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uvm_page.c revision 1.94
      1  1.94      yamt /*	$NetBSD: uvm_page.c,v 1.94 2004/01/14 11:28:05 yamt Exp $	*/
      2   1.1       mrg 
      3  1.62       chs /*
      4   1.1       mrg  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      5  1.62       chs  * Copyright (c) 1991, 1993, The Regents of the University of California.
      6   1.1       mrg  *
      7   1.1       mrg  * All rights reserved.
      8   1.1       mrg  *
      9   1.1       mrg  * This code is derived from software contributed to Berkeley by
     10   1.1       mrg  * The Mach Operating System project at Carnegie-Mellon University.
     11   1.1       mrg  *
     12   1.1       mrg  * Redistribution and use in source and binary forms, with or without
     13   1.1       mrg  * modification, are permitted provided that the following conditions
     14   1.1       mrg  * are met:
     15   1.1       mrg  * 1. Redistributions of source code must retain the above copyright
     16   1.1       mrg  *    notice, this list of conditions and the following disclaimer.
     17   1.1       mrg  * 2. Redistributions in binary form must reproduce the above copyright
     18   1.1       mrg  *    notice, this list of conditions and the following disclaimer in the
     19   1.1       mrg  *    documentation and/or other materials provided with the distribution.
     20   1.1       mrg  * 3. All advertising materials mentioning features or use of this software
     21   1.1       mrg  *    must display the following acknowledgement:
     22   1.1       mrg  *	This product includes software developed by Charles D. Cranor,
     23  1.62       chs  *      Washington University, the University of California, Berkeley and
     24   1.1       mrg  *      its contributors.
     25   1.1       mrg  * 4. Neither the name of the University nor the names of its contributors
     26   1.1       mrg  *    may be used to endorse or promote products derived from this software
     27   1.1       mrg  *    without specific prior written permission.
     28   1.1       mrg  *
     29   1.1       mrg  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     30   1.1       mrg  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     31   1.1       mrg  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     32   1.1       mrg  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     33   1.1       mrg  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     34   1.1       mrg  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     35   1.1       mrg  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     36   1.1       mrg  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     37   1.1       mrg  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     38   1.1       mrg  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     39   1.1       mrg  * SUCH DAMAGE.
     40   1.1       mrg  *
     41   1.1       mrg  *	@(#)vm_page.c   8.3 (Berkeley) 3/21/94
     42   1.4       mrg  * from: Id: uvm_page.c,v 1.1.2.18 1998/02/06 05:24:42 chs Exp
     43   1.1       mrg  *
     44   1.1       mrg  *
     45   1.1       mrg  * Copyright (c) 1987, 1990 Carnegie-Mellon University.
     46   1.1       mrg  * All rights reserved.
     47  1.62       chs  *
     48   1.1       mrg  * Permission to use, copy, modify and distribute this software and
     49   1.1       mrg  * its documentation is hereby granted, provided that both the copyright
     50   1.1       mrg  * notice and this permission notice appear in all copies of the
     51   1.1       mrg  * software, derivative works or modified versions, and any portions
     52   1.1       mrg  * thereof, and that both notices appear in supporting documentation.
     53  1.62       chs  *
     54  1.62       chs  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     55  1.62       chs  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     56   1.1       mrg  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     57  1.62       chs  *
     58   1.1       mrg  * Carnegie Mellon requests users of this software to return to
     59   1.1       mrg  *
     60   1.1       mrg  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     61   1.1       mrg  *  School of Computer Science
     62   1.1       mrg  *  Carnegie Mellon University
     63   1.1       mrg  *  Pittsburgh PA 15213-3890
     64   1.1       mrg  *
     65   1.1       mrg  * any improvements or extensions that they make and grant Carnegie the
     66   1.1       mrg  * rights to redistribute these changes.
     67   1.1       mrg  */
     68   1.1       mrg 
     69   1.1       mrg /*
     70   1.1       mrg  * uvm_page.c: page ops.
     71   1.1       mrg  */
     72  1.71     lukem 
     73  1.71     lukem #include <sys/cdefs.h>
     74  1.94      yamt __KERNEL_RCSID(0, "$NetBSD: uvm_page.c,v 1.94 2004/01/14 11:28:05 yamt Exp $");
     75   1.6       mrg 
     76  1.44       chs #include "opt_uvmhist.h"
     77  1.44       chs 
     78   1.1       mrg #include <sys/param.h>
     79   1.1       mrg #include <sys/systm.h>
     80   1.1       mrg #include <sys/malloc.h>
     81  1.35   thorpej #include <sys/sched.h>
     82  1.44       chs #include <sys/kernel.h>
     83  1.51       chs #include <sys/vnode.h>
     84  1.68       chs #include <sys/proc.h>
     85   1.1       mrg 
     86   1.1       mrg #define UVM_PAGE                /* pull in uvm_page.h functions */
     87   1.1       mrg #include <uvm/uvm.h>
     88   1.1       mrg 
     89   1.1       mrg /*
     90   1.1       mrg  * global vars... XXXCDC: move to uvm. structure.
     91   1.1       mrg  */
     92   1.1       mrg 
     93   1.1       mrg /*
     94   1.1       mrg  * physical memory config is stored in vm_physmem.
     95   1.1       mrg  */
     96   1.1       mrg 
     97   1.1       mrg struct vm_physseg vm_physmem[VM_PHYSSEG_MAX];	/* XXXCDC: uvm.physmem */
     98   1.1       mrg int vm_nphysseg = 0;				/* XXXCDC: uvm.nphysseg */
     99   1.1       mrg 
    100   1.1       mrg /*
    101  1.36   thorpej  * Some supported CPUs in a given architecture don't support all
    102  1.36   thorpej  * of the things necessary to do idle page zero'ing efficiently.
    103  1.36   thorpej  * We therefore provide a way to disable it from machdep code here.
    104  1.34   thorpej  */
    105  1.44       chs /*
    106  1.44       chs  * XXX disabled until we can find a way to do this without causing
    107  1.44       chs  * problems for either cpu caches or DMA latency.
    108  1.44       chs  */
    109  1.44       chs boolean_t vm_page_zero_enable = FALSE;
    110  1.34   thorpej 
    111  1.34   thorpej /*
    112   1.1       mrg  * local variables
    113   1.1       mrg  */
    114   1.1       mrg 
    115   1.1       mrg /*
    116  1.88   thorpej  * these variables record the values returned by vm_page_bootstrap,
    117  1.88   thorpej  * for debugging purposes.  The implementation of uvm_pageboot_alloc
    118  1.88   thorpej  * and pmap_startup here also uses them internally.
    119  1.88   thorpej  */
    120  1.88   thorpej 
    121  1.88   thorpej static vaddr_t      virtual_space_start;
    122  1.88   thorpej static vaddr_t      virtual_space_end;
    123  1.88   thorpej 
    124  1.88   thorpej /*
    125   1.1       mrg  * we use a hash table with only one bucket during bootup.  we will
    126  1.30   thorpej  * later rehash (resize) the hash table once the allocator is ready.
    127  1.30   thorpej  * we static allocate the one bootstrap bucket below...
    128   1.1       mrg  */
    129   1.1       mrg 
    130   1.1       mrg static struct pglist uvm_bootbucket;
    131   1.1       mrg 
    132   1.1       mrg /*
    133  1.60   thorpej  * we allocate an initial number of page colors in uvm_page_init(),
    134  1.60   thorpej  * and remember them.  We may re-color pages as cache sizes are
    135  1.60   thorpej  * discovered during the autoconfiguration phase.  But we can never
    136  1.60   thorpej  * free the initial set of buckets, since they are allocated using
    137  1.60   thorpej  * uvm_pageboot_alloc().
    138  1.60   thorpej  */
    139  1.60   thorpej 
    140  1.60   thorpej static boolean_t have_recolored_pages /* = FALSE */;
    141  1.83   thorpej 
    142  1.83   thorpej MALLOC_DEFINE(M_VMPAGE, "VM page", "VM page");
    143  1.60   thorpej 
    144  1.91      yamt #ifdef DEBUG
    145  1.91      yamt vaddr_t uvm_zerocheckkva;
    146  1.91      yamt #endif /* DEBUG */
    147  1.91      yamt 
    148  1.60   thorpej /*
    149   1.1       mrg  * local prototypes
    150   1.1       mrg  */
    151   1.1       mrg 
    152   1.1       mrg static void uvm_pageinsert __P((struct vm_page *));
    153  1.44       chs static void uvm_pageremove __P((struct vm_page *));
    154   1.1       mrg 
    155   1.1       mrg /*
    156   1.1       mrg  * inline functions
    157   1.1       mrg  */
    158   1.1       mrg 
    159   1.1       mrg /*
    160   1.1       mrg  * uvm_pageinsert: insert a page in the object and the hash table
    161   1.1       mrg  *
    162   1.1       mrg  * => caller must lock object
    163   1.1       mrg  * => caller must lock page queues
    164   1.1       mrg  * => call should have already set pg's object and offset pointers
    165   1.1       mrg  *    and bumped the version counter
    166   1.1       mrg  */
    167   1.1       mrg 
    168   1.7       mrg __inline static void
    169   1.7       mrg uvm_pageinsert(pg)
    170   1.7       mrg 	struct vm_page *pg;
    171   1.1       mrg {
    172   1.7       mrg 	struct pglist *buck;
    173  1.67       chs 	struct uvm_object *uobj = pg->uobject;
    174   1.1       mrg 
    175  1.51       chs 	KASSERT((pg->flags & PG_TABLED) == 0);
    176  1.67       chs 	buck = &uvm.page_hash[uvm_pagehash(uobj, pg->offset)];
    177   1.7       mrg 	simple_lock(&uvm.hashlock);
    178  1.67       chs 	TAILQ_INSERT_TAIL(buck, pg, hashq);
    179   1.7       mrg 	simple_unlock(&uvm.hashlock);
    180   1.7       mrg 
    181  1.94      yamt 	if (UVM_OBJ_IS_VNODE(uobj)) {
    182  1.94      yamt 		if (uobj->uo_npages == 0) {
    183  1.94      yamt 			struct vnode *vp = (struct vnode *)uobj;
    184  1.94      yamt 
    185  1.94      yamt 			vholdl(vp);
    186  1.94      yamt 		}
    187  1.94      yamt 		if (UVM_OBJ_IS_VTEXT(uobj)) {
    188  1.94      yamt 			uvmexp.execpages++;
    189  1.94      yamt 		} else {
    190  1.94      yamt 			uvmexp.filepages++;
    191  1.94      yamt 		}
    192  1.86      yamt 	} else if (UVM_OBJ_IS_AOBJ(uobj)) {
    193  1.78       chs 		uvmexp.anonpages++;
    194  1.78       chs 	}
    195  1.78       chs 
    196  1.67       chs 	TAILQ_INSERT_TAIL(&uobj->memq, pg, listq);
    197   1.7       mrg 	pg->flags |= PG_TABLED;
    198  1.67       chs 	uobj->uo_npages++;
    199   1.1       mrg }
    200   1.1       mrg 
    201   1.1       mrg /*
    202   1.1       mrg  * uvm_page_remove: remove page from object and hash
    203   1.1       mrg  *
    204   1.1       mrg  * => caller must lock object
    205   1.1       mrg  * => caller must lock page queues
    206   1.1       mrg  */
    207   1.1       mrg 
    208  1.44       chs static __inline void
    209   1.7       mrg uvm_pageremove(pg)
    210   1.7       mrg 	struct vm_page *pg;
    211   1.1       mrg {
    212   1.7       mrg 	struct pglist *buck;
    213  1.67       chs 	struct uvm_object *uobj = pg->uobject;
    214   1.1       mrg 
    215  1.44       chs 	KASSERT(pg->flags & PG_TABLED);
    216  1.80    simonb 	buck = &uvm.page_hash[uvm_pagehash(uobj, pg->offset)];
    217   1.7       mrg 	simple_lock(&uvm.hashlock);
    218   1.7       mrg 	TAILQ_REMOVE(buck, pg, hashq);
    219   1.7       mrg 	simple_unlock(&uvm.hashlock);
    220   1.7       mrg 
    221  1.94      yamt 	if (UVM_OBJ_IS_VNODE(uobj)) {
    222  1.94      yamt 		if (uobj->uo_npages == 1) {
    223  1.94      yamt 			struct vnode *vp = (struct vnode *)uobj;
    224  1.94      yamt 
    225  1.94      yamt 			holdrelel(vp);
    226  1.94      yamt 		}
    227  1.94      yamt 		if (UVM_OBJ_IS_VTEXT(uobj)) {
    228  1.94      yamt 			uvmexp.execpages--;
    229  1.94      yamt 		} else {
    230  1.94      yamt 			uvmexp.filepages--;
    231  1.94      yamt 		}
    232  1.78       chs 	} else if (UVM_OBJ_IS_AOBJ(uobj)) {
    233  1.78       chs 		uvmexp.anonpages--;
    234  1.51       chs 	}
    235  1.44       chs 
    236   1.7       mrg 	/* object should be locked */
    237  1.67       chs 	uobj->uo_npages--;
    238  1.67       chs 	TAILQ_REMOVE(&uobj->memq, pg, listq);
    239   1.7       mrg 	pg->flags &= ~PG_TABLED;
    240   1.7       mrg 	pg->uobject = NULL;
    241   1.1       mrg }
    242   1.1       mrg 
    243  1.60   thorpej static void
    244  1.60   thorpej uvm_page_init_buckets(struct pgfreelist *pgfl)
    245  1.60   thorpej {
    246  1.60   thorpej 	int color, i;
    247  1.60   thorpej 
    248  1.60   thorpej 	for (color = 0; color < uvmexp.ncolors; color++) {
    249  1.60   thorpej 		for (i = 0; i < PGFL_NQUEUES; i++) {
    250  1.93    simonb 			TAILQ_INIT(&pgfl->pgfl_buckets[color].pgfl_queues[i]);
    251  1.60   thorpej 		}
    252  1.60   thorpej 	}
    253  1.60   thorpej }
    254  1.60   thorpej 
    255   1.1       mrg /*
    256   1.1       mrg  * uvm_page_init: init the page system.   called from uvm_init().
