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subr_kmem.c revision 1.19.10.3
      1  1.19.10.3  yamt /*	$NetBSD: subr_kmem.c,v 1.19.10.3 2010/03/11 15:04:18 yamt Exp $	*/
      2  1.19.10.1  yamt 
      3  1.19.10.1  yamt /*-
      4  1.19.10.1  yamt  * Copyright (c) 2009 The NetBSD Foundation, Inc.
      5  1.19.10.1  yamt  * All rights reserved.
      6  1.19.10.1  yamt  *
      7  1.19.10.1  yamt  * This code is derived from software contributed to The NetBSD Foundation
      8  1.19.10.1  yamt  * by Andrew Doran.
      9  1.19.10.1  yamt  *
     10  1.19.10.1  yamt  * Redistribution and use in source and binary forms, with or without
     11  1.19.10.1  yamt  * modification, are permitted provided that the following conditions
     12  1.19.10.1  yamt  * are met:
     13  1.19.10.1  yamt  * 1. Redistributions of source code must retain the above copyright
     14  1.19.10.1  yamt  *    notice, this list of conditions and the following disclaimer.
     15  1.19.10.1  yamt  * 2. Redistributions in binary form must reproduce the above copyright
     16  1.19.10.1  yamt  *    notice, this list of conditions and the following disclaimer in the
     17  1.19.10.1  yamt  *    documentation and/or other materials provided with the distribution.
     18  1.19.10.1  yamt  *
     19  1.19.10.1  yamt  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  1.19.10.1  yamt  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  1.19.10.1  yamt  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  1.19.10.1  yamt  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  1.19.10.1  yamt  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  1.19.10.1  yamt  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  1.19.10.1  yamt  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  1.19.10.1  yamt  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  1.19.10.1  yamt  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  1.19.10.1  yamt  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  1.19.10.1  yamt  * POSSIBILITY OF SUCH DAMAGE.
     30  1.19.10.1  yamt  */
     31        1.1  yamt 
     32        1.1  yamt /*-
     33        1.1  yamt  * Copyright (c)2006 YAMAMOTO Takashi,
     34        1.1  yamt  * All rights reserved.
     35        1.1  yamt  *
     36        1.1  yamt  * Redistribution and use in source and binary forms, with or without
     37        1.1  yamt  * modification, are permitted provided that the following conditions
     38        1.1  yamt  * are met:
     39        1.1  yamt  * 1. Redistributions of source code must retain the above copyright
     40        1.1  yamt  *    notice, this list of conditions and the following disclaimer.
     41        1.1  yamt  * 2. Redistributions in binary form must reproduce the above copyright
     42        1.1  yamt  *    notice, this list of conditions and the following disclaimer in the
     43        1.1  yamt  *    documentation and/or other materials provided with the distribution.
     44        1.1  yamt  *
     45        1.1  yamt  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     46        1.1  yamt  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     47        1.1  yamt  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     48        1.1  yamt  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     49        1.1  yamt  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     50        1.1  yamt  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     51        1.1  yamt  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     52        1.1  yamt  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     53        1.1  yamt  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     54        1.1  yamt  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     55        1.1  yamt  * SUCH DAMAGE.
     56        1.1  yamt  */
     57        1.1  yamt 
     58        1.1  yamt /*
     59        1.1  yamt  * allocator of kernel wired memory.
     60        1.1  yamt  *
     61        1.1  yamt  * TODO:
     62        1.1  yamt  * -	worth to have "intrsafe" version?  maybe..
