pkey_api.c 30 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * pkey device driver
  4. *
  5. * Copyright IBM Corp. 2017
  6. * Author(s): Harald Freudenberger
  7. */
  8. #define KMSG_COMPONENT "pkey"
  9. #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
  10. #include <linux/fs.h>
  11. #include <linux/init.h>
  12. #include <linux/miscdevice.h>
  13. #include <linux/module.h>
  14. #include <linux/slab.h>
  15. #include <linux/kallsyms.h>
  16. #include <linux/debugfs.h>
  17. #include <asm/zcrypt.h>
  18. #include <asm/cpacf.h>
  19. #include <asm/pkey.h>
  20. #include "zcrypt_api.h"
  21. MODULE_LICENSE("GPL");
  22. MODULE_AUTHOR("IBM Corporation");
  23. MODULE_DESCRIPTION("s390 protected key interface");
  24. /* Size of parameter block used for all cca requests/replies */
  25. #define PARMBSIZE 512
  26. /* Size of vardata block used for some of the cca requests/replies */
  27. #define VARDATASIZE 4096
  28. /*
  29. * debug feature data and functions
  30. */
  31. static debug_info_t *debug_info;
  32. #define DEBUG_DBG(...) debug_sprintf_event(debug_info, 6, ##__VA_ARGS__)
  33. #define DEBUG_INFO(...) debug_sprintf_event(debug_info, 5, ##__VA_ARGS__)
  34. #define DEBUG_WARN(...) debug_sprintf_event(debug_info, 4, ##__VA_ARGS__)
  35. #define DEBUG_ERR(...) debug_sprintf_event(debug_info, 3, ##__VA_ARGS__)
  36. static void __init pkey_debug_init(void)
  37. {
  38. /* 5 arguments per dbf entry (including the format string ptr) */
  39. debug_info = debug_register("pkey", 1, 1, 5 * sizeof(long));
  40. debug_register_view(debug_info, &debug_sprintf_view);
  41. debug_set_level(debug_info, 3);
  42. }
  43. static void __exit pkey_debug_exit(void)
  44. {
  45. debug_unregister(debug_info);
  46. }
  47. /* inside view of a secure key token (only type 0x01 version 0x04) */
  48. struct secaeskeytoken {
  49. u8 type; /* 0x01 for internal key token */
  50. u8 res0[3];
  51. u8 version; /* should be 0x04 */
  52. u8 res1[1];
  53. u8 flag; /* key flags */
  54. u8 res2[1];
  55. u64 mkvp; /* master key verification pattern */
  56. u8 key[32]; /* key value (encrypted) */
  57. u8 cv[8]; /* control vector */
  58. u16 bitsize; /* key bit size */
  59. u16 keysize; /* key byte size */
  60. u8 tvv[4]; /* token validation value */
  61. } __packed;
  62. /*
  63. * Simple check if the token is a valid CCA secure AES key
  64. * token. If keybitsize is given, the bitsize of the key is
  65. * also checked. Returns 0 on success or errno value on failure.
  66. */
  67. static int check_secaeskeytoken(const u8 *token, int keybitsize)
  68. {
  69. struct secaeskeytoken *t = (struct secaeskeytoken *) token;
  70. if (t->type != 0x01) {
  71. DEBUG_ERR(
  72. "%s secure token check failed, type mismatch 0x%02x != 0x01\n",
  73. __func__, (int) t->type);
  74. return -EINVAL;
  75. }
  76. if (t->version != 0x04) {
  77. DEBUG_ERR(
  78. "%s secure token check failed, version mismatch 0x%02x != 0x04\n",
  79. __func__, (int) t->version);
  80. return -EINVAL;
  81. }
  82. if (keybitsize > 0 && t->bitsize != keybitsize) {
  83. DEBUG_ERR(
  84. "%s secure token check failed, bitsize mismatch %d != %d\n",
  85. __func__, (int) t->bitsize, keybitsize);
  86. return -EINVAL;
  87. }
  88. return 0;
  89. }
  90. /*
  91. * Allocate consecutive memory for request CPRB, request param
  92. * block, reply CPRB and reply param block and fill in values
  93. * for the common fields. Returns 0 on success or errno value
  94. * on failure.
  95. */
  96. static int alloc_and_prep_cprbmem(size_t paramblen,
  97. u8 **pcprbmem,
  98. struct CPRBX **preqCPRB,
  99. struct CPRBX **prepCPRB)
  100. {
  101. u8 *cprbmem;
  102. size_t cprbplusparamblen = sizeof(struct CPRBX) + paramblen;
  103. struct CPRBX *preqcblk, *prepcblk;
  104. /*
  105. * allocate consecutive memory for request CPRB, request param
  106. * block, reply CPRB and reply param block
  107. */
  108. cprbmem = kcalloc(2, cprbplusparamblen, GFP_KERNEL);
  109. if (!cprbmem)
  110. return -ENOMEM;
  111. preqcblk = (struct CPRBX *) cprbmem;
  112. prepcblk = (struct CPRBX *) (cprbmem + cprbplusparamblen);
  113. /* fill request cprb struct */
  114. preqcblk->cprb_len = sizeof(struct CPRBX);
  115. preqcblk->cprb_ver_id = 0x02;
  116. memcpy(preqcblk->func_id, "T2", 2);
  117. preqcblk->rpl_msgbl = cprbplusparamblen;
  118. if (paramblen) {
  119. preqcblk->req_parmb =
  120. ((u8 *) preqcblk) + sizeof(struct CPRBX);
  121. preqcblk->rpl_parmb =
  122. ((u8 *) prepcblk) + sizeof(struct CPRBX);
  123. }
  124. *pcprbmem = cprbmem;
  125. *preqCPRB = preqcblk;
  126. *prepCPRB = prepcblk;
  127. return 0;
  128. }
  129. /*
  130. * Free the cprb memory allocated with the function above.
  131. * If the scrub value is not zero, the memory is filled
  132. * with zeros before freeing (useful if there was some
  133. * clear key material in there).
