conditional.c 11 KB

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  1. /* Authors: Karl MacMillan <kmacmillan@tresys.com>
  2. * Frank Mayer <mayerf@tresys.com>
  3. *
  4. * Copyright (C) 2003 - 2004 Tresys Technology, LLC
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, version 2.
  8. */
  9. #include <linux/kernel.h>
  10. #include <linux/errno.h>
  11. #include <linux/string.h>
  12. #include <linux/spinlock.h>
  13. #include <asm/semaphore.h>
  14. #include <linux/slab.h>
  15. #include "security.h"
  16. #include "conditional.h"
  17. /*
  18. * cond_evaluate_expr evaluates a conditional expr
  19. * in reverse polish notation. It returns true (1), false (0),
  20. * or undefined (-1). Undefined occurs when the expression
  21. * exceeds the stack depth of COND_EXPR_MAXDEPTH.
  22. */
  23. static int cond_evaluate_expr(struct policydb *p, struct cond_expr *expr)
  24. {
  25. struct cond_expr *cur;
  26. int s[COND_EXPR_MAXDEPTH];
  27. int sp = -1;
  28. for (cur = expr; cur != NULL; cur = cur->next) {
  29. switch (cur->expr_type) {
  30. case COND_BOOL:
  31. if (sp == (COND_EXPR_MAXDEPTH - 1))
  32. return -1;
  33. sp++;
  34. s[sp] = p->bool_val_to_struct[cur->bool - 1]->state;
  35. break;
  36. case COND_NOT:
  37. if (sp < 0)
  38. return -1;
  39. s[sp] = !s[sp];
  40. break;
  41. case COND_OR:
  42. if (sp < 1)
  43. return -1;
  44. sp--;
  45. s[sp] |= s[sp + 1];
  46. break;
  47. case COND_AND:
  48. if (sp < 1)
  49. return -1;
  50. sp--;
  51. s[sp] &= s[sp + 1];
  52. break;
  53. case COND_XOR:
  54. if (sp < 1)
  55. return -1;
  56. sp--;
  57. s[sp] ^= s[sp + 1];
  58. break;
  59. case COND_EQ:
  60. if (sp < 1)
  61. return -1;
  62. sp--;
  63. s[sp] = (s[sp] == s[sp + 1]);
  64. break;
  65. case COND_NEQ:
  66. if (sp < 1)
  67. return -1;
  68. sp--;
  69. s[sp] = (s[sp] != s[sp + 1]);
  70. break;
  71. default:
  72. return -1;
  73. }
  74. }
  75. return s[0];
  76. }
  77. /*
  78. * evaluate_cond_node evaluates the conditional stored in
  79. * a struct cond_node and if the result is different than the
  80. * current state of the node it sets the rules in the true/false
  81. * list appropriately. If the result of the expression is undefined
  82. * all of the rules are disabled for safety.
  83. */
  84. int evaluate_cond_node(struct policydb *p, struct cond_node *node)
  85. {
  86. int new_state;
  87. struct cond_av_list* cur;
  88. new_state = cond_evaluate_expr(p, node->expr);
  89. if (new_state != node->cur_state) {
  90. node->cur_state = new_state;
  91. if (new_state == -1)
  92. printk(KERN_ERR "security: expression result was undefined - disabling all rules.\n");
  93. /* turn the rules on or off */
  94. for (cur = node->true_list; cur != NULL; cur = cur->next) {
  95. if (new_state <= 0) {
  96. cur->node->key.specified &= ~AVTAB_ENABLED;
  97. } else {
  98. cur->node->key.specified |= AVTAB_ENABLED;
  99. }
  100. }
  101. for (cur = node->false_list; cur != NULL; cur = cur->next) {
  102. /* -1 or 1 */
  103. if (new_state) {
  104. cur->node->key.specified &= ~AVTAB_ENABLED;
  105. } else {
  106. cur->node->key.specified |= AVTAB_ENABLED;
  107. }
  108. }
  109. }
  110. return 0;
  111. }
  112. int cond_policydb_init(struct policydb *p)
  113. {
  114. p->bool_val_to_struct = NULL;
  115. p->cond_list = NULL;
  116. if (avtab_init(&p->te_cond_avtab))
  117. return -1;
  118. return 0;
  119. }
  120. static void cond_av_list_destroy(struct cond_av_list *list)
  121. {
  122. struct cond_av_list *cur, *next;
  123. for (cur = list; cur != NULL; cur = next) {
  124. next = cur->next;
