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vm.c revision 1.130.2.3
      1  1.130.2.3       tls /*	$NetBSD: vm.c,v 1.130.2.3 2013/06/23 06:20:28 tls Exp $	*/
      2        1.1     pooka 
      3        1.1     pooka /*
      4      1.114     pooka  * Copyright (c) 2007-2011 Antti Kantee.  All Rights Reserved.
      5        1.1     pooka  *
      6       1.76     pooka  * Development of this software was supported by
      7       1.76     pooka  * The Finnish Cultural Foundation and the Research Foundation of
      8       1.76     pooka  * The Helsinki University of Technology.
      9        1.1     pooka  *
     10        1.1     pooka  * Redistribution and use in source and binary forms, with or without
     11        1.1     pooka  * modification, are permitted provided that the following conditions
     12        1.1     pooka  * are met:
     13        1.1     pooka  * 1. Redistributions of source code must retain the above copyright
     14        1.1     pooka  *    notice, this list of conditions and the following disclaimer.
     15        1.1     pooka  * 2. Redistributions in binary form must reproduce the above copyright
     16        1.1     pooka  *    notice, this list of conditions and the following disclaimer in the
     17        1.1     pooka  *    documentation and/or other materials provided with the distribution.
     18        1.1     pooka  *
     19        1.1     pooka  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS
     20        1.1     pooka  * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
     21        1.1     pooka  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
     22        1.1     pooka  * DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     23        1.1     pooka  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     24        1.1     pooka  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     25        1.1     pooka  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     26        1.1     pooka  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     27        1.1     pooka  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     28        1.1     pooka  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     29        1.1     pooka  * SUCH DAMAGE.
     30        1.1     pooka  */
     31        1.1     pooka 
     32        1.1     pooka /*
     33       1.88     pooka  * Virtual memory emulation routines.
     34        1.1     pooka  */
     35        1.1     pooka 
     36        1.1     pooka /*
     37        1.5     pooka  * XXX: we abuse pg->uanon for the virtual address of the storage
     38        1.1     pooka  * for each page.  phys_addr would fit the job description better,
     39        1.1     pooka  * except that it will create unnecessary lossage on some platforms
     40        1.1     pooka  * due to not being a pointer type.
     41        1.1     pooka  */
     42        1.1     pooka 
     43       1.48     pooka #include <sys/cdefs.h>
     44  1.130.2.3       tls __KERNEL_RCSID(0, "$NetBSD: vm.c,v 1.130.2.3 2013/06/23 06:20:28 tls Exp $");
     45       1.48     pooka 
     46        1.1     pooka #include <sys/param.h>
     47       1.40     pooka #include <sys/atomic.h>
     48       1.80     pooka #include <sys/buf.h>
     49       1.80     pooka #include <sys/kernel.h>
     50       1.67     pooka #include <sys/kmem.h>
     51      1.121      para #include <sys/vmem.h>
     52       1.69     pooka #include <sys/mman.h>
     53        1.1     pooka #include <sys/null.h>
     54        1.1     pooka #include <sys/vnode.h>
     55        1.1     pooka 
     56       1.34     pooka #include <machine/pmap.h>
     57       1.34     pooka 
     58       1.34     pooka #include <rump/rumpuser.h>
     59       1.34     pooka 
     60        1.1     pooka #include <uvm/uvm.h>
     61       1.56     pooka #include <uvm/uvm_ddb.h>
     62       1.88     pooka #include <uvm/uvm_pdpolicy.h>
     63        1.1     pooka #include <uvm/uvm_prot.h>
     64       1.58        he #include <uvm/uvm_readahead.h>
     65        1.1     pooka 
     66       1.13     pooka #include "rump_private.h"
     67       1.91     pooka #include "rump_vfs_private.h"
     68        1.1     pooka 
     69       1.25        ad kmutex_t uvm_pageqlock;
     70       1.88     pooka kmutex_t uvm_swap_data_lock;
     71       1.25        ad 
     72        1.1     pooka struct uvmexp uvmexp;
     73        1.7     pooka struct uvm uvm;
     74        1.1     pooka 
     75      1.112     pooka #ifdef __uvmexp_pagesize
     76      1.123    martin const int * const uvmexp_pagesize = &uvmexp.pagesize;
     77      1.123    martin const int * const uvmexp_pagemask = &uvmexp.pagemask;
     78      1.123    martin const int * const uvmexp_pageshift = &uvmexp.pageshift;
     79      1.112     pooka #endif
     80      1.112     pooka 
     81        1.1     pooka struct vm_map rump_vmmap;
     82        1.1     pooka 
     83      1.121      para static struct vm_map kernel_map_store;
     84      1.121      para struct vm_map *kernel_map = &kernel_map_store;
     85      1.121      para 
     86      1.130     pooka static struct vm_map module_map_store;
     87      1.130     pooka extern struct vm_map *module_map;
     88      1.130     pooka 
     89      1.121      para vmem_t *kmem_arena;
     90      1.121      para vmem_t *kmem_va_arena;
     91       1.35     pooka 
     92       1.80     pooka static unsigned int pdaemon_waiters;
     93       1.80     pooka static kmutex_t pdaemonmtx;
     94       1.80     pooka static kcondvar_t pdaemoncv, oomwait;
     95       1.80     pooka 
     96       1.91     pooka unsigned long rump_physmemlimit = RUMPMEM_UNLIMITED;
     97       1.84     pooka static unsigned long curphysmem;
     98       1.92     pooka static unsigned long dddlim;		/* 90% of memory limit used */
     99       1.92     pooka #define NEED_PAGEDAEMON() \
    100       1.92     pooka     (rump_physmemlimit != RUMPMEM_UNLIMITED && curphysmem > dddlim)
    101       1.92     pooka 
    102       1.92     pooka /*
    103       1.92     pooka  * Try to free two pages worth of pages from objects.
    104       1.92     pooka  * If this succesfully frees a full page cache page, we'll
    105      1.120      yamt  * free the released page plus PAGE_SIZE/sizeof(vm_page).
    106       1.92     pooka  */
    107       1.92     pooka #define PAGEDAEMON_OBJCHUNK (2*PAGE_SIZE / sizeof(struct vm_page))
    108       1.92     pooka 
    109       1.92     pooka /*
    110       1.92     pooka  * Keep a list of least recently used pages.  Since the only way a
    111       1.92     pooka  * rump kernel can "access" a page is via lookup, we put the page
    112       1.92     pooka  * at the back of queue every time a lookup for it is done.  If the
    113       1.92     pooka  * page is in front of this global queue and we're short of memory,
    114       1.92     pooka  * it's a candidate for pageout.
    115       1.92     pooka  */
    116       1.92     pooka static struct pglist vmpage_lruqueue;
    117       1.92     pooka static unsigned vmpage_onqueue;
    118       1.84     pooka 
    119       1.89     pooka static int
    120       1.96     rmind pg_compare_key(void *ctx, const void *n, const void *key)
    121       1.89     pooka {
    122       1.89     pooka 	voff_t a = ((const struct vm_page *)n)->offset;
    123       1.89     pooka 	voff_t b = *(const voff_t *)key;
    124       1.89     pooka 
    125       1.89     pooka 	if (a < b)
    126       1.96     rmind 		return -1;
    127       1.96     rmind 	else if (a > b)
    128       1.89     pooka 		return 1;
    129       1.89     pooka 	else
    130       1.89     pooka 		return 0;
    131       1.89     pooka }
    132       1.89     pooka 
    133       1.89     pooka static int
    134       1.96     rmind pg_compare_nodes(void *ctx, const void *n1, const void *n2)
    135       1.89     pooka {
    136       1.89     pooka 
    137       1.96     rmind 	return pg_compare_key(ctx, n1, &((const struct vm_page *)n2)->offset);
    138       1.89     pooka }
    139       1.89     pooka 
    140       1.96     rmind const rb_tree_ops_t uvm_page_tree_ops = {
    141       1.89     pooka 	.rbto_compare_nodes = pg_compare_nodes,
    142       1.89     pooka 	.rbto_compare_key = pg_compare_key,
    143       1.96     rmind 	.rbto_node_offset = offsetof(struct vm_page, rb_node),
    144       1.96     rmind 	.rbto_context = NULL
    145       1.89     pooka };
    146       1.89     pooka 
    147        1.1     pooka /*
    148        1.1     pooka  * vm pages
    149        1.1     pooka  */
    150        1.1     pooka 
    151       1.90     pooka static int
    152       1.90     pooka pgctor(void *arg, void *obj, int flags)
    153       1.90     pooka {
    154       1.90     pooka 	struct vm_page *pg = obj;
    155       1.90     pooka 
    156       1.90     pooka 	memset(pg, 0, sizeof(*pg));
    157      1.103     pooka 	pg->uanon = rump_hypermalloc(PAGE_SIZE, PAGE_SIZE,
    158      1.103     pooka 	    (flags & PR_WAITOK) == PR_WAITOK, "pgalloc");
    159      1.103     pooka 	return pg->uanon == NULL;
    160       1.90     pooka }
    161       1.90     pooka 
    162       1.90     pooka static void
    163       1.90     pooka pgdtor(void *arg, void *obj)
    164       1.90     pooka {
    165       1.90     pooka 	struct vm_page *pg = obj;
    166       1.90     pooka 
    167       1.90     pooka 	rump_hyperfree(pg->uanon, PAGE_SIZE);
    168       1.90     pooka }
    169       1.90     pooka 
    170       1.90     pooka static struct pool_cache pagecache;
    171       1.90     pooka 
    172       1.92     pooka /*
    173       1.92     pooka  * Called with the object locked.  We don't support anons.
