEGMENT_LENGTH)
   1409    1.1      matt 		panic("pmap_pvo_check: pvo %p: invalid address", pvo);
   1410    1.1      matt 
   1411    1.1      matt 	if ((uintptr_t)(pvo->pvo_pmap+1) >= SEGMENT_LENGTH) {
   1412    1.1      matt 		printf("pmap_pvo_check: pvo %p: invalid pmap address %p\n",
   1413    1.1      matt 		    pvo, pvo->pvo_pmap);
   1414    1.1      matt 		failed = 1;
   1415    1.1      matt 	}
   1416    1.1      matt 
   1417    1.1      matt 	if ((uintptr_t)TAILQ_NEXT(pvo, pvo_olink) >= SEGMENT_LENGTH ||
   1418    1.1      matt 	    (((uintptr_t)TAILQ_NEXT(pvo, pvo_olink)) & 0x1f) != 0) {
   1419    1.1      matt 		printf("pmap_pvo_check: pvo %p: invalid ovlink address %p\n",
   1420    1.1      matt 		    pvo, TAILQ_NEXT(pvo, pvo_olink));
   1421    1.1      matt 		failed = 1;
   1422    1.1      matt 	}
   1423    1.1      matt 
   1424    1.1      matt 	if ((uintptr_t)LIST_NEXT(pvo, pvo_vlink) >= SEGMENT_LENGTH ||
   1425    1.1      matt 	    (((uintptr_t)LIST_NEXT(pvo, pvo_vlink)) & 0x1f) != 0) {
   1426    1.1      matt 		printf("pmap_pvo_check: pvo %p: invalid ovlink address %p\n",
   1427    1.1      matt 		    pvo, LIST_NEXT(pvo, pvo_vlink));
   1428    1.1      matt 		failed = 1;
   1429    1.1      matt 	}
   1430    1.1      matt 
   1431   1.39      matt 	if (PVO_MANAGED_P(pvo)) {
   1432    1.1      matt 		pvo_head = pa_to_pvoh(pvo->pvo_pte.pte_lo & PTE_RPGN, NULL);
   1433    1.1      matt 	} else {
   1434    1.1      matt 		if (pvo->pvo_vaddr < VM_MIN_KERNEL_ADDRESS) {
   1435    1.1      matt 			printf("pmap_pvo_check: pvo %p: non kernel address "
   1436    1.1      matt 			    "on kernel unmanaged list\n", pvo);
   1437    1.1      matt 			failed = 1;
   1438    1.1      matt 		}
   1439    1.1      matt 		pvo_head = &pmap_pvo_kunmanaged;
   1440    1.1      matt 	}
   1441    1.1      matt 	LIST_FOREACH(pvo0, pvo_head, pvo_vlink) {
   1442    1.1      matt 		if (pvo0 == pvo)
   1443    1.1      matt 			break;
   1444    1.1      matt 	}
   1445    1.1      matt 	if (pvo0 == NULL) {
   1446    1.1      matt 		printf("pmap_pvo_check: pvo %p: not present "
   1447    1.1      matt 		    "on its vlist head %p\n", pvo, pvo_head);
   1448    1.1      matt 		failed = 1;
   1449    1.1      matt 	}
   1450    1.1      matt 	if (pvo != pmap_pvo_find_va(pvo->pvo_pmap, pvo->pvo_vaddr, NULL)) {
   1451    1.1      matt 		printf("pmap_pvo_check: pvo %p: not present "
   1452    1.1      matt 		    "on its olist head\n", pvo);
   1453    1.1      matt 		failed = 1;
   1454    1.1      matt 	}
   1455    1.1      matt 	pt = pmap_pvo_to_pte(pvo, -1);
   1456    1.1      matt 	if (pt == NULL) {
   1457    1.1      matt 		if (pvo->pvo_pte.pte_hi & PTE_VALID) {
   1458    1.1      matt 			printf("pmap_pvo_check: pvo %p: pte_hi VALID but "
   1459    1.1      matt 			    "no PTE\n", pvo);
   1460    1.1      matt 			failed = 1;
   1461    1.1      matt 		}
   1462    1.1      matt 	} else {
   1463    1.1      matt 		if ((uintptr_t) pt < (uintptr_t) &pmap_pteg_table[0] ||
   1464    1.1      matt 		    (uintptr_t) pt >=
   1465    1.1      matt 		    (uintptr_t) &pmap_pteg_table[pmap_pteg_cnt]) {
   1466    1.1      matt 			printf("pmap_pvo_check: pvo %p: pte %p not in "
   1467    1.1      matt 			    "pteg table\n", pvo, pt);
   1468    1.1      matt 			failed = 1;
   1469    1.1      matt 		}
   1470    1.1      matt 		if (((((uintptr_t) pt) >> 3) & 7) != PVO_PTEGIDX_GET(pvo)) {
   1471    1.1      matt 			printf("pmap_pvo_check: pvo %p: pte_hi VALID but "
   1472    1.1      matt 			    "no PTE\n", pvo);
   1473    1.1      matt 			failed = 1;
   1474    1.1      matt 		}
   1475    1.1      matt 		if (pvo->pvo_pte.pte_hi != pt->pte_hi) {
   1476    1.1      matt 			printf("pmap_pvo_check: pvo %p: pte_hi differ: "
   1477   1.54   mlelstv 			    "%#" _PRIxpte "/%#" _PRIxpte "\n", pvo,
   1478   1.54   mlelstv 			    pvo->pvo_pte.pte_hi,
   1479   1.54   mlelstv 			    pt->pte_hi);
   1480    1.1      matt 			failed = 1;
   1481    1.1      matt 		}
   1482    1.1      matt 		if (((pvo->pvo_pte.pte_lo ^ pt->pte_lo) &
   1483    1.1      matt 		    (PTE_PP|PTE_WIMG|PTE_RPGN)) != 0) {
   1484    1.1      matt 			printf("pmap_pvo_check: pvo %p: pte_lo differ: "
   1485   1.54   mlelstv 			    "%#" _PRIxpte "/%#" _PRIxpte "\n", pvo,
   1486   1.54   mlelstv 			    (pvo->pvo_pte.pte_lo & (PTE_PP|PTE_WIMG|PTE_RPGN)),
   1487   1.54   mlelstv 			    (pt->pte_lo & (PTE_PP|PTE_WIMG|PTE_RPGN)));
   1488    1.1      matt 			failed = 1;
   1489    1.1      matt 		}
   1490    1.1      matt 		if ((pmap_pte_to_va(pt) ^ PVO_VADDR(pvo)) & 0x0fffffff) {
   1491   1.53   garbled 			printf("pmap_pvo_check: pvo %p: PTE %p derived VA %#" _PRIxva ""
   1492   1.53   garbled 			    " doesn't not match PVO's VA %#" _PRIxva "\n",
   1493    1.1      matt 			    pvo, pt, pmap_pte_to_va(pt), PVO_VADDR(pvo));
   1494    1.1      matt 			failed = 1;
   1495    1.1      matt 		}
   1496    1.1      matt 		if (failed)
   1497    1.1      matt 			pmap_pte_print(pt);
   1498    1.1      matt 	}
   1499    1.1      matt 	if (failed)
   1500    1.1      matt 		panic("pmap_pvo_check: pvo %p, pm %p: bugcheck!", pvo,
   1501    1.1      matt 		    pvo->pvo_pmap);
   1502   1.50        ad 
   1503   1.50        ad 	PMAP_UNLOCK();
   1504    1.1      matt }
   1505    1.1      matt #endif /* DEBUG || PMAPCHECK */
   1506    1.1      matt 
   1507    1.1      matt /*
   1508   1.25       chs  * Search the PVO table looking for a non-wired entry.
   1509   1.25       chs  * If we find one, remove it and return it.
   1510   1.25       chs  */
   1511   1.25       chs 
   1512   1.25       chs struct pvo_entry *
   1513   1.25       chs pmap_pvo_reclaim(struct pmap *pm)
   1514   1.25       chs {
   1515   1.25       chs 	struct pvo_tqhead *pvoh;
   1516   1.25       chs 	struct pvo_entry *pvo;
   1517   1.25       chs 	uint32_t idx, endidx;
   1518   1.25       chs 
   1519   1.25       chs 	endidx = pmap_pvo_reclaim_nextidx;
   1520   1.25       chs 	for (idx = (endidx + 1) & pmap_pteg_mask; idx != endidx;
   1521   1.25       chs 	     idx = (idx + 1) & pmap_pteg_mask) {
   1522   1.25       chs 		pvoh = &pmap_pvo_table[idx];
   1523   1.25       chs 		TAILQ_FOREACH(pvo, pvoh, pvo_olink) {
   1524   1.39      matt 			if (!PVO_WIRED_P(pvo)) {
   1525   1.33       chs 				pmap_pvo_remove(pvo, -1, NULL);
   1526   1.25       chs 				pmap_pvo_reclaim_nextidx = idx;
   1527   1.26      matt 				PMAPCOUNT(pvos_reclaimed);
   1528   1.25       chs 				return pvo;
   1529   1.25       chs 			}
   1530   1.25       chs 		}
   1531   1.25       chs 	}
   1532   1.25       chs 	return NULL;
   1533   1.25       chs }
   1534   1.25       chs 
   1535   1.95       chs static struct pool *
   1536   1.95       chs pmap_pvo_pl(struct pvo_entry *pvo)
   1537   1.95       chs {
   1538   1.95       chs 
   1539   1.95       chs 	return PVO_MANAGED_P(pvo) ? &pmap_mpvo_pool : &pmap_upvo_pool;
   1540   1.95       chs }
   1541   1.95       chs 
   1542   1.25       chs /*
   1543    1.1      matt  * This returns whether this is the first mapping of a page.
   1544    1.1      matt  */
   1545    1.1      matt int
   1546    1.1      matt pmap_pvo_enter(pmap_t pm, struct pool *pl, struct pvo_head *pvo_head,
   1547    1.2      matt 	vaddr_t va, paddr_t pa, register_t pte_lo, int flags)
   1548    1.1      matt {
   1549    1.1      matt 	struct pvo_entry *pvo;
   1550    1.1      matt 	struct pvo_tqhead *pvoh;
   1551    1.2      matt 	register_t msr;
   1552    1.1      matt 	int ptegidx;
   1553    1.1      matt 	int i;
   1554    1.1      matt 	int poolflags = PR_NOWAIT;
   1555    1.1      matt 
   1556   1.28       chs 	/*
   1557   1.28       chs 	 * Compute the PTE Group index.
   1558   1.28       chs 	 */
   1559   1.28       chs 	va &= ~ADDR_POFF;
   1560   1.28       chs 	ptegidx = va_to_pteg(pm, va);
   1561   1.28       chs 
   1562   1.28       chs 	msr = pmap_interrupts_off();
   1563   1.28       chs 
   1564    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1565    1.1      matt 	if (pmap_pvo_remove_depth > 0)
   1566    1.1      matt 		panic("pmap_pvo_enter: called while pmap_pvo_remove active!");
   1567    1.1      matt 	if (++pmap_pvo_enter_depth > 1)
   1568    1.1      matt 		panic("pmap_pvo_enter: called recursively!");
   1569    1.1      matt #endif
   1570    1.1      matt 
   1571    1.1      matt 	/*
   1572    1.1      matt 	 * Remove any existing mapping for this page.  Reuse the
   1573    1.1      matt 	 * pvo entry if there a mapping.
   1574    1.1      matt 	 */
   1575    1.1      matt 	TAILQ_FOREACH(pvo, &pmap_pvo_table[ptegidx], pvo_olink) {
   1576    1.1      matt 		if (pvo->pvo_pmap == pm && PVO_VADDR(pvo) == va) {
   1577    1.1      matt #ifdef DEBUG
   1578    1.1      matt 			if ((pmapdebug & PMAPDEBUG_PVOENTER) &&
   1579    1.1      matt 			    ((pvo->pvo_pte.pte_lo ^ (pa|pte_lo)) &
   1580    1.1      matt 			    ~(PTE_REF|PTE_CHG)) == 0 &&
   1581    1.1      matt 			   va < VM_MIN_KERNEL_ADDRESS) {
   1582   1.56       phx 				printf("pmap_pvo_enter: pvo %p: dup %#" _PRIxpte "/%#" _PRIxpa "\n",
   1583   1.54   mlelstv 				    pvo, pvo->pvo_pte.pte_lo, pte_lo|pa);
   1584   1.56       phx 				printf("pmap_pvo_enter: pte_hi=%#" _PRIxpte " sr=%#" _PRIsr "\n",
   1585   1.54   mlelstv 				    pvo->pvo_pte.pte_hi,
   1586   1.54   mlelstv 				    pm->pm_sr[va >> ADDR_SR_SHFT]);
   1587    1.1      matt 				pmap_pte_print(pmap_pvo_to_pte(pvo, -1));
   1588    1.1      matt #ifdef DDBX
   1589    1.1      matt 				Debugger();
   1590    1.1      matt #endif
   1591    1.1      matt 			}
   1592    1.1      matt #endif
   1593    1.1      matt 			PMAPCOUNT(mappings_replaced);
   1594   1.33       chs 			pmap_pvo_remove(pvo, -1, NULL);
   1595    1.1      matt 			break;
   1596    1.1      matt 		}
   1597    1.1      matt 	}
   1598    1.1      matt 
   1599    1.1      matt 	/*
   1600    1.1      matt 	 * If we aren't overwriting an mapping, try to allocate
   1601    1.1      matt 	 */
   1602   1.26      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1603   1.26      matt 	--pmap_pvo_enter_depth;
   1604   1.26      matt #endif
   1605    1.1      matt 	pmap_interrupts_restore(msr);
   1606   1.33       chs 	if (pvo) {
   1607   1.95       chs 		KASSERT(pmap_pvo_pl(pvo) == pl);
   1608   1.95       chs 	} else {
   1609   1.95       chs 		pvo = pool_get(pl, poolflags);
   1610   1.33       chs 	}
   1611   1.84      matt 	KASSERT((vaddr_t)pvo < VM_MIN_KERNEL_ADDRESS);
   1612   1.25       chs 
   1613   1.25       chs #ifdef DEBUG
   1614   1.25       chs 	/*
   1615   1.25       chs 	 * Exercise pmap_pvo_reclaim() a little.
   1616   1.25       chs 	 */
   1617   1.25       chs 	if (pvo && (flags & PMAP_CANFAIL) != 0 &&
   1618   1.25       chs 	    pmap_pvo_reclaim_debugctr++ > 0x1000 &&
   1619   1.25       chs 	    (pmap_pvo_reclaim_debugctr & 0xff) == 0) {
   1620   1.25       chs 		pool_put(pl, pvo);
   1621   1.25       chs 		pvo = NULL;
   1622   1.25       chs 	}
   1623   1.25       chs #endif
   1624   1.25       chs 
   1625    1.1      matt 	msr = pmap_interrupts_off();
   1626   1.26      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1627   1.26      matt 	++pmap_pvo_enter_depth;
   1628   1.26      matt #endif
   1629    1.1      matt 	if (pvo == NULL) {
   1630    1.1      matt 		pvo = pmap_pvo_reclaim(pm);
   1631    1.1      matt 		if (pvo == NULL) {
   1632    1.1      matt 			if ((flags & PMAP_CANFAIL) == 0)
   1633    1.1      matt 				panic("pmap_pvo_enter: failed");
   1634    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1635    1.1      matt 			pmap_pvo_enter_depth--;
   1636    1.1      matt #endif
   1637   1.26      matt 			PMAPCOUNT(pvos_failed);
   1638    1.1      matt 			pmap_interrupts_restore(msr);
   1639    1.1      matt 			return ENOMEM;
   1640    1.1      matt 		}
   1641    1.1      matt 	}
   1642   1.25       chs 
   1643    1.1      matt 	pvo->pvo_vaddr = va;
   1644    1.1      matt 	pvo->pvo_pmap = pm;
   1645    1.1      matt 	pvo->pvo_vaddr &= ~ADDR_POFF;
   1646    1.1      matt 	if (flags & VM_PROT_EXECUTE) {
   1647    1.1      matt 		PMAPCOUNT(exec_mappings);
   1648   1.14       chs 		pvo_set_exec(pvo);
   1649    1.1      matt 	}
   1650    1.1      matt 	if (flags & PMAP_WIRED)
   1651    1.1      matt 		pvo->pvo_vaddr |= PVO_WIRED;
   1652    1.1      matt 	if (pvo_head != &pmap_pvo_kunmanaged) {
   1653    1.1      matt 		pvo->pvo_vaddr |= PVO_MANAGED;
   1654    1.1      matt 		PMAPCOUNT(mappings);
   1655    1.1      matt 	} else {
   1656    1.1      matt 		PMAPCOUNT(kernel_mappings);
   1657    1.1      matt 	}
   1658    1.2      matt 	pmap_pte_create(&pvo->pvo_pte, pm, va, pa | pte_lo);
   1659    1.1      matt 
   1660    1.1      matt 	LIST_INSERT_HEAD(pvo_head, pvo, pvo_vlink);
   1661   1.39      matt 	if (PVO_WIRED_P(pvo))
   1662    1.1      matt 		pvo->pvo_pmap->pm_stats.wired_count++;
   1663    1.1      matt 	pvo->pvo_pmap->pm_stats.resident_count++;
   1664    1.1      matt #if defined(DEBUG)
   1665   1.38   sanjayl /*	if (pm != pmap_kernel() && va < VM_MIN_KERNEL_ADDRESS) */
   1666    1.1      matt 		DPRINTFN(PVOENTER,
   1667   1.85      matt 		    "pmap_pvo_enter: pvo %p: pm %p va %#" _PRIxva " pa %#" _PRIxpa "\n",
   1668   1.85      matt 		    pvo, pm, va, pa);
   1669    1.1      matt #endif
   1670    1.1      matt 
   1671    1.1      matt 	/*
   1672    1.1      matt 	 * We hope this succeeds but it isn't required.