  134. */
  135. static void free_cprbmem(void *mem, size_t paramblen, int scrub)
  136. {
  137. if (scrub)
  138. memzero_explicit(mem, 2 * (sizeof(struct CPRBX) + paramblen));
  139. kfree(mem);
  140. }
  141. /*
  142. * Helper function to prepare the xcrb struct
  143. */
  144. static inline void prep_xcrb(struct ica_xcRB *pxcrb,
  145. u16 cardnr,
  146. struct CPRBX *preqcblk,
  147. struct CPRBX *prepcblk)
  148. {
  149. memset(pxcrb, 0, sizeof(*pxcrb));
  150. pxcrb->agent_ID = 0x4341; /* 'CA' */
  151. pxcrb->user_defined = (cardnr == 0xFFFF ? AUTOSELECT : cardnr);
  152. pxcrb->request_control_blk_length =
  153. preqcblk->cprb_len + preqcblk->req_parml;
  154. pxcrb->request_control_blk_addr = (void __user *) preqcblk;
  155. pxcrb->reply_control_blk_length = preqcblk->rpl_msgbl;
  156. pxcrb->reply_control_blk_addr = (void __user *) prepcblk;
  157. }
  158. /*
  159. * Helper function which calls zcrypt_send_cprb with
  160. * memory management segment adjusted to kernel space
  161. * so that the copy_from_user called within this
  162. * function do in fact copy from kernel space.
  163. */
  164. static inline int _zcrypt_send_cprb(struct ica_xcRB *xcrb)
  165. {
  166. int rc;
  167. mm_segment_t old_fs = get_fs();
  168. set_fs(KERNEL_DS);
  169. rc = zcrypt_send_cprb(xcrb);
  170. set_fs(old_fs);
  171. return rc;
  172. }
  173. /*
  174. * Generate (random) AES secure key.
  175. */
  176. int pkey_genseckey(u16 cardnr, u16 domain,
  177. u32 keytype, struct pkey_seckey *seckey)
  178. {
  179. int i, rc, keysize;
  180. int seckeysize;
  181. u8 *mem;
  182. struct CPRBX *preqcblk, *prepcblk;
  183. struct ica_xcRB xcrb;
  184. struct kgreqparm {
  185. u8 subfunc_code[2];
  186. u16 rule_array_len;
  187. struct lv1 {
  188. u16 len;
  189. char key_form[8];
  190. char key_length[8];
  191. char key_type1[8];
  192. char key_type2[8];
  193. } lv1;
  194. struct lv2 {
  195. u16 len;
  196. struct keyid {
  197. u16 len;
  198. u16 attr;
  199. u8 data[SECKEYBLOBSIZE];
  200. } keyid[6];
  201. } lv2;
  202. } *preqparm;
  203. struct kgrepparm {
  204. u8 subfunc_code[2];
  205. u16 rule_array_len;
  206. struct lv3 {
  207. u16 len;
  208. u16 keyblocklen;
  209. struct {
  210. u16 toklen;
  211. u16 tokattr;
  212. u8 tok[0];
  213. /* ... some more data ... */
  214. } keyblock;
  215. } lv3;
  216. } *prepparm;
  217. /* get already prepared memory for 2 cprbs with param block each */
  218. rc = alloc_and_prep_cprbmem(PARMBSIZE, &mem, &preqcblk, &prepcblk);
  219. if (rc)
  220. return rc;
  221. /* fill request cprb struct */
  222. preqcblk->domain = domain;
  223. /* fill request cprb param block with KG request */
  224. preqparm = (struct kgreqparm *) preqcblk->req_parmb;
  225. memcpy(preqparm->subfunc_code, "KG", 2);
  226. preqparm->rule_array_len = sizeof(preqparm->rule_array_len);
  227. preqparm->lv1.len = sizeof(struct lv1);
  228. memcpy(preqparm->lv1.key_form, "OP ", 8);
  229. switch (keytype) {
  230. case PKEY_KEYTYPE_AES_128:
  231. keysize = 16;
  232. memcpy(preqparm->lv1.key_length, "KEYLN16 ", 8);
  233. break;
  234. case PKEY_KEYTYPE_AES_192:
  235. keysize = 24;
  236. memcpy(preqparm->lv1.key_length, "KEYLN24 ", 8);
  237. break;
  238. case PKEY_KEYTYPE_AES_256:
  239. keysize = 32;
  240. memcpy(preqparm->lv1.key_length, "KEYLN32 ", 8);
  241. break;
  242. default:
  243. DEBUG_ERR(
  244. "%s unknown/unsupported keytype %d\n",
  245. __func__, keytype);
  246. rc = -EINVAL;
  247. goto out;
  248. }
  249. memcpy(preqparm->lv1.key_type1, "AESDATA ", 8);
  250. preqparm->lv2.len = sizeof(struct lv2);
  251. for (i = 0; i < 6; i++) {
  252. preqparm->lv2.keyid[i].len = sizeof(struct keyid);
  253. preqparm->lv2.keyid[i].attr = (i == 2 ? 0x30 : 0x10);
  254. }
  255. preqcblk->req_parml = sizeof(struct kgreqparm);
  256. /* fill xcrb struct */
  257. prep_xcrb(&xcrb, cardnr, preqcblk, prepcblk);
  258. /* forward xcrb with request CPRB and reply CPRB to zcrypt dd */
  259. rc = _zcrypt_send_cprb(&xcrb);
  260. if (rc) {
  261. DEBUG_ERR(
  262. "%s zcrypt_send_cprb (cardnr=%d domain=%d) failed with errno %d\n",
  263. __func__, (int) cardnr, (int) domain, rc);
  264. goto out;
  265. }
  266. /* check response returncode and reasoncode */
  267. if (prepcblk->ccp_rtcode != 0) {
  268. DEBUG_ERR(
  269. "%s secure key generate failure, card response %d/%d\n",
  270. __func__,
  271. (int) prepcblk->ccp_rtcode,
  272. (int) prepcblk->ccp_rscode);
  273. rc = -EIO;
  274. goto out;
  275. }
  276. /* process response cprb param block */
  277. prepcblk->rpl_parmb = ((u8 *) prepcblk) + sizeof(struct CPRBX);
  278. prepparm = (struct kgrepparm *) prepcblk->rpl_parmb;
  279. /* check length of the returned secure key token */
  280. seckeysize = prepparm->lv3.keyblock.toklen
  281. - sizeof(prepparm->lv3.keyblock.toklen)
  282. - sizeof(prepparm->lv3.keyblock.tokattr);
  283. if (seckeysize != SECKEYBLOBSIZE) {
  284. DEBUG_ERR(
  285. "%s secure token size mismatch %d != %d bytes\n",
  286. __func__, seckeysize, SECKEYBLOBSIZE);
  287. rc = -EIO;
  288. goto out;
  289. }
  290. /* check secure key token */
  291. rc = check_secaeskeytoken(prepparm->lv3.keyblock.tok, 8*keysize);
  292. if (rc) {
  293. rc = -EIO;
  294. goto out;
  295. }
  296. /* copy the generated secure key token */
  297. memcpy(seckey->seckey, prepparm->lv3.keyblock.tok, SECKEYBLOBSIZE);
  298. out:
  299. free_cprbmem(mem, PARMBSIZE, 0);
  300. return rc;
  301. }
  302. EXPORT_SYMBOL(pkey_genseckey);
  303. /*
  304. * Generate an AES secure key with given key value.