    257  1.62       chs  *
    258   1.1       mrg  * => we return the range of kernel virtual memory in kvm_startp/kvm_endp
    259   1.1       mrg  */
    260   1.1       mrg 
    261   1.7       mrg void
    262  1.88   thorpej uvm_page_init(kvm_startp, kvm_endp)
    263  1.88   thorpej 	vaddr_t *kvm_startp, *kvm_endp;
    264   1.1       mrg {
    265  1.60   thorpej 	vsize_t freepages, pagecount, bucketcount, n;
    266  1.60   thorpej 	struct pgflbucket *bucketarray;
    267  1.63       chs 	struct vm_page *pagearray;
    268  1.81   thorpej 	int lcv;
    269  1.81   thorpej 	u_int i;
    270  1.14       eeh 	paddr_t paddr;
    271   1.7       mrg 
    272   1.7       mrg 	/*
    273  1.60   thorpej 	 * init the page queues and page queue locks, except the free
    274  1.60   thorpej 	 * list; we allocate that later (with the initial vm_page
    275  1.60   thorpej 	 * structures).
    276   1.7       mrg 	 */
    277  1.51       chs 
    278   1.7       mrg 	TAILQ_INIT(&uvm.page_active);
    279  1.61      ross 	TAILQ_INIT(&uvm.page_inactive);
    280   1.7       mrg 	simple_lock_init(&uvm.pageqlock);
    281   1.7       mrg 	simple_lock_init(&uvm.fpageqlock);
    282   1.7       mrg 
    283   1.7       mrg 	/*
    284  1.51       chs 	 * init the <obj,offset> => <page> hash table.  for now
    285  1.51       chs 	 * we just have one bucket (the bootstrap bucket).  later on we
    286  1.30   thorpej 	 * will allocate new buckets as we dynamically resize the hash table.
    287   1.7       mrg 	 */
    288   1.7       mrg 
    289   1.7       mrg 	uvm.page_nhash = 1;			/* 1 bucket */
    290  1.44       chs 	uvm.page_hashmask = 0;			/* mask for hash function */
    291   1.7       mrg 	uvm.page_hash = &uvm_bootbucket;	/* install bootstrap bucket */
    292   1.7       mrg 	TAILQ_INIT(uvm.page_hash);		/* init hash table */
    293   1.7       mrg 	simple_lock_init(&uvm.hashlock);	/* init hash table lock */
    294   1.7       mrg 
    295  1.62       chs 	/*
    296  1.51       chs 	 * allocate vm_page structures.
    297   1.7       mrg 	 */
    298   1.7       mrg 
    299   1.7       mrg 	/*
    300   1.7       mrg 	 * sanity check:
    301   1.7       mrg 	 * before calling this function the MD code is expected to register
    302   1.7       mrg 	 * some free RAM with the uvm_page_physload() function.   our job
    303   1.7       mrg 	 * now is to allocate vm_page structures for this memory.
    304   1.7       mrg 	 */
    305   1.7       mrg 
    306   1.7       mrg 	if (vm_nphysseg == 0)
    307  1.42       mrg 		panic("uvm_page_bootstrap: no memory pre-allocated");
    308  1.62       chs 
    309   1.7       mrg 	/*
    310  1.62       chs 	 * first calculate the number of free pages...
    311   1.7       mrg 	 *
    312   1.7       mrg 	 * note that we use start/end rather than avail_start/avail_end.
    313   1.7       mrg 	 * this allows us to allocate extra vm_page structures in case we
    314   1.7       mrg 	 * want to return some memory to the pool after booting.
    315   1.7       mrg 	 */
    316  1.62       chs 
    317   1.7       mrg 	freepages = 0;
    318   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    319   1.7       mrg 		freepages += (vm_physmem[lcv].end - vm_physmem[lcv].start);
    320   1.7       mrg 
    321   1.7       mrg 	/*
    322  1.60   thorpej 	 * Let MD code initialize the number of colors, or default
    323  1.60   thorpej 	 * to 1 color if MD code doesn't care.
    324  1.60   thorpej 	 */
    325  1.60   thorpej 	if (uvmexp.ncolors == 0)
    326  1.60   thorpej 		uvmexp.ncolors = 1;
    327  1.60   thorpej 	uvmexp.colormask = uvmexp.ncolors - 1;
    328  1.60   thorpej 
    329  1.60   thorpej 	/*
    330   1.7       mrg 	 * we now know we have (PAGE_SIZE * freepages) bytes of memory we can
    331   1.7       mrg 	 * use.   for each page of memory we use we need a vm_page structure.
    332   1.7       mrg 	 * thus, the total number of pages we can use is the total size of
    333   1.7       mrg 	 * the memory divided by the PAGE_SIZE plus the size of the vm_page
    334   1.7       mrg 	 * structure.   we add one to freepages as a fudge factor to avoid
    335   1.7       mrg 	 * truncation errors (since we can only allocate in terms of whole
    336   1.7       mrg 	 * pages).
    337   1.7       mrg 	 */
    338  1.62       chs 
    339  1.60   thorpej 	bucketcount = uvmexp.ncolors * VM_NFREELIST;
    340  1.15       chs 	pagecount = ((freepages + 1) << PAGE_SHIFT) /
    341   1.7       mrg 	    (PAGE_SIZE + sizeof(struct vm_page));
    342  1.60   thorpej 
    343  1.67       chs 	bucketarray = (void *)uvm_pageboot_alloc((bucketcount *
    344  1.60   thorpej 	    sizeof(struct pgflbucket)) + (pagecount *
    345  1.60   thorpej 	    sizeof(struct vm_page)));
    346  1.60   thorpej 	pagearray = (struct vm_page *)(bucketarray + bucketcount);
    347  1.60   thorpej 
    348  1.60   thorpej 	for (lcv = 0; lcv < VM_NFREELIST; lcv++) {
    349  1.60   thorpej 		uvm.page_free[lcv].pgfl_buckets =
    350  1.60   thorpej 		    (bucketarray + (lcv * uvmexp.ncolors));
    351  1.60   thorpej 		uvm_page_init_buckets(&uvm.page_free[lcv]);
    352  1.60   thorpej 	}
    353  1.13     perry 	memset(pagearray, 0, pagecount * sizeof(struct vm_page));
    354  1.62       chs 
    355   1.7       mrg 	/*
    356  1.51       chs 	 * init the vm_page structures and put them in the correct place.
    357   1.7       mrg 	 */
    358   1.7       mrg 
    359   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++) {
    360   1.7       mrg 		n = vm_physmem[lcv].end - vm_physmem[lcv].start;
    361  1.51       chs 
    362   1.7       mrg 		/* set up page array pointers */
    363   1.7       mrg 		vm_physmem[lcv].pgs = pagearray;
    364   1.7       mrg 		pagearray += n;
    365   1.7       mrg 		pagecount -= n;
    366   1.7       mrg 		vm_physmem[lcv].lastpg = vm_physmem[lcv].pgs + (n - 1);
    367   1.7       mrg 
    368  1.13     perry 		/* init and free vm_pages (we've already zeroed them) */
    369   1.7       mrg 		paddr = ptoa(vm_physmem[lcv].start);
    370   1.7       mrg 		for (i = 0 ; i < n ; i++, paddr += PAGE_SIZE) {
    371   1.7       mrg 			vm_physmem[lcv].pgs[i].phys_addr = paddr;
    372  1.56   thorpej #ifdef __HAVE_VM_PAGE_MD
    373  1.55   thorpej 			VM_MDPAGE_INIT(&vm_physmem[lcv].pgs[i]);
    374  1.56   thorpej #endif
    375   1.7       mrg 			if (atop(paddr) >= vm_physmem[lcv].avail_start &&
    376   1.7       mrg 			    atop(paddr) <= vm_physmem[lcv].avail_end) {
    377   1.7       mrg 				uvmexp.npages++;
    378   1.7       mrg 				/* add page to free pool */
    379   1.7       mrg 				uvm_pagefree(&vm_physmem[lcv].pgs[i]);
    380   1.7       mrg 			}
    381   1.7       mrg 		}
    382   1.7       mrg 	}
    383  1.44       chs 
    384   1.7       mrg 	/*
    385  1.88   thorpej 	 * pass up the values of virtual_space_start and
    386  1.88   thorpej 	 * virtual_space_end (obtained by uvm_pageboot_alloc) to the upper
    387  1.88   thorpej 	 * layers of the VM.
    388  1.88   thorpej 	 */
    389  1.88   thorpej 
    390  1.88   thorpej 	*kvm_startp = round_page(virtual_space_start);
    391  1.88   thorpej 	*kvm_endp = trunc_page(virtual_space_end);
    392  1.91      yamt #ifdef DEBUG
    393  1.91      yamt 	/*
    394  1.91      yamt 	 * steal kva for uvm_pagezerocheck().