   1673    1.1      matt 	 */
   1674    1.1      matt 	pvoh = &pmap_pvo_table[ptegidx];
   1675    1.1      matt 	i = pmap_pte_insert(ptegidx, &pvo->pvo_pte);
   1676    1.1      matt 	if (i >= 0) {
   1677    1.1      matt 		PVO_PTEGIDX_SET(pvo, i);
   1678   1.12      matt 		PVO_WHERE(pvo, ENTER_INSERT);
   1679    1.1      matt 		PMAPCOUNT2(((pvo->pvo_pte.pte_hi & PTE_HID)
   1680    1.1      matt 		    ? pmap_evcnt_ptes_secondary : pmap_evcnt_ptes_primary)[i]);
   1681    1.1      matt 		TAILQ_INSERT_TAIL(pvoh, pvo, pvo_olink);
   1682   1.38   sanjayl 
   1683    1.1      matt 	} else {
   1684    1.1      matt 		/*
   1685    1.1      matt 		 * Since we didn't have room for this entry (which makes it
   1686    1.1      matt 		 * and evicted entry), place it at the head of the list.
   1687    1.1      matt 		 */
   1688    1.1      matt 		TAILQ_INSERT_HEAD(pvoh, pvo, pvo_olink);
   1689    1.1      matt 		PMAPCOUNT(ptes_evicted);
   1690    1.1      matt 		pm->pm_evictions++;
   1691   1.12      matt 		/*
   1692   1.12      matt 		 * If this is a kernel page, make sure it's active.
   1693   1.12      matt 		 */
   1694   1.12      matt 		if (pm == pmap_kernel()) {
   1695   1.45   thorpej 			i = pmap_pte_spill(pm, va, false);
   1696   1.12      matt 			KASSERT(i);
   1697   1.12      matt 		}
   1698    1.1      matt 	}
   1699    1.1      matt 	PMAP_PVO_CHECK(pvo);		/* sanity check */
   1700    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1701    1.1      matt 	pmap_pvo_enter_depth--;
   1702    1.1      matt #endif
   1703    1.1      matt 	pmap_interrupts_restore(msr);
   1704    1.1      matt 	return 0;
   1705    1.1      matt }
   1706    1.1      matt 
   1707   1.53   garbled static void
   1708   1.33       chs pmap_pvo_remove(struct pvo_entry *pvo, int pteidx, struct pvo_head *pvol)
   1709    1.1      matt {
   1710    1.2      matt 	volatile struct pte *pt;
   1711    1.1      matt 	int ptegidx;
   1712    1.1      matt 
   1713    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1714    1.1      matt 	if (++pmap_pvo_remove_depth > 1)
   1715    1.1      matt 		panic("pmap_pvo_remove: called recursively!");
   1716    1.1      matt #endif
   1717    1.1      matt 
   1718    1.1      matt 	/*
   1719    1.1      matt 	 * If we haven't been supplied the ptegidx, calculate it.
   1720    1.1      matt 	 */
   1721    1.1      matt 	if (pteidx == -1) {
   1722    1.2      matt 		ptegidx = va_to_pteg(pvo->pvo_pmap, pvo->pvo_vaddr);
   1723    1.1      matt 		pteidx = pmap_pvo_pte_index(pvo, ptegidx);
   1724    1.1      matt 	} else {
   1725    1.1      matt 		ptegidx = pteidx >> 3;
   1726    1.1      matt 		if (pvo->pvo_pte.pte_hi & PTE_HID)
   1727    1.1      matt 			ptegidx ^= pmap_pteg_mask;
   1728    1.1      matt 	}
   1729    1.1      matt 	PMAP_PVO_CHECK(pvo);		/* sanity check */
   1730    1.1      matt 
   1731    1.1      matt 	/*
   1732    1.1      matt 	 * If there is an active pte entry, we need to deactivate it
   1733    1.1      matt 	 * (and save the ref & chg bits).
   1734    1.1      matt 	 */
   1735    1.1      matt 	pt = pmap_pvo_to_pte(pvo, pteidx);
   1736    1.1      matt 	if (pt != NULL) {
   1737    1.1      matt 		pmap_pte_unset(pt, &pvo->pvo_pte, pvo->pvo_vaddr);
   1738   1.12      matt 		PVO_WHERE(pvo, REMOVE);
   1739    1.1      matt 		PVO_PTEGIDX_CLR(pvo);
   1740    1.1      matt 		PMAPCOUNT(ptes_removed);
   1741    1.1      matt 	} else {
   1742    1.1      matt 		KASSERT(pvo->pvo_pmap->pm_evictions > 0);
   1743    1.1      matt 		pvo->pvo_pmap->pm_evictions--;
   1744    1.1      matt 	}
   1745    1.1      matt 
   1746    1.1      matt 	/*
   1747   1.14       chs 	 * Account for executable mappings.
   1748   1.14       chs 	 */
   1749   1.39      matt 	if (PVO_EXECUTABLE_P(pvo))
   1750   1.14       chs 		pvo_clear_exec(pvo);
   1751   1.14       chs 
   1752   1.14       chs 	/*
   1753   1.14       chs 	 * Update our statistics.
   1754    1.1      matt 	 */
   1755    1.1      matt 	pvo->pvo_pmap->pm_stats.resident_count--;
   1756   1.39      matt 	if (PVO_WIRED_P(pvo))
   1757    1.1      matt 		pvo->pvo_pmap->pm_stats.wired_count--;
   1758    1.1      matt 
   1759    1.1      matt 	/*
   1760    1.1      matt 	 * Save the REF/CHG bits into their cache if the page is managed.
   1761    1.1      matt 	 */
   1762   1.39      matt 	if (PVO_MANAGED_P(pvo)) {
   1763    1.2      matt 		register_t ptelo = pvo->pvo_pte.pte_lo;
   1764    1.1      matt 		struct vm_page *pg = PHYS_TO_VM_PAGE(ptelo & PTE_RPGN);
   1765    1.1      matt 
   1766    1.1      matt 		if (pg != NULL) {
   1767   1.37      matt 			/*
   1768   1.37      matt 			 * If this page was changed and it is mapped exec,
   1769   1.37      matt 			 * invalidate it.
   1770   1.37      matt 			 */
   1771   1.37      matt 			if ((ptelo & PTE_CHG) &&
   1772   1.37      matt 			    (pmap_attr_fetch(pg) & PTE_EXEC)) {
   1773   1.37      matt 				struct pvo_head *pvoh = vm_page_to_pvoh(pg);
   1774   1.37      matt 				if (LIST_EMPTY(pvoh)) {
   1775   1.85      matt 					DPRINTFN(EXEC, "[pmap_pvo_remove: "
   1776   1.53   garbled 					    "%#" _PRIxpa ": clear-exec]\n",
   1777   1.85      matt 					    VM_PAGE_TO_PHYS(pg));
   1778   1.37      matt 					pmap_attr_clear(pg, PTE_EXEC);
   1779   1.37      matt 					PMAPCOUNT(exec_uncached_pvo_remove);
   1780   1.37      matt 				} else {
   1781   1.85      matt 					DPRINTFN(EXEC, "[pmap_pvo_remove: "
   1782   1.53   garbled 					    "%#" _PRIxpa ": syncicache]\n",
   1783   1.85      matt 					    VM_PAGE_TO_PHYS(pg));
   1784   1.37      matt 					pmap_syncicache(VM_PAGE_TO_PHYS(pg),
   1785   1.37      matt 					    PAGE_SIZE);
   1786   1.37      matt 					PMAPCOUNT(exec_synced_pvo_remove);
   1787   1.37      matt 				}
   1788   1.37      matt 			}
   1789   1.37      matt 
   1790    1.1      matt 			pmap_attr_save(pg, ptelo & (PTE_REF|PTE_CHG));
   1791    1.1      matt 		}
   1792    1.1      matt 		PMAPCOUNT(unmappings);
   1793    1.1      matt 	} else {
   1794    1.1      matt 		PMAPCOUNT(kernel_unmappings);
   1795    1.1      matt 	}
   1796    1.1      matt 
   1797    1.1      matt 	/*
   1798    1.1      matt 	 * Remove the PVO from its lists and return it to the pool.
   1799    1.1      matt 	 */
   1800    1.1      matt 	LIST_REMOVE(pvo, pvo_vlink);
   1801    1.1      matt 	TAILQ_REMOVE(&pmap_pvo_table[ptegidx], pvo, pvo_olink);
   1802   1.33       chs 	if (pvol) {
   1803   1.33       chs 		LIST_INSERT_HEAD(pvol, pvo, pvo_vlink);
   1804   1.25       chs 	}
   1805    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   1806    1.1      matt 	pmap_pvo_remove_depth--;
   1807    1.1      matt #endif
   1808    1.1      matt }
   1809    1.1      matt 
   1810   1.33       chs void
   1811   1.33       chs pmap_pvo_free(struct pvo_entry *pvo)
   1812   1.33       chs {
   1813   1.33       chs 
   1814   1.95       chs 	pool_put(pmap_pvo_pl(pvo), pvo);
   1815   1.33       chs }
   1816   1.33       chs 
   1817   1.33       chs void
   1818   1.33       chs pmap_pvo_free_list(struct pvo_head *pvol)
   1819   1.33       chs {
   1820   1.33       chs 	struct pvo_entry *pvo, *npvo;
   1821   1.33       chs 
   1822   1.33       chs 	for (pvo = LIST_FIRST(pvol); pvo != NULL; pvo = npvo) {
   1823   1.33       chs 		npvo = LIST_NEXT(pvo, pvo_vlink);
   1824   1.33       chs 		LIST_REMOVE(pvo, pvo_vlink);
   1825   1.33       chs 		pmap_pvo_free(pvo);
   1826   1.33       chs 	}
   1827   1.33       chs }
   1828   1.33       chs 
   1829    1.1      matt /*
   1830   1.14       chs  * Mark a mapping as executable.
   1831   1.14       chs  * If this is the first executable mapping in the segment,
   1832   1.14       chs  * clear the noexec flag.
   1833   1.14       chs  */
   1834   1.53   garbled static void
   1835   1.14       chs pvo_set_exec(struct pvo_entry *pvo)
   1836   1.14       chs {
   1837   1.14       chs 	struct pmap *pm = pvo->pvo_pmap;
   1838   1.14       chs 
   1839   1.39      matt 	if (pm == pmap_kernel() || PVO_EXECUTABLE_P(pvo)) {
   1840   1.14       chs 		return;
   1841   1.14       chs 	}
   1842   1.14       chs 	pvo->pvo_vaddr |= PVO_EXECUTABLE;
   1843   1.53   garbled #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   1844   1.18      matt 	{
   1845   1.18      matt 		int sr = PVO_VADDR(pvo) >> ADDR_SR_SHFT;
   1846   1.18      matt 		if (pm->pm_exec[sr]++ == 0) {
   1847   1.18      matt 			pm->pm_sr[sr] &= ~SR_NOEXEC;
   1848   1.18      matt 		}
   1849   1.14       chs 	}
   1850   1.18      matt #endif
   1851   1.14       chs }
   1852   1.14       chs 
   1853   1.14       chs /*
   1854   1.14       chs  * Mark a mapping as non-executable.
   1855   1.14       chs  * If this was the last executable mapping in the segment,
   1856   1.14       chs  * set the noexec flag.
   1857   1.14       chs  */
   1858   1.53   garbled static void
   1859   1.14       chs pvo_clear_exec(struct pvo_entry *pvo)
   1860   1.14       chs {
   1861   1.14       chs 	struct pmap *pm = pvo->pvo_pmap;
   1862   1.14       chs 
   1863   1.39      matt 	if (pm == pmap_kernel() || !PVO_EXECUTABLE_P(pvo)) {
   1864   1.14       chs 		return;
   1865   1.14       chs 	}
   1866   1.14       chs 	pvo->pvo_vaddr &= ~PVO_EXECUTABLE;
   1867   1.53   garbled #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   1868   1.18      matt 	{
   1869   1.18      matt 		int sr = PVO_VADDR(pvo) >> ADDR_SR_SHFT;
   1870   1.18      matt 		if (--pm->pm_exec[sr] == 0) {
   1871   1.18      matt 			pm->pm_sr[sr] |= SR_NOEXEC;
   1872   1.18      matt 		}
   1873   1.14       chs 	}
   1874   1.18      matt #endif
   1875   1.14       chs }
   1876   1.14       chs 
   1877   1.14       chs /*
   1878    1.1      matt  * Insert physical page at pa into the given pmap at virtual address va.
   1879    1.1      matt  */
   1880    1.1      matt int
   1881   1.65    cegger pmap_enter(pmap_t pm, vaddr_t va, paddr_t pa, vm_prot_t prot, u_int flags)
   1882    1.1      matt {
   1883    1.1      matt 	struct mem_region *mp;
   1884    1.1      matt 	struct pvo_head *pvo_head;
   1885    1.1      matt 	struct vm_page *pg;
   1886    1.1      matt 	struct pool *pl;
   1887    1.2      matt 	register_t pte_lo;
   1888    1.1      matt 	int error;
   1889    1.1      matt 	u_int was_exec = 0;
   1890    1.1      matt 
   1891   1.50        ad 	PMAP_LOCK();
   1892   1.50        ad 
   1893    1.1      matt 	if (__predict_false(!pmap_initialized)) {
   1894    1.1      matt 		pvo_head = &pmap_pvo_kunmanaged;
   1895    1.1      matt 		pl = &pmap_upvo_pool;
   1896    1.1      matt 		pg = NULL;
   1897    1.1      matt 		was_exec = PTE_EXEC;
   1898    1.1      matt 	} else {
   1899    1.1      matt 		pvo_head = pa_to_pvoh(pa, &pg);
   1900    1.1      matt 		pl = &pmap_mpvo_pool;
   1901    1.1      matt 	}
   1902    1.1      matt 
   1903    1.1      matt 	DPRINTFN(ENTER,
   1904   1.85      matt 	    "pmap_enter(%p, %#" _PRIxva ", %#" _PRIxpa ", 0x%x, 0x%x):",
   1905   1.85      matt 	    pm, va, pa, prot, flags);
   1906    1.1      matt 
   1907    1.1      matt 	/*
   1908    1.1      matt 	 * If this is a managed page, and it's the first reference to the
   1909    1.1      matt 	 * page clear the execness of the page.  Otherwise fetch the execness.
   1910    1.1      matt 	 */
   1911    1.1      matt 	if (pg != NULL)
   1912    1.1      matt 		was_exec = pmap_attr_fetch(pg) & PTE_EXEC;
   1913    1.1      matt 
   1914   1.85      matt 	DPRINTFN(ENTER, " was_exec=%d", was_exec);
   1915    1.1      matt 
   1916    1.1      matt 	/*
   1917    1.1      matt 	 * Assume the page is cache inhibited and access is guarded unless
   1918    1.1      matt 	 * it's in our available memory array.  If it is in the memory array,
   1919    1.1      matt 	 * asssume it's in memory coherent memory.