  305. */
  306. int pkey_clr2seckey(u16 cardnr, u16 domain, u32 keytype,
  307. const struct pkey_clrkey *clrkey,
  308. struct pkey_seckey *seckey)
  309. {
  310. int rc, keysize, seckeysize;
  311. u8 *mem;
  312. struct CPRBX *preqcblk, *prepcblk;
  313. struct ica_xcRB xcrb;
  314. struct cmreqparm {
  315. u8 subfunc_code[2];
  316. u16 rule_array_len;
  317. char rule_array[8];
  318. struct lv1 {
  319. u16 len;
  320. u8 clrkey[0];
  321. } lv1;
  322. struct lv2 {
  323. u16 len;
  324. struct keyid {
  325. u16 len;
  326. u16 attr;
  327. u8 data[SECKEYBLOBSIZE];
  328. } keyid;
  329. } lv2;
  330. } *preqparm;
  331. struct lv2 *plv2;
  332. struct cmrepparm {
  333. u8 subfunc_code[2];
  334. u16 rule_array_len;
  335. struct lv3 {
  336. u16 len;
  337. u16 keyblocklen;
  338. struct {
  339. u16 toklen;
  340. u16 tokattr;
  341. u8 tok[0];
  342. /* ... some more data ... */
  343. } keyblock;
  344. } lv3;
  345. } *prepparm;
  346. /* get already prepared memory for 2 cprbs with param block each */
  347. rc = alloc_and_prep_cprbmem(PARMBSIZE, &mem, &preqcblk, &prepcblk);
  348. if (rc)
  349. return rc;
  350. /* fill request cprb struct */
  351. preqcblk->domain = domain;
  352. /* fill request cprb param block with CM request */
  353. preqparm = (struct cmreqparm *) preqcblk->req_parmb;
  354. memcpy(preqparm->subfunc_code, "CM", 2);
  355. memcpy(preqparm->rule_array, "AES ", 8);
  356. preqparm->rule_array_len =
  357. sizeof(preqparm->rule_array_len) + sizeof(preqparm->rule_array);
  358. switch (keytype) {
  359. case PKEY_KEYTYPE_AES_128:
  360. keysize = 16;
  361. break;
  362. case PKEY_KEYTYPE_AES_192:
  363. keysize = 24;
  364. break;
  365. case PKEY_KEYTYPE_AES_256:
  366. keysize = 32;
  367. break;
  368. default:
  369. DEBUG_ERR(
  370. "%s unknown/unsupported keytype %d\n",
  371. __func__, keytype);
  372. rc = -EINVAL;
  373. goto out;
  374. }
  375. preqparm->lv1.len = sizeof(struct lv1) + keysize;
  376. memcpy(preqparm->lv1.clrkey, clrkey->clrkey, keysize);
  377. plv2 = (struct lv2 *) (((u8 *) &preqparm->lv2) + keysize);
  378. plv2->len = sizeof(struct lv2);
  379. plv2->keyid.len = sizeof(struct keyid);
  380. plv2->keyid.attr = 0x30;
  381. preqcblk->req_parml = sizeof(struct cmreqparm) + keysize;
  382. /* fill xcrb struct */
  383. prep_xcrb(&xcrb, cardnr, preqcblk, prepcblk);
  384. /* forward xcrb with request CPRB and reply CPRB to zcrypt dd */
  385. rc = _zcrypt_send_cprb(&xcrb);
  386. if (rc) {
  387. DEBUG_ERR(
  388. "%s zcrypt_send_cprb (cardnr=%d domain=%d) failed with errno %d\n",
  389. __func__, (int) cardnr, (int) domain, rc);
  390. goto out;
  391. }
  392. /* check response returncode and reasoncode */
  393. if (prepcblk->ccp_rtcode != 0) {
  394. DEBUG_ERR(
  395. "%s clear key import failure, card response %d/%d\n",
  396. __func__,
  397. (int) prepcblk->ccp_rtcode,
  398. (int) prepcblk->ccp_rscode);
  399. rc = -EIO;
  400. goto out;
  401. }
  402. /* process response cprb param block */
  403. prepcblk->rpl_parmb = ((u8 *) prepcblk) + sizeof(struct CPRBX);
  404. prepparm = (struct cmrepparm *) prepcblk->rpl_parmb;
  405. /* check length of the returned secure key token */
  406. seckeysize = prepparm->lv3.keyblock.toklen
  407. - sizeof(prepparm->lv3.keyblock.toklen)
  408. - sizeof(prepparm->lv3.keyblock.tokattr);
  409. if (seckeysize != SECKEYBLOBSIZE) {
  410. DEBUG_ERR(
  411. "%s secure token size mismatch %d != %d bytes\n",
  412. __func__, seckeysize, SECKEYBLOBSIZE);
  413. rc = -EIO;
  414. goto out;
  415. }
  416. /* check secure key token */
  417. rc = check_secaeskeytoken(prepparm->lv3.keyblock.tok, 8*keysize);
  418. if (rc) {
  419. rc = -EIO;
  420. goto out;
  421. }
  422. /* copy the generated secure key token */
  423. memcpy(seckey->seckey, prepparm->lv3.keyblock.tok, SECKEYBLOBSIZE);
  424. out:
  425. free_cprbmem(mem, PARMBSIZE, 1);
  426. return rc;
  427. }
  428. EXPORT_SYMBOL(pkey_clr2seckey);
  429. /*
  430. * Derive a proteced key from the secure key blob.
