| 1 | // SPDX-License-Identifier: GPL-2.0 | 
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| 2 | /* | 
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| 3 | * Implementation of the hash table type. | 
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| 4 | * | 
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| 5 | * Author : Stephen Smalley, <stephen.smalley.work@gmail.com> | 
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| 6 | */ | 
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| 7 |  | 
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| 8 | #include <linux/kernel.h> | 
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| 9 | #include <linux/slab.h> | 
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| 10 | #include <linux/errno.h> | 
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| 11 | #include "hashtab.h" | 
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| 12 | #include "security.h" | 
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| 13 |  | 
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| 14 | static struct kmem_cache *hashtab_node_cachep __ro_after_init; | 
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| 15 |  | 
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| 16 | /* | 
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| 17 | * Here we simply round the number of elements up to the nearest power of two. | 
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| 18 | * I tried also other options like rounding down or rounding to the closest | 
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| 19 | * power of two (up or down based on which is closer), but I was unable to | 
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| 20 | * find any significant difference in lookup/insert performance that would | 
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| 21 | * justify switching to a different (less intuitive) formula. It could be that | 
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| 22 | * a different formula is actually more optimal, but any future changes here | 
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| 23 | * should be supported with performance/memory usage data. | 
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| 24 | * | 
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| 25 | * The total memory used by the htable arrays (only) with Fedora policy loaded | 
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| 26 | * is approximately 163 KB at the time of writing. | 
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| 27 | */ | 
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| 28 | static u32 hashtab_compute_size(u32 nel) | 
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| 29 | { | 
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| 30 | return nel == 0 ? 0 : roundup_pow_of_two(nel); | 
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| 31 | } | 
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| 32 |  | 
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| 33 | int hashtab_init(struct hashtab *h, u32 nel_hint) | 
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| 34 | { | 
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| 35 | u32 size = hashtab_compute_size(nel: nel_hint); | 
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| 36 |  | 
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| 37 | /* should already be zeroed, but better be safe */ | 
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| 38 | h->nel = 0; | 
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| 39 | h->size = 0; | 
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| 40 | h->htable = NULL; | 
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| 41 |  | 
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| 42 | if (size) { | 
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| 43 | h->htable = kcalloc(size, sizeof(*h->htable), | 
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| 44 | GFP_KERNEL | __GFP_NOWARN); | 
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| 45 | if (!h->htable) | 
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| 46 | return -ENOMEM; | 
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| 47 | h->size = size; | 
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| 48 | } | 
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| 49 | return 0; | 
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| 50 | } | 
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| 51 |  | 
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| 52 | int __hashtab_insert(struct hashtab *h, struct hashtab_node **dst, void *key, | 
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| 53 | void *datum) | 
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| 54 | { | 
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| 55 | struct hashtab_node *newnode; | 
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| 56 |  | 
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| 57 | newnode = kmem_cache_zalloc(hashtab_node_cachep, GFP_KERNEL); | 
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| 58 | if (!newnode) | 
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| 59 | return -ENOMEM; | 
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| 60 | newnode->key = key; | 
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| 61 | newnode->datum = datum; | 
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| 62 | newnode->next = *dst; | 
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| 63 | *dst = newnode; | 
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| 64 |  | 
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| 65 | h->nel++; | 
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| 66 | return 0; | 
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| 67 | } | 
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| 68 |  | 
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| 69 | void hashtab_destroy(struct hashtab *h) | 
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| 70 | { | 
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| 71 | u32 i; | 
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| 72 | struct hashtab_node *cur, *temp; | 
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| 73 |  | 
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| 74 | for (i = 0; i < h->size; i++) { | 
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| 75 | cur = h->htable[i]; | 
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| 76 | while (cur) { | 
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| 77 | temp = cur; | 
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| 78 | cur = cur->next; | 
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| 79 | kmem_cache_free(s: hashtab_node_cachep, objp: temp); | 
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| 80 | } | 
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| 81 | h->htable[i] = NULL; | 
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| 82 | } | 
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| 83 |  | 
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| 84 | kfree(objp: h->htable); | 
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| 85 | h->htable = NULL; | 
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| 86 | } | 
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| 87 |  | 
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| 88 | int hashtab_map(struct hashtab *h, int (*apply)(void *k, void *d, void *args), | 
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| 89 | void *args) | 
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| 90 | { | 
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| 91 | u32 i; | 
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| 92 | int ret; | 
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| 93 | struct hashtab_node *cur; | 
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| 94 |  | 
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| 95 | for (i = 0; i < h->size; i++) { | 
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| 96 | cur = h->htable[i]; | 
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| 97 | while (cur) { | 
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| 98 | ret = apply(cur->key, cur->datum, args); | 
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| 99 | if (ret) | 