   1920    1.1      matt 	 */
   1921   1.77  macallan 	if (flags & PMAP_MD_PREFETCHABLE) {
   1922   1.77  macallan 		pte_lo = 0;
   1923   1.77  macallan 	} else
   1924   1.77  macallan 		pte_lo = PTE_G;
   1925   1.77  macallan 
   1926   1.81      matt 	if ((flags & PMAP_NOCACHE) == 0) {
   1927    1.1      matt 		for (mp = mem; mp->size; mp++) {
   1928    1.1      matt 			if (pa >= mp->start && pa < mp->start + mp->size) {
   1929    1.1      matt 				pte_lo = PTE_M;
   1930    1.1      matt 				break;
   1931    1.1      matt 			}
   1932    1.1      matt 		}
   1933   1.87  kiyohara #ifdef MULTIPROCESSOR
   1934   1.87  kiyohara 		if (((mfpvr() >> 16) & 0xffff) == MPC603e)
   1935   1.87  kiyohara 			pte_lo = PTE_M;
   1936   1.87  kiyohara #endif
   1937   1.77  macallan 	} else {
   1938   1.77  macallan 		pte_lo |= PTE_I;
   1939    1.1      matt 	}
   1940    1.1      matt 
   1941    1.1      matt 	if (prot & VM_PROT_WRITE)
   1942    1.1      matt 		pte_lo |= PTE_BW;
   1943    1.1      matt 	else
   1944    1.1      matt 		pte_lo |= PTE_BR;
   1945    1.1      matt 
   1946    1.1      matt 	/*
   1947    1.1      matt 	 * If this was in response to a fault, "pre-fault" the PTE's
   1948    1.1      matt 	 * changed/referenced bit appropriately.
   1949    1.1      matt 	 */
   1950    1.1      matt 	if (flags & VM_PROT_WRITE)
   1951    1.1      matt 		pte_lo |= PTE_CHG;
   1952   1.30       chs 	if (flags & VM_PROT_ALL)
   1953    1.1      matt 		pte_lo |= PTE_REF;
   1954    1.1      matt 
   1955    1.1      matt 	/*
   1956    1.1      matt 	 * We need to know if this page can be executable
   1957    1.1      matt 	 */
   1958    1.1      matt 	flags |= (prot & VM_PROT_EXECUTE);
   1959    1.1      matt 
   1960    1.1      matt 	/*
   1961    1.1      matt 	 * Record mapping for later back-translation and pte spilling.
   1962    1.1      matt 	 * This will overwrite any existing mapping.
   1963    1.1      matt 	 */
   1964    1.1      matt 	error = pmap_pvo_enter(pm, pl, pvo_head, va, pa, pte_lo, flags);
   1965    1.1      matt 
   1966    1.1      matt 	/*
   1967    1.1      matt 	 * Flush the real page from the instruction cache if this page is
   1968    1.1      matt 	 * mapped executable and cacheable and has not been flushed since
   1969    1.1      matt 	 * the last time it was modified.
   1970    1.1      matt 	 */
   1971    1.1      matt 	if (error == 0 &&
   1972    1.1      matt             (flags & VM_PROT_EXECUTE) &&
   1973    1.1      matt             (pte_lo & PTE_I) == 0 &&
   1974    1.1      matt 	    was_exec == 0) {
   1975   1.85      matt 		DPRINTFN(ENTER, " %s", "syncicache");
   1976    1.1      matt 		PMAPCOUNT(exec_synced);
   1977    1.6   thorpej 		pmap_syncicache(pa, PAGE_SIZE);
   1978    1.1      matt 		if (pg != NULL) {
   1979    1.1      matt 			pmap_attr_save(pg, PTE_EXEC);
   1980    1.1      matt 			PMAPCOUNT(exec_cached);
   1981    1.1      matt #if defined(DEBUG) || defined(PMAPDEBUG)
   1982    1.1      matt 			if (pmapdebug & PMAPDEBUG_ENTER)
   1983    1.1      matt 				printf(" marked-as-exec");
   1984    1.1      matt 			else if (pmapdebug & PMAPDEBUG_EXEC)
   1985   1.53   garbled 				printf("[pmap_enter: %#" _PRIxpa ": marked-as-exec]\n",
   1986   1.34      yamt 				    VM_PAGE_TO_PHYS(pg));
   1987    1.1      matt 
   1988    1.1      matt #endif
   1989    1.1      matt 		}
   1990    1.1      matt 	}
   1991    1.1      matt 
   1992   1.85      matt 	DPRINTFN(ENTER, ": error=%d\n", error);
   1993    1.1      matt 
   1994   1.50        ad 	PMAP_UNLOCK();
   1995   1.50        ad 
   1996    1.1      matt 	return error;
   1997    1.1      matt }
   1998    1.1      matt 
   1999    1.1      matt void
   2000   1.68    cegger pmap_kenter_pa(vaddr_t va, paddr_t pa, vm_prot_t prot, u_int flags)
   2001    1.1      matt {
   2002    1.1      matt 	struct mem_region *mp;
   2003    1.2      matt 	register_t pte_lo;
   2004    1.1      matt 	int error;
   2005    1.1      matt 
   2006   1.85      matt #if defined (PMAP_OEA64_BRIDGE) || defined (PMAP_OEA)
   2007    1.1      matt 	if (va < VM_MIN_KERNEL_ADDRESS)
   2008    1.1      matt 		panic("pmap_kenter_pa: attempt to enter "
   2009   1.53   garbled 		    "non-kernel address %#" _PRIxva "!", va);
   2010   1.38   sanjayl #endif
   2011    1.1      matt 
   2012    1.1      matt 	DPRINTFN(KENTER,
   2013   1.85      matt 	    "pmap_kenter_pa(%#" _PRIxva ",%#" _PRIxpa ",%#x)\n", va, pa, prot);
   2014    1.1      matt 
   2015   1.50        ad 	PMAP_LOCK();
   2016   1.50        ad 
   2017    1.1      matt 	/*
   2018    1.1      matt 	 * Assume the page is cache inhibited and access is guarded unless
   2019    1.1      matt 	 * it's in our available memory array.  If it is in the memory array,
   2020    1.1      matt 	 * asssume it's in memory coherent memory.
   2021    1.1      matt 	 */
   2022    1.1      matt 	pte_lo = PTE_IG;
   2023   1.81      matt 	if ((flags & PMAP_NOCACHE) == 0) {
   2024    1.4      matt 		for (mp = mem; mp->size; mp++) {
   2025    1.4      matt 			if (pa >= mp->start && pa < mp->start + mp->size) {
   2026    1.4      matt 				pte_lo = PTE_M;
   2027    1.4      matt 				break;
   2028    1.4      matt 			}
   2029    1.1      matt 		}
   2030   1.87  kiyohara #ifdef MULTIPROCESSOR
   2031   1.87  kiyohara 		if (((mfpvr() >> 16) & 0xffff) == MPC603e)
   2032   1.87  kiyohara 			pte_lo = PTE_M;
   2033   1.87  kiyohara #endif
   2034    1.1      matt 	}
   2035    1.1      matt 
   2036    1.1      matt 	if (prot & VM_PROT_WRITE)
   2037    1.1      matt 		pte_lo |= PTE_BW;
   2038    1.1      matt 	else
   2039    1.1      matt 		pte_lo |= PTE_BR;
   2040    1.1      matt 
   2041    1.1      matt 	/*
   2042    1.1      matt 	 * We don't care about REF/CHG on PVOs on the unmanaged list.
   2043    1.1      matt 	 */
   2044    1.1      matt 	error = pmap_pvo_enter(pmap_kernel(), &pmap_upvo_pool,
   2045    1.1      matt 	    &pmap_pvo_kunmanaged, va, pa, pte_lo, prot|PMAP_WIRED);
   2046    1.1      matt 
   2047    1.1      matt 	if (error != 0)
   2048   1.53   garbled 		panic("pmap_kenter_pa: failed to enter va %#" _PRIxva " pa %#" _PRIxpa ": %d",
   2049    1.1      matt 		      va, pa, error);
   2050   1.50        ad 
   2051   1.50        ad 	PMAP_UNLOCK();
   2052    1.1      matt }
   2053    1.1      matt 
   2054    1.1      matt void
   2055    1.1      matt pmap_kremove(vaddr_t va, vsize_t len)
   2056    1.1      matt {
   2057    1.1      matt 	if (va < VM_MIN_KERNEL_ADDRESS)
   2058    1.1      matt 		panic("pmap_kremove: attempt to remove "
   2059   1.53   garbled 		    "non-kernel address %#" _PRIxva "!", va);
   2060    1.1      matt 
   2061   1.85      matt 	DPRINTFN(KREMOVE, "pmap_kremove(%#" _PRIxva ",%#" _PRIxva ")\n", va, len);
   2062    1.1      matt 	pmap_remove(pmap_kernel(), va, va + len);
   2063    1.1      matt }
   2064    1.1      matt 
   2065    1.1      matt /*
   2066    1.1      matt  * Remove the given range of mapping entries.
   2067    1.1      matt  */
   2068    1.1      matt void
   2069    1.1      matt pmap_remove(pmap_t pm, vaddr_t va, vaddr_t endva)
   2070    1.1      matt {
   2071   1.33       chs 	struct pvo_head pvol;
   2072    1.1      matt 	struct pvo_entry *pvo;
   2073    1.2      matt 	register_t msr;
   2074    1.1      matt 	int pteidx;
   2075    1.1      matt 
   2076   1.50        ad 	PMAP_LOCK();
   2077   1.33       chs 	LIST_INIT(&pvol);
   2078   1.14       chs 	msr = pmap_interrupts_off();
   2079    1.1      matt 	for (; va < endva; va += PAGE_SIZE) {
   2080    1.1      matt 		pvo = pmap_pvo_find_va(pm, va, &pteidx);
   2081    1.1      matt 		if (pvo != NULL) {
   2082   1.33       chs 			pmap_pvo_remove(pvo, pteidx, &pvol);
   2083    1.1      matt 		}
   2084    1.1      matt 	}
   2085   1.14       chs 	pmap_interrupts_restore(msr);
   2086   1.33       chs 	pmap_pvo_free_list(&pvol);
   2087   1.50        ad 	PMAP_UNLOCK();
   2088    1.1      matt }
   2089    1.1      matt 
   2090    1.1      matt /*
   2091    1.1      matt  * Get the physical page address for the given pmap/virtual address.
   2092    1.1      matt  */
   2093   1.44   thorpej bool
   2094    1.1      matt pmap_extract(pmap_t pm, vaddr_t va, paddr_t *pap)
   2095    1.1      matt {
   2096    1.1      matt 	struct pvo_entry *pvo;
   2097    1.2      matt 	register_t msr;
   2098    1.7      matt 
   2099   1.50        ad 	PMAP_LOCK();
   2100   1.38   sanjayl 
   2101    1.7      matt 	/*
   2102    1.7      matt 	 * If this is a kernel pmap lookup, also check the battable
   2103    1.7      matt 	 * and if we get a hit, translate the VA to a PA using the
   2104   1.36   nathanw 	 * BAT entries.  Don't check for VM_MAX_KERNEL_ADDRESS is
   2105    1.7      matt 	 * that will wrap back to 0.
   2106    1.7      matt 	 */
   2107    1.7      matt 	if (pm == pmap_kernel() &&
   2108    1.7      matt 	    (va < VM_MIN_KERNEL_ADDRESS ||
   2109    1.7      matt 	     (KERNEL2_SR < 15 && VM_MAX_KERNEL_ADDRESS <= va))) {
   2110    1.8      matt 		KASSERT((va >> ADDR_SR_SHFT) != USER_SR);
   2111   1.53   garbled #if defined (PMAP_OEA)
   2112   1.55   garbled #ifdef PPC_OEA601
   2113   1.55   garbled 		if ((MFPVR() >> 16) == MPC601) {
   2114   1.24    kleink 			register_t batu = battable[va >> 23].batu;
   2115   1.24    kleink 			register_t batl = battable[va >> 23].batl;
   2116   1.24    kleink 			register_t sr = iosrtable[va >> ADDR_SR_SHFT];
   2117   1.24    kleink 			if (BAT601_VALID_P(batl) &&
   2118   1.24    kleink 			    BAT601_VA_MATCH_P(batu, batl, va)) {
   2119   1.24    kleink 				register_t mask =
   2120   1.24    kleink 				    (~(batl & BAT601_BSM) << 17) & ~0x1ffffL;
   2121   1.29    briggs 				if (pap)
   2122   1.29    briggs 					*pap = (batl & mask) | (va & ~mask);
   2123   1.50        ad 				PMAP_UNLOCK();
   2124   1.45   thorpej 				return true;
   2125   1.24    kleink 			} else if (SR601_VALID_P(sr) &&
   2126   1.24    kleink 				   SR601_PA_MATCH_P(sr, va)) {
   2127   1.29    briggs 				if (pap)
   2128   1.29    briggs 					*pap = va;
   2129   1.50        ad 				PMAP_UNLOCK();
   2130   1.45   thorpej 				return true;
   2131   1.24    kleink 			}
   2132   1.55   garbled 		} else
   2133   1.55   garbled #endif /* PPC_OEA601 */
   2134   1.55   garbled 		{
   2135   1.83      matt 			register_t batu = battable[BAT_VA2IDX(va)].batu;
   2136   1.55   garbled 			if (BAT_VALID_P(batu,0) && BAT_VA_MATCH_P(batu,va)) {
   2137   1.83      matt 				register_t batl = battable[BAT_VA2IDX(va)].batl;
   2138   1.55   garbled 				register_t mask =
   2139   1.83      matt 				    (~(batu & (BAT_XBL|BAT_BL)) << 15) & ~0x1ffffL;
   2140   1.55   garbled 				if (pap)
   2141   1.55   garbled 					*pap = (batl & mask) | (va & ~mask);
   2142   1.55   garbled 				PMAP_UNLOCK();
   2143   1.55   garbled 				return true;
   2144   1.55   garbled 			}
   2145    1.7      matt 		}
   2146   1.96       rin 		PMAP_UNLOCK();
   2147   1.45   thorpej 		return false;
   2148   1.53   garbled #elif defined (PMAP_OEA64_BRIDGE)
   2149   1.52   garbled 	if (va >= SEGMENT_LENGTH)
   2150   1.52   garbled 		panic("%s: pm: %s va >= SEGMENT_LENGTH, va: 0x%08lx\n",
   2151   1.52   garbled 		    __func__, (pm == pmap_kernel() ? "kernel" : "user"), va);
   2152   1.52   garbled 	else {
   2153   1.52   garbled 		if (pap)
   2154   1.52   garbled 			*pap = va;
   2155   1.52   garbled 			PMAP_UNLOCK();
   2156   1.52   garbled 			return true;
   2157   1.52   garbled 	}
   2158   1.53   garbled #elif defined (PMAP_OEA64)
   2159   1.38   sanjayl #error PPC_OEA64 not supported
   2160   1.38   sanjayl #endif /* PPC_OEA */
   2161    1.7      matt 	}
   2162    1.1      matt 
   2163    1.1      matt 	msr = pmap_interrupts_off();
   2164    1.1      matt 	pvo = pmap_pvo_find_va(pm, va & ~ADDR_POFF, NULL);
   2165    1.1      matt 	if (pvo != NULL) {
   2166    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2167   1.29    briggs 		if (pap)
   2168   1.29    briggs 			*pap = (pvo->pvo_pte.pte_lo & PTE_RPGN)
   2169   1.29    briggs 			    | (va & ADDR_POFF);
   2170    1.1      matt 	}
   2171    1.1      matt 	pmap_interrupts_restore(msr);
   2172   1.50        ad 	PMAP_UNLOCK();
   2173    1.1      matt 	return pvo != NULL;
   2174    1.1      matt }
   2175    1.1      matt 
   2176    1.1      matt /*
   2177    1.1      matt  * Lower the protection on the specified range of this pmap.
   2178    1.1      matt  */
   2179    1.1      matt void
   2180    1.1      matt pmap_protect(pmap_t pm, vaddr_t va, vaddr_t endva, vm_prot_t prot)
   2181    1.1      matt {
   2182    1.1      matt 	struct pvo_entry *pvo;
   2183    1.2      matt 	volatile struct pte *pt;
   2184    1.2      matt 	register_t msr;
   2185    1.1      matt 	int pteidx;
   2186    1.1      matt 
   2187    1.1      matt 	/*
   2188    1.1      matt 	 * Since this routine only downgrades protection, we should
   2189   1.14       chs 	 * always be called with at least one bit not set.
   2190    1.1      matt 	 */
   2191   1.14       chs 	KASSERT(prot != VM_PROT_ALL);
   2192    1.1      matt 
   2193    1.1      matt 	/*
   2194    1.1      matt 	 * If there is no protection, this is equivalent to
   2195    1.1      matt 	 * remove the pmap from the pmap.
   2196    1.1      matt 	 */
   2197    1.1      matt 	if ((prot & VM_PROT_READ) == 0) {
   2198    1.1      matt 		pmap_remove(pm, va, endva);
   2199    1.1      matt 		return;
   2200    1.1      matt 	}
   2201    1.1      matt 
   2202   1.50        ad 	PMAP_LOCK();
   2203   1.50        ad 
   2204    1.1      matt 	msr = pmap_interrupts_off();
   2205    1.6   thorpej 	for (; va < endva; va += PAGE_SIZE) {
   2206    1.1      matt 		pvo = pmap_pvo_find_va(pm, va, &pteidx);
   2207    1.1      matt 		if (pvo == NULL)
   2208    1.1      matt 			continue;
   2209    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2210    1.1      matt 
   2211    1.1      matt 		/*
   2212    1.1      matt 		 * Revoke executable if asked to do so.