  431. */
  432. int pkey_sec2protkey(u16 cardnr, u16 domain,
  433. const struct pkey_seckey *seckey,
  434. struct pkey_protkey *protkey)
  435. {
  436. int rc;
  437. u8 *mem;
  438. struct CPRBX *preqcblk, *prepcblk;
  439. struct ica_xcRB xcrb;
  440. struct uskreqparm {
  441. u8 subfunc_code[2];
  442. u16 rule_array_len;
  443. struct lv1 {
  444. u16 len;
  445. u16 attr_len;
  446. u16 attr_flags;
  447. } lv1;
  448. struct lv2 {
  449. u16 len;
  450. u16 attr_len;
  451. u16 attr_flags;
  452. u8 token[0]; /* cca secure key token */
  453. } lv2 __packed;
  454. } *preqparm;
  455. struct uskrepparm {
  456. u8 subfunc_code[2];
  457. u16 rule_array_len;
  458. struct lv3 {
  459. u16 len;
  460. u16 attr_len;
  461. u16 attr_flags;
  462. struct cpacfkeyblock {
  463. u8 version; /* version of this struct */
  464. u8 flags[2];
  465. u8 algo;
  466. u8 form;
  467. u8 pad1[3];
  468. u16 keylen;
  469. u8 key[64]; /* the key (keylen bytes) */
  470. u16 keyattrlen;
  471. u8 keyattr[32];
  472. u8 pad2[1];
  473. u8 vptype;
  474. u8 vp[32]; /* verification pattern */
  475. } keyblock;
  476. } lv3 __packed;
  477. } *prepparm;
  478. /* get already prepared memory for 2 cprbs with param block each */
  479. rc = alloc_and_prep_cprbmem(PARMBSIZE, &mem, &preqcblk, &prepcblk);
  480. if (rc)
  481. return rc;
  482. /* fill request cprb struct */
  483. preqcblk->domain = domain;
  484. /* fill request cprb param block with USK request */
  485. preqparm = (struct uskreqparm *) preqcblk->req_parmb;
  486. memcpy(preqparm->subfunc_code, "US", 2);
  487. preqparm->rule_array_len = sizeof(preqparm->rule_array_len);
  488. preqparm->lv1.len = sizeof(struct lv1);
  489. preqparm->lv1.attr_len = sizeof(struct lv1) - sizeof(preqparm->lv1.len);
  490. preqparm->lv1.attr_flags = 0x0001;
  491. preqparm->lv2.len = sizeof(struct lv2) + SECKEYBLOBSIZE;
  492. preqparm->lv2.attr_len = sizeof(struct lv2)
  493. - sizeof(preqparm->lv2.len) + SECKEYBLOBSIZE;
  494. preqparm->lv2.attr_flags = 0x0000;
  495. memcpy(preqparm->lv2.token, seckey->seckey, SECKEYBLOBSIZE);
  496. preqcblk->req_parml = sizeof(struct uskreqparm) + SECKEYBLOBSIZE;
  497. /* fill xcrb struct */
  498. prep_xcrb(&xcrb, cardnr, preqcblk, prepcblk);
  499. /* forward xcrb with request CPRB and reply CPRB to zcrypt dd */
  500. rc = _zcrypt_send_cprb(&xcrb);
  501. if (rc) {
  502. DEBUG_ERR(
  503. "%s zcrypt_send_cprb (cardnr=%d domain=%d) failed with errno %d\n",
  504. __func__, (int) cardnr, (int) domain, rc);
  505. goto out;
  506. }
  507. /* check response returncode and reasoncode */
  508. if (prepcblk->ccp_rtcode != 0) {
  509. DEBUG_ERR(
  510. "%s unwrap secure key failure, card response %d/%d\n",
  511. __func__,
  512. (int) prepcblk->ccp_rtcode,
  513. (int) prepcblk->ccp_rscode);
  514. rc = -EIO;
  515. goto out;
  516. }
  517. if (prepcblk->ccp_rscode != 0) {
  518. DEBUG_WARN(
  519. "%s unwrap secure key warning, card response %d/%d\n",
  520. __func__,
  521. (int) prepcblk->ccp_rtcode,
  522. (int) prepcblk->ccp_rscode);
  523. }
  524. /* process response cprb param block */
  525. prepcblk->rpl_parmb = ((u8 *) prepcblk) + sizeof(struct CPRBX);
  526. prepparm = (struct uskrepparm *) prepcblk->rpl_parmb;
  527. /* check the returned keyblock */
  528. if (prepparm->lv3.keyblock.version != 0x01) {
  529. DEBUG_ERR(
  530. "%s reply param keyblock version mismatch 0x%02x != 0x01\n",
  531. __func__, (int) prepparm->lv3.keyblock.version);
  532. rc = -EIO;
  533. goto out;
  534. }
  535. /* copy the tanslated protected key */
  536. switch (prepparm->lv3.keyblock.keylen) {
  537. case 16+32:
  538. protkey->type = PKEY_KEYTYPE_AES_128;
  539. break;
  540. case 24+32:
  541. protkey->type = PKEY_KEYTYPE_AES_192;
  542. break;
  543. case 32+32:
  544. protkey->type = PKEY_KEYTYPE_AES_256;
  545. break;
  546. default:
  547. DEBUG_ERR("%s unknown/unsupported keytype %d\n",
  548. __func__, prepparm->lv3.keyblock.keylen);
  549. rc = -EIO;
  550. goto out;
  551. }
  552. protkey->len = prepparm->lv3.keyblock.keylen;
  553. memcpy(protkey->protkey, prepparm->lv3.keyblock.key, protkey->len);
  554. out:
  555. free_cprbmem(mem, PARMBSIZE, 0);
  556. return rc;
  557. }
  558. EXPORT_SYMBOL(pkey_sec2protkey);
  559. /*
  560. * Create a protected key from a clear key value.