     63        1.1  yamt  */
     64        1.1  yamt 
     65        1.1  yamt #include <sys/cdefs.h>
     66  1.19.10.3  yamt __KERNEL_RCSID(0, "$NetBSD: subr_kmem.c,v 1.19.10.3 2010/03/11 15:04:18 yamt Exp $");
     67        1.1  yamt 
     68        1.1  yamt #include <sys/param.h>
     69        1.6  yamt #include <sys/callback.h>
     70        1.1  yamt #include <sys/kmem.h>
     71        1.1  yamt #include <sys/vmem.h>
     72       1.13    ad #include <sys/debug.h>
     73       1.17    ad #include <sys/lockdebug.h>
     74  1.19.10.1  yamt #include <sys/cpu.h>
     75        1.1  yamt 
     76        1.6  yamt #include <uvm/uvm_extern.h>
     77        1.6  yamt #include <uvm/uvm_map.h>
     78  1.19.10.1  yamt #include <uvm/uvm_kmguard.h>
     79        1.6  yamt 
     80        1.1  yamt #include <lib/libkern/libkern.h>
     81        1.1  yamt 
     82  1.19.10.3  yamt #include <machine/stdarg.h>
     83  1.19.10.3  yamt 
     84        1.3  yamt #define	KMEM_QUANTUM_SIZE	(ALIGNBYTES + 1)
     85  1.19.10.1  yamt #define	KMEM_QCACHE_MAX		(KMEM_QUANTUM_SIZE * 32)
     86  1.19.10.1  yamt #define	KMEM_CACHE_COUNT	16
     87  1.19.10.1  yamt 
     88  1.19.10.1  yamt typedef struct kmem_cache {
     89  1.19.10.1  yamt 	pool_cache_t		kc_cache;
     90  1.19.10.1  yamt 	struct pool_allocator	kc_pa;
     91  1.19.10.1  yamt 	char			kc_name[12];
     92  1.19.10.1  yamt } kmem_cache_t;
     93        1.1  yamt 
     94        1.1  yamt static vmem_t *kmem_arena;
     95        1.6  yamt static struct callback_entry kmem_kva_reclaim_entry;
     96        1.1  yamt 
     97  1.19.10.1  yamt static kmem_cache_t kmem_cache[KMEM_CACHE_COUNT + 1];
     98  1.19.10.1  yamt static size_t kmem_cache_max;
     99  1.19.10.1  yamt static size_t kmem_cache_min;
    100  1.19.10.1  yamt static size_t kmem_cache_mask;
    101  1.19.10.1  yamt static int kmem_cache_shift;
    102  1.19.10.1  yamt 
    103        1.4  yamt #if defined(DEBUG)
    104  1.19.10.1  yamt int kmem_guard_depth;
    105  1.19.10.1  yamt size_t kmem_guard_size;
    106  1.19.10.1  yamt static struct uvm_kmguard kmem_guard;
    107       1.13    ad static void *kmem_freecheck;
    108       1.19  yamt #define	KMEM_POISON
    109       1.19  yamt #define	KMEM_REDZONE
    110  1.19.10.1  yamt #define	KMEM_SIZE
    111  1.19.10.1  yamt #define	KMEM_GUARD
    112       1.19  yamt #endif /* defined(DEBUG) */
    113       1.19  yamt 
    114       1.19  yamt #if defined(KMEM_POISON)
    115        1.4  yamt static void kmem_poison_fill(void *, size_t);
    116        1.4  yamt static void kmem_poison_check(void *, size_t);
    117       1.19  yamt #else /* defined(KMEM_POISON) */
    118        1.4  yamt #define	kmem_poison_fill(p, sz)		/* nothing */
    119        1.4  yamt #define	kmem_poison_check(p, sz)	/* nothing */
    120       1.19  yamt #endif /* defined(KMEM_POISON) */
    121       1.19  yamt 
    122       1.19  yamt #if defined(KMEM_REDZONE)
    123       1.19  yamt #define	REDZONE_SIZE	1
    124       1.19  yamt #else /* defined(KMEM_REDZONE) */
    125       1.19  yamt #define	REDZONE_SIZE	0
    126       1.19  yamt #endif /* defined(KMEM_REDZONE) */
    127        1.4  yamt 
    128  1.19.10.1  yamt #if defined(KMEM_SIZE)
    129  1.19.10.1  yamt #define	SIZE_SIZE	(max(KMEM_QUANTUM_SIZE, sizeof(size_t)))
    130  1.19.10.1  yamt static void kmem_size_set(void *, size_t);
    131  1.19.10.3  yamt static void kmem_size_check(const void *, size_t);
    132  1.19.10.1  yamt #else
    133  1.19.10.1  yamt #define	SIZE_SIZE	0
    134  1.19.10.1  yamt #define	kmem_size_set(p, sz)	/* nothing */
    135  1.19.10.1  yamt #define	kmem_size_check(p, sz)	/* nothing */
    136  1.19.10.1  yamt #endif
    137  1.19.10.1  yamt 
    138        1.1  yamt static vmem_addr_t kmem_backend_alloc(vmem_t *, vmem_size_t, vmem_size_t *,
    139        1.1  yamt     vm_flag_t);
    140        1.1  yamt static void kmem_backend_free(vmem_t *, vmem_addr_t, vmem_size_t);