    174       1.92     pooka  */
    175        1.1     pooka struct vm_page *
    176       1.76     pooka uvm_pagealloc_strat(struct uvm_object *uobj, voff_t off, struct vm_anon *anon,
    177       1.76     pooka 	int flags, int strat, int free_list)
    178        1.1     pooka {
    179        1.1     pooka 	struct vm_page *pg;
    180        1.1     pooka 
    181      1.115     rmind 	KASSERT(uobj && mutex_owned(uobj->vmobjlock));
    182       1.92     pooka 	KASSERT(anon == NULL);
    183       1.92     pooka 
    184      1.103     pooka 	pg = pool_cache_get(&pagecache, PR_NOWAIT);
    185      1.104     pooka 	if (__predict_false(pg == NULL)) {
    186      1.103     pooka 		return NULL;
    187      1.104     pooka 	}
    188      1.103     pooka 
    189        1.1     pooka 	pg->offset = off;
    190        1.5     pooka 	pg->uobject = uobj;
    191        1.1     pooka 
    192       1.22     pooka 	pg->flags = PG_CLEAN|PG_BUSY|PG_FAKE;
    193       1.90     pooka 	if (flags & UVM_PGA_ZERO) {
    194       1.90     pooka 		uvm_pagezero(pg);
    195       1.90     pooka 	}
    196        1.1     pooka 
    197       1.31        ad 	TAILQ_INSERT_TAIL(&uobj->memq, pg, listq.queue);
    198       1.96     rmind 	(void)rb_tree_insert_node(&uobj->rb_tree, pg);
    199       1.89     pooka 
    200       1.92     pooka 	/*
    201       1.93     pooka 	 * Don't put anons on the LRU page queue.  We can't flush them
    202       1.93     pooka 	 * (there's no concept of swap in a rump kernel), so no reason
    203       1.93     pooka 	 * to bother with them.
    204       1.92     pooka 	 */
    205       1.93     pooka 	if (!UVM_OBJ_IS_AOBJ(uobj)) {
    206       1.92     pooka 		atomic_inc_uint(&vmpage_onqueue);
    207       1.92     pooka 		mutex_enter(&uvm_pageqlock);
    208       1.92     pooka 		TAILQ_INSERT_TAIL(&vmpage_lruqueue, pg, pageq.queue);
    209       1.92     pooka 		mutex_exit(&uvm_pageqlock);
    210       1.92     pooka 	}
    211       1.92     pooka 
    212       1.59     pooka 	uobj->uo_npages++;
    213       1.21     pooka 
    214        1.1     pooka 	return pg;
    215        1.1     pooka }
    216        1.1     pooka 
    217       1.21     pooka /*
    218       1.21     pooka  * Release a page.
    219       1.21     pooka  *
    220       1.22     pooka  * Called with the vm object locked.
    221       1.21     pooka  */
    222        1.1     pooka void
    223       1.22     pooka uvm_pagefree(struct vm_page *pg)
    224        1.1     pooka {
    225        1.5     pooka 	struct uvm_object *uobj = pg->uobject;
    226        1.1     pooka 
    227       1.92     pooka 	KASSERT(mutex_owned(&uvm_pageqlock));
    228      1.115     rmind 	KASSERT(mutex_owned(uobj->vmobjlock));
    229       1.92     pooka 
    230       1.22     pooka 	if (pg->flags & PG_WANTED)
    231       1.22     pooka 		wakeup(pg);
    232       1.22     pooka 
    233       1.92     pooka 	TAILQ_REMOVE(&uobj->memq, pg, listq.queue);
    234       1.92     pooka 
    235       1.59     pooka 	uobj->uo_npages--;
    236       1.96     rmind 	rb_tree_remove_node(&uobj->rb_tree, pg);
    237       1.92     pooka 
    238       1.93     pooka 	if (!UVM_OBJ_IS_AOBJ(uobj)) {
    239       1.92     pooka 		TAILQ_REMOVE(&vmpage_lruqueue, pg, pageq.queue);
    240       1.92     pooka 		atomic_dec_uint(&vmpage_onqueue);
    241       1.92     pooka 	}
    242       1.92     pooka 
    243       1.90     pooka 	pool_cache_put(&pagecache, pg);
    244        1.1     pooka }
    245        1.1     pooka 
    246       1.15     pooka void
    247       1.61     pooka uvm_pagezero(struct vm_page *pg)
    248       1.15     pooka {
    249       1.15     pooka 
    250       1.61     pooka 	pg->flags &= ~PG_CLEAN;
    251       1.61     pooka 	memset((void *)pg->uanon, 0, PAGE_SIZE);
    252       1.15     pooka }
    253       1.15     pooka 
    254        1.1     pooka /*
    255  1.130.2.3       tls  * uvm_page_locked_p: return true if object associated with page is
    256  1.130.2.3       tls  * locked.  this is a weak check for runtime assertions only.