  125. /* the avtab_ptr_t node is destroy by the avtab */
  126. kfree(cur);
  127. }
  128. }
  129. static void cond_node_destroy(struct cond_node *node)
  130. {
  131. struct cond_expr *cur_expr, *next_expr;
  132. for (cur_expr = node->expr; cur_expr != NULL; cur_expr = next_expr) {
  133. next_expr = cur_expr->next;
  134. kfree(cur_expr);
  135. }
  136. cond_av_list_destroy(node->true_list);
  137. cond_av_list_destroy(node->false_list);
  138. kfree(node);
  139. }
  140. static void cond_list_destroy(struct cond_node *list)
  141. {
  142. struct cond_node *next, *cur;
  143. if (list == NULL)
  144. return;
  145. for (cur = list; cur != NULL; cur = next) {
  146. next = cur->next;
  147. cond_node_destroy(cur);
  148. }
  149. }
  150. void cond_policydb_destroy(struct policydb *p)
  151. {
  152. kfree(p->bool_val_to_struct);
  153. avtab_destroy(&p->te_cond_avtab);
  154. cond_list_destroy(p->cond_list);
  155. }
  156. int cond_init_bool_indexes(struct policydb *p)
  157. {
  158. kfree(p->bool_val_to_struct);
  159. p->bool_val_to_struct = (struct cond_bool_datum**)
  160. kmalloc(p->p_bools.nprim * sizeof(struct cond_bool_datum*), GFP_KERNEL);
  161. if (!p->bool_val_to_struct)
  162. return -1;
  163. return 0;
  164. }
  165. int cond_destroy_bool(void *key, void *datum, void *p)
  166. {
  167. kfree(key);
  168. kfree(datum);
  169. return 0;
  170. }
  171. int cond_index_bool(void *key, void *datum, void *datap)
  172. {
  173. struct policydb *p;
  174. struct cond_bool_datum *booldatum;
  175. booldatum = datum;
  176. p = datap;
  177. if (!booldatum->value || booldatum->value > p->p_bools.nprim)
  178. return -EINVAL;
  179. p->p_bool_val_to_name[booldatum->value - 1] = key;
  180. p->bool_val_to_struct[booldatum->value -1] = booldatum;
  181. return 0;
  182. }
  183. static int bool_isvalid(struct cond_bool_datum *b)
  184. {
  185. if (!(b->state == 0 || b->state == 1))
  186. return 0;
  187. return 1;
  188. }
  189. int cond_read_bool(struct policydb *p, struct hashtab *h, void *fp)
  190. {
  191. char *key = NULL;
  192. struct cond_bool_datum *booldatum;
  193. __le32 buf[3];
  194. u32 len;
  195. int rc;
  196. booldatum = kmalloc(sizeof(struct cond_bool_datum), GFP_KERNEL);
  197. if (!booldatum)
  198. return -1;
  199. memset(booldatum, 0, sizeof(struct cond_bool_datum));
  200. rc = next_entry(buf, fp, sizeof buf);
  201. if (rc < 0)
  202. goto err;
  203. booldatum->value = le32_to_cpu(buf[0]);
  204. booldatum->state = le32_to_cpu(buf[1]);
  205. if (!bool_isvalid(booldatum))
  206. goto err;
  207. len = le32_to_cpu(buf[2]);
  208. key = kmalloc(len + 1, GFP_KERNEL);
  209. if (!key)
  210. goto err;
  211. rc = next_entry(key, fp, len);
  212. if (rc < 0)
  213. goto err;
  214. key[len] = 0;
  215. if (hashtab_insert(h, key, booldatum))
  216. goto err;
  217. return 0;
  218. err:
  219. cond_destroy_bool(key, booldatum, NULL);
  220. return -1;
  221. }
  222. struct cond_insertf_data
  223. {
  224. struct policydb *p;
  225. struct cond_av_list *other;
  226. struct cond_av_list *head;
  227. struct cond_av_list *tail;
  228. };
  229. static int cond_insertf(struct avtab *a, struct avtab_key *k, struct avtab_datum *d, void *ptr)
  230. {
  231. struct cond_insertf_data *data = ptr;
  232. struct policydb *p = data->p;
  233. struct cond_av_list *other = data->other, *list, *cur;
  234. struct avtab_node *node_ptr;
  235. u8 found;
  236. /*
  237. * For type rules we have to make certain there aren't any
  238. * conflicting rules by searching the te_avtab and the
  239. * cond_te_avtab.