    141        1.6  yamt static int kmem_kva_reclaim_callback(struct callback_entry *, void *, void *);
    142        1.1  yamt 
    143  1.19.10.3  yamt CTASSERT(KM_SLEEP == PR_WAITOK);
    144  1.19.10.3  yamt CTASSERT(KM_NOSLEEP == PR_NOWAIT);
    145  1.19.10.3  yamt 
    146        1.1  yamt static inline vm_flag_t
    147        1.1  yamt kmf_to_vmf(km_flag_t kmflags)
    148        1.1  yamt {
    149        1.1  yamt 	vm_flag_t vmflags;
    150        1.1  yamt 
    151        1.1  yamt 	KASSERT((kmflags & (KM_SLEEP|KM_NOSLEEP)) != 0);
    152        1.1  yamt 	KASSERT((~kmflags & (KM_SLEEP|KM_NOSLEEP)) != 0);
    153        1.1  yamt 
    154        1.1  yamt 	vmflags = 0;
    155        1.1  yamt 	if ((kmflags & KM_SLEEP) != 0) {
    156        1.1  yamt 		vmflags |= VM_SLEEP;
    157        1.1  yamt 	}
    158        1.1  yamt 	if ((kmflags & KM_NOSLEEP) != 0) {
    159        1.1  yamt 		vmflags |= VM_NOSLEEP;
    160        1.1  yamt 	}
    161        1.1  yamt 
    162        1.1  yamt 	return vmflags;
    163        1.1  yamt }
    164        1.1  yamt 
    165  1.19.10.1  yamt static void *
    166  1.19.10.1  yamt kmem_poolpage_alloc(struct pool *pool, int prflags)
    167  1.19.10.1  yamt {
    168  1.19.10.1  yamt 
    169  1.19.10.1  yamt 	return (void *)vmem_alloc(kmem_arena, pool->pr_alloc->pa_pagesz,
    170  1.19.10.1  yamt 	    kmf_to_vmf(prflags) | VM_INSTANTFIT);
    171  1.19.10.1  yamt 
    172  1.19.10.1  yamt }
    173  1.19.10.1  yamt 
    174  1.19.10.1  yamt static void
    175  1.19.10.1  yamt kmem_poolpage_free(struct pool *pool, void *addr)
    176  1.19.10.1  yamt {
    177  1.19.10.1  yamt 
    178  1.19.10.1  yamt 	vmem_free(kmem_arena, (vmem_addr_t)addr, pool->pr_alloc->pa_pagesz);
    179  1.19.10.1  yamt }
    180  1.19.10.1  yamt 
    181        1.1  yamt /* ---- kmem API */
    182        1.1  yamt 
    183        1.1  yamt /*
    184        1.1  yamt  * kmem_alloc: allocate wired memory.
    185        1.1  yamt  *
    186        1.1  yamt  * => must not be called from interrupt context.
    187        1.1  yamt  */
    188        1.1  yamt 
    189        1.1  yamt void *
    190        1.1  yamt kmem_alloc(size_t size, km_flag_t kmflags)
    191        1.1  yamt {
    192  1.19.10.1  yamt 	kmem_cache_t *kc;
    193  1.19.10.1  yamt 	uint8_t *p;
    194        1.1  yamt 
    195  1.19.10.1  yamt 	KASSERT(!cpu_intr_p());
    196  1.19.10.1  yamt 	KASSERT(!cpu_softintr_p());
    197  1.19.10.1  yamt 	KASSERT(size > 0);
    198  1.19.10.1  yamt 
    199  1.19.10.1  yamt #ifdef KMEM_GUARD
    200  1.19.10.1  yamt 	if (size <= kmem_guard_size) {
    201  1.19.10.1  yamt 		return uvm_kmguard_alloc(&kmem_guard, size,
    202  1.19.10.1  yamt 		    (kmflags & KM_SLEEP) != 0);
    203  1.19.10.1  yamt 	}
    204  1.19.10.1  yamt #endif
    205  1.19.10.1  yamt 
    206  1.19.10.1  yamt 	size += REDZONE_SIZE + SIZE_SIZE;
    207  1.19.10.1  yamt 	if (size >= kmem_cache_min && size <= kmem_cache_max) {
    208  1.19.10.1  yamt 		kc = &kmem_cache[(size + kmem_cache_mask) >> kmem_cache_shift];
    209  1.19.10.1  yamt 		KASSERT(size <= kc->kc_pa.pa_pagesz);
    210  1.19.10.1  yamt 		kmflags &= (KM_SLEEP | KM_NOSLEEP);
    211  1.19.10.1  yamt 		p = pool_cache_get(kc->kc_cache, kmflags);
    212  1.19.10.1  yamt 	} else {
    213  1.19.10.1  yamt 		p = (void *)vmem_alloc(kmem_arena, size,
    214  1.19.10.1  yamt 		    kmf_to_vmf(kmflags) | VM_INSTANTFIT);
    215  1.19.10.1  yamt 	}
    216  1.19.10.1  yamt 	if (__predict_true(p != NULL)) {
    217       1.18  yamt 		kmem_poison_check(p, kmem_roundup_size(size));
    218       1.13    ad 		FREECHECK_OUT(&kmem_freecheck, p);
    219  1.19.10.1  yamt 		kmem_size_set(p, size);
    220  1.19.10.1  yamt 		p = (uint8_t *)p + SIZE_SIZE;
    221       1.12  yamt 	}
    222        1.4  yamt 	return p;
    223        1.1  yamt }
    224        1.1  yamt 
    225        1.1  yamt /*
    226        1.2  yamt  * kmem_zalloc: allocate wired memory.