    257  1.130.2.3       tls  */
    258  1.130.2.3       tls 
    259  1.130.2.3       tls bool
    260  1.130.2.3       tls uvm_page_locked_p(struct vm_page *pg)
    261  1.130.2.3       tls {
    262  1.130.2.3       tls 
    263  1.130.2.3       tls 	return mutex_owned(pg->uobject->vmobjlock);
    264  1.130.2.3       tls }
    265  1.130.2.3       tls 
    266  1.130.2.3       tls /*
    267        1.1     pooka  * Misc routines
    268        1.1     pooka  */
    269        1.1     pooka 
    270       1.61     pooka static kmutex_t pagermtx;
    271       1.61     pooka 
    272        1.1     pooka void
    273       1.79     pooka uvm_init(void)
    274        1.1     pooka {
    275       1.84     pooka 	char buf[64];
    276       1.84     pooka 
    277  1.130.2.3       tls 	if (rumpuser_getparam("RUMP_MEMLIMIT", buf, sizeof(buf)) == 0) {
    278      1.105     pooka 		unsigned long tmp;
    279      1.105     pooka 		char *ep;
    280      1.105     pooka 		int mult;
    281      1.105     pooka 
    282      1.109     pooka 		tmp = strtoul(buf, &ep, 10);
    283      1.105     pooka 		if (strlen(ep) > 1)
    284      1.105     pooka 			panic("uvm_init: invalid RUMP_MEMLIMIT: %s", buf);
    285      1.105     pooka 
    286      1.105     pooka 		/* mini-dehumanize-number */
    287      1.105     pooka 		mult = 1;
    288      1.105     pooka 		switch (*ep) {
    289      1.105     pooka 		case 'k':
    290      1.105     pooka 			mult = 1024;
    291      1.105     pooka 			break;
    292      1.105     pooka 		case 'm':
    293      1.105     pooka 			mult = 1024*1024;
    294      1.105     pooka 			break;
    295      1.105     pooka 		case 'g':
    296      1.105     pooka 			mult = 1024*1024*1024;
    297      1.105     pooka 			break;
    298      1.105     pooka 		case 0:
    299      1.105     pooka 			break;
    300      1.105     pooka 		default:
    301      1.105     pooka 			panic("uvm_init: invalid RUMP_MEMLIMIT: %s", buf);
    302      1.105     pooka 		}
    303      1.105     pooka 		rump_physmemlimit = tmp * mult;
    304      1.105     pooka 
    305      1.105     pooka 		if (rump_physmemlimit / mult != tmp)
    306      1.105     pooka 			panic("uvm_init: RUMP_MEMLIMIT overflow: %s", buf);
    307       1.84     pooka 		/* it's not like we'd get far with, say, 1 byte, but ... */
    308       1.91     pooka 		if (rump_physmemlimit == 0)
    309      1.105     pooka 			panic("uvm_init: no memory");
    310      1.105     pooka 
    311       1.84     pooka #define HUMANIZE_BYTES 9
    312       1.84     pooka 		CTASSERT(sizeof(buf) >= HUMANIZE_BYTES);
    313       1.91     pooka 		format_bytes(buf, HUMANIZE_BYTES, rump_physmemlimit);
    314       1.84     pooka #undef HUMANIZE_BYTES
    315       1.92     pooka 		dddlim = 9 * (rump_physmemlimit / 10);
    316       1.84     pooka 	} else {
    317       1.84     pooka 		strlcpy(buf, "unlimited (host limit)", sizeof(buf));
    318       1.84     pooka 	}
    319       1.84     pooka 	aprint_verbose("total memory = %s\n", buf);
    320        1.1     pooka 
    321       1.92     pooka 	TAILQ_INIT(&vmpage_lruqueue);
    322       1.92     pooka 
    323       1.84     pooka 	uvmexp.free = 1024*1024; /* XXX: arbitrary & not updated */
    324       1.21     pooka 
    325      1.112     pooka #ifndef __uvmexp_pagesize
    326      1.112     pooka 	uvmexp.pagesize = PAGE_SIZE;
    327      1.112     pooka 	uvmexp.pagemask = PAGE_MASK;
    328      1.112     pooka 	uvmexp.pageshift = PAGE_SHIFT;
    329      1.112     pooka #else
    330      1.112     pooka #define FAKE_PAGE_SHIFT 12
    331      1.112     pooka 	uvmexp.pageshift = FAKE_PAGE_SHIFT;
    332      1.112     pooka 	uvmexp.pagesize = 1<<FAKE_PAGE_SHIFT;
    333      1.112     pooka 	uvmexp.pagemask = (1<<FAKE_PAGE_SHIFT)-1;
    334      1.112     pooka #undef FAKE_PAGE_SHIFT
    335      1.112     pooka #endif
    336      1.112     pooka 
    337  1.130.2.3       tls 	mutex_init(&pagermtx, MUTEX_DEFAULT, IPL_NONE);
    338  1.130.2.3       tls 	mutex_init(&uvm_pageqlock, MUTEX_DEFAULT, IPL_NONE);
    339  1.130.2.3       tls 	mutex_init(&uvm_swap_data_lock, MUTEX_DEFAULT, IPL_NONE);
    340       1.35     pooka 
    341  1.130.2.3       tls 	mutex_init(&pdaemonmtx, MUTEX_DEFAULT, IPL_NONE);
    342       1.80     pooka 	cv_init(&pdaemoncv, "pdaemon");
    343       1.80     pooka 	cv_init(&oomwait, "oomwait");
    344       1.80     pooka 
    345      1.130     pooka 	module_map = &module_map_store;
    346      1.130     pooka 
    347       1.50     pooka 	kernel_map->pmap = pmap_kernel();
    348      1.121      para 
    349      1.122     njoly 	pool_subsystem_init();
    350      1.128     pooka 
    351      1.121      para 	kmem_arena = vmem_create("kmem", 0, 1024*1024, PAGE_SIZE,
    352      1.121      para 	    NULL, NULL, NULL,
    353      1.121      para 	    0, VM_NOSLEEP | VM_BOOTSTRAP, IPL_VM);
    354      1.121      para 
    355  1.130.2.2       tls 	vmem_subsystem_init(kmem_arena);
    356      1.121      para 
    357      1.121      para 	kmem_va_arena = vmem_create("kva", 0, 0, PAGE_SIZE,
    358      1.121      para 	    vmem_alloc, vmem_free, kmem_arena,
    359      1.124      para 	    8 * PAGE_SIZE, VM_NOSLEEP | VM_BOOTSTRAP, IPL_VM);
    360       1.90     pooka 
    361       1.90     pooka 	pool_cache_bootstrap(&pagecache, sizeof(struct vm_page), 0, 0, 0,
    362       1.90     pooka 	    "page$", NULL, IPL_NONE, pgctor, pgdtor, NULL);
    363        1.1     pooka }
    364        1.1     pooka 
    365       1.83     pooka void
    366       1.83     pooka uvmspace_init(struct vmspace *vm, struct pmap *pmap, vaddr_t vmin, vaddr_t vmax)
    367       1.83     pooka {
    368       1.83     pooka 
    369       1.83     pooka 	vm->vm_map.pmap = pmap_kernel();
    370       1.83     pooka 	vm->vm_refcnt = 1;
    371       1.83     pooka }
    372        1.1     pooka 
    373        1.1     pooka void
    374        1.7     pooka uvm_pagewire(struct vm_page *pg)
    375        1.7     pooka {
    376        1.7     pooka 
    377        1.7     pooka 	/* nada */
    378        1.7     pooka }
    379        1.7     pooka 
    380        1.7     pooka void
    381        1.7     pooka uvm_pageunwire(struct vm_page *pg)
    382        1.7     pooka {
    383        1.7     pooka 
    384        1.7     pooka 	/* nada */
    385        1.7     pooka }
    386        1.7     pooka 
    387       1.83     pooka /* where's your schmonz now? */
    388       1.83     pooka #define PUNLIMIT(a)	\
    389       1.83     pooka p->p_rlimit[a].rlim_cur = p->p_rlimit[a].rlim_max = RLIM_INFINITY;
    390       1.83     pooka void
    391       1.83     pooka uvm_init_limits(struct proc *p)
    392       1.83     pooka {
    393       1.83     pooka 
    394       1.83     pooka 	PUNLIMIT(RLIMIT_STACK);
    395       1.83     pooka 	PUNLIMIT(RLIMIT_DATA);
    396       1.83     pooka 	PUNLIMIT(RLIMIT_RSS);
    397       1.83     pooka 	PUNLIMIT(RLIMIT_AS);
    398       1.83     pooka 	/* nice, cascade */
    399       1.83     pooka }
    400       1.83     pooka #undef PUNLIMIT
    401       1.83     pooka 
    402       1.69     pooka /*
    403       1.69     pooka  * This satisfies the "disgusting mmap hack" used by proplib.
    404       1.69     pooka  * We probably should grow some more assertables to make sure we're
    405      1.103     pooka  * not satisfying anything we shouldn't be satisfying.