    395  1.91      yamt 	 */
    396  1.91      yamt 	uvm_zerocheckkva = *kvm_startp;
    397  1.91      yamt 	*kvm_startp += PAGE_SIZE;
    398  1.91      yamt #endif /* DEBUG */
    399  1.88   thorpej 
    400  1.88   thorpej 	/*
    401  1.51       chs 	 * init locks for kernel threads
    402   1.7       mrg 	 */
    403   1.7       mrg 
    404   1.7       mrg 	simple_lock_init(&uvm.pagedaemon_lock);
    405  1.44       chs 	simple_lock_init(&uvm.aiodoned_lock);
    406   1.7       mrg 
    407   1.7       mrg 	/*
    408  1.51       chs 	 * init various thresholds.
    409   1.7       mrg 	 */
    410  1.51       chs 
    411   1.7       mrg 	uvmexp.reserve_pagedaemon = 1;
    412   1.7       mrg 	uvmexp.reserve_kernel = 5;
    413  1.51       chs 	uvmexp.anonminpct = 10;
    414  1.72       chs 	uvmexp.fileminpct = 10;
    415  1.72       chs 	uvmexp.execminpct = 5;
    416  1.72       chs 	uvmexp.anonmaxpct = 80;
    417  1.72       chs 	uvmexp.filemaxpct = 50;
    418  1.72       chs 	uvmexp.execmaxpct = 30;
    419  1.51       chs 	uvmexp.anonmin = uvmexp.anonminpct * 256 / 100;
    420  1.72       chs 	uvmexp.filemin = uvmexp.fileminpct * 256 / 100;
    421  1.72       chs 	uvmexp.execmin = uvmexp.execminpct * 256 / 100;
    422  1.72       chs 	uvmexp.anonmax = uvmexp.anonmaxpct * 256 / 100;
    423  1.72       chs 	uvmexp.filemax = uvmexp.filemaxpct * 256 / 100;
    424  1.72       chs 	uvmexp.execmax = uvmexp.execmaxpct * 256 / 100;
    425   1.7       mrg 
    426   1.7       mrg 	/*
    427  1.51       chs 	 * determine if we should zero pages in the idle loop.
    428  1.34   thorpej 	 */
    429  1.51       chs 
    430  1.34   thorpej 	uvm.page_idle_zero = vm_page_zero_enable;
    431  1.34   thorpej 
    432  1.34   thorpej 	/*
    433   1.7       mrg 	 * done!
    434   1.7       mrg 	 */
    435   1.1       mrg 
    436  1.32   thorpej 	uvm.page_init_done = TRUE;
    437   1.1       mrg }
    438   1.1       mrg 
    439   1.1       mrg /*
    440   1.1       mrg  * uvm_setpagesize: set the page size
    441  1.62       chs  *
    442   1.1       mrg  * => sets page_shift and page_mask from uvmexp.pagesize.
    443  1.62       chs  */
    444   1.1       mrg 
    445   1.7       mrg void
    446   1.7       mrg uvm_setpagesize()
    447   1.1       mrg {
    448  1.85   thorpej 
    449  1.85   thorpej 	/*
    450  1.85   thorpej 	 * If uvmexp.pagesize is 0 at this point, we expect PAGE_SIZE
    451  1.85   thorpej 	 * to be a constant (indicated by being a non-zero value).
    452  1.85   thorpej 	 */
    453  1.85   thorpej 	if (uvmexp.pagesize == 0) {
    454  1.85   thorpej 		if (PAGE_SIZE == 0)
    455  1.85   thorpej 			panic("uvm_setpagesize: uvmexp.pagesize not set");
    456  1.85   thorpej 		uvmexp.pagesize = PAGE_SIZE;
    457  1.85   thorpej 	}
    458   1.7       mrg 	uvmexp.pagemask = uvmexp.pagesize - 1;
    459   1.7       mrg 	if ((uvmexp.pagemask & uvmexp.pagesize) != 0)
    460   1.7       mrg 		panic("uvm_setpagesize: page size not a power of two");
    461   1.7       mrg 	for (uvmexp.pageshift = 0; ; uvmexp.pageshift++)
    462   1.7       mrg 		if ((1 << uvmexp.pageshift) == uvmexp.pagesize)
    463   1.7       mrg 			break;
    464   1.1       mrg }
    465   1.1       mrg 
    466   1.1       mrg /*
    467   1.1       mrg  * uvm_pageboot_alloc: steal memory from physmem for bootstrapping
    468   1.1       mrg  */
    469   1.1       mrg 
    470  1.14       eeh vaddr_t
    471   1.7       mrg uvm_pageboot_alloc(size)
    472  1.14       eeh 	vsize_t size;
    473   1.1       mrg {
    474  1.52   thorpej 	static boolean_t initialized = FALSE;
    475  1.14       eeh 	vaddr_t addr;
    476  1.52   thorpej #if !defined(PMAP_STEAL_MEMORY)
    477  1.52   thorpej 	vaddr_t vaddr;
    478  1.14       eeh 	paddr_t paddr;
    479  1.52   thorpej #endif
    480   1.1       mrg 
    481   1.7       mrg 	/*
    482  1.19   thorpej 	 * on first call to this function, initialize ourselves.
    483   1.7       mrg 	 */
    484  1.19   thorpej 	if (initialized == FALSE) {
    485  1.88   thorpej 		pmap_virtual_space(&virtual_space_start, &virtual_space_end);
    486   1.1       mrg 
    487   1.7       mrg 		/* round it the way we like it */
    488  1.88   thorpej 		virtual_space_start = round_page(virtual_space_start);
    489  1.88   thorpej 		virtual_space_end = trunc_page(virtual_space_end);
    490  1.19   thorpej 
    491  1.19   thorpej 		initialized = TRUE;
    492   1.7       mrg 	}
    493  1.52   thorpej 
    494  1.52   thorpej 	/* round to page size */
    495  1.52   thorpej 	size = round_page(size);
    496  1.52   thorpej 
    497  1.52   thorpej #if defined(PMAP_STEAL_MEMORY)
    498  1.52   thorpej 
    499  1.62       chs 	/*
    500  1.62       chs 	 * defer bootstrap allocation to MD code (it may want to allocate
    501  1.52   thorpej 	 * from a direct-mapped segment).  pmap_steal_memory should adjust
    502  1.88   thorpej 	 * virtual_space_start/virtual_space_end if necessary.
    503  1.52   thorpej 	 */
    504  1.52   thorpej 
    505  1.88   thorpej 	addr = pmap_steal_memory(size, &virtual_space_start,
    506  1.88   thorpej 	    &virtual_space_end);
    507  1.52   thorpej 
    508  1.52   thorpej 	return(addr);
    509  1.52   thorpej 
    510  1.52   thorpej #else /* !PMAP_STEAL_MEMORY */
    511   1.1       mrg 
    512   1.7       mrg 	/*
    513   1.7       mrg 	 * allocate virtual memory for this request
    514   1.7       mrg 	 */
    515  1.88   thorpej 	if (virtual_space_start == virtual_space_end ||
    516  1.88   thorpej 	    (virtual_space_end - virtual_space_start) < size)
    517  1.19   thorpej 		panic("uvm_pageboot_alloc: out of virtual space");
    518  1.20   thorpej 
    519  1.88   thorpej 	addr = virtual_space_start;
    520  1.20   thorpej 
    521  1.20   thorpej #ifdef PMAP_GROWKERNEL
    522  1.20   thorpej 	/*
    523  1.20   thorpej 	 * If the kernel pmap can't map the requested space,
    524  1.20   thorpej 	 * then allocate more resources for it.
    525  1.20   thorpej 	 */
    526  1.20   thorpej 	if (uvm_maxkaddr < (addr + size)) {
    527  1.20   thorpej 		uvm_maxkaddr = pmap_growkernel(addr + size);
    528  1.20   thorpej 		if (uvm_maxkaddr < (addr + size))
    529  1.20   thorpej 			panic("uvm_pageboot_alloc: pmap_growkernel() failed");
    530  1.19   thorpej 	}
    531  1.20   thorpej #endif
    532   1.1       mrg 
    533  1.88   thorpej 	virtual_space_start += size;
    534   1.1       mrg 
    535   1.9   thorpej 	/*
    536   1.7       mrg 	 * allocate and mapin physical pages to back new virtual pages
    537   1.7       mrg 	 */
    538   1.1       mrg 
    539   1.7       mrg 	for (vaddr = round_page(addr) ; vaddr < addr + size ;
    540   1.7       mrg 	    vaddr += PAGE_SIZE) {
    541   1.1       mrg 
    542   1.7       mrg 		if (!uvm_page_physget(&paddr))
    543   1.7       mrg 			panic("uvm_pageboot_alloc: out of memory");
    544   1.1       mrg 
    545  1.23   thorpej 		/*
    546  1.23   thorpej 		 * Note this memory is no longer managed, so using
    547  1.23   thorpej 		 * pmap_kenter is safe.
    548  1.23   thorpej 		 */
    549   1.7       mrg 		pmap_kenter_pa(vaddr, paddr, VM_PROT_READ|VM_PROT_WRITE);
    550   1.7       mrg 	}
    551  1.66     chris 	pmap_update(pmap_kernel());
    552   1.7       mrg 	return(addr);
    553   1.1       mrg #endif	/* PMAP_STEAL_MEMORY */
    554   1.1       mrg }
    555   1.1       mrg 
    556   1.1       mrg #if !defined(PMAP_STEAL_MEMORY)
    557   1.1       mrg /*
    558   1.1       mrg  * uvm_page_physget: "steal" one page from the vm_physmem structure.
    559   1.1       mrg  *
    560   1.1       mrg  * => attempt to allocate it off the end of a segment in which the "avail"
    561   1.1       mrg  *    values match the start/end values.   if we can't do that, then we
    562   1.1       mrg  *    will advance both values (making them equal, and removing some
    563   1.1       mrg  *    vm_page structures from the non-avail area).
    564   1.1       mrg  * => return false if out of memory.