   2213    1.1      matt 		 */
   2214    1.1      matt 		if ((prot & VM_PROT_EXECUTE) == 0)
   2215   1.14       chs 			pvo_clear_exec(pvo);
   2216    1.1      matt 
   2217    1.1      matt #if 0
   2218    1.1      matt 		/*
   2219    1.1      matt 		 * If the page is already read-only, no change
   2220    1.1      matt 		 * needs to be made.
   2221    1.1      matt 		 */
   2222    1.1      matt 		if ((pvo->pvo_pte.pte_lo & PTE_PP) == PTE_BR)
   2223    1.1      matt 			continue;
   2224    1.1      matt #endif
   2225    1.1      matt 		/*
   2226    1.1      matt 		 * Grab the PTE pointer before we diddle with
   2227    1.1      matt 		 * the cached PTE copy.
   2228    1.1      matt 		 */
   2229    1.1      matt 		pt = pmap_pvo_to_pte(pvo, pteidx);
   2230    1.1      matt 		/*
   2231    1.1      matt 		 * Change the protection of the page.
   2232    1.1      matt 		 */
   2233    1.1      matt 		pvo->pvo_pte.pte_lo &= ~PTE_PP;
   2234    1.1      matt 		pvo->pvo_pte.pte_lo |= PTE_BR;
   2235    1.1      matt 
   2236    1.1      matt 		/*
   2237    1.1      matt 		 * If the PVO is in the page table, update
   2238    1.1      matt 		 * that pte at well.
   2239    1.1      matt 		 */
   2240    1.1      matt 		if (pt != NULL) {
   2241    1.1      matt 			pmap_pte_change(pt, &pvo->pvo_pte, pvo->pvo_vaddr);
   2242   1.12      matt 			PVO_WHERE(pvo, PMAP_PROTECT);
   2243    1.1      matt 			PMAPCOUNT(ptes_changed);
   2244    1.1      matt 		}
   2245    1.1      matt 
   2246    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2247    1.1      matt 	}
   2248    1.1      matt 	pmap_interrupts_restore(msr);
   2249   1.50        ad 	PMAP_UNLOCK();
   2250    1.1      matt }
   2251    1.1      matt 
   2252    1.1      matt void
   2253    1.1      matt pmap_unwire(pmap_t pm, vaddr_t va)
   2254    1.1      matt {
   2255    1.1      matt 	struct pvo_entry *pvo;
   2256    1.2      matt 	register_t msr;
   2257    1.1      matt 
   2258   1.50        ad 	PMAP_LOCK();
   2259    1.1      matt 	msr = pmap_interrupts_off();
   2260    1.1      matt 	pvo = pmap_pvo_find_va(pm, va, NULL);
   2261    1.1      matt 	if (pvo != NULL) {
   2262   1.39      matt 		if (PVO_WIRED_P(pvo)) {
   2263    1.1      matt 			pvo->pvo_vaddr &= ~PVO_WIRED;
   2264    1.1      matt 			pm->pm_stats.wired_count--;
   2265    1.1      matt 		}
   2266    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2267    1.1      matt 	}
   2268    1.1      matt 	pmap_interrupts_restore(msr);
   2269   1.50        ad 	PMAP_UNLOCK();
   2270    1.1      matt }
   2271    1.1      matt 
   2272    1.1      matt /*
   2273    1.1      matt  * Lower the protection on the specified physical page.
   2274    1.1      matt  */
   2275    1.1      matt void
   2276    1.1      matt pmap_page_protect(struct vm_page *pg, vm_prot_t prot)
   2277    1.1      matt {
   2278   1.33       chs 	struct pvo_head *pvo_head, pvol;
   2279    1.1      matt 	struct pvo_entry *pvo, *next_pvo;
   2280    1.2      matt 	volatile struct pte *pt;
   2281    1.2      matt 	register_t msr;
   2282    1.1      matt 
   2283   1.50        ad 	PMAP_LOCK();
   2284   1.50        ad 
   2285   1.14       chs 	KASSERT(prot != VM_PROT_ALL);
   2286   1.33       chs 	LIST_INIT(&pvol);
   2287    1.1      matt 	msr = pmap_interrupts_off();
   2288    1.1      matt 
   2289    1.1      matt 	/*
   2290    1.1      matt 	 * When UVM reuses a page, it does a pmap_page_protect with
   2291    1.1      matt 	 * VM_PROT_NONE.  At that point, we can clear the exec flag
   2292    1.1      matt 	 * since we know the page will have different contents.
   2293    1.1      matt 	 */
   2294    1.1      matt 	if ((prot & VM_PROT_READ) == 0) {
   2295   1.85      matt 		DPRINTFN(EXEC, "[pmap_page_protect: %#" _PRIxpa ": clear-exec]\n",
   2296   1.85      matt 		    VM_PAGE_TO_PHYS(pg));
   2297    1.1      matt 		if (pmap_attr_fetch(pg) & PTE_EXEC) {
   2298    1.1      matt 			PMAPCOUNT(exec_uncached_page_protect);
   2299    1.1      matt 			pmap_attr_clear(pg, PTE_EXEC);
   2300    1.1      matt 		}
   2301    1.1      matt 	}
   2302    1.1      matt 
   2303    1.1      matt 	pvo_head = vm_page_to_pvoh(pg);
   2304    1.1      matt 	for (pvo = LIST_FIRST(pvo_head); pvo != NULL; pvo = next_pvo) {
   2305    1.1      matt 		next_pvo = LIST_NEXT(pvo, pvo_vlink);
   2306    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2307    1.1      matt 
   2308    1.1      matt 		/*
   2309    1.1      matt 		 * Downgrading to no mapping at all, we just remove the entry.
   2310    1.1      matt 		 */
   2311    1.1      matt 		if ((prot & VM_PROT_READ) == 0) {
   2312   1.33       chs 			pmap_pvo_remove(pvo, -1, &pvol);
   2313    1.1      matt 			continue;
   2314    1.1      matt 		}
   2315    1.1      matt 
   2316    1.1      matt 		/*
   2317    1.1      matt 		 * If EXEC permission is being revoked, just clear the
   2318    1.1      matt 		 * flag in the PVO.
   2319    1.1      matt 		 */
   2320    1.1      matt 		if ((prot & VM_PROT_EXECUTE) == 0)
   2321   1.14       chs 			pvo_clear_exec(pvo);
   2322    1.1      matt 
   2323    1.1      matt 		/*
   2324    1.1      matt 		 * If this entry is already RO, don't diddle with the
   2325    1.1      matt 		 * page table.
   2326    1.1      matt 		 */
   2327    1.1      matt 		if ((pvo->pvo_pte.pte_lo & PTE_PP) == PTE_BR) {
   2328    1.1      matt 			PMAP_PVO_CHECK(pvo);
   2329    1.1      matt 			continue;
   2330    1.1      matt 		}
   2331    1.1      matt 
   2332    1.1      matt 		/*
   2333    1.1      matt 		 * Grab the PTE before the we diddle the bits so
   2334    1.1      matt 		 * pvo_to_pte can verify the pte contents are as
   2335    1.1      matt 		 * expected.
   2336    1.1      matt 		 */
   2337    1.1      matt 		pt = pmap_pvo_to_pte(pvo, -1);
   2338    1.1      matt 		pvo->pvo_pte.pte_lo &= ~PTE_PP;
   2339    1.1      matt 		pvo->pvo_pte.pte_lo |= PTE_BR;
   2340    1.1      matt 		if (pt != NULL) {
   2341    1.1      matt 			pmap_pte_change(pt, &pvo->pvo_pte, pvo->pvo_vaddr);
   2342   1.12      matt 			PVO_WHERE(pvo, PMAP_PAGE_PROTECT);
   2343    1.1      matt 			PMAPCOUNT(ptes_changed);
   2344    1.1      matt 		}
   2345    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2346    1.1      matt 	}
   2347    1.1      matt 	pmap_interrupts_restore(msr);
   2348   1.33       chs 	pmap_pvo_free_list(&pvol);
   2349   1.50        ad 
   2350   1.50        ad 	PMAP_UNLOCK();
   2351    1.1      matt }
   2352    1.1      matt 
   2353    1.1      matt /*
   2354    1.1      matt  * Activate the address space for the specified process.  If the process
   2355    1.1      matt  * is the current process, load the new MMU context.
   2356    1.1      matt  */
   2357    1.1      matt void
   2358    1.1      matt pmap_activate(struct lwp *l)
   2359    1.1      matt {
   2360   1.69     rmind 	struct pcb *pcb = lwp_getpcb(l);
   2361    1.1      matt 	pmap_t pmap = l->l_proc->p_vmspace->vm_map.pmap;
   2362    1.1      matt 
   2363    1.1      matt 	DPRINTFN(ACTIVATE,
   2364   1.85      matt 	    "pmap_activate: lwp %p (curlwp %p)\n", l, curlwp);
   2365    1.1      matt 
   2366    1.1      matt 	/*
   2367   1.70     skrll 	 * XXX Normally performed in cpu_lwp_fork().
   2368    1.1      matt 	 */
   2369   1.13      matt 	pcb->pcb_pm = pmap;
   2370   1.17      matt 
   2371   1.17      matt 	/*
   2372   1.17      matt 	* In theory, the SR registers need only be valid on return
   2373   1.17      matt 	* to user space wait to do them there.
   2374   1.17      matt 	*/
   2375   1.17      matt 	if (l == curlwp) {
   2376   1.17      matt 		/* Store pointer to new current pmap. */
   2377   1.17      matt 		curpm = pmap;
   2378   1.17      matt 	}
   2379    1.1      matt }
   2380    1.1      matt 
   2381    1.1      matt /*
   2382    1.1      matt  * Deactivate the specified process's address space.
   2383    1.1      matt  */
   2384    1.1      matt void
   2385    1.1      matt pmap_deactivate(struct lwp *l)
   2386    1.1      matt {
   2387    1.1      matt }
   2388    1.1      matt 
   2389   1.44   thorpej bool
   2390    1.1      matt pmap_query_bit(struct vm_page *pg, int ptebit)
   2391    1.1      matt {
   2392    1.1      matt 	struct pvo_entry *pvo;
   2393    1.2      matt 	volatile struct pte *pt;
   2394    1.2      matt 	register_t msr;
   2395    1.1      matt 
   2396   1.50        ad 	PMAP_LOCK();
   2397   1.50        ad 
   2398   1.50        ad 	if (pmap_attr_fetch(pg) & ptebit) {
   2399   1.50        ad 		PMAP_UNLOCK();
   2400   1.45   thorpej 		return true;
   2401   1.50        ad 	}
   2402   1.14       chs 
   2403    1.1      matt 	msr = pmap_interrupts_off();
   2404    1.1      matt 	LIST_FOREACH(pvo, vm_page_to_pvoh(pg), pvo_vlink) {
   2405    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2406    1.1      matt 		/*
   2407    1.1      matt 		 * See if we saved the bit off.  If so cache, it and return
   2408    1.1      matt 		 * success.
   2409    1.1      matt 		 */
   2410    1.1      matt 		if (pvo->pvo_pte.pte_lo & ptebit) {
   2411    1.1      matt 			pmap_attr_save(pg, ptebit);
   2412    1.1      matt 			PMAP_PVO_CHECK(pvo);		/* sanity check */
   2413    1.1      matt 			pmap_interrupts_restore(msr);
   2414   1.50        ad 			PMAP_UNLOCK();
   2415   1.45   thorpej 			return true;
   2416    1.1      matt 		}
   2417    1.1      matt 	}
   2418    1.1      matt 	/*
   2419    1.1      matt 	 * No luck, now go thru the hard part of looking at the ptes
   2420    1.1      matt 	 * themselves.  Sync so any pending REF/CHG bits are flushed
   2421    1.1      matt 	 * to the PTEs.
   2422    1.1      matt 	 */
   2423    1.1      matt 	SYNC();
   2424    1.1      matt 	LIST_FOREACH(pvo, vm_page_to_pvoh(pg), pvo_vlink) {
   2425    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2426    1.1      matt 		/*
   2427    1.1      matt 		 * See if this pvo have a valid PTE.  If so, fetch the
   2428    1.1      matt 		 * REF/CHG bits from the valid PTE.  If the appropriate
   2429    1.1      matt 		 * ptebit is set, cache, it and return success.
   2430    1.1      matt 		 */
   2431    1.1      matt 		pt = pmap_pvo_to_pte(pvo, -1);
   2432    1.1      matt 		if (pt != NULL) {
   2433    1.1      matt 			pmap_pte_synch(pt, &pvo->pvo_pte);
   2434    1.1      matt 			if (pvo->pvo_pte.pte_lo & ptebit) {
   2435    1.1      matt 				pmap_attr_save(pg, ptebit);
   2436    1.1      matt 				PMAP_PVO_CHECK(pvo);		/* sanity check */
   2437    1.1      matt 				pmap_interrupts_restore(msr);
   2438   1.50        ad 				PMAP_UNLOCK();
   2439   1.45   thorpej 				return true;
   2440    1.1      matt 			}
   2441    1.1      matt 		}
   2442    1.1      matt 	}
   2443    1.1      matt 	pmap_interrupts_restore(msr);
   2444   1.50        ad 	PMAP_UNLOCK();
   2445   1.45   thorpej 	return false;
   2446    1.1      matt }
   2447    1.1      matt 
   2448   1.44   thorpej bool
   2449    1.1      matt pmap_clear_bit(struct vm_page *pg, int ptebit)
   2450    1.1      matt {
   2451    1.1      matt 	struct pvo_head *pvoh = vm_page_to_pvoh(pg);
   2452    1.1      matt 	struct pvo_entry *pvo;
   2453    1.2      matt 	volatile struct pte *pt;
   2454    1.2      matt 	register_t msr;
   2455    1.1      matt 	int rv = 0;
   2456    1.1      matt 
   2457   1.50        ad 	PMAP_LOCK();
   2458    1.1      matt 	msr = pmap_interrupts_off();
   2459    1.1      matt 
   2460    1.1      matt 	/*
   2461    1.1      matt 	 * Fetch the cache value
   2462    1.1      matt 	 */
   2463    1.1      matt 	rv |= pmap_attr_fetch(pg);
   2464    1.1      matt 
   2465    1.1      matt 	/*
   2466    1.1      matt 	 * Clear the cached value.
   2467    1.1      matt 	 */
   2468    1.1      matt 	pmap_attr_clear(pg, ptebit);
   2469    1.1      matt 
   2470    1.1      matt 	/*
   2471    1.1      matt 	 * Sync so any pending REF/CHG bits are flushed to the PTEs (so we
   2472    1.1      matt 	 * can reset the right ones).  Note that since the pvo entries and
   2473    1.1      matt 	 * list heads are accessed via BAT0 and are never placed in the
   2474    1.1      matt 	 * page table, we don't have to worry about further accesses setting
   2475    1.1      matt 	 * the REF/CHG bits.
   2476    1.1      matt 	 */
   2477    1.1      matt 	SYNC();
   2478    1.1      matt 
   2479    1.1      matt 	/*
   2480    1.1      matt 	 * For each pvo entry, clear pvo's ptebit.  If this pvo have a
   2481    1.1      matt 	 * valid PTE.  If so, clear the ptebit from the valid PTE.
   2482    1.1      matt 	 */
   2483    1.1      matt 	LIST_FOREACH(pvo, pvoh, pvo_vlink) {
   2484    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2485    1.1      matt 		pt = pmap_pvo_to_pte(pvo, -1);
   2486    1.1      matt 		if (pt != NULL) {
   2487    1.1      matt 			/*
   2488    1.1      matt 			 * Only sync the PTE if the bit we are looking
   2489    1.1      matt 			 * for is not already set.
   2490    1.1      matt 			 */
   2491    1.1      matt 			if ((pvo->pvo_pte.pte_lo & ptebit) == 0)
   2492    1.1      matt 				pmap_pte_synch(pt, &pvo->pvo_pte);
   2493    1.1      matt 			/*
   2494    1.1      matt 			 * If the bit we are looking for was already set,
   2495    1.1      matt 			 * clear that bit in the pte.
   2496    1.1      matt 			 */
   2497    1.1      matt 			if (pvo->pvo_pte.pte_lo & ptebit)
   2498    1.1      matt 				pmap_pte_clear(pt, PVO_VADDR(pvo), ptebit);
   2499    1.1      matt 		}
   2500    1.1      matt 		rv |= pvo->pvo_pte.pte_lo & (PTE_CHG|PTE_REF);
   2501    1.1      matt 		pvo->pvo_pte.pte_lo &= ~ptebit;
   2502    1.1      matt 		PMAP_PVO_CHECK(pvo);		/* sanity check */
   2503    1.1      matt 	}
   2504    1.1      matt 	pmap_interrupts_restore(msr);
   2505   1.14       chs 
   2506    1.1      matt 	/*
   2507    1.1      matt 	 * If we are clearing the modify bit and this page was marked EXEC
   2508    1.1      matt 	 * and the user of the page thinks the page was modified, then we
   2509    1.1      matt 	 * need to clean it from the icache if it's mapped or clear the EXEC
   2510    1.1      matt 	 * bit if it's not mapped.  The page itself might not have the CHG
   2511    1.1      matt 	 * bit set if the modification was done via DMA to the page.