    406       1.69     pooka  */
    407       1.49     pooka int
    408       1.49     pooka uvm_mmap(struct vm_map *map, vaddr_t *addr, vsize_t size, vm_prot_t prot,
    409       1.49     pooka 	vm_prot_t maxprot, int flags, void *handle, voff_t off, vsize_t locklim)
    410       1.49     pooka {
    411       1.69     pooka 	void *uaddr;
    412       1.69     pooka 	int error;
    413       1.49     pooka 
    414       1.69     pooka 	if (prot != (VM_PROT_READ | VM_PROT_WRITE))
    415       1.69     pooka 		panic("uvm_mmap() variant unsupported");
    416       1.69     pooka 	if (flags != (MAP_PRIVATE | MAP_ANON))
    417       1.69     pooka 		panic("uvm_mmap() variant unsupported");
    418       1.98     pooka 
    419       1.69     pooka 	/* no reason in particular, but cf. uvm_default_mapaddr() */
    420       1.69     pooka 	if (*addr != 0)
    421       1.69     pooka 		panic("uvm_mmap() variant unsupported");
    422       1.69     pooka 
    423      1.106     pooka 	if (RUMP_LOCALPROC_P(curproc)) {
    424  1.130.2.3       tls 		error = rumpuser_anonmmap(NULL, size, 0, 0, &uaddr);
    425       1.98     pooka 	} else {
    426      1.102     pooka 		error = rumpuser_sp_anonmmap(curproc->p_vmspace->vm_map.pmap,
    427      1.102     pooka 		    size, &uaddr);
    428       1.98     pooka 	}
    429  1.130.2.3       tls 	if (error)
    430       1.69     pooka 		return error;
    431       1.69     pooka 
    432       1.69     pooka 	*addr = (vaddr_t)uaddr;
    433       1.69     pooka 	return 0;
    434       1.49     pooka }
    435       1.49     pooka 
    436       1.61     pooka struct pagerinfo {
    437       1.61     pooka 	vaddr_t pgr_kva;
    438       1.61     pooka 	int pgr_npages;
    439       1.61     pooka 	struct vm_page **pgr_pgs;
    440       1.61     pooka 	bool pgr_read;
    441       1.61     pooka 
    442       1.61     pooka 	LIST_ENTRY(pagerinfo) pgr_entries;
    443       1.61     pooka };
    444       1.61     pooka static LIST_HEAD(, pagerinfo) pagerlist = LIST_HEAD_INITIALIZER(pagerlist);
    445       1.61     pooka 
    446       1.61     pooka /*
    447       1.61     pooka  * Pager "map" in routine.  Instead of mapping, we allocate memory
    448       1.61     pooka  * and copy page contents there.  Not optimal or even strictly
    449       1.61     pooka  * correct (the caller might modify the page contents after mapping
    450       1.61     pooka  * them in), but what the heck.  Assumes UVMPAGER_MAPIN_WAITOK.
    451       1.61     pooka  */
    452        1.7     pooka vaddr_t
    453       1.61     pooka uvm_pagermapin(struct vm_page **pgs, int npages, int flags)
    454        1.7     pooka {
    455       1.61     pooka 	struct pagerinfo *pgri;
    456       1.61     pooka 	vaddr_t curkva;
    457       1.61     pooka 	int i;
    458       1.61     pooka 
    459       1.61     pooka 	/* allocate structures */
    460       1.61     pooka 	pgri = kmem_alloc(sizeof(*pgri), KM_SLEEP);
    461       1.61     pooka 	pgri->pgr_kva = (vaddr_t)kmem_alloc(npages * PAGE_SIZE, KM_SLEEP);
    462       1.61     pooka 	pgri->pgr_npages = npages;
    463       1.61     pooka 	pgri->pgr_pgs = kmem_alloc(sizeof(struct vm_page *) * npages, KM_SLEEP);
    464       1.61     pooka 	pgri->pgr_read = (flags & UVMPAGER_MAPIN_READ) != 0;
    465       1.61     pooka 
    466       1.61     pooka 	/* copy contents to "mapped" memory */
    467       1.61     pooka 	for (i = 0, curkva = pgri->pgr_kva;
    468       1.61     pooka 	    i < npages;
    469       1.61     pooka 	    i++, curkva += PAGE_SIZE) {
    470       1.61     pooka 		/*
    471       1.61     pooka 		 * We need to copy the previous contents of the pages to
    472       1.61     pooka 		 * the window even if we are reading from the
    473       1.61     pooka 		 * device, since the device might not fill the contents of
    474       1.61     pooka 		 * the full mapped range and we will end up corrupting
    475       1.61     pooka 		 * data when we unmap the window.
    476       1.61     pooka 		 */
    477       1.61     pooka 		memcpy((void*)curkva, pgs[i]->uanon, PAGE_SIZE);
    478       1.61     pooka 		pgri->pgr_pgs[i] = pgs[i];
    479       1.61     pooka 	}
    480       1.61     pooka 
    481       1.61     pooka 	mutex_enter(&pagermtx);
    482       1.61     pooka 	LIST_INSERT_HEAD(&pagerlist, pgri, pgr_entries);
    483       1.61     pooka 	mutex_exit(&pagermtx);
    484        1.7     pooka 
    485       1.61     pooka 	return pgri->pgr_kva;
    486        1.7     pooka }
    487        1.7     pooka 
    488       1.61     pooka /*
    489       1.61     pooka  * map out the pager window.  return contents from VA to page storage
    490       1.61     pooka  * and free structures.
    491       1.61     pooka  *
    492       1.61     pooka  * Note: does not currently support partial frees
    493       1.61     pooka  */
    494       1.61     pooka void
    495       1.61     pooka uvm_pagermapout(vaddr_t kva, int npages)
    496        1.7     pooka {
    497       1.61     pooka 	struct pagerinfo *pgri;
    498       1.61     pooka 	vaddr_t curkva;
    499       1.61     pooka 	int i;
    500        1.7     pooka 
    501       1.61     pooka 	mutex_enter(&pagermtx);
    502       1.61     pooka 	LIST_FOREACH(pgri, &pagerlist, pgr_entries) {
    503       1.61     pooka 		if (pgri->pgr_kva == kva)
    504       1.61     pooka 			break;
    505       1.61     pooka 	}
    506       1.61     pooka 	KASSERT(pgri);
    507       1.61     pooka 	if (pgri->pgr_npages != npages)
    508       1.61     pooka 		panic("uvm_pagermapout: partial unmapping not supported");
    509       1.61     pooka 	LIST_REMOVE(pgri, pgr_entries);
    510       1.61     pooka 	mutex_exit(&pagermtx);
    511       1.61     pooka 
    512       1.61     pooka 	if (pgri->pgr_read) {
    513       1.61     pooka 		for (i = 0, curkva = pgri->pgr_kva;
    514       1.61     pooka 		    i < pgri->pgr_npages;
    515       1.61     pooka 		    i++, curkva += PAGE_SIZE) {
    516       1.61     pooka 			memcpy(pgri->pgr_pgs[i]->uanon,(void*)curkva,PAGE_SIZE);
    517       1.21     pooka 		}
    518       1.21     pooka 	}
    519       1.10     pooka 
    520       1.61     pooka 	kmem_free(pgri->pgr_pgs, npages * sizeof(struct vm_page *));
    521       1.61     pooka 	kmem_free((void*)pgri->pgr_kva, npages * PAGE_SIZE);
    522       1.61     pooka 	kmem_free(pgri, sizeof(*pgri));
    523        1.7     pooka }
    524        1.7     pooka 
    525       1.61     pooka /*
    526       1.61     pooka  * convert va in pager window to page structure.
    527       1.61     pooka  * XXX: how expensive is this (global lock, list traversal)?
    528       1.61     pooka  */
    529       1.14     pooka struct vm_page *
    530       1.14     pooka uvm_pageratop(vaddr_t va)
    531       1.14     pooka {
    532       1.61     pooka 	struct pagerinfo *pgri;
    533       1.61     pooka 	struct vm_page *pg = NULL;
    534       1.61     pooka 	int i;
    535       1.14     pooka 
    536       1.61     pooka 	mutex_enter(&pagermtx);
    537       1.61     pooka 	LIST_FOREACH(pgri, &pagerlist, pgr_entries) {
    538       1.61     pooka 		if (pgri->pgr_kva <= va
    539       1.61     pooka 		    && va < pgri->pgr_kva + pgri->pgr_npages*PAGE_SIZE)
    540       1.21     pooka 			break;
    541       1.61     pooka 	}
    542       1.61     pooka 	if (pgri) {
    543       1.61     pooka 		i = (va - pgri->pgr_kva) >> PAGE_SHIFT;
    544       1.61     pooka 		pg = pgri->pgr_pgs[i];
    545       1.61     pooka 	}
    546       1.61     pooka 	mutex_exit(&pagermtx);
    547       1.21     pooka 
    548       1.61     pooka 	return pg;
    549       1.61     pooka }
    550       1.15     pooka 
    551       1.97     pooka /*
    552       1.97     pooka  * Called with the vm object locked.
    553       1.97     pooka  *
    554       1.97     pooka  * Put vnode object pages at the end of the access queue to indicate
    555       1.97     pooka  * they have been recently accessed and should not be immediate
    556       1.97     pooka  * candidates for pageout.  Do not do this for lookups done by
    557       1.97     pooka  * the pagedaemon to mimic pmap_kentered mappings which don't track
    558       1.97     pooka  * access information.