    565   1.1       mrg  */
    566   1.1       mrg 
    567  1.28  drochner /* subroutine: try to allocate from memory chunks on the specified freelist */
    568  1.28  drochner static boolean_t uvm_page_physget_freelist __P((paddr_t *, int));
    569  1.28  drochner 
    570  1.28  drochner static boolean_t
    571  1.28  drochner uvm_page_physget_freelist(paddrp, freelist)
    572  1.14       eeh 	paddr_t *paddrp;
    573  1.28  drochner 	int freelist;
    574   1.1       mrg {
    575   1.7       mrg 	int lcv, x;
    576   1.1       mrg 
    577   1.7       mrg 	/* pass 1: try allocating from a matching end */
    578   1.1       mrg #if (VM_PHYSSEG_STRAT == VM_PSTRAT_BIGFIRST)
    579   1.7       mrg 	for (lcv = vm_nphysseg - 1 ; lcv >= 0 ; lcv--)
    580   1.1       mrg #else
    581   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    582   1.1       mrg #endif
    583   1.7       mrg 	{
    584   1.1       mrg 
    585  1.32   thorpej 		if (uvm.page_init_done == TRUE)
    586  1.42       mrg 			panic("uvm_page_physget: called _after_ bootstrap");
    587   1.1       mrg 
    588  1.28  drochner 		if (vm_physmem[lcv].free_list != freelist)
    589  1.28  drochner 			continue;
    590  1.28  drochner 
    591   1.7       mrg 		/* try from front */
    592   1.7       mrg 		if (vm_physmem[lcv].avail_start == vm_physmem[lcv].start &&
    593   1.7       mrg 		    vm_physmem[lcv].avail_start < vm_physmem[lcv].avail_end) {
    594   1.7       mrg 			*paddrp = ptoa(vm_physmem[lcv].avail_start);
    595   1.7       mrg 			vm_physmem[lcv].avail_start++;
    596   1.7       mrg 			vm_physmem[lcv].start++;
    597   1.7       mrg 			/* nothing left?   nuke it */
    598   1.7       mrg 			if (vm_physmem[lcv].avail_start ==
    599   1.7       mrg 			    vm_physmem[lcv].end) {
    600   1.7       mrg 				if (vm_nphysseg == 1)
    601  1.89       wiz 				    panic("uvm_page_physget: out of memory!");
    602   1.7       mrg 				vm_nphysseg--;
    603   1.7       mrg 				for (x = lcv ; x < vm_nphysseg ; x++)
    604   1.7       mrg 					/* structure copy */
    605   1.7       mrg 					vm_physmem[x] = vm_physmem[x+1];
    606   1.7       mrg 			}
    607   1.7       mrg 			return (TRUE);
    608   1.7       mrg 		}
    609   1.7       mrg 
    610   1.7       mrg 		/* try from rear */
    611   1.7       mrg 		if (vm_physmem[lcv].avail_end == vm_physmem[lcv].end &&
    612   1.7       mrg 		    vm_physmem[lcv].avail_start < vm_physmem[lcv].avail_end) {
    613   1.7       mrg 			*paddrp = ptoa(vm_physmem[lcv].avail_end - 1);
    614   1.7       mrg 			vm_physmem[lcv].avail_end--;
    615   1.7       mrg 			vm_physmem[lcv].end--;
    616   1.7       mrg 			/* nothing left?   nuke it */
    617   1.7       mrg 			if (vm_physmem[lcv].avail_end ==
    618   1.7       mrg 			    vm_physmem[lcv].start) {
    619   1.7       mrg 				if (vm_nphysseg == 1)
    620  1.42       mrg 				    panic("uvm_page_physget: out of memory!");
    621   1.7       mrg 				vm_nphysseg--;
    622   1.7       mrg 				for (x = lcv ; x < vm_nphysseg ; x++)
    623   1.7       mrg 					/* structure copy */
    624   1.7       mrg 					vm_physmem[x] = vm_physmem[x+1];
    625   1.7       mrg 			}
    626   1.7       mrg 			return (TRUE);
    627   1.7       mrg 		}
    628   1.7       mrg 	}
    629   1.1       mrg 
    630   1.7       mrg 	/* pass2: forget about matching ends, just allocate something */
    631   1.1       mrg #if (VM_PHYSSEG_STRAT == VM_PSTRAT_BIGFIRST)
    632   1.7       mrg 	for (lcv = vm_nphysseg - 1 ; lcv >= 0 ; lcv--)
    633   1.1       mrg #else
    634   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    635   1.1       mrg #endif
    636   1.7       mrg 	{
    637   1.1       mrg 
    638   1.7       mrg 		/* any room in this bank? */
    639   1.7       mrg 		if (vm_physmem[lcv].avail_start >= vm_physmem[lcv].avail_end)
    640   1.7       mrg 			continue;  /* nope */
    641   1.7       mrg 
    642   1.7       mrg 		*paddrp = ptoa(vm_physmem[lcv].avail_start);
    643   1.7       mrg 		vm_physmem[lcv].avail_start++;
    644   1.7       mrg 		/* truncate! */
    645   1.7       mrg 		vm_physmem[lcv].start = vm_physmem[lcv].avail_start;
    646   1.7       mrg 
    647   1.7       mrg 		/* nothing left?   nuke it */
    648   1.7       mrg 		if (vm_physmem[lcv].avail_start == vm_physmem[lcv].end) {
    649   1.7       mrg 			if (vm_nphysseg == 1)
    650  1.42       mrg 				panic("uvm_page_physget: out of memory!");
    651   1.7       mrg 			vm_nphysseg--;
    652   1.7       mrg 			for (x = lcv ; x < vm_nphysseg ; x++)
    653   1.7       mrg 				/* structure copy */
    654   1.7       mrg 				vm_physmem[x] = vm_physmem[x+1];
    655   1.7       mrg 		}
    656   1.7       mrg 		return (TRUE);
    657   1.7       mrg 	}
    658   1.1       mrg 
    659   1.7       mrg 	return (FALSE);        /* whoops! */
    660  1.28  drochner }
    661  1.28  drochner 
    662  1.28  drochner boolean_t
    663  1.28  drochner uvm_page_physget(paddrp)
    664  1.28  drochner 	paddr_t *paddrp;
    665  1.28  drochner {
    666  1.28  drochner 	int i;
    667  1.28  drochner 
    668  1.28  drochner 	/* try in the order of freelist preference */
    669  1.28  drochner 	for (i = 0; i < VM_NFREELIST; i++)
    670  1.28  drochner 		if (uvm_page_physget_freelist(paddrp, i) == TRUE)
    671  1.28  drochner 			return (TRUE);
    672  1.28  drochner 	return (FALSE);
    673   1.1       mrg }
    674   1.1       mrg #endif /* PMAP_STEAL_MEMORY */
    675   1.1       mrg 
    676   1.1       mrg /*
    677   1.1       mrg  * uvm_page_physload: load physical memory into VM system
    678   1.1       mrg  *
    679   1.1       mrg  * => all args are PFs
    680   1.1       mrg  * => all pages in start/end get vm_page structures
    681   1.1       mrg  * => areas marked by avail_start/avail_end get added to the free page pool
    682   1.1       mrg  * => we are limited to VM_PHYSSEG_MAX physical memory segments
    683   1.1       mrg  */
    684   1.1       mrg 
    685   1.7       mrg void
    686  1.12   thorpej uvm_page_physload(start, end, avail_start, avail_end, free_list)
    687  1.29       eeh 	paddr_t start, end, avail_start, avail_end;
    688  1.12   thorpej 	int free_list;
    689   1.1       mrg {
    690  1.14       eeh 	int preload, lcv;
    691  1.14       eeh 	psize_t npages;
    692   1.7       mrg 	struct vm_page *pgs;
    693   1.7       mrg 	struct vm_physseg *ps;
    694   1.7       mrg 
    695   1.7       mrg 	if (uvmexp.pagesize == 0)
    696  1.42       mrg 		panic("uvm_page_physload: page size not set!");
    697  1.12   thorpej 	if (free_list >= VM_NFREELIST || free_list < VM_FREELIST_DEFAULT)
    698  1.79    provos 		panic("uvm_page_physload: bad free list %d", free_list);
    699  1.26  drochner 	if (start >= end)
    700  1.26  drochner 		panic("uvm_page_physload: start >= end");
    701  1.12   thorpej 
    702   1.7       mrg 	/*
    703   1.7       mrg 	 * do we have room?
    704   1.7       mrg 	 */
    705  1.67       chs 
    706   1.7       mrg 	if (vm_nphysseg == VM_PHYSSEG_MAX) {
    707  1.42       mrg 		printf("uvm_page_physload: unable to load physical memory "
    708   1.7       mrg 		    "segment\n");
    709  1.37      soda 		printf("\t%d segments allocated, ignoring 0x%llx -> 0x%llx\n",
    710  1.37      soda 		    VM_PHYSSEG_MAX, (long long)start, (long long)end);
    711  1.43  christos 		printf("\tincrease VM_PHYSSEG_MAX\n");
    712   1.7       mrg 		return;
    713   1.7       mrg 	}
    714   1.7       mrg 
    715   1.7       mrg 	/*
    716   1.7       mrg 	 * check to see if this is a "preload" (i.e. uvm_mem_init hasn't been
    717   1.7       mrg 	 * called yet, so malloc is not available).
    718   1.7       mrg 	 */
    719  1.67       chs 
    720   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++) {
    721   1.7       mrg 		if (vm_physmem[lcv].pgs)
    722   1.7       mrg 			break;
    723   1.7       mrg 	}
    724   1.7       mrg 	preload = (lcv == vm_nphysseg);
    725   1.7       mrg 
    726   1.7       mrg 	/*
    727   1.7       mrg 	 * if VM is already running, attempt to malloc() vm_page structures
    728   1.7       mrg 	 */
    729  1.67       chs 
    730   1.7       mrg 	if (!preload) {
    731   1.1       mrg #if defined(VM_PHYSSEG_NOADD)
    732  1.42       mrg 		panic("uvm_page_physload: tried to add RAM after vm_mem_init");
    733   1.1       mrg #else
    734   1.7       mrg 		/* XXXCDC: need some sort of lockout for this case */
    735  1.14       eeh 		paddr_t paddr;
    736   1.7       mrg 		npages = end - start;  /* # of pages */
    737  1.40   thorpej 		pgs = malloc(sizeof(struct vm_page) * npages,
    738  1.40   thorpej 		    M_VMPAGE, M_NOWAIT);
    739   1.7       mrg 		if (pgs == NULL) {
    740  1.42       mrg 			printf("uvm_page_physload: can not malloc vm_page "
    741   1.7       mrg 			    "structs for segment\n");
    742   1.7       mrg 			printf("\tignoring 0x%lx -> 0x%lx\n", start, end);
    743   1.7       mrg 			return;
    744   1.7       mrg 		}
    745  1.12   thorpej 		/* zero data, init phys_addr and free_list, and free pages */
    746  1.13     perry 		memset(pgs, 0, sizeof(struct vm_page) * npages);
    747   1.7       mrg 		for (lcv = 0, paddr = ptoa(start) ;
    748   1.7       mrg 				 lcv < npages ; lcv++, paddr += PAGE_SIZE) {
    749   1.7       mrg 			pgs[lcv].phys_addr = paddr;
    750  1.12   thorpej 			pgs[lcv].free_list = free_list;
    751   1.7       mrg 			if (atop(paddr) >= avail_start &&
    752   1.7       mrg 			    atop(paddr) <= avail_end)
    753   1.8     chuck 				uvm_pagefree(&pgs[lcv]);
    754   1.7       mrg 		}
    755   1.7       mrg 		/* XXXCDC: incomplete: need to update uvmexp.free, what else? */
    756   1.7       mrg 		/* XXXCDC: need hook to tell pmap to rebuild pv_list, etc... */
    757   1.1       mrg #endif
    758   1.7       mrg 	} else {
    759   1.7       mrg 		pgs = NULL;
    760   1.7       mrg 		npages = 0;
    761   1.7       mrg 	}
    762   1.1       mrg 
    763   1.7       mrg 	/*
    764   1.7       mrg 	 * now insert us in the proper place in vm_physmem[]
    765   1.7       mrg 	 */
    766   1.1       mrg 
    767   1.1       mrg #if (VM_PHYSSEG_STRAT == VM_PSTRAT_RANDOM)
    768   1.7       mrg 	/* random: put it at the end (easy!) */
    769   1.7       mrg 	ps = &vm_physmem[vm_nphysseg];
    770   1.1       mrg #elif (VM_PHYSSEG_STRAT == VM_PSTRAT_BSEARCH)
    771   1.7       mrg 	{
    772   1.7       mrg 		int x;
    773   1.7       mrg 		/* sort by address for binary search */
    774   1.7       mrg 		for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    775   1.7       mrg 			if (start < vm_physmem[lcv].start)
    776   1.7       mrg 				break;
    777   1.7       mrg 		ps = &vm_physmem[lcv];
    778   1.7       mrg 		/* move back other entries, if necessary ... */
    779   1.7       mrg 		for (x = vm_nphysseg ; x > lcv ; x--)
    780   1.7       mrg 			/* structure copy */
    781   1.7       mrg 			vm_physmem[x] = vm_physmem[x - 1];
    782   1.7       mrg 	}
    783   1.1       mrg #elif (VM_PHYSSEG_STRAT == VM_PSTRAT_BIGFIRST)
    784   1.7       mrg 	{
    785   1.7       mrg 		int x;
    786   1.7       mrg 		/* sort by largest segment first */
    787   1.7       mrg 		for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    788   1.7       mrg 			if ((end - start) >
    789   1.7       mrg 			    (vm_physmem[lcv].end - vm_physmem[lcv].start))
    790   1.7       mrg 				break;
    791   1.7       mrg 		ps = &vm_physmem[lcv];
    792   1.7       mrg 		/* move back other entries, if necessary ... */
    793   1.7       mrg 		for (x = vm_nphysseg ; x > lcv ; x--)
    794   1.7       mrg 			/* structure copy */
    795   1.7       mrg 			vm_physmem[x] = vm_physmem[x - 1];
    796   1.7       mrg 	}
    797   1.1       mrg #else
    798  1.42       mrg 	panic("uvm_page_physload: unknown physseg strategy selected!");
    799   1.1       mrg #endif
    800   1.1       mrg 
    801   1.7       mrg 	ps->start = start;
    802   1.7       mrg 	ps->end = end;
    803   1.7       mrg 	ps->avail_start = avail_start;
    804   1.7       mrg 	ps->avail_end = avail_end;
    805   1.7       mrg 	if (preload) {
    806   1.7       mrg 		ps->pgs = NULL;
    807   1.7       mrg 	} else {
    808   1.7       mrg 		ps->pgs = pgs;
    809   1.7       mrg 		ps->lastpg = pgs + npages - 1;
    810   1.7       mrg 	}
    811  1.12   thorpej 	ps->free_list = free_list;
    812   1.7       mrg 	vm_nphysseg++;
    813   1.7       mrg 
    814   1.7       mrg 	if (!preload)
    815   1.7       mrg 		uvm_page_rehash();
    816   1.1       mrg }
    817   1.1       mrg 
    818   1.1       mrg /*
    819   1.1       mrg  * uvm_page_rehash: reallocate hash table based on number of free pages.