    227        1.2  yamt  *
    228        1.2  yamt  * => must not be called from interrupt context.
    229        1.2  yamt  */
    230        1.2  yamt 
    231        1.2  yamt void *
    232        1.2  yamt kmem_zalloc(size_t size, km_flag_t kmflags)
    233        1.2  yamt {
    234        1.2  yamt 	void *p;
    235        1.2  yamt 
    236        1.2  yamt 	p = kmem_alloc(size, kmflags);
    237        1.2  yamt 	if (p != NULL) {
    238        1.2  yamt 		memset(p, 0, size);
    239        1.2  yamt 	}
    240        1.2  yamt 	return p;
    241        1.2  yamt }
    242        1.2  yamt 
    243        1.2  yamt /*
    244        1.1  yamt  * kmem_free: free wired memory allocated by kmem_alloc.
    245        1.1  yamt  *
    246        1.1  yamt  * => must not be called from interrupt context.
    247        1.1  yamt  */
    248        1.1  yamt 
    249        1.1  yamt void
    250        1.1  yamt kmem_free(void *p, size_t size)
    251        1.1  yamt {
    252  1.19.10.1  yamt 	kmem_cache_t *kc;
    253  1.19.10.1  yamt 
    254  1.19.10.1  yamt 	KASSERT(!cpu_intr_p());
    255  1.19.10.1  yamt 	KASSERT(!cpu_softintr_p());
    256  1.19.10.2  yamt 	KASSERT(p != NULL);
    257  1.19.10.1  yamt 	KASSERT(size > 0);
    258  1.19.10.1  yamt 
    259  1.19.10.1  yamt #ifdef KMEM_GUARD
    260  1.19.10.1  yamt 	if (size <= kmem_guard_size) {
    261  1.19.10.1  yamt 		uvm_kmguard_free(&kmem_guard, size, p);
    262  1.19.10.1  yamt 		return;
    263  1.19.10.1  yamt 	}
    264  1.19.10.1  yamt #endif
    265  1.19.10.3  yamt 	size += SIZE_SIZE;
    266  1.19.10.3  yamt 	p = (uint8_t *)p - SIZE_SIZE;
    267  1.19.10.3  yamt 	kmem_size_check(p, size + REDZONE_SIZE);
    268       1.13    ad 	FREECHECK_IN(&kmem_freecheck, p);
    269       1.17    ad 	LOCKDEBUG_MEM_CHECK(p, size);
    270       1.19  yamt 	kmem_poison_check((char *)p + size,
    271       1.19  yamt 	    kmem_roundup_size(size + REDZONE_SIZE) - size);
    272        1.4  yamt 	kmem_poison_fill(p, size);
    273  1.19.10.1  yamt 	size += REDZONE_SIZE;
    274  1.19.10.1  yamt 	if (size >= kmem_cache_min && size <= kmem_cache_max) {
    275  1.19.10.1  yamt 		kc = &kmem_cache[(size + kmem_cache_mask) >> kmem_cache_shift];
    276  1.19.10.1  yamt 		KASSERT(size <= kc->kc_pa.pa_pagesz);
    277  1.19.10.1  yamt 		pool_cache_put(kc->kc_cache, p);
    278  1.19.10.1  yamt 	} else {
    279  1.19.10.1  yamt 		vmem_free(kmem_arena, (vmem_addr_t)p, size);
    280  1.19.10.1  yamt 	}
    281        1.1  yamt }
    282        1.1  yamt 
    283  1.19.10.1  yamt 
    284        1.1  yamt void
    285        1.1  yamt kmem_init(void)
    286        1.1  yamt {
    287  1.19.10.1  yamt 	kmem_cache_t *kc;
    288  1.19.10.1  yamt 	size_t sz;
    289  1.19.10.1  yamt 	int i;
    290  1.19.10.1  yamt 
    291  1.19.10.1  yamt #ifdef KMEM_GUARD
    292  1.19.10.1  yamt 	uvm_kmguard_init(&kmem_guard, &kmem_guard_depth, &kmem_guard_size,