    559       1.97     pooka  */
    560       1.61     pooka struct vm_page *
    561       1.61     pooka uvm_pagelookup(struct uvm_object *uobj, voff_t off)
    562       1.61     pooka {
    563       1.92     pooka 	struct vm_page *pg;
    564       1.97     pooka 	bool ispagedaemon = curlwp == uvm.pagedaemon_lwp;
    565       1.61     pooka 
    566       1.96     rmind 	pg = rb_tree_find_node(&uobj->rb_tree, &off);
    567       1.97     pooka 	if (pg && !UVM_OBJ_IS_AOBJ(pg->uobject) && !ispagedaemon) {
    568       1.92     pooka 		mutex_enter(&uvm_pageqlock);
    569       1.92     pooka 		TAILQ_REMOVE(&vmpage_lruqueue, pg, pageq.queue);
    570       1.92     pooka 		TAILQ_INSERT_TAIL(&vmpage_lruqueue, pg, pageq.queue);
    571       1.92     pooka 		mutex_exit(&uvm_pageqlock);
    572       1.92     pooka 	}
    573       1.92     pooka 
    574       1.92     pooka 	return pg;
    575       1.14     pooka }
    576       1.14     pooka 
    577        1.7     pooka void
    578       1.22     pooka uvm_page_unbusy(struct vm_page **pgs, int npgs)
    579       1.22     pooka {
    580       1.22     pooka 	struct vm_page *pg;
    581       1.22     pooka 	int i;
    582       1.22     pooka 
    583       1.94     pooka 	KASSERT(npgs > 0);
    584      1.115     rmind 	KASSERT(mutex_owned(pgs[0]->uobject->vmobjlock));
    585       1.94     pooka 
    586       1.22     pooka 	for (i = 0; i < npgs; i++) {
    587       1.22     pooka 		pg = pgs[i];
    588       1.22     pooka 		if (pg == NULL)
    589       1.22     pooka 			continue;
    590       1.22     pooka 
    591       1.22     pooka 		KASSERT(pg->flags & PG_BUSY);
    592       1.22     pooka 		if (pg->flags & PG_WANTED)
    593       1.22     pooka 			wakeup(pg);
    594       1.36     pooka 		if (pg->flags & PG_RELEASED)
    595       1.36     pooka 			uvm_pagefree(pg);
    596       1.36     pooka 		else
    597       1.36     pooka 			pg->flags &= ~(PG_WANTED|PG_BUSY);
    598       1.22     pooka 	}
    599       1.22     pooka }
    600       1.22     pooka 
    601       1.22     pooka void
    602        1.7     pooka uvm_estimatepageable(int *active, int *inactive)
    603        1.7     pooka {
    604        1.7     pooka 
    605       1.19     pooka 	/* XXX: guessing game */
    606       1.19     pooka 	*active = 1024;
    607       1.19     pooka 	*inactive = 1024;
    608        1.7     pooka }
    609        1.7     pooka 
    610       1.41     pooka bool
    611       1.41     pooka vm_map_starved_p(struct vm_map *map)
    612       1.41     pooka {
    613       1.41     pooka 
    614       1.80     pooka 	if (map->flags & VM_MAP_WANTVA)
    615       1.80     pooka 		return true;
    616       1.80     pooka 
    617       1.41     pooka 	return false;
    618       1.41     pooka }
    619       1.41     pooka 
    620       1.41     pooka int
    621       1.41     pooka uvm_loan(struct vm_map *map, vaddr_t start, vsize_t len, void *v, int flags)
    622       1.41     pooka {
    623       1.41     pooka 
    624       1.41     pooka 	panic("%s: unimplemented", __func__);
    625       1.41     pooka }
    626       1.41     pooka 
    627       1.41     pooka void
    628       1.41     pooka uvm_unloan(void *v, int npages, int flags)
    629       1.41     pooka {
    630       1.41     pooka 
    631       1.41     pooka 	panic("%s: unimplemented", __func__);
    632       1.41     pooka }
    633       1.41     pooka 
    634       1.43     pooka int
    635       1.43     pooka uvm_loanuobjpages(struct uvm_object *uobj, voff_t pgoff, int orignpages,
    636       1.43     pooka 	struct vm_page **opp)
    637       1.43     pooka {
    638       1.43     pooka 
    639       1.72     pooka 	return EBUSY;
    640       1.43     pooka }
    641       1.43     pooka 
    642      1.116       mrg struct vm_page *
    643      1.116       mrg uvm_loanbreak(struct vm_page *pg)
    644      1.116       mrg {
    645      1.116       mrg 
    646      1.116       mrg 	panic("%s: unimplemented", __func__);
    647      1.116       mrg }
    648      1.116       mrg 
    649      1.116       mrg void
    650      1.116       mrg ubc_purge(struct uvm_object *uobj)
    651      1.116       mrg {
    652      1.116       mrg 
    653      1.116       mrg }
    654      1.116       mrg 
    655       1.73     pooka #ifdef DEBUGPRINT
    656       1.56     pooka void
    657       1.56     pooka uvm_object_printit(struct uvm_object *uobj, bool full,
    658       1.56     pooka 	void (*pr)(const char *, ...))
    659       1.56     pooka {
    660       1.56     pooka 
    661       1.75     pooka 	pr("VM OBJECT at %p, refs %d", uobj, uobj->uo_refs);
    662       1.56     pooka }
    663       1.73     pooka #endif
    664       1.56     pooka 
    665       1.68     pooka vaddr_t
    666       1.68     pooka uvm_default_mapaddr(struct proc *p, vaddr_t base, vsize_t sz)
    667       1.68     pooka {
    668       1.68     pooka 
    669       1.68     pooka 	return 0;
    670       1.68     pooka }
    671       1.68     pooka 
    672       1.71     pooka int
    673       1.71     pooka uvm_map_protect(struct vm_map *map, vaddr_t start, vaddr_t end,
    674       1.71     pooka 	vm_prot_t prot, bool set_max)
    675       1.71     pooka {
    676       1.71     pooka 
    677       1.71     pooka 	return EOPNOTSUPP;
    678       1.71     pooka }
    679       1.71     pooka 
    680        1.9     pooka /*
    681       1.12     pooka  * UVM km
    682       1.12     pooka  */
    683       1.12     pooka 
    684       1.12     pooka vaddr_t
    685       1.12     pooka uvm_km_alloc(struct vm_map *map, vsize_t size, vsize_t align, uvm_flag_t flags)
    686       1.12     pooka {
    687       1.82     pooka 	void *rv, *desired = NULL;
    688       1.50     pooka 	int alignbit, error;
    689       1.50     pooka 
    690       1.82     pooka #ifdef __x86_64__
    691       1.82     pooka 	/*
    692       1.82     pooka 	 * On amd64, allocate all module memory from the lowest 2GB.
    693       1.82     pooka 	 * This is because NetBSD kernel modules are compiled
    694       1.82     pooka 	 * with -mcmodel=kernel and reserve only 4 bytes for
    695       1.82     pooka 	 * offsets.  If we load code compiled with -mcmodel=kernel
    696       1.82     pooka 	 * anywhere except the lowest or highest 2GB, it will not
    697       1.82     pooka 	 * work.  Since userspace does not have access to the highest
    698       1.82     pooka 	 * 2GB, use the lowest 2GB.
    699       1.82     pooka 	 *
    700       1.82     pooka 	 * Note: this assumes the rump kernel resides in
    701       1.82     pooka 	 * the lowest 2GB as well.
    702       1.82     pooka 	 *
    703       1.82     pooka 	 * Note2: yes, it's a quick hack, but since this the only
    704       1.82     pooka 	 * place where we care about the map we're allocating from,
    705       1.82     pooka 	 * just use a simple "if" instead of coming up with a fancy
    706       1.82     pooka 	 * generic solution.