  240. */
  241. if (k->specified & AVTAB_TYPE) {
  242. if (avtab_search(&p->te_avtab, k)) {
  243. printk("security: type rule already exists outside of a conditional.");
  244. goto err;
  245. }
  246. /*
  247. * If we are reading the false list other will be a pointer to
  248. * the true list. We can have duplicate entries if there is only
  249. * 1 other entry and it is in our true list.
  250. *
  251. * If we are reading the true list (other == NULL) there shouldn't
  252. * be any other entries.
  253. */
  254. if (other) {
  255. node_ptr = avtab_search_node(&p->te_cond_avtab, k);
  256. if (node_ptr) {
  257. if (avtab_search_node_next(node_ptr, k->specified)) {
  258. printk("security: too many conflicting type rules.");
  259. goto err;
  260. }
  261. found = 0;
  262. for (cur = other; cur != NULL; cur = cur->next) {
  263. if (cur->node == node_ptr) {
  264. found = 1;
  265. break;
  266. }
  267. }
  268. if (!found) {
  269. printk("security: conflicting type rules.\n");
  270. goto err;
  271. }
  272. }
  273. } else {
  274. if (avtab_search(&p->te_cond_avtab, k)) {
  275. printk("security: conflicting type rules when adding type rule for true.\n");
  276. goto err;
  277. }
  278. }
  279. }
  280. node_ptr = avtab_insert_nonunique(&p->te_cond_avtab, k, d);
  281. if (!node_ptr) {
  282. printk("security: could not insert rule.");
  283. goto err;
  284. }
  285. list = kmalloc(sizeof(struct cond_av_list), GFP_KERNEL);
  286. if (!list)
  287. goto err;
  288. memset(list, 0, sizeof(*list));
  289. list->node = node_ptr;
  290. if (!data->head)
  291. data->head = list;
  292. else
  293. data->tail->next = list;
  294. data->tail = list;
  295. return 0;
  296. err:
  297. cond_av_list_destroy(data->head);
  298. data->head = NULL;
  299. return -1;
  300. }
  301. static int cond_read_av_list(struct policydb *p, void *fp, struct cond_av_list **ret_list, struct cond_av_list *other)
  302. {
  303. int i, rc;
  304. __le32 buf[1];
  305. u32 len;
  306. struct cond_insertf_data data;
  307. *ret_list = NULL;
  308. len = 0;
  309. rc = next_entry(buf, fp, sizeof(u32));
  310. if (rc < 0)
  311. return -1;
  312. len = le32_to_cpu(buf[0]);
  313. if (len == 0) {
  314. return 0;
  315. }
  316. data.p = p;
  317. data.other = other;
  318. data.head = NULL;
  319. data.tail = NULL;
  320. for (i = 0; i < len; i++) {
  321. rc = avtab_read_item(fp, p->policyvers, &p->te_cond_avtab, cond_insertf, &data);
  322. if (rc)
  323. return rc;
  324. }
  325. *ret_list = data.head;
  326. return 0;
  327. }
  328. static int expr_isvalid(struct policydb *p, struct cond_expr *expr)
  329. {
  330. if (expr->expr_type <= 0 || expr->expr_type > COND_LAST) {
  331. printk("security: conditional expressions uses unknown operator.\n");
  332. return 0;
  333. }
  334. if (expr->bool > p->p_bools.nprim) {
  335. printk("security: conditional expressions uses unknown bool.\n");
  336. return 0;
  337. }
  338. return 1;
  339. }
  340. static int cond_read_node(struct policydb *p, struct cond_node *node, void *fp)
  341. {
  342. __le32 buf[2];
  343. u32 len, i;
  344. int rc;