  561. */
  562. int pkey_clr2protkey(u32 keytype,
  563. const struct pkey_clrkey *clrkey,
  564. struct pkey_protkey *protkey)
  565. {
  566. long fc;
  567. int keysize;
  568. u8 paramblock[64];
  569. switch (keytype) {
  570. case PKEY_KEYTYPE_AES_128:
  571. keysize = 16;
  572. fc = CPACF_PCKMO_ENC_AES_128_KEY;
  573. break;
  574. case PKEY_KEYTYPE_AES_192:
  575. keysize = 24;
  576. fc = CPACF_PCKMO_ENC_AES_192_KEY;
  577. break;
  578. case PKEY_KEYTYPE_AES_256:
  579. keysize = 32;
  580. fc = CPACF_PCKMO_ENC_AES_256_KEY;
  581. break;
  582. default:
  583. DEBUG_ERR("%s unknown/unsupported keytype %d\n",
  584. __func__, keytype);
  585. return -EINVAL;
  586. }
  587. /* prepare param block */
  588. memset(paramblock, 0, sizeof(paramblock));
  589. memcpy(paramblock, clrkey->clrkey, keysize);
  590. /* call the pckmo instruction */
  591. cpacf_pckmo(fc, paramblock);
  592. /* copy created protected key */
  593. protkey->type = keytype;
  594. protkey->len = keysize + 32;
  595. memcpy(protkey->protkey, paramblock, keysize + 32);
  596. return 0;
  597. }
  598. EXPORT_SYMBOL(pkey_clr2protkey);
  599. /*
  600. * query cryptographic facility from adapter
  601. */
  602. static int query_crypto_facility(u16 cardnr, u16 domain,
  603. const char *keyword,
  604. u8 *rarray, size_t *rarraylen,
  605. u8 *varray, size_t *varraylen)
  606. {
  607. int rc;
  608. u16 len;
  609. u8 *mem, *ptr;
  610. struct CPRBX *preqcblk, *prepcblk;
  611. struct ica_xcRB xcrb;
  612. struct fqreqparm {
  613. u8 subfunc_code[2];
  614. u16 rule_array_len;
  615. char rule_array[8];
  616. struct lv1 {
  617. u16 len;
  618. u8 data[VARDATASIZE];
  619. } lv1;
  620. u16 dummylen;
  621. } *preqparm;
  622. size_t parmbsize = sizeof(struct fqreqparm);
  623. struct fqrepparm {
  624. u8 subfunc_code[2];
  625. u8 lvdata[0];
  626. } *prepparm;
  627. /* get already prepared memory for 2 cprbs with param block each */
  628. rc = alloc_and_prep_cprbmem(parmbsize, &mem, &preqcblk, &prepcblk);
  629. if (rc)
  630. return rc;
  631. /* fill request cprb struct */
  632. preqcblk->domain = domain;
  633. /* fill request cprb param block with FQ request */
  634. preqparm = (struct fqreqparm *) preqcblk->req_parmb;
  635. memcpy(preqparm->subfunc_code, "FQ", 2);
  636. memcpy(preqparm->rule_array, keyword, sizeof(preqparm->rule_array));
  637. preqparm->rule_array_len =
  638. sizeof(preqparm->rule_array_len) + sizeof(preqparm->rule_array);
  639. preqparm->lv1.len = sizeof(preqparm->lv1);
  640. preqparm->dummylen = sizeof(preqparm->dummylen);
  641. preqcblk->req_parml = parmbsize;
  642. /* fill xcrb struct */
  643. prep_xcrb(&xcrb, cardnr, preqcblk, prepcblk);
  644. /* forward xcrb with request CPRB and reply CPRB to zcrypt dd */
  645. rc = _zcrypt_send_cprb(&xcrb);
  646. if (rc) {
  647. DEBUG_ERR(
  648. "%s zcrypt_send_cprb (cardnr=%d domain=%d) failed with errno %d\n",
  649. __func__, (int) cardnr, (int) domain, rc);
  650. goto out;
  651. }
  652. /* check response returncode and reasoncode */
  653. if (prepcblk->ccp_rtcode != 0) {
  654. DEBUG_ERR(
  655. "%s unwrap secure key failure, card response %d/%d\n",
  656. __func__,
  657. (int) prepcblk->ccp_rtcode,
  658. (int) prepcblk->ccp_rscode);
  659. rc = -EIO;
  660. goto out;
  661. }
  662. /* process response cprb param block */
  663. prepcblk->rpl_parmb = ((u8 *) prepcblk) + sizeof(struct CPRBX);
  664. prepparm = (struct fqrepparm *) prepcblk->rpl_parmb;
  665. ptr = prepparm->lvdata;
  666. /* check and possibly copy reply rule array */
  667. len = *((u16 *) ptr);
  668. if (len > sizeof(u16)) {
  669. ptr += sizeof(u16);
  670. len -= sizeof(u16);
  671. if (rarray && rarraylen && *rarraylen > 0) {
  672. *rarraylen = (len > *rarraylen ? *rarraylen : len);
  673. memcpy(rarray, ptr, *rarraylen);
  674. }
  675. ptr += len;
  676. }
  677. /* check and possible copy reply var array */
  678. len = *((u16 *) ptr);
  679. if (len > sizeof(u16)) {
  680. ptr += sizeof(u16);
  681. len -= sizeof(u16);
  682. if (varray && varraylen && *varraylen > 0) {
  683. *varraylen = (len > *varraylen ? *varraylen : len);
  684. memcpy(varray, ptr, *varraylen);
  685. }
  686. ptr += len;
  687. }
  688. out:
  689. free_cprbmem(mem, parmbsize, 0);
  690. return rc;
  691. }
  692. /*
  693. * Fetch the current and old mkvp values via
  694. * query_crypto_facility from adapter.