    707       1.82     pooka 	 */
    708       1.82     pooka 	if (map == module_map) {
    709       1.82     pooka 		desired = (void *)(0x80000000 - size);
    710       1.82     pooka 	}
    711       1.82     pooka #endif
    712       1.82     pooka 
    713      1.130     pooka 	if (__predict_false(map == module_map)) {
    714      1.130     pooka 		alignbit = 0;
    715      1.130     pooka 		if (align) {
    716      1.130     pooka 			alignbit = ffs(align)-1;
    717      1.130     pooka 		}
    718  1.130.2.3       tls 		error = rumpuser_anonmmap(desired, size, alignbit,
    719  1.130.2.3       tls 		    flags & UVM_KMF_EXEC, &rv);
    720      1.130     pooka 	} else {
    721  1.130.2.3       tls 		error = rumpuser_malloc(size, align, &rv);
    722       1.50     pooka 	}
    723       1.50     pooka 
    724  1.130.2.3       tls 	if (error) {
    725       1.50     pooka 		if (flags & (UVM_KMF_CANFAIL | UVM_KMF_NOWAIT))
    726       1.50     pooka 			return 0;
    727       1.50     pooka 		else
    728       1.50     pooka 			panic("uvm_km_alloc failed");
    729       1.50     pooka 	}
    730       1.12     pooka 
    731       1.50     pooka 	if (flags & UVM_KMF_ZERO)
    732       1.12     pooka 		memset(rv, 0, size);
    733       1.12     pooka 
    734       1.12     pooka 	return (vaddr_t)rv;
    735       1.12     pooka }
    736       1.12     pooka 
    737       1.12     pooka void
    738       1.12     pooka uvm_km_free(struct vm_map *map, vaddr_t vaddr, vsize_t size, uvm_flag_t flags)
    739       1.12     pooka {
    740       1.12     pooka 
    741      1.130     pooka 	if (__predict_false(map == module_map))
    742      1.130     pooka 		rumpuser_unmap((void *)vaddr, size);
    743      1.130     pooka 	else
    744  1.130.2.3       tls 		rumpuser_free((void *)vaddr, size);
    745       1.12     pooka }
    746       1.12     pooka 
    747       1.12     pooka struct vm_map *
    748       1.12     pooka uvm_km_suballoc(struct vm_map *map, vaddr_t *minaddr, vaddr_t *maxaddr,
    749      1.121      para 	vsize_t size, int pageable, bool fixed, struct vm_map *submap)
    750       1.12     pooka {
    751       1.12     pooka 
    752       1.12     pooka 	return (struct vm_map *)417416;
    753       1.12     pooka }
    754       1.40     pooka 
    755      1.121      para int
    756      1.121      para uvm_km_kmem_alloc(vmem_t *vm, vmem_size_t size, vm_flag_t flags,
    757      1.121      para     vmem_addr_t *addr)
    758       1.40     pooka {
    759      1.121      para 	vaddr_t va;
    760      1.121      para 	va = (vaddr_t)rump_hypermalloc(size, PAGE_SIZE,
    761      1.121      para 	    (flags & VM_SLEEP), "kmalloc");
    762       1.40     pooka 
    763      1.121      para 	if (va) {
    764      1.121      para 		*addr = va;
    765      1.121      para 		return 0;
    766      1.121      para 	} else {
    767      1.121      para 		return ENOMEM;
    768      1.121      para 	}
    769       1.40     pooka }
    770       1.40     pooka 
    771       1.40     pooka void
    772      1.121      para uvm_km_kmem_free(vmem_t *vm, vmem_addr_t addr, vmem_size_t size)
    773       1.40     pooka {
    774       1.40     pooka 
    775      1.121      para 	rump_hyperfree((void *)addr, size);
    776       1.74     pooka }
    777       1.74     pooka 
    778       1.57     pooka /*
    779      1.102     pooka  * VM space locking routines.  We don't really have to do anything,
    780      1.102     pooka  * since the pages are always "wired" (both local and remote processes).
    781       1.57     pooka  */
    782       1.57     pooka int
    783       1.57     pooka uvm_vslock(struct vmspace *vs, void *addr, size_t len, vm_prot_t access)
    784       1.57     pooka {
    785       1.57     pooka 
    786       1.57     pooka 	return 0;
    787       1.57     pooka }
    788       1.57     pooka 
    789       1.57     pooka void
    790       1.57     pooka uvm_vsunlock(struct vmspace *vs, void *addr, size_t len)
    791       1.57     pooka {
    792       1.57     pooka 
    793       1.57     pooka }
    794       1.57     pooka 
    795      1.102     pooka /*
    796      1.102     pooka  * For the local case the buffer mappers don't need to do anything.
    797      1.102     pooka  * For the remote case we need to reserve space and copy data in or
    798      1.102     pooka  * out, depending on B_READ/B_WRITE.
    799      1.102     pooka  */
    800      1.111     pooka int
    801       1.57     pooka vmapbuf(struct buf *bp, vsize_t len)
    802       1.57     pooka {
    803      1.111     pooka 	int error = 0;
    804       1.57     pooka 
    805       1.57     pooka 	bp->b_saveaddr = bp->b_data;
    806      1.102     pooka 
    807      1.102     pooka 	/* remote case */
    808      1.106     pooka 	if (!RUMP_LOCALPROC_P(curproc)) {
    809      1.102     pooka 		bp->b_data = rump_hypermalloc(len, 0, true, "vmapbuf");
    810      1.102     pooka 		if (BUF_ISWRITE(bp)) {
    811      1.111     pooka 			error = copyin(bp->b_saveaddr, bp->b_data, len);
    812      1.111     pooka 			if (error) {
    813      1.111     pooka 				rump_hyperfree(bp->b_data, len);
    814      1.111     pooka 				bp->b_data = bp->b_saveaddr;
    815      1.111     pooka 				bp->b_saveaddr = 0;
    816      1.111     pooka 			}
    817      1.102     pooka 		}
    818      1.102     pooka 	}
    819      1.111     pooka 
    820      1.111     pooka 	return error;
    821       1.57     pooka }
    822       1.57     pooka 
    823       1.57     pooka void
    824       1.57     pooka vunmapbuf(struct buf *bp, vsize_t len)
    825       1.57     pooka {
    826       1.57     pooka 
    827      1.102     pooka 	/* remote case */
    828      1.106     pooka 	if (!RUMP_LOCALPROC_P(bp->b_proc)) {
    829      1.102     pooka 		if (BUF_ISREAD(bp)) {
    830      1.110     pooka 			bp->b_error = copyout_proc(bp->b_proc,
    831      1.102     pooka 			    bp->b_data, bp->b_saveaddr, len);
    832      1.102     pooka 		}
    833      1.102     pooka 		rump_hyperfree(bp->b_data, len);
    834      1.102     pooka 	}
    835      1.102     pooka 
    836       1.57     pooka 	bp->b_data = bp->b_saveaddr;
    837       1.57     pooka 	bp->b_saveaddr = 0;
    838       1.57     pooka }
    839       1.61     pooka 
    840       1.61     pooka void
    841       1.83     pooka uvmspace_addref(struct vmspace *vm)
    842       1.83     pooka {
    843       1.83     pooka 
    844       1.83     pooka 	/*
    845      1.103     pooka 	 * No dynamically allocated vmspaces exist.
    846       1.83     pooka 	 */
    847       1.83     pooka }
    848       1.83     pooka 
    849       1.83     pooka void
    850       1.66     pooka uvmspace_free(struct vmspace *vm)
    851       1.66     pooka {
    852       1.66     pooka 
    853       1.66     pooka 	/* nothing for now */
    854       1.66     pooka }
    855       1.66     pooka 
    856       1.61     pooka /*
    857       1.61     pooka  * page life cycle stuff.  it really doesn't exist, so just stubs.
    858       1.61     pooka  */
    859       1.61     pooka 
    860       1.61     pooka void
    861       1.61     pooka uvm_pageactivate(struct vm_page *pg)
    862       1.61     pooka {
    863       1.61     pooka 
    864       1.61     pooka 	/* nada */
    865       1.61     pooka }
    866       1.61     pooka 
    867       1.61     pooka void
    868       1.61     pooka uvm_pagedeactivate(struct vm_page *pg)
    869       1.61     pooka {
    870       1.61     pooka 
    871       1.61     pooka 	/* nada */
    872       1.61     pooka }
    873       1.61     pooka 
    874       1.61     pooka void
    875       1.61     pooka uvm_pagedequeue(struct vm_page *pg)
    876       1.61     pooka {
    877       1.61     pooka 
    878       1.61     pooka 	/* nada*/
    879       1.61     pooka }
    880       1.61     pooka 
    881       1.61     pooka void
    882       1.61     pooka uvm_pageenqueue(struct vm_page *pg)
    883       1.61     pooka {
    884       1.61     pooka 
    885       1.61     pooka 	/* nada */
    886       1.61     pooka }
    887       1.80     pooka 
    888       1.88     pooka void
    889       1.88     pooka uvmpdpol_anfree(struct vm_anon *an)
    890       1.88     pooka {
    891       1.88     pooka 
    892       1.88     pooka 	/* nada */
    893       1.88     pooka }
    894       1.88     pooka 
    895       1.80     pooka /*
    896       1.99  uebayasi  * Physical address accessors.