   2512    1.1      matt 	 */
   2513    1.1      matt 	if ((ptebit & PTE_CHG) && (rv & PTE_EXEC)) {
   2514    1.1      matt 		if (LIST_EMPTY(pvoh)) {
   2515   1.85      matt 			DPRINTFN(EXEC, "[pmap_clear_bit: %#" _PRIxpa ": clear-exec]\n",
   2516   1.85      matt 			    VM_PAGE_TO_PHYS(pg));
   2517    1.1      matt 			pmap_attr_clear(pg, PTE_EXEC);
   2518    1.1      matt 			PMAPCOUNT(exec_uncached_clear_modify);
   2519    1.1      matt 		} else {
   2520   1.85      matt 			DPRINTFN(EXEC, "[pmap_clear_bit: %#" _PRIxpa ": syncicache]\n",
   2521   1.85      matt 			    VM_PAGE_TO_PHYS(pg));
   2522   1.34      yamt 			pmap_syncicache(VM_PAGE_TO_PHYS(pg), PAGE_SIZE);
   2523    1.1      matt 			PMAPCOUNT(exec_synced_clear_modify);
   2524    1.1      matt 		}
   2525    1.1      matt 	}
   2526   1.50        ad 	PMAP_UNLOCK();
   2527    1.1      matt 	return (rv & ptebit) != 0;
   2528    1.1      matt }
   2529    1.1      matt 
   2530    1.1      matt void
   2531    1.1      matt pmap_procwr(struct proc *p, vaddr_t va, size_t len)
   2532    1.1      matt {
   2533    1.1      matt 	struct pvo_entry *pvo;
   2534    1.1      matt 	size_t offset = va & ADDR_POFF;
   2535    1.1      matt 	int s;
   2536    1.1      matt 
   2537   1.50        ad 	PMAP_LOCK();
   2538    1.1      matt 	s = splvm();
   2539    1.1      matt 	while (len > 0) {
   2540    1.6   thorpej 		size_t seglen = PAGE_SIZE - offset;
   2541    1.1      matt 		if (seglen > len)
   2542    1.1      matt 			seglen = len;
   2543    1.1      matt 		pvo = pmap_pvo_find_va(p->p_vmspace->vm_map.pmap, va, NULL);
   2544   1.39      matt 		if (pvo != NULL && PVO_EXECUTABLE_P(pvo)) {
   2545    1.1      matt 			pmap_syncicache(
   2546    1.1      matt 			    (pvo->pvo_pte.pte_lo & PTE_RPGN) | offset, seglen);
   2547    1.1      matt 			PMAP_PVO_CHECK(pvo);
   2548    1.1      matt 		}
   2549    1.1      matt 		va += seglen;
   2550    1.1      matt 		len -= seglen;
   2551    1.1      matt 		offset = 0;
   2552    1.1      matt 	}
   2553    1.1      matt 	splx(s);
   2554   1.50        ad 	PMAP_UNLOCK();
   2555    1.1      matt }
   2556    1.1      matt 
   2557    1.1      matt #if defined(DEBUG) || defined(PMAPCHECK) || defined(DDB)
   2558    1.1      matt void
   2559    1.2      matt pmap_pte_print(volatile struct pte *pt)
   2560    1.1      matt {
   2561    1.1      matt 	printf("PTE %p: ", pt);
   2562   1.38   sanjayl 
   2563   1.53   garbled #if defined(PMAP_OEA)
   2564    1.1      matt 	/* High word: */
   2565   1.54   mlelstv 	printf("%#" _PRIxpte ": [", pt->pte_hi);
   2566   1.53   garbled #else
   2567   1.54   mlelstv 	printf("%#" _PRIxpte ": [", pt->pte_hi);
   2568   1.53   garbled #endif /* PMAP_OEA */
   2569   1.38   sanjayl 
   2570    1.1      matt 	printf("%c ", (pt->pte_hi & PTE_VALID) ? 'v' : 'i');
   2571    1.1      matt 	printf("%c ", (pt->pte_hi & PTE_HID) ? 'h' : '-');
   2572   1.38   sanjayl 
   2573   1.54   mlelstv 	printf("%#" _PRIxpte " %#" _PRIxpte "",
   2574   1.38   sanjayl 	    (pt->pte_hi &~ PTE_VALID)>>PTE_VSID_SHFT,
   2575   1.38   sanjayl 	    pt->pte_hi & PTE_API);
   2576   1.53   garbled #if defined(PMAP_OEA) || defined(PMAP_OEA64_BRIDGE)
   2577   1.54   mlelstv 	printf(" (va %#" _PRIxva ")] ", pmap_pte_to_va(pt));
   2578   1.38   sanjayl #else
   2579   1.54   mlelstv 	printf(" (va %#" _PRIxva ")] ", pmap_pte_to_va(pt));
   2580   1.53   garbled #endif /* PMAP_OEA */
   2581   1.38   sanjayl 
   2582    1.1      matt 	/* Low word: */
   2583   1.53   garbled #if defined (PMAP_OEA)
   2584   1.54   mlelstv 	printf(" %#" _PRIxpte ": [", pt->pte_lo);
   2585   1.54   mlelstv 	printf("%#" _PRIxpte "... ", pt->pte_lo >> 12);
   2586   1.53   garbled #else
   2587   1.54   mlelstv 	printf(" %#" _PRIxpte ": [", pt->pte_lo);
   2588   1.54   mlelstv 	printf("%#" _PRIxpte "... ", pt->pte_lo >> 12);
   2589   1.38   sanjayl #endif
   2590    1.1      matt 	printf("%c ", (pt->pte_lo & PTE_REF) ? 'r' : 'u');
   2591    1.1      matt 	printf("%c ", (pt->pte_lo & PTE_CHG) ? 'c' : 'n');
   2592    1.1      matt 	printf("%c", (pt->pte_lo & PTE_W) ? 'w' : '.');
   2593    1.1      matt 	printf("%c", (pt->pte_lo & PTE_I) ? 'i' : '.');
   2594    1.1      matt 	printf("%c", (pt->pte_lo & PTE_M) ? 'm' : '.');
   2595    1.1      matt 	printf("%c ", (pt->pte_lo & PTE_G) ? 'g' : '.');
   2596    1.1      matt 	switch (pt->pte_lo & PTE_PP) {
   2597    1.1      matt 	case PTE_BR: printf("br]\n"); break;
   2598    1.1      matt 	case PTE_BW: printf("bw]\n"); break;
   2599    1.1      matt 	case PTE_SO: printf("so]\n"); break;
   2600    1.1      matt 	case PTE_SW: printf("sw]\n"); break;
   2601    1.1      matt 	}
   2602    1.1      matt }
   2603    1.1      matt #endif
   2604    1.1      matt 
   2605    1.1      matt #if defined(DDB)
   2606    1.1      matt void
   2607    1.1      matt pmap_pteg_check(void)
   2608    1.1      matt {
   2609    1.2      matt 	volatile struct pte *pt;
   2610    1.1      matt 	int i;
   2611    1.1      matt 	int ptegidx;
   2612    1.1      matt 	u_int p_valid = 0;
   2613    1.1      matt 	u_int s_valid = 0;
   2614    1.1      matt 	u_int invalid = 0;
   2615   1.38   sanjayl 
   2616    1.1      matt 	for (ptegidx = 0; ptegidx < pmap_pteg_cnt; ptegidx++) {
   2617    1.1      matt 		for (pt = pmap_pteg_table[ptegidx].pt, i = 8; --i >= 0; pt++) {
   2618    1.1      matt 			if (pt->pte_hi & PTE_VALID) {
   2619    1.1      matt 				if (pt->pte_hi & PTE_HID)
   2620    1.1      matt 					s_valid++;
   2621    1.1      matt 				else
   2622   1.38   sanjayl 				{
   2623    1.1      matt 					p_valid++;
   2624   1.38   sanjayl 				}
   2625    1.1      matt 			} else
   2626    1.1      matt 				invalid++;
   2627    1.1      matt 		}
   2628    1.1      matt 	}
   2629    1.1      matt 	printf("pteg_check: v(p) %#x (%d), v(s) %#x (%d), i %#x (%d)\n",
   2630    1.1      matt 		p_valid, p_valid, s_valid, s_valid,
   2631    1.1      matt 		invalid, invalid);
   2632    1.1      matt }
   2633    1.1      matt 
   2634    1.1      matt void
   2635    1.1      matt pmap_print_mmuregs(void)
   2636    1.1      matt {
   2637    1.1      matt 	int i;
   2638   1.97       rin #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   2639    1.1      matt 	u_int cpuvers;
   2640   1.90       mrg #endif
   2641   1.53   garbled #ifndef PMAP_OEA64
   2642    1.1      matt 	vaddr_t addr;
   2643    1.2      matt 	register_t soft_sr[16];
   2644   1.18      matt #endif
   2645   1.97       rin #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   2646    1.1      matt 	struct bat soft_ibat[4];
   2647    1.1      matt 	struct bat soft_dbat[4];
   2648   1.38   sanjayl #endif
   2649   1.53   garbled 	paddr_t sdr1;
   2650    1.1      matt 
   2651   1.97       rin #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   2652    1.1      matt 	cpuvers = MFPVR() >> 16;
   2653   1.90       mrg #endif
   2654   1.35     perry 	__asm volatile ("mfsdr1 %0" : "=r"(sdr1));
   2655   1.53   garbled #ifndef PMAP_OEA64
   2656   1.16    kleink 	addr = 0;
   2657   1.27       chs 	for (i = 0; i < 16; i++) {
   2658    1.1      matt 		soft_sr[i] = MFSRIN(addr);
   2659    1.1      matt 		addr += (1 << ADDR_SR_SHFT);
   2660    1.1      matt 	}
   2661   1.18      matt #endif
   2662    1.1      matt 
   2663   1.97       rin #if defined (PMAP_OEA) || defined (PMAP_OEA64_BRIDGE)
   2664    1.1      matt 	/* read iBAT (601: uBAT) registers */
   2665   1.35     perry 	__asm volatile ("mfibatu %0,0" : "=r"(soft_ibat[0].batu));
   2666   1.35     perry 	__asm volatile ("mfibatl %0,0" : "=r"(soft_ibat[0].batl));
   2667   1.35     perry 	__asm volatile ("mfibatu %0,1" : "=r"(soft_ibat[1].batu));
   2668   1.35     perry 	__asm volatile ("mfibatl %0,1" : "=r"(soft_ibat[1].batl));
   2669   1.35     perry 	__asm volatile ("mfibatu %0,2" : "=r"(soft_ibat[2].batu));
   2670   1.35     perry 	__asm volatile ("mfibatl %0,2" : "=r"(soft_ibat[2].batl));
   2671   1.35     perry 	__asm volatile ("mfibatu %0,3" : "=r"(soft_ibat[3].batu));
   2672   1.35     perry 	__asm volatile ("mfibatl %0,3" : "=r"(soft_ibat[3].batl));
   2673    1.1      matt 
   2674    1.1      matt 
   2675    1.1      matt 	if (cpuvers != MPC601) {
   2676    1.1      matt 		/* read dBAT registers */
   2677   1.35     perry 		__asm volatile ("mfdbatu %0,0" : "=r"(soft_dbat[0].batu));
   2678   1.35     perry 		__asm volatile ("mfdbatl %0,0" : "=r"(soft_dbat[0].batl));
   2679   1.35     perry 		__asm volatile ("mfdbatu %0,1" : "=r"(soft_dbat[1].batu));
   2680   1.35     perry 		__asm volatile ("mfdbatl %0,1" : "=r"(soft_dbat[1].batl));
   2681   1.35     perry 		__asm volatile ("mfdbatu %0,2" : "=r"(soft_dbat[2].batu));
   2682   1.35     perry 		__asm volatile ("mfdbatl %0,2" : "=r"(soft_dbat[2].batl));
   2683   1.35     perry 		__asm volatile ("mfdbatu %0,3" : "=r"(soft_dbat[3].batu));
   2684   1.35     perry 		__asm volatile ("mfdbatl %0,3" : "=r"(soft_dbat[3].batl));
   2685    1.1      matt 	}
   2686   1.38   sanjayl #endif
   2687    1.1      matt 
   2688   1.54   mlelstv 	printf("SDR1:\t%#" _PRIxpa "\n", sdr1);
   2689   1.53   garbled #ifndef PMAP_OEA64
   2690    1.1      matt 	printf("SR[]:\t");
   2691   1.27       chs 	for (i = 0; i < 4; i++)
   2692   1.53   garbled 		printf("0x%08lx,   ", soft_sr[i]);
   2693    1.1      matt 	printf("\n\t");
   2694   1.27       chs 	for ( ; i < 8; i++)
   2695   1.53   garbled 		printf("0x%08lx,   ", soft_sr[i]);
   2696    1.1      matt 	printf("\n\t");
   2697   1.27       chs 	for ( ; i < 12; i++)
   2698   1.53   garbled 		printf("0x%08lx,   ", soft_sr[i]);
   2699    1.1      matt 	printf("\n\t");
   2700   1.27       chs 	for ( ; i < 16; i++)
   2701   1.53   garbled 		printf("0x%08lx,   ", soft_sr[i]);
   2702    1.1      matt 	printf("\n");
   2703   1.18      matt #endif
   2704    1.1      matt 
   2705   1.97       rin #if defined(PMAP_OEA) || defined(PMAP_OEA64_BRIDGE)
   2706    1.1      matt 	printf("%cBAT[]:\t", cpuvers == MPC601 ? 'u' : 'i');
   2707   1.27       chs 	for (i = 0; i < 4; i++) {
   2708    1.2      matt 		printf("0x%08lx 0x%08lx, ",
   2709    1.1      matt 			soft_ibat[i].batu, soft_ibat[i].batl);
   2710    1.1      matt 		if (i == 1)
   2711    1.1      matt 			printf("\n\t");
   2712    1.1      matt 	}
   2713    1.1      matt 	if (cpuvers != MPC601) {
   2714    1.1      matt 		printf("\ndBAT[]:\t");
   2715   1.27       chs 		for (i = 0; i < 4; i++) {
   2716    1.2      matt 			printf("0x%08lx 0x%08lx, ",
   2717    1.1      matt 				soft_dbat[i].batu, soft_dbat[i].batl);
   2718    1.1      matt 			if (i == 1)
   2719    1.1      matt 				printf("\n\t");
   2720    1.1      matt 		}
   2721    1.1      matt 	}
   2722    1.1      matt 	printf("\n");
   2723   1.53   garbled #endif /* PMAP_OEA... */
   2724    1.1      matt }
   2725    1.1      matt 
   2726    1.1      matt void
   2727    1.1      matt pmap_print_pte(pmap_t pm, vaddr_t va)
   2728    1.1      matt {
   2729    1.1      matt 	struct pvo_entry *pvo;
   2730    1.2      matt 	volatile struct pte *pt;
   2731    1.1      matt 	int pteidx;
   2732    1.1      matt 
   2733    1.1      matt 	pvo = pmap_pvo_find_va(pm, va, &pteidx);
   2734    1.1      matt 	if (pvo != NULL) {
   2735    1.1      matt 		pt = pmap_pvo_to_pte(pvo, pteidx);
   2736    1.1      matt 		if (pt != NULL) {
   2737   1.53   garbled 			printf("VA %#" _PRIxva " -> %p -> %s %#" _PRIxpte ", %#" _PRIxpte "\n",
   2738   1.38   sanjayl 				va, pt,
   2739   1.38   sanjayl 				pt->pte_hi & PTE_HID ? "(sec)" : "(pri)",
   2740   1.38   sanjayl 				pt->pte_hi, pt->pte_lo);
   2741    1.1      matt 		} else {
   2742    1.1      matt 			printf("No valid PTE found\n");
   2743    1.1      matt 		}
   2744    1.1      matt 	} else {
   2745    1.1      matt 		printf("Address not in pmap\n");
   2746    1.1      matt 	}
   2747    1.1      matt }
   2748    1.1      matt 
   2749    1.1      matt void
   2750    1.1      matt pmap_pteg_dist(void)
   2751    1.1      matt {
   2752    1.1      matt 	struct pvo_entry *pvo;
   2753    1.1      matt 	int ptegidx;
   2754    1.1      matt 	int depth;
   2755    1.1      matt 	int max_depth = 0;
   2756    1.1      matt 	unsigned int depths[64];
   2757    1.1      matt 
   2758    1.1      matt 	memset(depths, 0, sizeof(depths));
   2759    1.1      matt 	for (ptegidx = 0; ptegidx < pmap_pteg_cnt; ptegidx++) {
   2760    1.1      matt 		depth = 0;
   2761    1.1      matt 		TAILQ_FOREACH(pvo, &pmap_pvo_table[ptegidx], pvo_olink) {
   2762    1.1      matt 			depth++;
   2763    1.1      matt 		}
   2764    1.1      matt 		if (depth > max_depth)
   2765    1.1      matt 			max_depth = depth;
   2766    1.1      matt 		if (depth > 63)
   2767    1.1      matt 			depth = 63;
   2768    1.1      matt 		depths[depth]++;