  695. */
  696. static int fetch_mkvp(u16 cardnr, u16 domain, u64 mkvp[2])
  697. {
  698. int rc, found = 0;
  699. size_t rlen, vlen;
  700. u8 *rarray, *varray, *pg;
  701. pg = (u8 *) __get_free_page(GFP_KERNEL);
  702. if (!pg)
  703. return -ENOMEM;
  704. rarray = pg;
  705. varray = pg + PAGE_SIZE/2;
  706. rlen = vlen = PAGE_SIZE/2;
  707. rc = query_crypto_facility(cardnr, domain, "STATICSA",
  708. rarray, &rlen, varray, &vlen);
  709. if (rc == 0 && rlen > 8*8 && vlen > 184+8) {
  710. if (rarray[8*8] == '2') {
  711. /* current master key state is valid */
  712. mkvp[0] = *((u64 *)(varray + 184));
  713. mkvp[1] = *((u64 *)(varray + 172));
  714. found = 1;
  715. }
  716. }
  717. free_page((unsigned long) pg);
  718. return found ? 0 : -ENOENT;
  719. }
  720. /* struct to hold cached mkvp info for each card/domain */
  721. struct mkvp_info {
  722. struct list_head list;
  723. u16 cardnr;
  724. u16 domain;
  725. u64 mkvp[2];
  726. };
  727. /* a list with mkvp_info entries */
  728. static LIST_HEAD(mkvp_list);
  729. static DEFINE_SPINLOCK(mkvp_list_lock);
  730. static int mkvp_cache_fetch(u16 cardnr, u16 domain, u64 mkvp[2])
  731. {
  732. int rc = -ENOENT;
  733. struct mkvp_info *ptr;
  734. spin_lock_bh(&mkvp_list_lock);
  735. list_for_each_entry(ptr, &mkvp_list, list) {
  736. if (ptr->cardnr == cardnr &&
  737. ptr->domain == domain) {
  738. memcpy(mkvp, ptr->mkvp, 2 * sizeof(u64));
  739. rc = 0;
  740. break;
  741. }
  742. }
  743. spin_unlock_bh(&mkvp_list_lock);
  744. return rc;
  745. }
  746. static void mkvp_cache_update(u16 cardnr, u16 domain, u64 mkvp[2])
  747. {
  748. int found = 0;
  749. struct mkvp_info *ptr;
  750. spin_lock_bh(&mkvp_list_lock);
  751. list_for_each_entry(ptr, &mkvp_list, list) {
  752. if (ptr->cardnr == cardnr &&
  753. ptr->domain == domain) {
  754. memcpy(ptr->mkvp, mkvp, 2 * sizeof(u64));
  755. found = 1;
  756. break;
  757. }
  758. }
  759. if (!found) {
  760. ptr = kmalloc(sizeof(*ptr), GFP_ATOMIC);
  761. if (!ptr) {
  762. spin_unlock_bh(&mkvp_list_lock);
  763. return;
  764. }
  765. ptr->cardnr = cardnr;
  766. ptr->domain = domain;
  767. memcpy(ptr->mkvp, mkvp, 2 * sizeof(u64));
  768. list_add(&ptr->list, &mkvp_list);
  769. }
  770. spin_unlock_bh(&mkvp_list_lock);
  771. }
  772. static void mkvp_cache_scrub(u16 cardnr, u16 domain)
  773. {
  774. struct mkvp_info *ptr;
  775. spin_lock_bh(&mkvp_list_lock);
  776. list_for_each_entry(ptr, &mkvp_list, list) {
  777. if (ptr->cardnr == cardnr &&
  778. ptr->domain == domain) {
  779. list_del(&ptr->list);
  780. kfree(ptr);
  781. break;
  782. }
  783. }
  784. spin_unlock_bh(&mkvp_list_lock);
  785. }
  786. static void __exit mkvp_cache_free(void)
  787. {
  788. struct mkvp_info *ptr, *pnext;
  789. spin_lock_bh(&mkvp_list_lock);
  790. list_for_each_entry_safe(ptr, pnext, &mkvp_list, list) {
  791. list_del(&ptr->list);
  792. kfree(ptr);
  793. }
  794. spin_unlock_bh(&mkvp_list_lock);
  795. }
  796. /*
  797. * Search for a matching crypto card based on the Master Key
  798. * Verification Pattern provided inside a secure key.