    897       1.99  uebayasi  */
    898       1.99  uebayasi 
    899       1.99  uebayasi struct vm_page *
    900       1.99  uebayasi uvm_phys_to_vm_page(paddr_t pa)
    901       1.99  uebayasi {
    902       1.99  uebayasi 
    903       1.99  uebayasi 	return NULL;
    904       1.99  uebayasi }
    905       1.99  uebayasi 
    906       1.99  uebayasi paddr_t
    907       1.99  uebayasi uvm_vm_page_to_phys(const struct vm_page *pg)
    908       1.99  uebayasi {
    909       1.99  uebayasi 
    910       1.99  uebayasi 	return 0;
    911       1.99  uebayasi }
    912       1.99  uebayasi 
    913       1.99  uebayasi /*
    914       1.80     pooka  * Routines related to the Page Baroness.
    915       1.80     pooka  */
    916       1.80     pooka 
    917       1.80     pooka void
    918       1.80     pooka uvm_wait(const char *msg)
    919       1.80     pooka {
    920       1.80     pooka 
    921       1.80     pooka 	if (__predict_false(curlwp == uvm.pagedaemon_lwp))
    922       1.80     pooka 		panic("pagedaemon out of memory");
    923       1.80     pooka 	if (__predict_false(rump_threads == 0))
    924       1.80     pooka 		panic("pagedaemon missing (RUMP_THREADS = 0)");
    925       1.80     pooka 
    926       1.80     pooka 	mutex_enter(&pdaemonmtx);
    927       1.80     pooka 	pdaemon_waiters++;
    928       1.80     pooka 	cv_signal(&pdaemoncv);
    929       1.80     pooka 	cv_wait(&oomwait, &pdaemonmtx);
    930       1.80     pooka 	mutex_exit(&pdaemonmtx);
    931       1.80     pooka }
    932       1.80     pooka 
    933       1.80     pooka void
    934       1.80     pooka uvm_pageout_start(int npages)
    935       1.80     pooka {
    936       1.80     pooka 
    937      1.113     pooka 	mutex_enter(&pdaemonmtx);
    938      1.113     pooka 	uvmexp.paging += npages;
    939      1.113     pooka 	mutex_exit(&pdaemonmtx);
    940       1.80     pooka }
    941       1.80     pooka 
    942       1.80     pooka void
    943       1.80     pooka uvm_pageout_done(int npages)
    944       1.80     pooka {
    945       1.80     pooka 
    946      1.113     pooka 	if (!npages)
    947      1.113     pooka 		return;
    948      1.113     pooka 
    949      1.113     pooka 	mutex_enter(&pdaemonmtx);
    950      1.113     pooka 	KASSERT(uvmexp.paging >= npages);
    951      1.113     pooka 	uvmexp.paging -= npages;
    952      1.113     pooka 
    953      1.113     pooka 	if (pdaemon_waiters) {
    954      1.113     pooka 		pdaemon_waiters = 0;
    955      1.113     pooka 		cv_broadcast(&oomwait);
    956      1.113     pooka 	}
    957      1.113     pooka 	mutex_exit(&pdaemonmtx);
    958       1.80     pooka }
    959       1.80     pooka 
    960       1.95     pooka static bool
    961      1.104     pooka processpage(struct vm_page *pg, bool *lockrunning)
    962       1.95     pooka {
    963       1.95     pooka 	struct uvm_object *uobj;
    964       1.95     pooka 
    965       1.95     pooka 	uobj = pg->uobject;
    966      1.115     rmind 	if (mutex_tryenter(uobj->vmobjlock)) {
    967       1.95     pooka 		if ((pg->flags & PG_BUSY) == 0) {
    968       1.95     pooka 			mutex_exit(&uvm_pageqlock);
    969       1.95     pooka 			uobj->pgops->pgo_put(uobj, pg->offset,
    970       1.95     pooka 			    pg->offset + PAGE_SIZE,
    971       1.95     pooka 			    PGO_CLEANIT|PGO_FREE);
    972      1.115     rmind 			KASSERT(!mutex_owned(uobj->vmobjlock));
    973       1.95     pooka 			return true;
    974       1.95     pooka 		} else {
    975      1.115     rmind 			mutex_exit(uobj->vmobjlock);
    976       1.95     pooka 		}
    977      1.104     pooka 	} else if (*lockrunning == false && ncpu > 1) {
    978      1.104     pooka 		CPU_INFO_ITERATOR cii;
    979      1.104     pooka 		struct cpu_info *ci;
    980      1.104     pooka 		struct lwp *l;
    981      1.104     pooka 
    982      1.115     rmind 		l = mutex_owner(uobj->vmobjlock);
    983      1.104     pooka 		for (CPU_INFO_FOREACH(cii, ci)) {
    984      1.104     pooka 			if (ci->ci_curlwp == l) {
    985      1.104     pooka 				*lockrunning = true;
    986      1.104     pooka 				break;
    987      1.104     pooka 			}
    988      1.104     pooka 		}
    989       1.95     pooka 	}
    990       1.95     pooka 
    991       1.95     pooka 	return false;
    992       1.95     pooka }
    993       1.95     pooka 
    994       1.80     pooka /*
    995       1.92     pooka  * The Diabolical pageDaemon Director (DDD).
    996      1.113     pooka  *
    997      1.113     pooka  * This routine can always use better heuristics.
    998       1.80     pooka  */
    999       1.80     pooka void
   1000       1.80     pooka uvm_pageout(void *arg)
   1001       1.80     pooka {
   1002       1.92     pooka 	struct vm_page *pg;
   1003       1.80     pooka 	struct pool *pp, *pp_first;
   1004       1.92     pooka 	int cleaned, skip, skipped;
   1005      1.113     pooka 	bool succ;
   1006      1.104     pooka 	bool lockrunning;
   1007       1.80     pooka 
   1008       1.80     pooka 	mutex_enter(&pdaemonmtx);
   1009       1.80     pooka 	for (;;) {
   1010      1.113     pooka 		if (!NEED_PAGEDAEMON()) {
   1011       1.92     pooka 			kernel_map->flags &= ~VM_MAP_WANTVA;
   1012       1.92     pooka 		}
   1013       1.92     pooka 
   1014      1.113     pooka 		if (pdaemon_waiters) {
   1015      1.113     pooka 			pdaemon_waiters = 0;
   1016      1.113     pooka 			cv_broadcast(&oomwait);
   1017      1.104     pooka 		}
   1018       1.92     pooka 
   1019      1.113     pooka 		cv_wait(&pdaemoncv, &pdaemonmtx);
   1020      1.113     pooka 		uvmexp.pdwoke++;
   1021      1.113     pooka 
   1022       1.92     pooka 		/* tell the world that we are hungry */
   1023       1.80     pooka 		kernel_map->flags |= VM_MAP_WANTVA;
   1024       1.80     pooka 		mutex_exit(&pdaemonmtx);
   1025       1.80     pooka 
   1026       1.92     pooka 		/*
   1027       1.92     pooka 		 * step one: reclaim the page cache.  this should give
   1028       1.92     pooka 		 * us the biggest earnings since whole pages are released
   1029       1.92     pooka 		 * into backing memory.
   1030       1.92     pooka 		 */
   1031       1.92     pooka 		pool_cache_reclaim(&pagecache);
   1032       1.92     pooka 		if (!NEED_PAGEDAEMON()) {
   1033       1.92     pooka 			mutex_enter(&pdaemonmtx);
   1034       1.92     pooka 			continue;
   1035       1.92     pooka 		}
   1036       1.92     pooka 
   1037       1.92     pooka 		/*
   1038       1.92     pooka 		 * Ok, so that didn't help.  Next, try to hunt memory
   1039       1.92     pooka 		 * by pushing out vnode pages.  The pages might contain
   1040       1.92     pooka 		 * useful cached data, but we need the memory.