   2769    1.1      matt 	}
   2770    1.1      matt 
   2771    1.1      matt 	for (depth = 0; depth < 64; depth++) {
   2772    1.1      matt 		printf("  [%2d]: %8u", depth, depths[depth]);
   2773    1.1      matt 		if ((depth & 3) == 3)
   2774    1.1      matt 			printf("\n");
   2775    1.1      matt 		if (depth == max_depth)
   2776    1.1      matt 			break;
   2777    1.1      matt 	}
   2778    1.1      matt 	if ((depth & 3) != 3)
   2779    1.1      matt 		printf("\n");
   2780    1.1      matt 	printf("Max depth found was %d\n", max_depth);
   2781    1.1      matt }
   2782    1.1      matt #endif /* DEBUG */
   2783    1.1      matt 
   2784    1.1      matt #if defined(PMAPCHECK) || defined(DEBUG)
   2785    1.1      matt void
   2786    1.1      matt pmap_pvo_verify(void)
   2787    1.1      matt {
   2788    1.1      matt 	int ptegidx;
   2789    1.1      matt 	int s;
   2790    1.1      matt 
   2791    1.1      matt 	s = splvm();
   2792    1.1      matt 	for (ptegidx = 0; ptegidx < pmap_pteg_cnt; ptegidx++) {
   2793    1.1      matt 		struct pvo_entry *pvo;
   2794    1.1      matt 		TAILQ_FOREACH(pvo, &pmap_pvo_table[ptegidx], pvo_olink) {
   2795    1.1      matt 			if ((uintptr_t) pvo >= SEGMENT_LENGTH)
   2796    1.1      matt 				panic("pmap_pvo_verify: invalid pvo %p "
   2797    1.1      matt 				    "on list %#x", pvo, ptegidx);
   2798    1.1      matt 			pmap_pvo_check(pvo);
   2799    1.1      matt 		}
   2800    1.1      matt 	}
   2801    1.1      matt 	splx(s);
   2802    1.1      matt }
   2803    1.1      matt #endif /* PMAPCHECK */
   2804    1.1      matt 
   2805    1.1      matt 
   2806    1.1      matt void *
   2807    1.1      matt pmap_pool_ualloc(struct pool *pp, int flags)
   2808    1.1      matt {
   2809    1.1      matt 	struct pvo_page *pvop;
   2810    1.1      matt 
   2811   1.50        ad 	if (uvm.page_init_done != true) {
   2812   1.50        ad 		return (void *) uvm_pageboot_alloc(PAGE_SIZE);
   2813   1.50        ad 	}
   2814   1.50        ad 
   2815   1.50        ad 	PMAP_LOCK();
   2816    1.1      matt 	pvop = SIMPLEQ_FIRST(&pmap_upvop_head);
   2817    1.1      matt 	if (pvop != NULL) {
   2818    1.1      matt 		pmap_upvop_free--;
   2819    1.1      matt 		SIMPLEQ_REMOVE_HEAD(&pmap_upvop_head, pvop_link);
   2820   1.50        ad 		PMAP_UNLOCK();
   2821    1.1      matt 		return pvop;
   2822    1.1      matt 	}
   2823   1.50        ad 	PMAP_UNLOCK();
   2824    1.1      matt 	return pmap_pool_malloc(pp, flags);
   2825    1.1      matt }
   2826    1.1      matt 
   2827    1.1      matt void *
   2828    1.1      matt pmap_pool_malloc(struct pool *pp, int flags)
   2829    1.1      matt {
   2830    1.1      matt 	struct pvo_page *pvop;
   2831    1.1      matt 	struct vm_page *pg;
   2832    1.1      matt 
   2833   1.50        ad 	PMAP_LOCK();
   2834    1.1      matt 	pvop = SIMPLEQ_FIRST(&pmap_mpvop_head);
   2835    1.1      matt 	if (pvop != NULL) {
   2836    1.1      matt 		pmap_mpvop_free--;
   2837    1.1      matt 		SIMPLEQ_REMOVE_HEAD(&pmap_mpvop_head, pvop_link);
   2838   1.50        ad 		PMAP_UNLOCK();
   2839    1.1      matt 		return pvop;
   2840    1.1      matt 	}
   2841   1.50        ad 	PMAP_UNLOCK();
   2842    1.1      matt  again:
   2843    1.1      matt 	pg = uvm_pagealloc_strat(NULL, 0, NULL, UVM_PGA_USERESERVE,
   2844    1.1      matt 	    UVM_PGA_STRAT_ONLY, VM_FREELIST_FIRST256);
   2845    1.1      matt 	if (__predict_false(pg == NULL)) {
   2846    1.1      matt 		if (flags & PR_WAITOK) {
   2847    1.1      matt 			uvm_wait("plpg");
   2848    1.1      matt 			goto again;
   2849    1.1      matt 		} else {
   2850    1.1      matt 			return (0);
   2851    1.1      matt 		}
   2852    1.1      matt 	}
   2853   1.53   garbled 	KDASSERT(VM_PAGE_TO_PHYS(pg) == (uintptr_t)VM_PAGE_TO_PHYS(pg));
   2854   1.53   garbled 	return (void *)(uintptr_t) VM_PAGE_TO_PHYS(pg);
   2855    1.1      matt }
   2856    1.1      matt 
   2857    1.1      matt void
   2858    1.1      matt pmap_pool_ufree(struct pool *pp, void *va)
   2859    1.1      matt {
   2860    1.1      matt 	struct pvo_page *pvop;
   2861    1.1      matt #if 0
   2862    1.1      matt 	if (PHYS_TO_VM_PAGE((paddr_t) va) != NULL) {
   2863    1.1      matt 		pmap_pool_mfree(va, size, tag);
   2864    1.1      matt 		return;
   2865    1.1      matt 	}
   2866    1.1      matt #endif
   2867   1.50        ad 	PMAP_LOCK();
   2868    1.1      matt 	pvop = va;
   2869    1.1      matt 	SIMPLEQ_INSERT_HEAD(&pmap_upvop_head, pvop, pvop_link);
   2870    1.1      matt 	pmap_upvop_free++;
   2871    1.1      matt 	if (pmap_upvop_free > pmap_upvop_maxfree)
   2872    1.1      matt 		pmap_upvop_maxfree = pmap_upvop_free;
   2873   1.50        ad 	PMAP_UNLOCK();
   2874    1.1      matt }
   2875    1.1      matt 
   2876    1.1      matt void
   2877    1.1      matt pmap_pool_mfree(struct pool *pp, void *va)
   2878    1.1      matt {
   2879    1.1      matt 	struct pvo_page *pvop;
   2880    1.1      matt 
   2881   1.50        ad 	PMAP_LOCK();
   2882    1.1      matt 	pvop = va;
   2883    1.1      matt 	SIMPLEQ_INSERT_HEAD(&pmap_mpvop_head, pvop, pvop_link);
   2884    1.1      matt 	pmap_mpvop_free++;
   2885    1.1      matt 	if (pmap_mpvop_free > pmap_mpvop_maxfree)
   2886    1.1      matt 		pmap_mpvop_maxfree = pmap_mpvop_free;
   2887   1.50        ad 	PMAP_UNLOCK();
   2888    1.1      matt #if 0
   2889    1.1      matt 	uvm_pagefree(PHYS_TO_VM_PAGE((paddr_t) va));
   2890    1.1      matt #endif
   2891    1.1      matt }
   2892    1.1      matt 
   2893    1.1      matt /*
   2894    1.1      matt  * This routine in bootstraping to steal to-be-managed memory (which will
   2895    1.1      matt  * then be unmanaged).  We use it to grab from the first 256MB for our
   2896    1.1      matt  * pmap needs and above 256MB for other stuff.
   2897    1.1      matt  */
   2898    1.1      matt vaddr_t
   2899   1.10   thorpej pmap_steal_memory(vsize_t vsize, vaddr_t *vstartp, vaddr_t *vendp)
   2900    1.1      matt {
   2901    1.1      matt 	vsize_t size;
   2902    1.1      matt 	vaddr_t va;
   2903   1.94    cherry 	paddr_t start, end, pa = 0;
   2904   1.94    cherry 	int npgs, freelist;
   2905   1.94    cherry 	uvm_physseg_t bank;
   2906    1.1      matt 
   2907   1.45   thorpej 	if (uvm.page_init_done == true)
   2908    1.1      matt 		panic("pmap_steal_memory: called _after_ bootstrap");
   2909    1.1      matt 
   2910   1.10   thorpej 	*vstartp = VM_MIN_KERNEL_ADDRESS;
   2911   1.10   thorpej 	*vendp = VM_MAX_KERNEL_ADDRESS;
   2912   1.10   thorpej 
   2913    1.1      matt 	size = round_page(vsize);
   2914    1.1      matt 	npgs = atop(size);
   2915    1.1      matt 
   2916    1.1      matt 	/*
   2917    1.1      matt 	 * PA 0 will never be among those given to UVM so we can use it
   2918    1.1      matt 	 * to indicate we couldn't steal any memory.
   2919    1.1      matt 	 */
   2920   1.94    cherry 
   2921   1.94    cherry 	for (bank = uvm_physseg_get_first();
   2922   1.94    cherry 	     uvm_physseg_valid_p(bank);
   2923   1.94    cherry 	     bank = uvm_physseg_get_next(bank)) {
   2924   1.94    cherry 
   2925   1.94    cherry 		freelist = uvm_physseg_get_free_list(bank);
   2926   1.94    cherry 		start = uvm_physseg_get_start(bank);
   2927   1.94    cherry 		end = uvm_physseg_get_end(bank);
   2928   1.94    cherry 
   2929   1.94    cherry 		if (freelist == VM_FREELIST_FIRST256 &&
   2930   1.94    cherry 		    (end - start) >= npgs) {
   2931   1.94    cherry 			pa = ptoa(start);
   2932    1.1      matt 			break;
   2933    1.1      matt 		}
   2934    1.1      matt 	}
   2935    1.1      matt 
   2936    1.1      matt 	if (pa == 0)
   2937    1.1      matt 		panic("pmap_steal_memory: no approriate memory to steal!");
   2938    1.1      matt 
   2939   1.94    cherry 	uvm_physseg_unplug(start, npgs);
   2940    1.1      matt 
   2941    1.1      matt 	va = (vaddr_t) pa;
   2942   1.46  christos 	memset((void *) va, 0, size);
   2943    1.1      matt 	pmap_pages_stolen += npgs;
   2944    1.1      matt #ifdef DEBUG
   2945    1.1      matt 	if (pmapdebug && npgs > 1) {
   2946    1.1      matt 		u_int cnt = 0;
   2947   1.94    cherry 	for (bank = uvm_physseg_get_first();
   2948   1.94    cherry 	     uvm_physseg_valid_p(bank);
   2949   1.94    cherry 	     bank = uvm_physseg_get_next(bank)) {
   2950   1.94    cherry 		cnt += uvm_physseg_get_avail_end(bank) - uvm_physseg_get_avail_start(bank);
   2951   1.73  uebayasi 		}
   2952    1.1      matt 		printf("pmap_steal_memory: stole %u (total %u) pages (%u left)\n",
   2953    1.1      matt 		    npgs, pmap_pages_stolen, cnt);
   2954    1.1      matt 	}
   2955    1.1      matt #endif
   2956    1.1      matt 
   2957    1.1      matt 	return va;
   2958    1.1      matt }
   2959    1.1      matt 
   2960    1.1      matt /*
   2961    1.1      matt  * Find a chuck of memory with right size and alignment.
   2962    1.1      matt  */
   2963   1.53   garbled paddr_t
   2964    1.1      matt pmap_boot_find_memory(psize_t size, psize_t alignment, int at_end)
   2965    1.1      matt {
   2966    1.1      matt 	struct mem_region *mp;
   2967    1.1      matt 	paddr_t s, e;
   2968    1.1      matt 	int i, j;
   2969    1.1      matt 
   2970    1.1      matt 	size = round_page(size);
   2971    1.1      matt 
   2972    1.1      matt 	DPRINTFN(BOOT,
   2973   1.85      matt 	    "pmap_boot_find_memory: size=%#" _PRIxpa ", alignment=%#" _PRIxpa ", at_end=%d",
   2974   1.85      matt 	    size, alignment, at_end);
   2975    1.1      matt 
   2976    1.6   thorpej 	if (alignment < PAGE_SIZE || (alignment & (alignment-1)) != 0)
   2977   1.54   mlelstv 		panic("pmap_boot_find_memory: invalid alignment %#" _PRIxpa,
   2978    1.1      matt 		    alignment);
   2979    1.1      matt 
   2980    1.1      matt 	if (at_end) {
   2981    1.6   thorpej 		if (alignment != PAGE_SIZE)
   2982    1.1      matt 			panic("pmap_boot_find_memory: invalid ending "
   2983   1.53   garbled 			    "alignment %#" _PRIxpa, alignment);
   2984    1.1      matt 
   2985    1.1      matt 		for (mp = &avail[avail_cnt-1]; mp >= avail; mp--) {
   2986    1.1      matt 			s = mp->start + mp->size - size;
   2987    1.1      matt 			if (s >= mp->start && mp->size >= size) {
   2988   1.85      matt 				DPRINTFN(BOOT, ": %#" _PRIxpa "\n", s);
   2989    1.1      matt 				DPRINTFN(BOOT,
   2990   1.85      matt 				    "pmap_boot_find_memory: b-avail[%d] start "
   2991   1.85      matt 				    "%#" _PRIxpa " size %#" _PRIxpa "\n", mp - avail,
   2992   1.85      matt 				     mp->start, mp->size);
   2993    1.1      matt 				mp->size -= size;
   2994    1.1      matt 				DPRINTFN(BOOT,
   2995   1.85      matt 				    "pmap_boot_find_memory: a-avail[%d] start "
   2996   1.85      matt 				    "%#" _PRIxpa " size %#" _PRIxpa "\n", mp - avail,
   2997   1.85      matt 				     mp->start, mp->size);
   2998   1.53   garbled 				return s;
   2999    1.1      matt 			}
   3000    1.1      matt 		}
   3001    1.1      matt 		panic("pmap_boot_find_memory: no available memory");
   3002    1.1      matt 	}
   3003    1.1      matt 
   3004    1.1      matt 	for (mp = avail, i = 0; i < avail_cnt; i++, mp++) {
   3005    1.1      matt 		s = (mp->start + alignment - 1) & ~(alignment-1);
   3006    1.1      matt 		e = s + size;
   3007    1.1      matt 
   3008    1.1      matt 		/*
   3009    1.1      matt 		 * Is the calculated region entirely within the region?
   3010    1.1      matt 		 */
   3011    1.1      matt 		if (s < mp->start || e > mp->start + mp->size)
   3012    1.1      matt 			continue;
   3013    1.1      matt 
   3014   1.85      matt 		DPRINTFN(BOOT, ": %#" _PRIxpa "\n", s);
   3015    1.1      matt 		if (s == mp->start) {
   3016    1.1      matt 			/*
   3017    1.1      matt 			 * If the block starts at the beginning of region,
   3018    1.1      matt 			 * adjust the size & start. (the region may now be
   3019    1.1      matt 			 * zero in length)
   3020    1.1      matt 			 */
   3021    1.1      matt 			DPRINTFN(BOOT,
   3022   1.85      matt 			    "pmap_boot_find_memory: b-avail[%d] start "
   3023   1.85      matt 			    "%#" _PRIxpa " size %#" _PRIxpa "\n", i, mp->start, mp->size);
   3024    1.1      matt 			mp->start += size;
   3025    1.1      matt 			mp->size -= size;
   3026    1.1      matt 			DPRINTFN(BOOT,
   3027   1.85      matt 			    "pmap_boot_find_memory: a-avail[%d] start "
   3028   1.85      matt 			    "%#" _PRIxpa " size %#" _PRIxpa "\n", i, mp->start, mp->size);
   3029    1.1      matt 		} else if (e == mp->start + mp->size) {
   3030    1.1      matt 			/*
   3031    1.1      matt 			 * If the block starts at the beginning of region,
   3032    1.1      matt 			 * adjust only the size.