    820   1.1       mrg  */
    821   1.1       mrg 
    822   1.7       mrg void
    823   1.7       mrg uvm_page_rehash()
    824   1.1       mrg {
    825  1.67       chs 	int freepages, lcv, bucketcount, oldcount;
    826   1.7       mrg 	struct pglist *newbuckets, *oldbuckets;
    827   1.7       mrg 	struct vm_page *pg;
    828  1.30   thorpej 	size_t newsize, oldsize;
    829   1.7       mrg 
    830   1.7       mrg 	/*
    831   1.7       mrg 	 * compute number of pages that can go in the free pool
    832   1.7       mrg 	 */
    833   1.7       mrg 
    834   1.7       mrg 	freepages = 0;
    835   1.7       mrg 	for (lcv = 0 ; lcv < vm_nphysseg ; lcv++)
    836   1.7       mrg 		freepages +=
    837   1.7       mrg 		    (vm_physmem[lcv].avail_end - vm_physmem[lcv].avail_start);
    838   1.7       mrg 
    839   1.7       mrg 	/*
    840   1.7       mrg 	 * compute number of buckets needed for this number of pages
    841   1.7       mrg 	 */
    842   1.7       mrg 
    843   1.7       mrg 	bucketcount = 1;
    844   1.7       mrg 	while (bucketcount < freepages)
    845   1.7       mrg 		bucketcount = bucketcount * 2;
    846   1.7       mrg 
    847   1.7       mrg 	/*
    848  1.30   thorpej 	 * compute the size of the current table and new table.
    849   1.7       mrg 	 */
    850   1.7       mrg 
    851  1.30   thorpej 	oldbuckets = uvm.page_hash;
    852  1.30   thorpej 	oldcount = uvm.page_nhash;
    853  1.30   thorpej 	oldsize = round_page(sizeof(struct pglist) * oldcount);
    854  1.30   thorpej 	newsize = round_page(sizeof(struct pglist) * bucketcount);
    855  1.30   thorpej 
    856  1.30   thorpej 	/*
    857  1.30   thorpej 	 * allocate the new buckets
    858  1.30   thorpej 	 */
    859  1.30   thorpej 
    860  1.30   thorpej 	newbuckets = (struct pglist *) uvm_km_alloc(kernel_map, newsize);
    861   1.7       mrg 	if (newbuckets == NULL) {
    862  1.30   thorpej 		printf("uvm_page_physrehash: WARNING: could not grow page "
    863   1.7       mrg 		    "hash table\n");
    864   1.7       mrg 		return;
    865   1.7       mrg 	}
    866   1.7       mrg 	for (lcv = 0 ; lcv < bucketcount ; lcv++)
    867   1.7       mrg 		TAILQ_INIT(&newbuckets[lcv]);
    868   1.7       mrg 
    869   1.7       mrg 	/*
    870   1.7       mrg 	 * now replace the old buckets with the new ones and rehash everything
    871   1.7       mrg 	 */
    872   1.7       mrg 
    873   1.7       mrg 	simple_lock(&uvm.hashlock);
    874   1.7       mrg 	uvm.page_hash = newbuckets;
    875   1.7       mrg 	uvm.page_nhash = bucketcount;
    876   1.7       mrg 	uvm.page_hashmask = bucketcount - 1;  /* power of 2 */
    877   1.7       mrg 
    878   1.7       mrg 	/* ... and rehash */
    879   1.7       mrg 	for (lcv = 0 ; lcv < oldcount ; lcv++) {
    880   1.7       mrg 		while ((pg = oldbuckets[lcv].tqh_first) != NULL) {
    881   1.7       mrg 			TAILQ_REMOVE(&oldbuckets[lcv], pg, hashq);
    882   1.7       mrg 			TAILQ_INSERT_TAIL(
    883   1.7       mrg 			  &uvm.page_hash[uvm_pagehash(pg->uobject, pg->offset)],
    884   1.7       mrg 			  pg, hashq);
    885   1.7       mrg 		}
    886   1.7       mrg 	}
    887   1.7       mrg 	simple_unlock(&uvm.hashlock);
    888   1.7       mrg 
    889   1.7       mrg 	/*
    890  1.30   thorpej 	 * free old bucket array if is not the boot-time table
    891   1.7       mrg 	 */
    892   1.7       mrg 
    893   1.7       mrg 	if (oldbuckets != &uvm_bootbucket)
    894  1.30   thorpej 		uvm_km_free(kernel_map, (vaddr_t) oldbuckets, oldsize);
    895   1.1       mrg }
    896   1.1       mrg 
    897  1.60   thorpej /*
    898  1.60   thorpej  * uvm_page_recolor: Recolor the pages if the new bucket count is
    899  1.60   thorpej  * larger than the old one.
    900  1.60   thorpej  */
    901  1.60   thorpej 
    902  1.60   thorpej void
    903  1.60   thorpej uvm_page_recolor(int newncolors)
    904  1.60   thorpej {
    905  1.60   thorpej 	struct pgflbucket *bucketarray, *oldbucketarray;
    906  1.60   thorpej 	struct pgfreelist pgfl;
    907  1.63       chs 	struct vm_page *pg;
    908  1.60   thorpej 	vsize_t bucketcount;
    909  1.60   thorpej 	int s, lcv, color, i, ocolors;
    910  1.60   thorpej 
    911  1.60   thorpej 	if (newncolors <= uvmexp.ncolors)
    912  1.60   thorpej 		return;
    913  1.77  wrstuden 
    914  1.77  wrstuden 	if (uvm.page_init_done == FALSE) {
    915  1.77  wrstuden 		uvmexp.ncolors = newncolors;
    916  1.77  wrstuden 		return;
    917  1.77  wrstuden 	}
    918  1.60   thorpej 
    919  1.60   thorpej 	bucketcount = newncolors * VM_NFREELIST;
    920  1.60   thorpej 	bucketarray = malloc(bucketcount * sizeof(struct pgflbucket),
    921  1.60   thorpej 	    M_VMPAGE, M_NOWAIT);
    922  1.60   thorpej 	if (bucketarray == NULL) {
    923  1.60   thorpej 		printf("WARNING: unable to allocate %ld page color buckets\n",
    924  1.60   thorpej 		    (long) bucketcount);
    925  1.60   thorpej 		return;
    926  1.60   thorpej 	}
    927  1.60   thorpej 
    928  1.60   thorpej 	s = uvm_lock_fpageq();
    929  1.60   thorpej 
    930  1.60   thorpej 	/* Make sure we should still do this. */
    931  1.60   thorpej 	if (newncolors <= uvmexp.ncolors) {
    932  1.60   thorpej 		uvm_unlock_fpageq(s);
    933  1.60   thorpej 		free(bucketarray, M_VMPAGE);
    934  1.60   thorpej 		return;
    935  1.60   thorpej 	}
    936  1.60   thorpej 
    937  1.60   thorpej 	oldbucketarray = uvm.page_free[0].pgfl_buckets;
    938  1.60   thorpej 	ocolors = uvmexp.ncolors;
    939  1.60   thorpej 
    940  1.60   thorpej 	uvmexp.ncolors = newncolors;
    941  1.60   thorpej 	uvmexp.colormask = uvmexp.ncolors - 1;
    942  1.60   thorpej 
    943  1.60   thorpej 	for (lcv = 0; lcv < VM_NFREELIST; lcv++) {
    944  1.60   thorpej 		pgfl.pgfl_buckets = (bucketarray + (lcv * newncolors));
    945  1.60   thorpej 		uvm_page_init_buckets(&pgfl);
    946  1.60   thorpej 		for (color = 0; color < ocolors; color++) {
    947  1.60   thorpej 			for (i = 0; i < PGFL_NQUEUES; i++) {
    948  1.60   thorpej 				while ((pg = TAILQ_FIRST(&uvm.page_free[
    949  1.60   thorpej 				    lcv].pgfl_buckets[color].pgfl_queues[i]))
    950  1.60   thorpej 				    != NULL) {
    951  1.60   thorpej 					TAILQ_REMOVE(&uvm.page_free[
    952  1.60   thorpej 					    lcv].pgfl_buckets[
    953  1.60   thorpej 					    color].pgfl_queues[i], pg, pageq);
    954  1.60   thorpej 					TAILQ_INSERT_TAIL(&pgfl.pgfl_buckets[
    955  1.60   thorpej 					    VM_PGCOLOR_BUCKET(pg)].pgfl_queues[
    956  1.60   thorpej 					    i], pg, pageq);
    957  1.60   thorpej 				}
    958  1.60   thorpej 			}
    959  1.60   thorpej 		}
    960  1.60   thorpej 		uvm.page_free[lcv].pgfl_buckets = pgfl.pgfl_buckets;
    961  1.60   thorpej 	}
    962  1.60   thorpej 
    963  1.60   thorpej 	if (have_recolored_pages) {
    964  1.60   thorpej 		uvm_unlock_fpageq(s);
    965  1.60   thorpej 		free(oldbucketarray, M_VMPAGE);
    966  1.60   thorpej 		return;
    967  1.60   thorpej 	}
    968  1.60   thorpej 
    969  1.60   thorpej 	have_recolored_pages = TRUE;
    970  1.60   thorpej 	uvm_unlock_fpageq(s);
    971  1.60   thorpej }
    972   1.1       mrg 
    973   1.1       mrg /*
    974  1.54   thorpej  * uvm_pagealloc_pgfl: helper routine for uvm_pagealloc_strat
    975  1.54   thorpej  */
    976  1.54   thorpej 
    977  1.54   thorpej static __inline struct vm_page *
    978  1.54   thorpej uvm_pagealloc_pgfl(struct pgfreelist *pgfl, int try1, int try2,
    979  1.69    simonb     int *trycolorp)
    980  1.54   thorpej {
    981  1.54   thorpej 	struct pglist *freeq;
    982  1.54   thorpej 	struct vm_page *pg;
    983  1.58     enami 	int color, trycolor = *trycolorp;
    984  1.54   thorpej 
    985  1.58     enami 	color = trycolor;
    986  1.58     enami 	do {
    987  1.54   thorpej 		if ((pg = TAILQ_FIRST((freeq =
    988  1.54   thorpej 		    &pgfl->pgfl_buckets[color].pgfl_queues[try1]))) != NULL)
    989  1.54   thorpej 			goto gotit;
    990  1.54   thorpej 		if ((pg = TAILQ_FIRST((freeq =
    991  1.54   thorpej 		    &pgfl->pgfl_buckets[color].pgfl_queues[try2]))) != NULL)
    992  1.54   thorpej 			goto gotit;
    993  1.60   thorpej 		color = (color + 1) & uvmexp.colormask;
    994  1.58     enami 	} while (color != trycolor);
    995  1.54   thorpej 
    996  1.54   thorpej 	return (NULL);
    997  1.54   thorpej 
    998  1.54   thorpej  gotit:
    999  1.54   thorpej 	TAILQ_REMOVE(freeq, pg, pageq);
   1000  1.54   thorpej 	uvmexp.free--;
   1001  1.54   thorpej 
   1002  1.54   thorpej 	/* update zero'd page count */
   1003  1.54   thorpej 	if (pg->flags & PG_ZERO)
   1004  1.54   thorpej 		uvmexp.zeropages--;
   1005  1.54   thorpej 
   1006  1.54   thorpej 	if (color == trycolor)
   1007  1.54   thorpej 		uvmexp.colorhit++;
   1008  1.54   thorpej 	else {
   1009  1.54   thorpej 		uvmexp.colormiss++;
   1010  1.54   thorpej 		*trycolorp = color;
   1011  1.54   thorpej 	}
   1012  1.54   thorpej 
   1013  1.54   thorpej 	return (pg);
   1014  1.54   thorpej }
   1015  1.54   thorpej 
   1016  1.54   thorpej /*
   1017  1.12   thorpej  * uvm_pagealloc_strat: allocate vm_page from a particular free list.