   1041       1.92     pooka 		 */
   1042       1.92     pooka 		cleaned = 0;
   1043       1.92     pooka 		skip = 0;
   1044      1.104     pooka 		lockrunning = false;
   1045       1.92     pooka  again:
   1046       1.92     pooka 		mutex_enter(&uvm_pageqlock);
   1047       1.92     pooka 		while (cleaned < PAGEDAEMON_OBJCHUNK) {
   1048       1.92     pooka 			skipped = 0;
   1049       1.92     pooka 			TAILQ_FOREACH(pg, &vmpage_lruqueue, pageq.queue) {
   1050       1.92     pooka 
   1051       1.92     pooka 				/*
   1052       1.92     pooka 				 * skip over pages we _might_ have tried
   1053       1.92     pooka 				 * to handle earlier.  they might not be
   1054       1.92     pooka 				 * exactly the same ones, but I'm not too
   1055       1.92     pooka 				 * concerned.
   1056       1.92     pooka 				 */
   1057       1.92     pooka 				while (skipped++ < skip)
   1058       1.92     pooka 					continue;
   1059       1.92     pooka 
   1060      1.104     pooka 				if (processpage(pg, &lockrunning)) {
   1061       1.95     pooka 					cleaned++;
   1062       1.95     pooka 					goto again;
   1063       1.92     pooka 				}
   1064       1.92     pooka 
   1065       1.92     pooka 				skip++;
   1066       1.92     pooka 			}
   1067       1.92     pooka 			break;
   1068       1.92     pooka 		}
   1069       1.92     pooka 		mutex_exit(&uvm_pageqlock);
   1070       1.92     pooka 
   1071       1.92     pooka 		/*
   1072      1.104     pooka 		 * Ok, someone is running with an object lock held.
   1073      1.104     pooka 		 * We want to yield the host CPU to make sure the
   1074      1.104     pooka 		 * thread is not parked on the host.  Since sched_yield()
   1075      1.104     pooka 		 * doesn't appear to do anything on NetBSD, nanosleep
   1076      1.104     pooka 		 * for the smallest possible time and hope we're back in
   1077      1.104     pooka 		 * the game soon.
   1078      1.104     pooka 		 */
   1079      1.104     pooka 		if (cleaned == 0 && lockrunning) {
   1080  1.130.2.3       tls 			rumpuser_clock_sleep(RUMPUSER_CLOCK_RELWALL, 0, 1);
   1081      1.104     pooka 
   1082      1.104     pooka 			lockrunning = false;
   1083      1.104     pooka 			skip = 0;
   1084      1.104     pooka 
   1085      1.104     pooka 			/* and here we go again */
   1086      1.104     pooka 			goto again;
   1087      1.104     pooka 		}
   1088      1.104     pooka 
   1089      1.104     pooka 		/*
   1090       1.92     pooka 		 * And of course we need to reclaim the page cache
   1091       1.92     pooka 		 * again to actually release memory.
   1092       1.92     pooka 		 */
   1093       1.92     pooka 		pool_cache_reclaim(&pagecache);
   1094       1.92     pooka 		if (!NEED_PAGEDAEMON()) {
   1095       1.92     pooka 			mutex_enter(&pdaemonmtx);
   1096       1.92     pooka 			continue;
   1097       1.92     pooka 		}
   1098       1.92     pooka 
   1099       1.92     pooka 		/*
   1100       1.92     pooka 		 * And then drain the pools.  Wipe them out ... all of them.
   1101       1.92     pooka 		 */
   1102      1.127       jym 		for (pp_first = NULL;;) {
   1103  1.130.2.2       tls 			if (rump_vfs_drainbufs)
   1104  1.130.2.2       tls 				rump_vfs_drainbufs(10 /* XXX: estimate! */);
   1105       1.92     pooka 
   1106      1.127       jym 			succ = pool_drain(&pp);
   1107      1.127       jym 			if (succ || pp == pp_first)
   1108       1.80     pooka 				break;
   1109      1.127       jym 
   1110      1.127       jym 			if (pp_first == NULL)
   1111      1.127       jym 				pp_first = pp;
   1112       1.80     pooka 		}
   1113       1.92     pooka 
   1114       1.92     pooka 		/*
   1115       1.92     pooka 		 * Need to use PYEC on our bag of tricks.
   1116       1.92     pooka 		 * Unfortunately, the wife just borrowed it.
   1117       1.92     pooka 		 */
   1118       1.80     pooka 
   1119      1.113     pooka 		mutex_enter(&pdaemonmtx);
   1120      1.113     pooka 		if (!succ && cleaned == 0 && pdaemon_waiters &&
   1121      1.113     pooka 		    uvmexp.paging == 0) {
   1122       1.80     pooka 			rumpuser_dprintf("pagedaemoness: failed to reclaim "
   1123       1.80     pooka 			    "memory ... sleeping (deadlock?)\n");
   1124      1.113     pooka 			cv_timedwait(&pdaemoncv, &pdaemonmtx, hz);
   1125       1.80     pooka 		}
   1126       1.80     pooka 	}
   1127       1.80     pooka 
   1128       1.80     pooka 	panic("you can swap out any time you like, but you can never leave");
   1129       1.80     pooka }
   1130       1.80     pooka 
   1131       1.80     pooka void
   1132       1.80     pooka uvm_kick_pdaemon()
   1133       1.80     pooka {
   1134       1.80     pooka 
   1135       1.92     pooka 	/*
   1136       1.92     pooka 	 * Wake up the diabolical pagedaemon director if we are over
   1137       1.92     pooka 	 * 90% of the memory limit.  This is a complete and utter
   1138       1.92     pooka 	 * stetson-harrison decision which you are allowed to finetune.
   1139       1.92     pooka 	 * Don't bother locking.  If we have some unflushed caches,
   1140       1.92     pooka 	 * other waker-uppers will deal with the issue.
   1141       1.92     pooka 	 */
   1142       1.92     pooka 	if (NEED_PAGEDAEMON()) {
   1143       1.92     pooka 		cv_signal(&pdaemoncv);
   1144       1.92     pooka 	}
   1145       1.80     pooka }
   1146       1.80     pooka 
   1147       1.80     pooka void *
   1148       1.80     pooka rump_hypermalloc(size_t howmuch, int alignment, bool waitok, const char *wmsg)
   1149       1.80     pooka {
   1150       1.84     pooka 	unsigned long newmem;
   1151       1.80     pooka 	void *rv;
   1152  1.130.2.3       tls 	int error;
   1153       1.80     pooka 
   1154       1.92     pooka 	uvm_kick_pdaemon(); /* ouch */
   1155       1.92     pooka 
   1156       1.84     pooka 	/* first we must be within the limit */
   1157       1.84     pooka  limitagain:
   1158       1.91     pooka 	if (rump_physmemlimit != RUMPMEM_UNLIMITED) {
   1159       1.84     pooka 		newmem = atomic_add_long_nv(&curphysmem, howmuch);
   1160       1.91     pooka 		if (newmem > rump_physmemlimit) {
   1161       1.84     pooka 			newmem = atomic_add_long_nv(&curphysmem, -howmuch);
   1162      1.103     pooka 			if (!waitok) {
   1163       1.84     pooka 				return NULL;
   1164      1.103     pooka 			}
   1165       1.84     pooka 			uvm_wait(wmsg);
   1166       1.84     pooka 			goto limitagain;
   1167       1.84     pooka 		}
   1168       1.84     pooka 	}
   1169       1.84     pooka 
   1170       1.84     pooka 	/* second, we must get something from the backend */
   1171       1.80     pooka  again:
   1172  1.130.2.3       tls 	error = rumpuser_malloc(howmuch, alignment, &rv);
   1173  1.130.2.3       tls 	if (__predict_false(error && waitok)) {
   1174       1.80     pooka 		uvm_wait(wmsg);
   1175       1.80     pooka 		goto again;
   1176       1.80     pooka 	}
   1177       1.80     pooka 
   1178       1.80     pooka 	return rv;
   1179       1.80     pooka }
   1180       1.84     pooka 
   1181       1.84     pooka void
   1182       1.84     pooka rump_hyperfree(void *what, size_t size)
   1183       1.84     pooka {
   1184       1.84     pooka 
   1185       1.91     pooka 	if (rump_physmemlimit != RUMPMEM_UNLIMITED) {
   1186       1.84     pooka 		atomic_add_long(&curphysmem, -size);
   1187       1.84     pooka 	}
   1188  1.130.2.3       tls 	rumpuser_free(what, size);
   1189       1.84     pooka }
   1190