   3033    1.1      matt 			 */
   3034    1.1      matt 			DPRINTFN(BOOT,
   3035   1.85      matt 			    "pmap_boot_find_memory: b-avail[%d] start "
   3036   1.85      matt 			    "%#" _PRIxpa " size %#" _PRIxpa "\n", i, mp->start, mp->size);
   3037    1.1      matt 			mp->size -= size;
   3038    1.1      matt 			DPRINTFN(BOOT,
   3039   1.85      matt 			    "pmap_boot_find_memory: a-avail[%d] start "
   3040   1.85      matt 			    "%#" _PRIxpa " size %#" _PRIxpa "\n", i, mp->start, mp->size);
   3041    1.1      matt 		} else {
   3042    1.1      matt 			/*
   3043    1.1      matt 			 * Block is in the middle of the region, so we
   3044    1.1      matt 			 * have to split it in two.
   3045    1.1      matt 			 */
   3046    1.1      matt 			for (j = avail_cnt; j > i + 1; j--) {
   3047    1.1      matt 				avail[j] = avail[j-1];
   3048    1.1      matt 			}
   3049    1.1      matt 			DPRINTFN(BOOT,
   3050   1.85      matt 			    "pmap_boot_find_memory: b-avail[%d] start "
   3051   1.85      matt 			    "%#" _PRIxpa " size %#" _PRIxpa "\n", i, mp->start, mp->size);
   3052    1.1      matt 			mp[1].start = e;
   3053    1.1      matt 			mp[1].size = mp[0].start + mp[0].size - e;
   3054    1.1      matt 			mp[0].size = s - mp[0].start;
   3055    1.1      matt 			avail_cnt++;
   3056    1.1      matt 			for (; i < avail_cnt; i++) {
   3057    1.1      matt 				DPRINTFN(BOOT,
   3058   1.85      matt 				    "pmap_boot_find_memory: a-avail[%d] "
   3059   1.85      matt 				    "start %#" _PRIxpa " size %#" _PRIxpa "\n", i,
   3060   1.85      matt 				     avail[i].start, avail[i].size);
   3061    1.1      matt 			}
   3062    1.1      matt 		}
   3063   1.53   garbled 		KASSERT(s == (uintptr_t) s);
   3064   1.53   garbled 		return s;
   3065    1.1      matt 	}
   3066    1.1      matt 	panic("pmap_boot_find_memory: not enough memory for "
   3067   1.54   mlelstv 	    "%#" _PRIxpa "/%#" _PRIxpa " allocation?", size, alignment);
   3068    1.1      matt }
   3069    1.1      matt 
   3070   1.38   sanjayl /* XXXSL: we dont have any BATs to do this, map in Segment 0 1:1 using page tables */
   3071   1.53   garbled #if defined (PMAP_OEA64_BRIDGE)
   3072   1.38   sanjayl int
   3073   1.38   sanjayl pmap_setup_segment0_map(int use_large_pages, ...)
   3074   1.38   sanjayl {
   3075   1.88  christos     vaddr_t va, va_end;
   3076   1.38   sanjayl 
   3077   1.38   sanjayl     register_t pte_lo = 0x0;
   3078   1.90       mrg     int ptegidx = 0;
   3079   1.38   sanjayl     struct pte pte;
   3080   1.38   sanjayl     va_list ap;
   3081   1.38   sanjayl 
   3082   1.38   sanjayl     /* Coherent + Supervisor RW, no user access */
   3083   1.38   sanjayl     pte_lo = PTE_M;
   3084   1.38   sanjayl 
   3085   1.38   sanjayl     /* XXXSL
   3086   1.38   sanjayl      * Map in 1st segment 1:1, we'll be careful not to spill kernel entries later,
   3087   1.38   sanjayl      * these have to take priority.
   3088   1.38   sanjayl      */
   3089   1.38   sanjayl     for (va = 0x0; va < SEGMENT_LENGTH; va += 0x1000) {
   3090   1.38   sanjayl         ptegidx = va_to_pteg(pmap_kernel(), va);
   3091   1.38   sanjayl         pmap_pte_create(&pte, pmap_kernel(), va, va | pte_lo);
   3092   1.90       mrg         (void)pmap_pte_insert(ptegidx, &pte);
   3093   1.38   sanjayl     }
   3094   1.38   sanjayl 
   3095   1.38   sanjayl     va_start(ap, use_large_pages);
   3096   1.38   sanjayl     while (1) {
   3097   1.38   sanjayl         paddr_t pa;
   3098   1.38   sanjayl         size_t size;
   3099   1.38   sanjayl 
   3100   1.38   sanjayl         va = va_arg(ap, vaddr_t);
   3101   1.38   sanjayl 
   3102   1.38   sanjayl         if (va == 0)
   3103   1.38   sanjayl             break;
   3104   1.38   sanjayl 
   3105   1.38   sanjayl         pa = va_arg(ap, paddr_t);
   3106   1.38   sanjayl         size = va_arg(ap, size_t);
   3107   1.38   sanjayl 
   3108   1.88  christos         for (va_end = va + size; va < va_end; va += 0x1000, pa += 0x1000) {
   3109   1.38   sanjayl #if 0
   3110   1.54   mlelstv 	    printf("%s: Inserting: va: %#" _PRIxva ", pa: %#" _PRIxpa "\n", __func__,  va, pa);
   3111   1.38   sanjayl #endif
   3112   1.38   sanjayl             ptegidx = va_to_pteg(pmap_kernel(), va);
   3113   1.38   sanjayl             pmap_pte_create(&pte, pmap_kernel(), va, pa | pte_lo);
   3114   1.90       mrg             (void)pmap_pte_insert(ptegidx, &pte);
   3115   1.38   sanjayl         }
   3116   1.38   sanjayl     }
   3117   1.93  dholland     va_end(ap);
   3118   1.38   sanjayl 
   3119   1.38   sanjayl     TLBSYNC();
   3120   1.38   sanjayl     SYNC();
   3121   1.38   sanjayl     return (0);
   3122   1.38   sanjayl }
   3123   1.53   garbled #endif /* PMAP_OEA64_BRIDGE */
   3124   1.38   sanjayl 
   3125    1.1      matt /*
   3126   1.99   thorpej  * Set up the bottom level of the data structures necessary for the kernel
   3127   1.99   thorpej  * to manage memory.  MMU hardware is programmed in pmap_bootstrap2().
   3128    1.1      matt  */
   3129    1.1      matt void
   3130   1.99   thorpej pmap_bootstrap1(paddr_t kernelstart, paddr_t kernelend)
   3131    1.1      matt {
   3132    1.1      matt 	struct mem_region *mp, tmp;
   3133    1.1      matt 	paddr_t s, e;
   3134    1.1      matt 	psize_t size;
   3135    1.1      matt 	int i, j;
   3136    1.1      matt 
   3137    1.1      matt 	/*
   3138    1.1      matt 	 * Get memory.
   3139    1.1      matt 	 */
   3140    1.1      matt 	mem_regions(&mem, &avail);
   3141    1.1      matt #if defined(DEBUG)
   3142    1.1      matt 	if (pmapdebug & PMAPDEBUG_BOOT) {
   3143    1.1      matt 		printf("pmap_bootstrap: memory configuration:\n");
   3144    1.1      matt 		for (mp = mem; mp->size; mp++) {
   3145   1.54   mlelstv 			printf("pmap_bootstrap: mem start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3146    1.1      matt 				mp->start, mp->size);
   3147    1.1      matt 		}
   3148    1.1      matt 		for (mp = avail; mp->size; mp++) {
   3149   1.54   mlelstv 			printf("pmap_bootstrap: avail start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3150    1.1      matt 				mp->start, mp->size);
   3151    1.1      matt 		}
   3152    1.1      matt 	}
   3153    1.1      matt #endif
   3154    1.1      matt 
   3155    1.1      matt 	/*
   3156    1.1      matt 	 * Find out how much physical memory we have and in how many chunks.
   3157    1.1      matt 	 */
   3158    1.1      matt 	for (mem_cnt = 0, mp = mem; mp->size; mp++) {
   3159    1.1      matt 		if (mp->start >= pmap_memlimit)
   3160    1.1      matt 			continue;
   3161    1.1      matt 		if (mp->start + mp->size > pmap_memlimit) {
   3162    1.1      matt 			size = pmap_memlimit - mp->start;
   3163    1.1      matt 			physmem += btoc(size);
   3164    1.1      matt 		} else {
   3165    1.1      matt 			physmem += btoc(mp->size);
   3166    1.1      matt 		}
   3167    1.1      matt 		mem_cnt++;
   3168    1.1      matt 	}
   3169    1.1      matt 
   3170    1.1      matt 	/*
   3171    1.1      matt 	 * Count the number of available entries.
   3172    1.1      matt 	 */
   3173    1.1      matt 	for (avail_cnt = 0, mp = avail; mp->size; mp++)
   3174    1.1      matt 		avail_cnt++;
   3175    1.1      matt 
   3176    1.1      matt 	/*
   3177    1.1      matt 	 * Page align all regions.
   3178    1.1      matt 	 */
   3179    1.1      matt 	kernelstart = trunc_page(kernelstart);
   3180    1.1      matt 	kernelend = round_page(kernelend);
   3181    1.1      matt 	for (mp = avail, i = 0; i < avail_cnt; i++, mp++) {
   3182    1.1      matt 		s = round_page(mp->start);
   3183    1.1      matt 		mp->size -= (s - mp->start);
   3184    1.1      matt 		mp->size = trunc_page(mp->size);
   3185    1.1      matt 		mp->start = s;
   3186    1.1      matt 		e = mp->start + mp->size;
   3187    1.1      matt 
   3188    1.1      matt 		DPRINTFN(BOOT,
   3189   1.85      matt 		    "pmap_bootstrap: b-avail[%d] start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3190   1.85      matt 		    i, mp->start, mp->size);
   3191    1.1      matt 
   3192    1.1      matt 		/*
   3193    1.1      matt 		 * Don't allow the end to run beyond our artificial limit
   3194    1.1      matt 		 */
   3195    1.1      matt 		if (e > pmap_memlimit)
   3196    1.1      matt 			e = pmap_memlimit;
   3197    1.1      matt 
   3198    1.1      matt 		/*
   3199    1.1      matt 		 * Is this region empty or strange?  skip it.
   3200    1.1      matt 		 */
   3201    1.1      matt 		if (e <= s) {
   3202    1.1      matt 			mp->start = 0;
   3203    1.1      matt 			mp->size = 0;
   3204    1.1      matt 			continue;
   3205    1.1      matt 		}
   3206    1.1      matt 
   3207    1.1      matt 		/*
   3208    1.1      matt 		 * Does this overlap the beginning of kernel?
   3209    1.1      matt 		 *   Does extend past the end of the kernel?
   3210    1.1      matt 		 */
   3211    1.1      matt 		else if (s < kernelstart && e > kernelstart) {
   3212    1.1      matt 			if (e > kernelend) {
   3213    1.1      matt 				avail[avail_cnt].start = kernelend;
   3214    1.1      matt 				avail[avail_cnt].size = e - kernelend;
   3215    1.1      matt 				avail_cnt++;
   3216    1.1      matt 			}
   3217    1.1      matt 			mp->size = kernelstart - s;
   3218    1.1      matt 		}
   3219    1.1      matt 		/*
   3220    1.1      matt 		 * Check whether this region overlaps the end of the kernel.
   3221    1.1      matt 		 */
   3222    1.1      matt 		else if (s < kernelend && e > kernelend) {
   3223    1.1      matt 			mp->start = kernelend;
   3224    1.1      matt 			mp->size = e - kernelend;
   3225    1.1      matt 		}
   3226    1.1      matt 		/*
   3227    1.1      matt 		 * Look whether this regions is completely inside the kernel.
   3228    1.1      matt 		 * Nuke it if it does.
   3229    1.1      matt 		 */
   3230    1.1      matt 		else if (s >= kernelstart && e <= kernelend) {
   3231    1.1      matt 			mp->start = 0;
   3232    1.1      matt 			mp->size = 0;
   3233    1.1      matt 		}
   3234    1.1      matt 		/*
   3235    1.1      matt 		 * If the user imposed a memory limit, enforce it.
   3236    1.1      matt 		 */
   3237    1.1      matt 		else if (s >= pmap_memlimit) {
   3238    1.6   thorpej 			mp->start = -PAGE_SIZE;	/* let's know why */
   3239    1.1      matt 			mp->size = 0;
   3240    1.1      matt 		}
   3241    1.1      matt 		else {
   3242    1.1      matt 			mp->start = s;
   3243    1.1      matt 			mp->size = e - s;
   3244    1.1      matt 		}
   3245    1.1      matt 		DPRINTFN(BOOT,
   3246   1.85      matt 		    "pmap_bootstrap: a-avail[%d] start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3247   1.85      matt 		    i, mp->start, mp->size);
   3248    1.1      matt 	}
   3249    1.1      matt 
   3250    1.1      matt 	/*
   3251    1.1      matt 	 * Move (and uncount) all the null return to the end.
   3252    1.1      matt 	 */
   3253    1.1      matt 	for (mp = avail, i = 0; i < avail_cnt; i++, mp++) {
   3254    1.1      matt 		if (mp->size == 0) {
   3255    1.1      matt 			tmp = avail[i];
   3256    1.1      matt 			avail[i] = avail[--avail_cnt];
   3257    1.1      matt 			avail[avail_cnt] = avail[i];
   3258    1.1      matt 		}
   3259    1.1      matt 	}
   3260    1.1      matt 
   3261    1.1      matt 	/*
   3262   1.61     skrll 	 * (Bubble)sort them into ascending order.
   3263    1.1      matt 	 */
   3264    1.1      matt 	for (i = 0; i < avail_cnt; i++) {
   3265    1.1      matt 		for (j = i + 1; j < avail_cnt; j++) {
   3266    1.1      matt 			if (avail[i].start > avail[j].start) {
   3267    1.1      matt 				tmp = avail[i];
   3268    1.1      matt 				avail[i] = avail[j];
   3269    1.1      matt 				avail[j] = tmp;
   3270    1.1      matt 			}
   3271    1.1      matt 		}
   3272    1.1      matt 	}
   3273    1.1      matt 
   3274    1.1      matt 	/*
   3275    1.1      matt 	 * Make sure they don't overlap.
   3276    1.1      matt 	 */
   3277    1.1      matt 	for (mp = avail, i = 0; i < avail_cnt - 1; i++, mp++) {
   3278    1.1      matt 		if (mp[0].start + mp[0].size > mp[1].start) {
   3279    1.1      matt 			mp[0].size = mp[1].start - mp[0].start;
   3280    1.1      matt 		}
   3281    1.1      matt 		DPRINTFN(BOOT,
   3282   1.85      matt 		    "pmap_bootstrap: avail[%d] start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3283   1.85      matt 		    i, mp->start, mp->size);
   3284    1.1      matt 	}
   3285    1.1      matt 	DPRINTFN(BOOT,
   3286   1.85      matt 	    "pmap_bootstrap: avail[%d] start %#" _PRIxpa " size %#" _PRIxpa "\n",
   3287   1.85      matt 	    i, mp->start, mp->size);
   3288    1.1      matt 
   3289    1.1      matt #ifdef	PTEGCOUNT
   3290    1.1      matt 	pmap_pteg_cnt = PTEGCOUNT;
   3291    1.1      matt #else /* PTEGCOUNT */
   3292   1.38   sanjayl 
   3293    1.1      matt 	pmap_pteg_cnt = 0x1000;
   3294    1.1      matt 
   3295    1.1      matt 	while (pmap_pteg_cnt < physmem)
   3296    1.1      matt 		pmap_pteg_cnt <<= 1;
   3297    1.1      matt 
   3298    1.1      matt 	pmap_pteg_cnt >>= 1;
   3299    1.1      matt #endif /* PTEGCOUNT */
   3300    1.1      matt 
   3301   1.38   sanjayl #ifdef DEBUG
   3302   1.85      matt 	DPRINTFN(BOOT, "pmap_pteg_cnt: 0x%x\n", pmap_pteg_cnt);
   3303   1.38   sanjayl #endif
   3304   1.38   sanjayl 
   3305    1.1      matt 	/*
   3306    1.1      matt 	 * Find suitably aligned memory for PTEG hash table.