   1018   1.1       mrg  *
   1019   1.1       mrg  * => return null if no pages free
   1020   1.1       mrg  * => wake up pagedaemon if number of free pages drops below low water mark
   1021   1.1       mrg  * => if obj != NULL, obj must be locked (to put in hash)
   1022   1.1       mrg  * => if anon != NULL, anon must be locked (to put in anon)
   1023   1.1       mrg  * => only one of obj or anon can be non-null
   1024   1.1       mrg  * => caller must activate/deactivate page if it is not wired.
   1025  1.12   thorpej  * => free_list is ignored if strat == UVM_PGA_STRAT_NORMAL.
   1026  1.34   thorpej  * => policy decision: it is more important to pull a page off of the
   1027  1.34   thorpej  *	appropriate priority free list than it is to get a zero'd or
   1028  1.34   thorpej  *	unknown contents page.  This is because we live with the
   1029  1.34   thorpej  *	consequences of a bad free list decision for the entire
   1030  1.34   thorpej  *	lifetime of the page, e.g. if the page comes from memory that
   1031  1.34   thorpej  *	is slower to access.
   1032   1.1       mrg  */
   1033   1.1       mrg 
   1034   1.7       mrg struct vm_page *
   1035  1.18       chs uvm_pagealloc_strat(obj, off, anon, flags, strat, free_list)
   1036   1.7       mrg 	struct uvm_object *obj;
   1037  1.31    kleink 	voff_t off;
   1038  1.18       chs 	int flags;
   1039   1.7       mrg 	struct vm_anon *anon;
   1040  1.12   thorpej 	int strat, free_list;
   1041   1.1       mrg {
   1042  1.54   thorpej 	int lcv, try1, try2, s, zeroit = 0, color;
   1043   1.7       mrg 	struct vm_page *pg;
   1044  1.18       chs 	boolean_t use_reserve;
   1045   1.1       mrg 
   1046  1.44       chs 	KASSERT(obj == NULL || anon == NULL);
   1047  1.44       chs 	KASSERT(off == trunc_page(off));
   1048  1.48   thorpej 	LOCK_ASSERT(obj == NULL || simple_lock_held(&obj->vmobjlock));
   1049  1.48   thorpej 	LOCK_ASSERT(anon == NULL || simple_lock_held(&anon->an_lock));
   1050  1.48   thorpej 
   1051  1.44       chs 	s = uvm_lock_fpageq();
   1052   1.1       mrg 
   1053   1.7       mrg 	/*
   1054  1.54   thorpej 	 * This implements a global round-robin page coloring
   1055  1.54   thorpej 	 * algorithm.
   1056  1.54   thorpej 	 *
   1057  1.54   thorpej 	 * XXXJRT: Should we make the `nextcolor' per-cpu?
   1058  1.54   thorpej 	 * XXXJRT: What about virtually-indexed caches?
   1059  1.54   thorpej 	 */
   1060  1.67       chs 
   1061  1.54   thorpej 	color = uvm.page_free_nextcolor;
   1062  1.54   thorpej 
   1063  1.54   thorpej 	/*
   1064   1.7       mrg 	 * check to see if we need to generate some free pages waking
   1065   1.7       mrg 	 * the pagedaemon.
   1066   1.7       mrg 	 */
   1067   1.7       mrg 
   1068  1.64   thorpej 	UVM_KICK_PDAEMON();
   1069   1.7       mrg 
   1070   1.7       mrg 	/*
   1071   1.7       mrg 	 * fail if any of these conditions is true:
   1072   1.7       mrg 	 * [1]  there really are no free pages, or
   1073   1.7       mrg 	 * [2]  only kernel "reserved" pages remain and
   1074   1.7       mrg 	 *        the page isn't being allocated to a kernel object.
   1075   1.7       mrg 	 * [3]  only pagedaemon "reserved" pages remain and
   1076   1.7       mrg 	 *        the requestor isn't the pagedaemon.
   1077   1.7       mrg 	 */
   1078   1.7       mrg 
   1079  1.18       chs 	use_reserve = (flags & UVM_PGA_USERESERVE) ||
   1080  1.22   thorpej 		(obj && UVM_OBJ_IS_KERN_OBJECT(obj));
   1081  1.18       chs 	if ((uvmexp.free <= uvmexp.reserve_kernel && !use_reserve) ||
   1082   1.7       mrg 	    (uvmexp.free <= uvmexp.reserve_pagedaemon &&
   1083  1.18       chs 	     !(use_reserve && curproc == uvm.pagedaemon_proc)))
   1084  1.12   thorpej 		goto fail;
   1085  1.12   thorpej 
   1086  1.34   thorpej #if PGFL_NQUEUES != 2
   1087  1.34   thorpej #error uvm_pagealloc_strat needs to be updated
   1088  1.34   thorpej #endif
   1089  1.34   thorpej 
   1090  1.34   thorpej 	/*
   1091  1.34   thorpej 	 * If we want a zero'd page, try the ZEROS queue first, otherwise
   1092  1.34   thorpej 	 * we try the UNKNOWN queue first.
   1093  1.34   thorpej 	 */
   1094  1.34   thorpej 	if (flags & UVM_PGA_ZERO) {
   1095  1.34   thorpej 		try1 = PGFL_ZEROS;
   1096  1.34   thorpej 		try2 = PGFL_UNKNOWN;
   1097  1.34   thorpej 	} else {
   1098  1.34   thorpej 		try1 = PGFL_UNKNOWN;
   1099  1.34   thorpej 		try2 = PGFL_ZEROS;
   1100  1.34   thorpej 	}
   1101  1.34   thorpej 
   1102  1.12   thorpej  again:
   1103  1.12   thorpej 	switch (strat) {
   1104  1.12   thorpej 	case UVM_PGA_STRAT_NORMAL:
   1105  1.12   thorpej 		/* Check all freelists in descending priority order. */
   1106  1.12   thorpej 		for (lcv = 0; lcv < VM_NFREELIST; lcv++) {
   1107  1.54   thorpej 			pg = uvm_pagealloc_pgfl(&uvm.page_free[lcv],
   1108  1.54   thorpej 			    try1, try2, &color);
   1109  1.54   thorpej 			if (pg != NULL)
   1110  1.12   thorpej 				goto gotit;
   1111  1.12   thorpej 		}
   1112  1.12   thorpej 
   1113  1.12   thorpej 		/* No pages free! */
   1114  1.12   thorpej 		goto fail;
   1115  1.12   thorpej 
   1116  1.12   thorpej 	case UVM_PGA_STRAT_ONLY:
   1117  1.12   thorpej 	case UVM_PGA_STRAT_FALLBACK:
   1118  1.12   thorpej 		/* Attempt to allocate from the specified free list. */
   1119  1.44       chs 		KASSERT(free_list >= 0 && free_list < VM_NFREELIST);
   1120  1.54   thorpej 		pg = uvm_pagealloc_pgfl(&uvm.page_free[free_list],
   1121  1.54   thorpej 		    try1, try2, &color);
   1122  1.54   thorpej 		if (pg != NULL)
   1123  1.12   thorpej 			goto gotit;
   1124  1.12   thorpej 
   1125  1.12   thorpej 		/* Fall back, if possible. */
   1126  1.12   thorpej 		if (strat == UVM_PGA_STRAT_FALLBACK) {
   1127  1.12   thorpej 			strat = UVM_PGA_STRAT_NORMAL;
   1128  1.12   thorpej 			goto again;
   1129  1.12   thorpej 		}
   1130  1.12   thorpej 
   1131  1.12   thorpej 		/* No pages free! */
   1132  1.12   thorpej 		goto fail;
   1133  1.12   thorpej 
   1134  1.12   thorpej 	default:
   1135  1.12   thorpej 		panic("uvm_pagealloc_strat: bad strat %d", strat);
   1136  1.12   thorpej 		/* NOTREACHED */
   1137   1.7       mrg 	}
   1138   1.7       mrg 
   1139  1.12   thorpej  gotit:
   1140  1.54   thorpej 	/*
   1141  1.54   thorpej 	 * We now know which color we actually allocated from; set
   1142  1.54   thorpej 	 * the next color accordingly.
   1143  1.54   thorpej 	 */
   1144  1.67       chs 
   1145  1.60   thorpej 	uvm.page_free_nextcolor = (color + 1) & uvmexp.colormask;
   1146  1.34   thorpej 
   1147  1.34   thorpej 	/*
   1148  1.34   thorpej 	 * update allocation statistics and remember if we have to
   1149  1.34   thorpej 	 * zero the page
   1150  1.34   thorpej 	 */
   1151  1.67       chs 
   1152  1.34   thorpej 	if (flags & UVM_PGA_ZERO) {
   1153  1.34   thorpej 		if (pg->flags & PG_ZERO) {
   1154  1.34   thorpej 			uvmexp.pga_zerohit++;
   1155  1.34   thorpej 			zeroit = 0;
   1156  1.34   thorpej 		} else {
   1157  1.34   thorpej 			uvmexp.pga_zeromiss++;
   1158  1.34   thorpej 			zeroit = 1;
   1159  1.34   thorpej 		}
   1160  1.34   thorpej 	}
   1161  1.67       chs 	uvm_unlock_fpageq(s);
   1162   1.7       mrg 
   1163   1.7       mrg 	pg->offset = off;
   1164   1.7       mrg 	pg->uobject = obj;
   1165   1.7       mrg 	pg->uanon = anon;
   1166   1.7       mrg 	pg->flags = PG_BUSY|PG_CLEAN|PG_FAKE;
   1167   1.7       mrg 	if (anon) {
   1168   1.7       mrg 		anon->u.an_page = pg;
   1169   1.7       mrg 		pg->pqflags = PQ_ANON;
   1170  1.45    simonb 		uvmexp.anonpages++;
   1171   1.7       mrg 	} else {
   1172  1.67       chs 		if (obj) {
   1173   1.7       mrg 			uvm_pageinsert(pg);
   1174  1.67       chs 		}
   1175   1.7       mrg 		pg->pqflags = 0;
   1176   1.7       mrg 	}
   1177   1.1       mrg #if defined(UVM_PAGE_TRKOWN)
   1178   1.7       mrg 	pg->owner_tag = NULL;
   1179   1.1       mrg #endif
   1180   1.7       mrg 	UVM_PAGE_OWN(pg, "new alloc");
   1181  1.33   thorpej 
   1182  1.33   thorpej 	if (flags & UVM_PGA_ZERO) {
   1183  1.33   thorpej 		/*
   1184  1.34   thorpej 		 * A zero'd page is not clean.  If we got a page not already
   1185  1.34   thorpej 		 * zero'd, then we have to zero it ourselves.