    293  1.19.10.1  yamt 	    kernel_map);
    294  1.19.10.1  yamt #endif
    295        1.1  yamt 
    296        1.1  yamt 	kmem_arena = vmem_create("kmem", 0, 0, KMEM_QUANTUM_SIZE,
    297  1.19.10.1  yamt 	    kmem_backend_alloc, kmem_backend_free, NULL, KMEM_QCACHE_MAX,
    298  1.19.10.1  yamt 	    VM_SLEEP, IPL_NONE);
    299        1.6  yamt 	callback_register(&vm_map_to_kernel(kernel_map)->vmk_reclaim_callback,
    300        1.6  yamt 	    &kmem_kva_reclaim_entry, kmem_arena, kmem_kva_reclaim_callback);
    301  1.19.10.1  yamt 
    302  1.19.10.1  yamt 	/*
    303  1.19.10.1  yamt 	 * kmem caches start at twice the size of the largest vmem qcache
    304  1.19.10.1  yamt 	 * and end at PAGE_SIZE or earlier.  assert that KMEM_QCACHE_MAX
    305  1.19.10.1  yamt 	 * is a power of two.
    306  1.19.10.1  yamt 	 */
    307  1.19.10.1  yamt 	KASSERT(ffs(KMEM_QCACHE_MAX) != 0);
    308  1.19.10.1  yamt 	KASSERT(KMEM_QCACHE_MAX - (1 << (ffs(KMEM_QCACHE_MAX) - 1)) == 0);
    309  1.19.10.1  yamt 	kmem_cache_shift = ffs(KMEM_QCACHE_MAX);
    310  1.19.10.1  yamt 	kmem_cache_min = 1 << kmem_cache_shift;
    311  1.19.10.1  yamt 	kmem_cache_mask = kmem_cache_min - 1;
    312  1.19.10.1  yamt 	for (i = 1; i <= KMEM_CACHE_COUNT; i++) {
    313  1.19.10.1  yamt 		sz = i << kmem_cache_shift;
    314  1.19.10.1  yamt 		if (sz > PAGE_SIZE) {
    315  1.19.10.1  yamt 			break;
    316  1.19.10.1  yamt 		}
    317  1.19.10.1  yamt 		kmem_cache_max = sz;
    318  1.19.10.1  yamt 		kc = &kmem_cache[i];
    319  1.19.10.1  yamt 		kc->kc_pa.pa_pagesz = sz;
    320  1.19.10.1  yamt 		kc->kc_pa.pa_alloc = kmem_poolpage_alloc;
    321  1.19.10.1  yamt 		kc->kc_pa.pa_free = kmem_poolpage_free;
    322  1.19.10.1  yamt 		sprintf(kc->kc_name, "kmem-%zu", sz);
    323  1.19.10.1  yamt 		kc->kc_cache = pool_cache_init(sz,
    324  1.19.10.1  yamt 		    KMEM_QUANTUM_SIZE, 0, PR_NOALIGN | PR_NOTOUCH,
    325  1.19.10.1  yamt 		    kc->kc_name, &kc->kc_pa, IPL_NONE,
    326  1.19.10.1  yamt 		    NULL, NULL, NULL);
    327  1.19.10.1  yamt 		KASSERT(kc->kc_cache != NULL);
    328  1.19.10.1  yamt 	}
    329        1.1  yamt }
    330        1.1  yamt 
    331        1.1  yamt size_t
    332        1.1  yamt kmem_roundup_size(size_t size)
    333        1.1  yamt {
    334        1.1  yamt 
    335        1.1  yamt 	return vmem_roundup_size(kmem_arena, size);
    336        1.1  yamt }
    337        1.1  yamt 
    338        1.1  yamt /* ---- uvm glue */
    339        1.1  yamt 
    340        1.1  yamt static vmem_addr_t
    341       1.11  yamt kmem_backend_alloc(vmem_t *dummy, vmem_size_t size, vmem_size_t *resultsize,
    342       1.11  yamt     vm_flag_t vmflags)
    343        1.1  yamt {
    344        1.1  yamt 	uvm_flag_t uflags;
    345        1.4  yamt 	vaddr_t va;
    346        1.1  yamt 
    347        1.1  yamt 	KASSERT(dummy == NULL);
    348        1.1  yamt 	KASSERT(size != 0);
    349        1.1  yamt 	KASSERT((vmflags & (VM_SLEEP|VM_NOSLEEP)) != 0);