   3307    1.1      matt 	 */
   3308    1.2      matt 	size = pmap_pteg_cnt * sizeof(struct pteg);
   3309   1.53   garbled 	pmap_pteg_table = (void *)(uintptr_t) pmap_boot_find_memory(size, size, 0);
   3310   1.38   sanjayl 
   3311   1.38   sanjayl #ifdef DEBUG
   3312   1.38   sanjayl 	DPRINTFN(BOOT,
   3313   1.85      matt 		"PTEG cnt: 0x%x HTAB size: 0x%08x bytes, address: %p\n", pmap_pteg_cnt, (unsigned int)size, pmap_pteg_table);
   3314   1.38   sanjayl #endif
   3315   1.38   sanjayl 
   3316   1.38   sanjayl 
   3317    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   3318    1.1      matt 	if ( (uintptr_t) pmap_pteg_table + size > SEGMENT_LENGTH)
   3319   1.54   mlelstv 		panic("pmap_bootstrap: pmap_pteg_table end (%p + %#" _PRIxpa ") > 256MB",
   3320    1.1      matt 		    pmap_pteg_table, size);
   3321    1.1      matt #endif
   3322    1.1      matt 
   3323   1.32        he 	memset(__UNVOLATILE(pmap_pteg_table), 0,
   3324   1.32        he 		pmap_pteg_cnt * sizeof(struct pteg));
   3325    1.1      matt 	pmap_pteg_mask = pmap_pteg_cnt - 1;
   3326    1.1      matt 
   3327    1.1      matt 	/*
   3328    1.1      matt 	 * We cannot do pmap_steal_memory here since UVM hasn't been loaded
   3329    1.1      matt 	 * with pages.  So we just steal them before giving them to UVM.
   3330    1.1      matt 	 */
   3331    1.1      matt 	size = sizeof(pmap_pvo_table[0]) * pmap_pteg_cnt;
   3332   1.53   garbled 	pmap_pvo_table = (void *)(uintptr_t) pmap_boot_find_memory(size, PAGE_SIZE, 0);
   3333    1.1      matt #if defined(DIAGNOSTIC) || defined(DEBUG) || defined(PMAPCHECK)
   3334    1.1      matt 	if ( (uintptr_t) pmap_pvo_table + size > SEGMENT_LENGTH)
   3335   1.54   mlelstv 		panic("pmap_bootstrap: pmap_pvo_table end (%p + %#" _PRIxpa ") > 256MB",
   3336    1.1      matt 		    pmap_pvo_table, size);
   3337    1.1      matt #endif
   3338    1.1      matt 
   3339    1.1      matt 	for (i = 0; i < pmap_pteg_cnt; i++)
   3340    1.1      matt 		TAILQ_INIT(&pmap_pvo_table[i]);
   3341    1.1      matt 
   3342    1.1      matt #ifndef MSGBUFADDR
   3343    1.1      matt 	/*
   3344    1.1      matt 	 * Allocate msgbuf in high memory.
   3345    1.1      matt 	 */
   3346   1.53   garbled 	msgbuf_paddr = pmap_boot_find_memory(MSGBUFSIZE, PAGE_SIZE, 1);
   3347    1.1      matt #endif
   3348    1.1      matt 
   3349    1.1      matt 	for (mp = avail, i = 0; i < avail_cnt; mp++, i++) {
   3350    1.1      matt 		paddr_t pfstart = atop(mp->start);
   3351    1.1      matt 		paddr_t pfend = atop(mp->start + mp->size);
   3352    1.1      matt 		if (mp->size == 0)
   3353    1.1      matt 			continue;
   3354    1.1      matt 		if (mp->start + mp->size <= SEGMENT_LENGTH) {
   3355    1.1      matt 			uvm_page_physload(pfstart, pfend, pfstart, pfend,
   3356    1.1      matt 				VM_FREELIST_FIRST256);
   3357    1.1      matt 		} else if (mp->start >= SEGMENT_LENGTH) {
   3358    1.1      matt 			uvm_page_physload(pfstart, pfend, pfstart, pfend,
   3359    1.1      matt 				VM_FREELIST_DEFAULT);
   3360    1.1      matt 		} else {
   3361    1.1      matt 			pfend = atop(SEGMENT_LENGTH);
   3362    1.1      matt 			uvm_page_physload(pfstart, pfend, pfstart, pfend,
   3363    1.1      matt 				VM_FREELIST_FIRST256);
   3364    1.1      matt 			pfstart = atop(SEGMENT_LENGTH);
   3365    1.1      matt 			pfend = atop(mp->start + mp->size);
   3366    1.1      matt 			uvm_page_physload(pfstart, pfend, pfstart, pfend,
   3367    1.1      matt 				VM_FREELIST_DEFAULT);
   3368    1.1      matt 		}
   3369    1.1      matt 	}
   3370    1.1      matt 
   3371    1.1      matt 	/*
   3372    1.1      matt 	 * Make sure kernel vsid is allocated as well as VSID 0.
   3373    1.1      matt 	 */
   3374    1.1      matt 	pmap_vsid_bitmap[(KERNEL_VSIDBITS & (NPMAPS-1)) / VSID_NBPW]
   3375    1.1      matt 		|= 1 << (KERNEL_VSIDBITS % VSID_NBPW);
   3376   1.53   garbled 	pmap_vsid_bitmap[(PHYSMAP_VSIDBITS & (NPMAPS-1)) / VSID_NBPW]
   3377   1.53   garbled 		|= 1 << (PHYSMAP_VSIDBITS % VSID_NBPW);
   3378    1.1      matt 	pmap_vsid_bitmap[0] |= 1;
   3379    1.1      matt 
   3380    1.1      matt 	/*
   3381  1.103   thorpej 	 * Initialize kernel pmap.
   3382    1.1      matt 	 */
   3383  1.103   thorpej #if defined(PMAP_OEA) || defined(PMAP_OEA64_BRIDGE)
   3384    1.1      matt 	for (i = 0; i < 16; i++) {
   3385   1.38   sanjayl  		pmap_kernel()->pm_sr[i] = KERNELN_SEGMENT(i)|SR_PRKEY;
   3386    1.1      matt 	}
   3387  1.102   thorpej 	pmap_kernel()->pm_vsid = KERNEL_VSIDBITS;
   3388    1.1      matt 
   3389    1.1      matt 	pmap_kernel()->pm_sr[KERNEL_SR] = KERNEL_SEGMENT|SR_SUKEY|SR_PRKEY;
   3390    1.1      matt #ifdef KERNEL2_SR
   3391    1.1      matt 	pmap_kernel()->pm_sr[KERNEL2_SR] = KERNEL2_SEGMENT|SR_SUKEY|SR_PRKEY;
   3392    1.1      matt #endif
   3393   1.53   garbled #endif /* PMAP_OEA || PMAP_OEA64_BRIDGE */
   3394  1.103   thorpej 
   3395  1.103   thorpej #if defined(PMAP_OEA) && defined(PPC_OEA601)
   3396  1.103   thorpej 	if ((MFPVR() >> 16) == MPC601)) {
   3397  1.103   thorpej 		for (i = 0; i < 16; i++) {
   3398  1.103   thorpej 			if (iosrtable[i] & SR601_T) {
   3399  1.103   thorpej 				pmap_kernel()->pm_sr[i] = iosrtable[i];
   3400  1.103   thorpej 			}
   3401    1.1      matt 		}
   3402    1.1      matt 	}
   3403  1.103   thorpej #endif /* PMAP_OEA && PPC_OEA601 */
   3404    1.1      matt 
   3405    1.1      matt #ifdef ALTIVEC
   3406    1.1      matt 	pmap_use_altivec = cpu_altivec;
   3407    1.1      matt #endif
   3408    1.1      matt 
   3409    1.1      matt #ifdef DEBUG
   3410    1.1      matt 	if (pmapdebug & PMAPDEBUG_BOOT) {
   3411    1.1      matt 		u_int cnt;
   3412   1.94    cherry 		uvm_physseg_t bank;
   3413    1.1      matt 		char pbuf[9];
   3414   1.94    cherry 		for (cnt = 0, bank = uvm_physseg_get_first();
   3415   1.94    cherry 		     uvm_physseg_valid_p(bank);
   3416   1.94    cherry 		     bank = uvm_physseg_get_next(bank)) {
   3417   1.94    cherry 			cnt += uvm_physseg_get_avail_end(bank) -
   3418   1.94    cherry 			    uvm_physseg_get_avail_start(bank);
   3419   1.53   garbled 			printf("pmap_bootstrap: vm_physmem[%d]=%#" _PRIxpa "-%#" _PRIxpa "/%#" _PRIxpa "\n",
   3420    1.1      matt 			    bank,
   3421   1.94    cherry 			    ptoa(uvm_physseg_get_avail_start(bank)),
   3422   1.94    cherry 			    ptoa(uvm_physseg_get_avail_end(bank)),
   3423   1.94    cherry 			    ptoa(uvm_physseg_get_avail_end(bank) - uvm_physseg_get_avail_start(bank)));
   3424    1.1      matt 		}
   3425    1.1      matt 		format_bytes(pbuf, sizeof(pbuf), ptoa((u_int64_t) cnt));
   3426    1.1      matt 		printf("pmap_bootstrap: UVM memory = %s (%u pages)\n",
   3427    1.1      matt 		    pbuf, cnt);
   3428    1.1      matt 	}
   3429    1.1      matt #endif
   3430    1.1      matt 
   3431    1.1      matt 	pool_init(&pmap_upvo_pool, sizeof(struct pvo_entry),
   3432    1.1      matt 	    sizeof(struct pvo_entry), 0, 0, "pmap_upvopl",
   3433   1.60       chs 	    &pmap_pool_uallocator, IPL_VM);
   3434    1.1      matt 
   3435    1.1      matt 	pool_setlowat(&pmap_upvo_pool, 252);
   3436    1.1      matt 
   3437    1.1      matt 	pool_init(&pmap_pool, sizeof(struct pmap),
   3438   1.48        ad 	    sizeof(void *), 0, 0, "pmap_pl", &pmap_pool_uallocator,
   3439   1.48        ad 	    IPL_NONE);
   3440   1.41      matt 
   3441   1.89  macallan #if defined(PMAP_NEED_MAPKERNEL)
   3442   1.41      matt 	{
   3443   1.53   garbled 		struct pmap *pm = pmap_kernel();
   3444   1.58   garbled #if defined(PMAP_NEED_FULL_MAPKERNEL)
   3445   1.41      matt 		extern int etext[], kernel_text[];
   3446   1.41      matt 		vaddr_t va, va_etext = (paddr_t) etext;
   3447   1.53   garbled #endif
   3448   1.53   garbled 		paddr_t pa, pa_end;
   3449   1.42      matt 		register_t sr;
   3450   1.53   garbled 		struct pte pt;
   3451   1.53   garbled 		unsigned int ptegidx;
   3452   1.53   garbled 		int bank;
   3453   1.42      matt 
   3454   1.53   garbled 		sr = PHYSMAPN_SEGMENT(0) | SR_SUKEY|SR_PRKEY;
   3455   1.53   garbled 		pm->pm_sr[0] = sr;
   3456   1.41      matt 
   3457   1.53   garbled 		for (bank = 0; bank < vm_nphysseg; bank++) {
   3458   1.73  uebayasi 			pa_end = ptoa(VM_PHYSMEM_PTR(bank)->avail_end);
   3459   1.73  uebayasi 			pa = ptoa(VM_PHYSMEM_PTR(bank)->avail_start);
   3460   1.53   garbled 			for (; pa < pa_end; pa += PAGE_SIZE) {
   3461   1.53   garbled 				ptegidx = va_to_pteg(pm, pa);
   3462   1.53   garbled 				pmap_pte_create(&pt, pm, pa, pa | PTE_M|PTE_BW);
   3463   1.53   garbled 				pmap_pte_insert(ptegidx, &pt);
   3464   1.53   garbled 			}
   3465   1.53   garbled 		}
   3466   1.53   garbled 
   3467   1.58   garbled #if defined(PMAP_NEED_FULL_MAPKERNEL)
   3468   1.41      matt 		va = (vaddr_t) kernel_text;
   3469   1.41      matt 
   3470   1.41      matt 		for (pa = kernelstart; va < va_etext;
   3471   1.53   garbled 		     pa += PAGE_SIZE, va += PAGE_SIZE) {
   3472   1.53   garbled 			ptegidx = va_to_pteg(pm, va);
   3473   1.53   garbled 			pmap_pte_create(&pt, pm, va, pa | PTE_M|PTE_BR);
   3474   1.53   garbled 			pmap_pte_insert(ptegidx, &pt);
   3475   1.53   garbled 		}
   3476   1.41      matt 
   3477   1.41      matt 		for (; pa < kernelend;
   3478   1.53   garbled 		     pa += PAGE_SIZE, va += PAGE_SIZE) {
   3479   1.53   garbled 			ptegidx = va_to_pteg(pm, va);
   3480   1.53   garbled 			pmap_pte_create(&pt, pm, va, pa | PTE_M|PTE_BW);
   3481   1.53   garbled 			pmap_pte_insert(ptegidx, &pt);
   3482   1.53   garbled 		}
   3483   1.53   garbled 
   3484   1.58   garbled 		for (va = 0, pa = 0; va < kernelstart;
   3485   1.53   garbled 		     pa += PAGE_SIZE, va += PAGE_SIZE) {
   3486   1.53   garbled 			ptegidx = va_to_pteg(pm, va);
   3487   1.58   garbled 			if (va < 0x3000)
   3488   1.58   garbled 				pmap_pte_create(&pt, pm, va, pa | PTE_M|PTE_BR);
   3489   1.58   garbled 			else
   3490   1.58   garbled 				pmap_pte_create(&pt, pm, va, pa | PTE_M|PTE_BW);
   3491   1.58   garbled 			pmap_pte_insert(ptegidx, &pt);
   3492   1.58   garbled 		}
   3493   1.58   garbled 		for (va = kernelend, pa = kernelend; va < SEGMENT_LENGTH;
   3494   1.58   garbled 		    pa += PAGE_SIZE, va += PAGE_SIZE) {
   3495   1.58   garbled 			ptegidx = va_to_pteg(pm, va);
   3496   1.53   garbled 			pmap_pte_create(&pt, pm, va, pa | PTE_M|PTE_BW);
   3497   1.53   garbled 			pmap_pte_insert(ptegidx, &pt);
   3498   1.53   garbled 		}
   3499  1.103   thorpej #endif /* PMAP_NEED_FULL_MAPKERNEL */
   3500   1.99   thorpej 	}
   3501  1.103   thorpej #endif /* PMAP_NEED_MAPKERNEL */
   3502   1.99   thorpej }
   3503   1.42      matt 
   3504   1.99   thorpej /*
   3505   1.99   thorpej  * Using the data structures prepared in pmap_bootstrap1(), program
   3506   1.99   thorpej  * the MMU hardware.
   3507   1.99   thorpej  */
   3508   1.99   thorpej void
   3509   1.99   thorpej pmap_bootstrap2(void)
   3510   1.99   thorpej {
   3511  1.103   thorpej #if defined(PMAP_OEA) || defined(PMAP_OEA64_BRIDGE)
   3512   1.99   thorpej 	for (int i = 0; i < 16; i++) {
   3513   1.99   thorpej 		__asm volatile("mtsrin %0,%1"
   3514   1.99   thorpej 			:: "r"(pmap_kernel()->pm_sr[i]),
   3515   1.99   thorpej 			   "r"(i << ADDR_SR_SHFT));
   3516   1.41      matt 	}
   3517   1.99   thorpej #endif /* PMAP_OEA || PMAP_OEA64_BRIDGE */
   3518  1.103   thorpej 
   3519  1.103   thorpej #if defined(PMAP_OEA)
   3520   1.99   thorpej 	 __asm volatile("sync; mtsdr1 %0; isync"
   3521   1.99   thorpej 		:: "r"((uintptr_t)pmap_pteg_table | (pmap_pteg_mask >> 10)));
   3522  1.103   thorpej #elif defined(PMAP_OEA64) || defined(PMAP_OEA64_BRIDGE)
   3523   1.99   thorpej 	__asm __volatile("sync; mtsdr1 %0; isync"
   3524   1.99   thorpej 		:: "r"((uintptr_t)pmap_pteg_table |
   3525   1.99   thorpej 		       (32 - __builtin_clz(pmap_pteg_mask >> 11))));
   3526   1.41      matt #endif
   3527   1.99   thorpej 	tlbia();
   3528   1.91  macallan 
   3529   1.91  macallan #if defined(PMAPDEBUG)
   3530  1.103   thorpej 	if (pmapdebug)
   3531   1.91  macallan 	    pmap_print_mmuregs();
   3532   1.91  macallan #endif
   3533    1.1      matt }
   3534   1.99   thorpej 
   3535   1.99   thorpej /*
   3536   1.99   thorpej  * This is not part of the defined PMAP interface and is specific to the
   3537   1.99   thorpej  * PowerPC architecture.  This is called during initppc, before the system
   3538   1.99   thorpej  * is really initialized.
   3539   1.99   thorpej  */
   3540   1.99   thorpej void
   3541   1.99   thorpej pmap_bootstrap(paddr_t kernelstart, paddr_t kernelend)
   3542   1.99   thorpej {
   3543   1.99   thorpej 	pmap_bootstrap1(kernelstart, kernelend);
   3544   1.99   thorpej 	pmap_bootstrap2();
   3545   1.99   thorpej }
   3546