   1186  1.33   thorpej 		 */
   1187  1.33   thorpej 		pg->flags &= ~PG_CLEAN;
   1188  1.34   thorpej 		if (zeroit)
   1189  1.34   thorpej 			pmap_zero_page(VM_PAGE_TO_PHYS(pg));
   1190  1.33   thorpej 	}
   1191   1.1       mrg 
   1192   1.7       mrg 	return(pg);
   1193  1.12   thorpej 
   1194  1.12   thorpej  fail:
   1195  1.21   thorpej 	uvm_unlock_fpageq(s);
   1196  1.12   thorpej 	return (NULL);
   1197   1.1       mrg }
   1198   1.1       mrg 
   1199   1.1       mrg /*
   1200   1.1       mrg  * uvm_pagerealloc: reallocate a page from one object to another
   1201   1.1       mrg  *
   1202   1.1       mrg  * => both objects must be locked
   1203   1.1       mrg  */
   1204   1.1       mrg 
   1205   1.7       mrg void
   1206   1.7       mrg uvm_pagerealloc(pg, newobj, newoff)
   1207   1.7       mrg 	struct vm_page *pg;
   1208   1.7       mrg 	struct uvm_object *newobj;
   1209  1.31    kleink 	voff_t newoff;
   1210   1.1       mrg {
   1211   1.7       mrg 	/*
   1212   1.7       mrg 	 * remove it from the old object
   1213   1.7       mrg 	 */
   1214   1.7       mrg 
   1215   1.7       mrg 	if (pg->uobject) {
   1216   1.7       mrg 		uvm_pageremove(pg);
   1217   1.7       mrg 	}
   1218   1.7       mrg 
   1219   1.7       mrg 	/*
   1220   1.7       mrg 	 * put it in the new object
   1221   1.7       mrg 	 */
   1222   1.7       mrg 
   1223   1.7       mrg 	if (newobj) {
   1224   1.7       mrg 		pg->uobject = newobj;
   1225   1.7       mrg 		pg->offset = newoff;
   1226   1.7       mrg 		uvm_pageinsert(pg);
   1227   1.7       mrg 	}
   1228   1.1       mrg }
   1229   1.1       mrg 
   1230  1.91      yamt #ifdef DEBUG
   1231  1.91      yamt /*
   1232  1.91      yamt  * check if page is zero-filled
   1233  1.91      yamt  *
   1234  1.91      yamt  *  - called with free page queue lock held.
   1235  1.91      yamt  */
   1236  1.91      yamt void
   1237  1.91      yamt uvm_pagezerocheck(struct vm_page *pg)
   1238  1.91      yamt {
   1239  1.91      yamt 	int *p, *ep;
   1240  1.91      yamt 
   1241  1.91      yamt 	KASSERT(uvm_zerocheckkva != 0);
   1242  1.91      yamt 	LOCK_ASSERT(simple_lock_held(&uvm.fpageqlock));
   1243  1.91      yamt 
   1244  1.91      yamt 	/*
   1245  1.91      yamt 	 * XXX assuming pmap_kenter_pa and pmap_kremove never call
   1246  1.91      yamt 	 * uvm page allocator.
   1247  1.91      yamt 	 *
   1248  1.91      yamt 	 * it might be better to have "cpu-local temporary map" pmap interface.
   1249  1.91      yamt 	 */
   1250  1.91      yamt 	pmap_kenter_pa(uvm_zerocheckkva, VM_PAGE_TO_PHYS(pg), VM_PROT_READ);
   1251  1.91      yamt 	p = (int *)uvm_zerocheckkva;
   1252  1.91      yamt 	ep = (int *)((char *)p + PAGE_SIZE);
   1253  1.92      yamt 	pmap_update(pmap_kernel());
   1254  1.91      yamt 	while (p < ep) {
   1255  1.91      yamt 		if (*p != 0)
   1256  1.91      yamt 			panic("PG_ZERO page isn't zero-filled");
   1257  1.91      yamt 		p++;
   1258  1.91      yamt 	}
   1259  1.91      yamt 	pmap_kremove(uvm_zerocheckkva, PAGE_SIZE);
   1260  1.91      yamt }
   1261  1.91      yamt #endif /* DEBUG */
   1262  1.91      yamt 
   1263   1.1       mrg /*
   1264   1.1       mrg  * uvm_pagefree: free page
   1265   1.1       mrg  *
   1266   1.1       mrg  * => erase page's identity (i.e. remove from hash/object)
   1267   1.1       mrg  * => put page on free list
   1268   1.1       mrg  * => caller must lock owning object (either anon or uvm_object)
   1269   1.1       mrg  * => caller must lock page queues
   1270   1.1       mrg  * => assumes all valid mappings of pg are gone
   1271   1.1       mrg  */
   1272   1.1       mrg 
   1273  1.44       chs void
   1274  1.44       chs uvm_pagefree(pg)
   1275  1.44       chs 	struct vm_page *pg;
   1276   1.1       mrg {
   1277   1.7       mrg 	int s;
   1278  1.90      yamt 	struct pglist *pgfl;
   1279  1.90      yamt 	boolean_t iszero;
   1280  1.67       chs 
   1281  1.67       chs 	KASSERT((pg->flags & PG_PAGEOUT) == 0);
   1282  1.67       chs 	LOCK_ASSERT(simple_lock_held(&uvm.pageqlock) ||
   1283  1.67       chs 		    (pg->pqflags & (PQ_ACTIVE|PQ_INACTIVE)) == 0);
   1284  1.70       chs 	LOCK_ASSERT(pg->uobject == NULL ||
   1285  1.70       chs 		    simple_lock_held(&pg->uobject->vmobjlock));
   1286  1.70       chs 	LOCK_ASSERT(pg->uobject != NULL || pg->uanon == NULL ||
   1287  1.70       chs 		    simple_lock_held(&pg->uanon->an_lock));
   1288   1.1       mrg 
   1289  1.44       chs #ifdef DEBUG
   1290  1.44       chs 	if (pg->uobject == (void *)0xdeadbeef &&
   1291  1.44       chs 	    pg->uanon == (void *)0xdeadbeef) {
   1292  1.79    provos 		panic("uvm_pagefree: freeing free page %p", pg);
   1293  1.44       chs 	}
   1294  1.91      yamt #endif /* DEBUG */
   1295  1.44       chs 
   1296   1.7       mrg 	/*
   1297  1.67       chs 	 * if the page is loaned, resolve the loan instead of freeing.
   1298   1.7       mrg 	 */
   1299   1.7       mrg 
   1300  1.67       chs 	if (pg->loan_count) {
   1301  1.70       chs 		KASSERT(pg->wire_count == 0);
   1302   1.7       mrg 
   1303   1.7       mrg 		/*
   1304  1.67       chs 		 * if the page is owned by an anon then we just want to
   1305  1.70       chs 		 * drop anon ownership.  the kernel will free the page when
   1306  1.70       chs 		 * it is done with it.  if the page is owned by an object,
   1307  1.70       chs 		 * remove it from the object and mark it dirty for the benefit
   1308  1.70       chs 		 * of possible anon owners.
   1309  1.70       chs 		 *
   1310  1.70       chs 		 * regardless of previous ownership, wakeup any waiters,
   1311  1.70       chs 		 * unbusy the page, and we're done.
   1312   1.7       mrg 		 */
   1313   1.7       mrg 
   1314  1.73       chs 		if (pg->uobject != NULL) {
   1315  1.70       chs 			uvm_pageremove(pg);
   1316  1.67       chs 			pg->flags &= ~PG_CLEAN;
   1317  1.73       chs 		} else if (pg->uanon != NULL) {
   1318  1.73       chs 			if ((pg->pqflags & PQ_ANON) == 0) {
   1319  1.73       chs 				pg->loan_count--;
   1320  1.73       chs 			} else {
   1321  1.73       chs 				pg->pqflags &= ~PQ_ANON;
   1322  1.73       chs 			}
   1323  1.73       chs 			pg->uanon = NULL;
   1324  1.67       chs 		}
   1325  1.70       chs 		if (pg->flags & PG_WANTED) {
   1326  1.70       chs 			wakeup(pg);
   1327  1.70       chs 		}
   1328  1.84  perseant 		pg->flags &= ~(PG_WANTED|PG_BUSY|PG_RELEASED|PG_PAGER1);
   1329  1.70       chs #ifdef UVM_PAGE_TRKOWN
   1330  1.70       chs 		pg->owner_tag = NULL;
   1331  1.70       chs #endif
   1332  1.73       chs 		if (pg->loan_count) {
   1333  1.75     enami 			uvm_pagedequeue(pg);
   1334  1.73       chs 			return;
   1335  1.73       chs 		}
   1336  1.67       chs 	}
   1337  1.62       chs 
   1338  1.67       chs 	/*
   1339  1.67       chs 	 * remove page from its object or anon.
   1340  1.67       chs 	 */
   1341  1.44       chs 
   1342  1.73       chs 	if (pg->uobject != NULL) {
   1343  1.67       chs 		uvm_pageremove(pg);
   1344  1.73       chs 	} else if (pg->uanon != NULL) {
   1345  1.67       chs 		pg->uanon->u.an_page = NULL;
   1346  1.73       chs 		uvmexp.anonpages--;
   1347   1.7       mrg 	}
   1348   1.1       mrg 
   1349   1.7       mrg 	/*
   1350  1.70       chs 	 * now remove the page from the queues.
   1351   1.7       mrg 	 */
   1352   1.7       mrg 
   1353  1.67       chs 	uvm_pagedequeue(pg);
   1354   1.7       mrg 
   1355   1.7       mrg 	/*
   1356   1.7       mrg 	 * if the page was wired, unwire it now.
   1357   1.7       mrg 	 */
   1358  1.44       chs 
   1359  1.34   thorpej 	if (pg->wire_count) {
   1360   1.7       mrg 		pg->wire_count = 0;
   1361   1.7       mrg 		uvmexp.wired--;
   1362  1.44       chs 	}
   1363   1.7       mrg 
   1364   1.7       mrg 	/*
   1365  1.44       chs 	 * and put on free queue
   1366   1.7       mrg 	 */
   1367   1.7       mrg 
   1368  1.90      yamt 	iszero = (pg->flags & PG_ZERO);
   1369  1.90      yamt 	pgfl = &uvm.page_free[uvm_page_lookup_freelist(pg)].
   1370  1.90      yamt 	    pgfl_buckets[VM_PGCOLOR_BUCKET(pg)].