    350        1.1  yamt 	KASSERT((~vmflags & (VM_SLEEP|VM_NOSLEEP)) != 0);
    351        1.1  yamt 
    352        1.1  yamt 	if ((vmflags & VM_NOSLEEP) != 0) {
    353        1.1  yamt 		uflags = UVM_KMF_TRYLOCK | UVM_KMF_NOWAIT;
    354        1.1  yamt 	} else {
    355        1.1  yamt 		uflags = UVM_KMF_WAITVA;
    356        1.1  yamt 	}
    357        1.1  yamt 	*resultsize = size = round_page(size);
    358        1.4  yamt 	va = uvm_km_alloc(kernel_map, size, 0,
    359        1.1  yamt 	    uflags | UVM_KMF_WIRED | UVM_KMF_CANFAIL);
    360       1.14  yamt 	if (va != 0) {
    361       1.14  yamt 		kmem_poison_fill((void *)va, size);
    362       1.14  yamt 	}
    363        1.4  yamt 	return (vmem_addr_t)va;
    364        1.1  yamt }
    365        1.1  yamt 
    366        1.1  yamt static void
    367       1.11  yamt kmem_backend_free(vmem_t *dummy, vmem_addr_t addr, vmem_size_t size)
    368        1.1  yamt {
    369        1.1  yamt 
    370        1.1  yamt 	KASSERT(dummy == NULL);
    371        1.1  yamt 	KASSERT(addr != 0);
    372        1.1  yamt 	KASSERT(size != 0);
    373        1.1  yamt 	KASSERT(size == round_page(size));
    374        1.1  yamt 
    375        1.4  yamt 	kmem_poison_check((void *)addr, size);
    376        1.1  yamt 	uvm_km_free(kernel_map, (vaddr_t)addr, size, UVM_KMF_WIRED);
    377        1.1  yamt }
    378        1.4  yamt 
    379        1.7  yamt static int
    380       1.11  yamt kmem_kva_reclaim_callback(struct callback_entry *ce, void *obj, void *arg)
    381        1.7  yamt {
    382        1.7  yamt 	vmem_t *vm = obj;
    383        1.7  yamt 
    384        1.7  yamt 	vmem_reap(vm);
    385        1.7  yamt 	return CALLBACK_CHAIN_CONTINUE;
    386        1.7  yamt }
    387        1.7  yamt 
    388        1.4  yamt /* ---- debug */
    389        1.4  yamt 
    390       1.19  yamt #if defined(KMEM_POISON)
    391        1.4  yamt 
    392        1.4  yamt #if defined(_LP64)
    393        1.4  yamt #define	PRIME	0x9e37fffffffc0001UL
    394        1.4  yamt #else /* defined(_LP64) */
    395        1.4  yamt #define	PRIME	0x9e3779b1
    396        1.4  yamt #endif /* defined(_LP64) */
    397        1.4  yamt 
    398        1.4  yamt static inline uint8_t
    399        1.4  yamt kmem_poison_pattern(const void *p)
    400        1.4  yamt {
    401        1.4  yamt 
    402        1.4  yamt 	return (uint8_t)((((uintptr_t)p) * PRIME)
    403        1.4  yamt 	    >> ((sizeof(uintptr_t) - sizeof(uint8_t))) * CHAR_BIT);
    404        1.4  yamt }
    405        1.4  yamt 
    406        1.4  yamt static void
    407        1.4  yamt kmem_poison_fill(void *p, size_t sz)
    408        1.4  yamt {
    409        1.4  yamt 	uint8_t *cp;
    410        1.4  yamt 	const uint8_t *ep;
    411        1.4  yamt 
    412        1.4  yamt 	cp = p;
    413        1.4  yamt 	ep = cp + sz;
    414        1.4  yamt 	while (cp < ep) {