  799. */
  800. int pkey_findcard(const struct pkey_seckey *seckey,
  801. u16 *pcardnr, u16 *pdomain, int verify)
  802. {
  803. struct secaeskeytoken *t = (struct secaeskeytoken *) seckey;
  804. struct zcrypt_device_status_ext *device_status;
  805. u16 card, dom;
  806. u64 mkvp[2];
  807. int i, rc, oi = -1;
  808. /* mkvp must not be zero */
  809. if (t->mkvp == 0)
  810. return -EINVAL;
  811. /* fetch status of all crypto cards */
  812. device_status = kmalloc_array(MAX_ZDEV_ENTRIES_EXT,
  813. sizeof(struct zcrypt_device_status_ext),
  814. GFP_KERNEL);
  815. if (!device_status)
  816. return -ENOMEM;
  817. zcrypt_device_status_mask_ext(device_status);
  818. /* walk through all crypto cards */
  819. for (i = 0; i < MAX_ZDEV_ENTRIES_EXT; i++) {
  820. card = AP_QID_CARD(device_status[i].qid);
  821. dom = AP_QID_QUEUE(device_status[i].qid);
  822. if (device_status[i].online &&
  823. device_status[i].functions & 0x04) {
  824. /* an enabled CCA Coprocessor card */
  825. /* try cached mkvp */
  826. if (mkvp_cache_fetch(card, dom, mkvp) == 0 &&
  827. t->mkvp == mkvp[0]) {
  828. if (!verify)
  829. break;
  830. /* verify: fetch mkvp from adapter */
  831. if (fetch_mkvp(card, dom, mkvp) == 0) {
  832. mkvp_cache_update(card, dom, mkvp);
  833. if (t->mkvp == mkvp[0])
  834. break;
  835. }
  836. }
  837. } else {
  838. /* Card is offline and/or not a CCA card. */
  839. /* del mkvp entry from cache if it exists */
  840. mkvp_cache_scrub(card, dom);
  841. }
  842. }
  843. if (i >= MAX_ZDEV_ENTRIES_EXT) {
  844. /* nothing found, so this time without cache */
  845. for (i = 0; i < MAX_ZDEV_ENTRIES_EXT; i++) {
  846. if (!(device_status[i].online &&
  847. device_status[i].functions & 0x04))
  848. continue;
  849. card = AP_QID_CARD(device_status[i].qid);
  850. dom = AP_QID_QUEUE(device_status[i].qid);
  851. /* fresh fetch mkvp from adapter */
  852. if (fetch_mkvp(card, dom, mkvp) == 0) {
  853. mkvp_cache_update(card, dom, mkvp);
  854. if (t->mkvp == mkvp[0])
  855. break;
  856. if (t->mkvp == mkvp[1] && oi < 0)
  857. oi = i;
  858. }
  859. }
  860. if (i >= MAX_ZDEV_ENTRIES_EXT && oi >= 0) {
  861. /* old mkvp matched, use this card then */
  862. card = AP_QID_CARD(device_status[oi].qid);
  863. dom = AP_QID_QUEUE(device_status[oi].qid);
  864. }
  865. }
  866. if (i < MAX_ZDEV_ENTRIES_EXT || oi >= 0) {
  867. if (pcardnr)
  868. *pcardnr = card;
  869. if (pdomain)
  870. *pdomain = dom;
  871. rc = 0;
  872. } else
  873. rc = -ENODEV;
  874. kfree(device_status);
  875. return rc;
  876. }
  877. EXPORT_SYMBOL(pkey_findcard);
  878. /*
  879. * Find card and transform secure key into protected key.
  880. */
  881. int pkey_skey2pkey(const struct pkey_seckey *seckey,
  882. struct pkey_protkey *protkey)
  883. {
  884. u16 cardnr, domain;
  885. int rc, verify;
  886. /*
  887. * The pkey_sec2protkey call may fail when a card has been
  888. * addressed where the master key was changed after last fetch
  889. * of the mkvp into the cache. So first try without verify then
  890. * with verify enabled (thus refreshing the mkvp for each card).
  891. */
  892. for (verify = 0; verify < 2; verify++) {
  893. rc = pkey_findcard(seckey, &cardnr, &domain, verify);
  894. if (rc)
  895. continue;
  896. rc = pkey_sec2protkey(cardnr, domain, seckey, protkey);
  897. if (rc == 0)
  898. break;
  899. }
  900. if (rc)
  901. DEBUG_DBG("%s failed rc=%d\n", __func__, rc);
  902. return rc;
  903. }
  904. EXPORT_SYMBOL(pkey_skey2pkey);
  905. /*
  906. * Verify key and give back some info about the key.
  907. */
  908. int pkey_verifykey(const struct pkey_seckey *seckey,
  909. u16 *pcardnr, u16 *pdomain,
  910. u16 *pkeysize, u32 *pattributes)
  911. {
  912. struct secaeskeytoken *t = (struct secaeskeytoken *) seckey;
  913. u16 cardnr, domain;
  914. u64 mkvp[2];
  915. int rc;
  916. /* check the secure key for valid AES secure key */
  917. rc = check_secaeskeytoken((u8 *) seckey, 0);
  918. if (rc)
  919. goto out;
  920. if (pattributes)
  921. *pattributes = PKEY_VERIFY_ATTR_AES;
  922. if (pkeysize)
  923. *pkeysize = t->bitsize;
  924. /* try to find a card which can handle this key */
  925. rc = pkey_findcard(seckey, &cardnr, &domain, 1);
  926. if (rc)
  927. goto out;
  928. /* check mkvp for old mkvp match */
  929. rc = mkvp_cache_fetch(cardnr, domain, mkvp);
  930. if (rc)
  931. goto out;
  932. if (t->mkvp == mkvp[1]) {
  933. DEBUG_DBG("%s secure key has old mkvp\n", __func__);
  934. if (pattributes)
  935. *pattributes |= PKEY_VERIFY_ATTR_OLD_MKVP;
  936. }
  937. if (pcardnr)
  938. *pcardnr = cardnr;
  939. if (pdomain)
  940. *pdomain = domain;
  941. out:
  942. DEBUG_DBG("%s rc=%d\n", __func__, rc);
  943. return rc;
  944. }
  945. EXPORT_SYMBOL(pkey_verifykey);