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| 100 | return ret; | 
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| 101 | cur = cur->next; | 
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| 102 | } | 
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| 103 | } | 
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| 104 | return 0; | 
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| 105 | } | 
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| 106 |  | 
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| 107 | #ifdef CONFIG_SECURITY_SELINUX_DEBUG | 
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| 108 | void hashtab_stat(struct hashtab *h, struct hashtab_info *info) | 
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| 109 | { | 
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| 110 | u32 i, chain_len, slots_used, max_chain_len; | 
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| 111 | u64 chain2_len_sum; | 
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| 112 | struct hashtab_node *cur; | 
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| 113 |  | 
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| 114 | slots_used = 0; | 
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| 115 | max_chain_len = 0; | 
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| 116 | chain2_len_sum = 0; | 
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| 117 | for (i = 0; i < h->size; i++) { | 
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| 118 | cur = h->htable[i]; | 
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| 119 | if (cur) { | 
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| 120 | slots_used++; | 
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| 121 | chain_len = 0; | 
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| 122 | while (cur) { | 
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| 123 | chain_len++; | 
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| 124 | cur = cur->next; | 
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| 125 | } | 
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| 126 |  | 
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| 127 | if (chain_len > max_chain_len) | 
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| 128 | max_chain_len = chain_len; | 
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| 129 |  | 
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| 130 | chain2_len_sum += (u64)chain_len * chain_len; | 
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| 131 | } | 
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| 132 | } | 
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| 133 |  | 
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| 134 | info->slots_used = slots_used; | 
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| 135 | info->max_chain_len = max_chain_len; | 
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| 136 | info->chain2_len_sum = chain2_len_sum; | 
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| 137 | } | 
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| 138 | #endif /* CONFIG_SECURITY_SELINUX_DEBUG */ | 
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| 139 |  | 
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| 140 | int hashtab_duplicate(struct hashtab *new, const struct hashtab *orig, | 
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| 141 | int (*copy)(struct hashtab_node *new, | 
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| 142 | const struct hashtab_node *orig, void *args), | 
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| 143 | int (*destroy)(void *k, void *d, void *args), void *args) | 
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| 144 | { | 
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| 145 | const struct hashtab_node *orig_cur; | 
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| 146 | struct hashtab_node *cur, *tmp, *tail; | 
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| 147 | u32 i; | 
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| 148 | int rc; | 
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| 149 |  | 
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| 150 | memset(s: new, c: 0, n: sizeof(*new)); | 
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| 151 |  | 
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| 152 | new->htable = kcalloc(orig->size, sizeof(*new->htable), GFP_KERNEL); | 
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| 153 | if (!new->htable) | 
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| 154 | return -ENOMEM; | 
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| 155 |  | 
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| 156 | new->size = orig->size; | 
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| 157 |  | 
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| 158 | for (i = 0; i < orig->size; i++) { | 
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| 159 | tail = NULL; | 
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| 160 | for (orig_cur = orig->htable[i]; orig_cur; | 
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| 161 | orig_cur = orig_cur->next) { | 
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| 162 | tmp = kmem_cache_zalloc(hashtab_node_cachep, | 
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| 163 | GFP_KERNEL); | 
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| 164 | if (!tmp) | 
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| 165 | goto error; | 
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| 166 | rc = copy(tmp, orig_cur, args); | 
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| 167 | if (rc) { | 
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| 168 | kmem_cache_free(s: hashtab_node_cachep, objp: tmp); | 
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| 169 | goto error; | 
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| 170 | } | 
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| 171 | tmp->next = NULL; | 
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| 172 | if (!tail) | 
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| 173 | new->htable[i] = tmp; | 
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| 174 | else | 
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| 175 | tail->next = tmp; | 
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| 176 | tail = tmp; | 
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| 177 | new->nel++; | 
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| 178 | } | 
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| 179 | } | 
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| 180 |  | 
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| 181 | return 0; | 
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| 182 |  | 
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| 183 | error: | 
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| 184 | for (i = 0; i < new->size; i++) { | 
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| 185 | for (cur = new->htable[i]; cur; cur = tmp) { | 
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| 186 | tmp = cur->next; | 
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| 187 | destroy(cur->key, cur->datum, args); | 
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| 188 | kmem_cache_free(s: hashtab_node_cachep, objp: cur); | 
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| 189 | } | 
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| 190 | } | 
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| 191 | kfree(objp: new->htable); | 
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| 192 | memset(s: new, c: 0, n: sizeof(*new)); | 
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| 193 | return -ENOMEM; | 
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| 194 | } | 
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| 195 |  | 
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| 196 | void __init hashtab_cache_init(void) | 
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| 197 | { | 
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| 198 | hashtab_node_cachep = KMEM_CACHE(hashtab_node, SLAB_PANIC); | 
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| 199 | } | 
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| 200 |  | 
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