    415        1.4  yamt 		*cp = kmem_poison_pattern(cp);
    416        1.4  yamt 		cp++;
    417        1.4  yamt 	}
    418        1.4  yamt }
    419        1.4  yamt 
    420        1.4  yamt static void
    421        1.4  yamt kmem_poison_check(void *p, size_t sz)
    422        1.4  yamt {
    423        1.4  yamt 	uint8_t *cp;
    424        1.4  yamt 	const uint8_t *ep;
    425        1.4  yamt 
    426        1.4  yamt 	cp = p;
    427        1.4  yamt 	ep = cp + sz;
    428        1.4  yamt 	while (cp < ep) {
    429        1.4  yamt 		const uint8_t expected = kmem_poison_pattern(cp);
    430        1.4  yamt 
    431        1.4  yamt 		if (*cp != expected) {
    432        1.4  yamt 			panic("%s: %p: 0x%02x != 0x%02x\n",
    433        1.4  yamt 			    __func__, cp, *cp, expected);
    434        1.4  yamt 		}
    435        1.4  yamt 		cp++;
    436        1.4  yamt 	}
    437        1.4  yamt }
    438        1.4  yamt 
    439       1.19  yamt #endif /* defined(KMEM_POISON) */
    440  1.19.10.1  yamt 
    441  1.19.10.1  yamt #if defined(KMEM_SIZE)
    442  1.19.10.1  yamt static void
    443  1.19.10.1  yamt kmem_size_set(void *p, size_t sz)
    444  1.19.10.1  yamt {
    445  1.19.10.1  yamt 
    446  1.19.10.1  yamt 	memcpy(p, &sz, sizeof(sz));
    447  1.19.10.1  yamt }
    448  1.19.10.1  yamt 
    449  1.19.10.1  yamt static void
    450  1.19.10.3  yamt kmem_size_check(const void *p, size_t sz)
    451  1.19.10.1  yamt {
    452  1.19.10.1  yamt 	size_t psz;
    453  1.19.10.1  yamt 
    454  1.19.10.1  yamt 	memcpy(&psz, p, sizeof(psz));
    455  1.19.10.1  yamt 	if (psz != sz) {
    456  1.19.10.1  yamt 		panic("kmem_free(%p, %zu) != allocated size %zu",
    457  1.19.10.3  yamt 		    (const uint8_t *)p + SIZE_SIZE, sz - SIZE_SIZE, psz);
    458  1.19.10.1  yamt 	}
    459  1.19.10.1  yamt }
    460  1.19.10.1  yamt #endif	/* defined(KMEM_SIZE) */
    461  1.19.10.3  yamt 
    462  1.19.10.3  yamt /*
    463  1.19.10.3  yamt  * Used to dynamically allocate string with kmem accordingly to format.
    464  1.19.10.3  yamt  */
    465  1.19.10.3  yamt char *
    466  1.19.10.3  yamt kmem_asprintf(const char *fmt, ...)
    467  1.19.10.3  yamt {
    468  1.19.10.3  yamt 	int size, str_len;
    469  1.19.10.3  yamt 	va_list va;
    470  1.19.10.3  yamt 	char *str;
    471  1.19.10.3  yamt 	char buf[1];
    472  1.19.10.3  yamt 
    473  1.19.10.3  yamt 	va_start(va, fmt);
    474  1.19.10.3  yamt 	str_len = vsnprintf(buf, sizeof(buf), fmt, va) + 1;
    475  1.19.10.3  yamt 	va_end(va);
    476  1.19.10.3  yamt 
    477  1.19.10.3  yamt 	str = kmem_alloc(str_len, KM_SLEEP);
    478  1.19.10.3  yamt 
    479  1.19.10.3  yamt 	if ((size = vsnprintf(str, str_len, fmt, va)) == -1) {
    480  1.19.10.3  yamt 		kmem_free(str, str_len);
    481  1.19.10.3  yamt 		return NULL;
    482  1.19.10.3  yamt 	}
    483  1.19.10.3  yamt 
    484  1.19.10.3  yamt 	return str;
    485  1.19.10.3  yamt }
    486