   1371  1.90      yamt 	    pgfl_queues[iszero ? PGFL_ZEROS : PGFL_UNKNOWN];
   1372  1.34   thorpej 
   1373   1.7       mrg 	pg->pqflags = PQ_FREE;
   1374   1.3       chs #ifdef DEBUG
   1375   1.7       mrg 	pg->uobject = (void *)0xdeadbeef;
   1376   1.7       mrg 	pg->offset = 0xdeadbeef;
   1377   1.7       mrg 	pg->uanon = (void *)0xdeadbeef;
   1378   1.3       chs #endif
   1379  1.90      yamt 
   1380  1.90      yamt 	s = uvm_lock_fpageq();
   1381  1.91      yamt 
   1382  1.91      yamt #ifdef DEBUG
   1383  1.91      yamt 	if (iszero)
   1384  1.91      yamt 		uvm_pagezerocheck(pg);
   1385  1.91      yamt #endif /* DEBUG */
   1386  1.91      yamt 
   1387  1.90      yamt 	TAILQ_INSERT_TAIL(pgfl, pg, pageq);
   1388   1.7       mrg 	uvmexp.free++;
   1389  1.90      yamt 	if (iszero)
   1390  1.90      yamt 		uvmexp.zeropages++;
   1391  1.34   thorpej 
   1392  1.34   thorpej 	if (uvmexp.zeropages < UVM_PAGEZERO_TARGET)
   1393  1.34   thorpej 		uvm.page_idle_zero = vm_page_zero_enable;
   1394  1.34   thorpej 
   1395  1.21   thorpej 	uvm_unlock_fpageq(s);
   1396  1.44       chs }
   1397  1.44       chs 
   1398  1.44       chs /*
   1399  1.44       chs  * uvm_page_unbusy: unbusy an array of pages.
   1400  1.44       chs  *
   1401  1.44       chs  * => pages must either all belong to the same object, or all belong to anons.
   1402  1.44       chs  * => if pages are object-owned, object must be locked.
   1403  1.67       chs  * => if pages are anon-owned, anons must be locked.
   1404  1.76     enami  * => caller must lock page queues if pages may be released.
   1405  1.44       chs  */
   1406  1.44       chs 
   1407  1.44       chs void
   1408  1.44       chs uvm_page_unbusy(pgs, npgs)
   1409  1.44       chs 	struct vm_page **pgs;
   1410  1.44       chs 	int npgs;
   1411  1.44       chs {
   1412  1.44       chs 	struct vm_page *pg;
   1413  1.44       chs 	int i;
   1414  1.44       chs 	UVMHIST_FUNC("uvm_page_unbusy"); UVMHIST_CALLED(ubchist);
   1415  1.44       chs 
   1416  1.44       chs 	for (i = 0; i < npgs; i++) {
   1417  1.44       chs 		pg = pgs[i];
   1418  1.82     enami 		if (pg == NULL || pg == PGO_DONTCARE) {
   1419  1.44       chs 			continue;
   1420  1.44       chs 		}
   1421  1.44       chs 		if (pg->flags & PG_WANTED) {
   1422  1.44       chs 			wakeup(pg);
   1423  1.44       chs 		}
   1424  1.44       chs 		if (pg->flags & PG_RELEASED) {
   1425  1.44       chs 			UVMHIST_LOG(ubchist, "releasing pg %p", pg,0,0,0);
   1426  1.67       chs 			pg->flags &= ~PG_RELEASED;
   1427  1.67       chs 			uvm_pagefree(pg);
   1428  1.44       chs 		} else {
   1429  1.44       chs 			UVMHIST_LOG(ubchist, "unbusying pg %p", pg,0,0,0);
   1430  1.44       chs 			pg->flags &= ~(PG_WANTED|PG_BUSY);
   1431  1.44       chs 			UVM_PAGE_OWN(pg, NULL);
   1432  1.44       chs 		}
   1433  1.44       chs 	}
   1434   1.1       mrg }
   1435   1.1       mrg 
   1436   1.1       mrg #if defined(UVM_PAGE_TRKOWN)
   1437   1.1       mrg /*
   1438   1.1       mrg  * uvm_page_own: set or release page ownership
   1439   1.1       mrg  *
   1440   1.1       mrg  * => this is a debugging function that keeps track of who sets PG_BUSY
   1441   1.1       mrg  *	and where they do it.   it can be used to track down problems
   1442   1.1       mrg  *	such a process setting "PG_BUSY" and never releasing it.
   1443   1.1       mrg  * => page's object [if any] must be locked
   1444   1.1       mrg  * => if "tag" is NULL then we are releasing page ownership
   1445   1.1       mrg  */
   1446   1.7       mrg void
   1447   1.7       mrg uvm_page_own(pg, tag)
   1448   1.7       mrg 	struct vm_page *pg;
   1449   1.7       mrg 	char *tag;
   1450   1.1       mrg {
   1451  1.67       chs 	KASSERT((pg->flags & (PG_PAGEOUT|PG_RELEASED)) == 0);
   1452  1.67       chs 
   1453   1.7       mrg 	/* gain ownership? */
   1454   1.7       mrg 	if (tag) {
   1455   1.7       mrg 		if (pg->owner_tag) {
   1456   1.7       mrg 			printf("uvm_page_own: page %p already owned "
   1457   1.7       mrg 			    "by proc %d [%s]\n", pg,
   1458  1.74     enami 			    pg->owner, pg->owner_tag);
   1459   1.7       mrg 			panic("uvm_page_own");
   1460   1.7       mrg 		}
   1461   1.7       mrg 		pg->owner = (curproc) ? curproc->p_pid :  (pid_t) -1;
   1462   1.7       mrg 		pg->owner_tag = tag;
   1463   1.7       mrg 		return;
   1464   1.7       mrg 	}
   1465   1.7       mrg 
   1466   1.7       mrg 	/* drop ownership */
   1467   1.7       mrg 	if (pg->owner_tag == NULL) {
   1468   1.7       mrg 		printf("uvm_page_own: dropping ownership of an non-owned "
   1469   1.7       mrg 		    "page (%p)\n", pg);
   1470   1.7       mrg 		panic("uvm_page_own");
   1471   1.7       mrg 	}
   1472  1.74     enami 	KASSERT((pg->pqflags & (PQ_ACTIVE|PQ_INACTIVE)) ||
   1473  1.74     enami 	    (pg->uanon == NULL && pg->uobject == NULL) ||
   1474  1.74     enami 	    pg->uobject == uvm.kernel_object ||
   1475  1.74     enami 	    pg->wire_count > 0 ||
   1476  1.74     enami 	    (pg->loan_count == 1 && pg->uanon == NULL) ||
   1477  1.74     enami 	    pg->loan_count > 1);
   1478   1.7       mrg 	pg->owner_tag = NULL;
   1479   1.1       mrg }
   1480   1.1       mrg #endif
   1481  1.34   thorpej 
   1482  1.34   thorpej /*
   1483  1.34   thorpej  * uvm_pageidlezero: zero free pages while the system is idle.
   1484  1.34   thorpej  *
   1485  1.54   thorpej  * => try to complete one color bucket at a time, to reduce our impact
   1486  1.54   thorpej  *	on the CPU cache.
   1487  1.34   thorpej  * => we loop until we either reach the target or whichqs indicates that
   1488  1.34   thorpej  *	there is a process ready to run.
   1489  1.34   thorpej  */
   1490  1.34   thorpej void
   1491  1.34   thorpej uvm_pageidlezero()
   1492  1.34   thorpej {
   1493  1.34   thorpej 	struct vm_page *pg;
   1494  1.34   thorpej 	struct pgfreelist *pgfl;
   1495  1.58     enami 	int free_list, s, firstbucket;
   1496  1.54   thorpej 	static int nextbucket;
   1497  1.54   thorpej 
   1498  1.54   thorpej 	s = uvm_lock_fpageq();
   1499  1.58     enami 	firstbucket = nextbucket;
   1500  1.58     enami 	do {
   1501  1.54   thorpej 		if (sched_whichqs != 0) {
   1502  1.34   thorpej 			uvm_unlock_fpageq(s);
   1503  1.34   thorpej 			return;
   1504  1.34   thorpej 		}
   1505  1.54   thorpej 		if (uvmexp.zeropages >= UVM_PAGEZERO_TARGET) {
   1506  1.34   thorpej 			uvm.page_idle_zero = FALSE;
   1507  1.34   thorpej 			uvm_unlock_fpageq(s);
   1508  1.34   thorpej 			return;
   1509  1.34   thorpej 		}
   1510  1.54   thorpej 		for (free_list = 0; free_list < VM_NFREELIST; free_list++) {
   1511  1.54   thorpej 			pgfl = &uvm.page_free[free_list];
   1512  1.54   thorpej 			while ((pg = TAILQ_FIRST(&pgfl->pgfl_buckets[
   1513  1.54   thorpej 			    nextbucket].pgfl_queues[PGFL_UNKNOWN])) != NULL) {
   1514  1.54   thorpej 				if (sched_whichqs != 0) {
   1515  1.54   thorpej 					uvm_unlock_fpageq(s);
   1516  1.54   thorpej 					return;
   1517  1.54   thorpej 				}
   1518  1.54   thorpej 
   1519  1.54   thorpej 				TAILQ_REMOVE(&pgfl->pgfl_buckets[
   1520  1.54   thorpej 				    nextbucket].pgfl_queues[PGFL_UNKNOWN],
   1521  1.54   thorpej 				    pg, pageq);
   1522  1.54   thorpej 				uvmexp.free--;
   1523  1.54   thorpej 				uvm_unlock_fpageq(s);
   1524  1.34   thorpej #ifdef PMAP_PAGEIDLEZERO
   1525  1.67       chs 				if (!PMAP_PAGEIDLEZERO(VM_PAGE_TO_PHYS(pg))) {
   1526  1.67       chs 
   1527  1.54   thorpej 					/*
   1528  1.54   thorpej 					 * The machine-dependent code detected
   1529  1.54   thorpej 					 * some reason for us to abort zeroing
   1530  1.54   thorpej 					 * pages, probably because there is a
   1531  1.54   thorpej 					 * process now ready to run.
   1532  1.54   thorpej 					 */
   1533  1.67       chs 
   1534  1.54   thorpej 					s = uvm_lock_fpageq();
   1535  1.54   thorpej 					TAILQ_INSERT_HEAD(&pgfl->pgfl_buckets[
   1536  1.54   thorpej 					    nextbucket].pgfl_queues[
   1537  1.54   thorpej 					    PGFL_UNKNOWN], pg, pageq);
   1538  1.54   thorpej 					uvmexp.free++;
   1539  1.54   thorpej 					uvmexp.zeroaborts++;
   1540  1.54   thorpej 					uvm_unlock_fpageq(s);
   1541  1.54   thorpej 					return;
   1542  1.54   thorpej 				}
   1543  1.54   thorpej #else
   1544  1.54   thorpej 				pmap_zero_page(VM_PAGE_TO_PHYS(pg));
   1545  1.54   thorpej #endif /* PMAP_PAGEIDLEZERO */
   1546  1.54   thorpej 				pg->flags |= PG_ZERO;
   1547  1.54   thorpej 
   1548  1.54   thorpej 				s = uvm_lock_fpageq();
   1549  1.54   thorpej 				TAILQ_INSERT_HEAD(&pgfl->pgfl_buckets[
   1550  1.54   thorpej 				    nextbucket].pgfl_queues[PGFL_ZEROS],
   1551  1.54   thorpej 				    pg, pageq);
   1552  1.54   thorpej 				uvmexp.free++;
   1553  1.54   thorpej 				uvmexp.zeropages++;
   1554  1.54   thorpej 			}
   1555  1.41   thorpej 		}
   1556  1.60   thorpej 		nextbucket = (nextbucket + 1) & uvmexp.colormask;
   1557  1.58     enami 	} while (nextbucket != firstbucket);
   1558  1.54   thorpej 	uvm_unlock_fpageq(s);
   1559  1.34   thorpej }
   1560