  345. struct cond_expr *expr = NULL, *last = NULL;
  346. rc = next_entry(buf, fp, sizeof(u32));
  347. if (rc < 0)
  348. return -1;
  349. node->cur_state = le32_to_cpu(buf[0]);
  350. len = 0;
  351. rc = next_entry(buf, fp, sizeof(u32));
  352. if (rc < 0)
  353. return -1;
  354. /* expr */
  355. len = le32_to_cpu(buf[0]);
  356. for (i = 0; i < len; i++ ) {
  357. rc = next_entry(buf, fp, sizeof(u32) * 2);
  358. if (rc < 0)
  359. goto err;
  360. expr = kmalloc(sizeof(struct cond_expr), GFP_KERNEL);
  361. if (!expr) {
  362. goto err;
  363. }
  364. memset(expr, 0, sizeof(struct cond_expr));
  365. expr->expr_type = le32_to_cpu(buf[0]);
  366. expr->bool = le32_to_cpu(buf[1]);
  367. if (!expr_isvalid(p, expr)) {
  368. kfree(expr);
  369. goto err;
  370. }
  371. if (i == 0) {
  372. node->expr = expr;
  373. } else {
  374. last->next = expr;
  375. }
  376. last = expr;
  377. }
  378. if (cond_read_av_list(p, fp, &node->true_list, NULL) != 0)
  379. goto err;
  380. if (cond_read_av_list(p, fp, &node->false_list, node->true_list) != 0)
  381. goto err;
  382. return 0;
  383. err:
  384. cond_node_destroy(node);
  385. return -1;
  386. }
  387. int cond_read_list(struct policydb *p, void *fp)
  388. {
  389. struct cond_node *node, *last = NULL;
  390. __le32 buf[1];
  391. u32 i, len;
  392. int rc;
  393. rc = next_entry(buf, fp, sizeof buf);
  394. if (rc < 0)
  395. return -1;
  396. len = le32_to_cpu(buf[0]);
  397. for (i = 0; i < len; i++) {
  398. node = kmalloc(sizeof(struct cond_node), GFP_KERNEL);
  399. if (!node)
  400. goto err;
  401. memset(node, 0, sizeof(struct cond_node));
  402. if (cond_read_node(p, node, fp) != 0)
  403. goto err;
  404. if (i == 0) {
  405. p->cond_list = node;
  406. } else {
  407. last->next = node;
  408. }
  409. last = node;
  410. }
  411. return 0;
  412. err:
  413. cond_list_destroy(p->cond_list);
  414. p->cond_list = NULL;
  415. return -1;
  416. }
  417. /* Determine whether additional permissions are granted by the conditional
  418. * av table, and if so, add them to the result
  419. */
  420. void cond_compute_av(struct avtab *ctab, struct avtab_key *key, struct av_decision *avd)
  421. {
  422. struct avtab_node *node;
  423. if(!ctab || !key || !avd)
  424. return;
  425. for(node = avtab_search_node(ctab, key); node != NULL;
  426. node = avtab_search_node_next(node, key->specified)) {
  427. if ( (u16) (AVTAB_ALLOWED|AVTAB_ENABLED) ==
  428. (node->key.specified & (AVTAB_ALLOWED|AVTAB_ENABLED)))
  429. avd->allowed |= node->datum.data;
  430. if ( (u16) (AVTAB_AUDITDENY|AVTAB_ENABLED) ==
  431. (node->key.specified & (AVTAB_AUDITDENY|AVTAB_ENABLED)))
  432. /* Since a '0' in an auditdeny mask represents a
  433. * permission we do NOT want to audit (dontaudit), we use
  434. * the '&' operand to ensure that all '0's in the mask
  435. * are retained (much unlike the allow and auditallow cases).
  436. */
  437. avd->auditdeny &= node->datum.data;
  438. if ( (u16) (AVTAB_AUDITALLOW|AVTAB_ENABLED) ==
  439. (node->key.specified & (AVTAB_AUDITALLOW|AVTAB_ENABLED)))
  440. avd->auditallow |= node->datum.data;
  441. }
  442. return;
  443. }