  946. /*
  947. * File io functions
  948. */
  949. static long pkey_unlocked_ioctl(struct file *filp, unsigned int cmd,
  950. unsigned long arg)
  951. {
  952. int rc;
  953. switch (cmd) {
  954. case PKEY_GENSECK: {
  955. struct pkey_genseck __user *ugs = (void __user *) arg;
  956. struct pkey_genseck kgs;
  957. if (copy_from_user(&kgs, ugs, sizeof(kgs)))
  958. return -EFAULT;
  959. rc = pkey_genseckey(kgs.cardnr, kgs.domain,
  960. kgs.keytype, &kgs.seckey);
  961. DEBUG_DBG("%s pkey_genseckey()=%d\n", __func__, rc);
  962. if (rc)
  963. break;
  964. if (copy_to_user(ugs, &kgs, sizeof(kgs)))
  965. return -EFAULT;
  966. break;
  967. }
  968. case PKEY_CLR2SECK: {
  969. struct pkey_clr2seck __user *ucs = (void __user *) arg;
  970. struct pkey_clr2seck kcs;
  971. if (copy_from_user(&kcs, ucs, sizeof(kcs)))
  972. return -EFAULT;
  973. rc = pkey_clr2seckey(kcs.cardnr, kcs.domain, kcs.keytype,
  974. &kcs.clrkey, &kcs.seckey);
  975. DEBUG_DBG("%s pkey_clr2seckey()=%d\n", __func__, rc);
  976. if (rc)
  977. break;
  978. if (copy_to_user(ucs, &kcs, sizeof(kcs)))
  979. return -EFAULT;
  980. memzero_explicit(&kcs, sizeof(kcs));
  981. break;
  982. }
  983. case PKEY_SEC2PROTK: {
  984. struct pkey_sec2protk __user *usp = (void __user *) arg;
  985. struct pkey_sec2protk ksp;
  986. if (copy_from_user(&ksp, usp, sizeof(ksp)))
  987. return -EFAULT;
  988. rc = pkey_sec2protkey(ksp.cardnr, ksp.domain,
  989. &ksp.seckey, &ksp.protkey);
  990. DEBUG_DBG("%s pkey_sec2protkey()=%d\n", __func__, rc);
  991. if (rc)
  992. break;
  993. if (copy_to_user(usp, &ksp, sizeof(ksp)))
  994. return -EFAULT;
  995. break;
  996. }
  997. case PKEY_CLR2PROTK: {
  998. struct pkey_clr2protk __user *ucp = (void __user *) arg;
  999. struct pkey_clr2protk kcp;
  1000. if (copy_from_user(&kcp, ucp, sizeof(kcp)))
  1001. return -EFAULT;
  1002. rc = pkey_clr2protkey(kcp.keytype,
  1003. &kcp.clrkey, &kcp.protkey);
  1004. DEBUG_DBG("%s pkey_clr2protkey()=%d\n", __func__, rc);
  1005. if (rc)
  1006. break;
  1007. if (copy_to_user(ucp, &kcp, sizeof(kcp)))
  1008. return -EFAULT;
  1009. memzero_explicit(&kcp, sizeof(kcp));
  1010. break;
  1011. }
  1012. case PKEY_FINDCARD: {
  1013. struct pkey_findcard __user *ufc = (void __user *) arg;
  1014. struct pkey_findcard kfc;
  1015. if (copy_from_user(&kfc, ufc, sizeof(kfc)))
  1016. return -EFAULT;
  1017. rc = pkey_findcard(&kfc.seckey,
  1018. &kfc.cardnr, &kfc.domain, 1);
  1019. DEBUG_DBG("%s pkey_findcard()=%d\n", __func__, rc);
  1020. if (rc)
  1021. break;
  1022. if (copy_to_user(ufc, &kfc, sizeof(kfc)))
  1023. return -EFAULT;
  1024. break;
  1025. }
  1026. case PKEY_SKEY2PKEY: {
  1027. struct pkey_skey2pkey __user *usp = (void __user *) arg;
  1028. struct pkey_skey2pkey ksp;
  1029. if (copy_from_user(&ksp, usp, sizeof(ksp)))
  1030. return -EFAULT;
  1031. rc = pkey_skey2pkey(&ksp.seckey, &ksp.protkey);
  1032. DEBUG_DBG("%s pkey_skey2pkey()=%d\n", __func__, rc);
  1033. if (rc)
  1034. break;
  1035. if (copy_to_user(usp, &ksp, sizeof(ksp)))
  1036. return -EFAULT;
  1037. break;
  1038. }
  1039. case PKEY_VERIFYKEY: {
  1040. struct pkey_verifykey __user *uvk = (void __user *) arg;
  1041. struct pkey_verifykey kvk;
  1042. if (copy_from_user(&kvk, uvk, sizeof(kvk)))
  1043. return -EFAULT;
  1044. rc = pkey_verifykey(&kvk.seckey, &kvk.cardnr, &kvk.domain,
  1045. &kvk.keysize, &kvk.attributes);
  1046. DEBUG_DBG("%s pkey_verifykey()=%d\n", __func__, rc);
  1047. if (rc)
  1048. break;
  1049. if (copy_to_user(uvk, &kvk, sizeof(kvk)))
  1050. return -EFAULT;
  1051. break;
  1052. }
  1053. default:
  1054. /* unknown/unsupported ioctl cmd */
  1055. return -ENOTTY;
  1056. }
  1057. return rc;
  1058. }
  1059. /*
  1060. * Sysfs and file io operations
  1061. */
  1062. static const struct file_operations pkey_fops = {
  1063. .owner = THIS_MODULE,
  1064. .open = nonseekable_open,
  1065. .llseek = no_llseek,
  1066. .unlocked_ioctl = pkey_unlocked_ioctl,
  1067. };
  1068. static struct miscdevice pkey_dev = {
  1069. .name = "pkey",
  1070. .minor = MISC_DYNAMIC_MINOR,
  1071. .mode = 0666,
  1072. .fops = &pkey_fops,
  1073. };
  1074. /*
  1075. * Module init
  1076. */
  1077. static int __init pkey_init(void)
  1078. {
  1079. cpacf_mask_t pckmo_functions;
  1080. /* check for pckmo instructions available */
  1081. if (!cpacf_query(CPACF_PCKMO, &pckmo_functions))
  1082. return -EOPNOTSUPP;
  1083. if (!cpacf_test_func(&pckmo_functions, CPACF_PCKMO_ENC_AES_128_KEY) ||
  1084. !cpacf_test_func(&pckmo_functions, CPACF_PCKMO_ENC_AES_192_KEY) ||
  1085. !cpacf_test_func(&pckmo_functions, CPACF_PCKMO_ENC_AES_256_KEY))
  1086. return -EOPNOTSUPP;
  1087. pkey_debug_init();
  1088. return misc_register(&pkey_dev);
  1089. }
  1090. /*
  1091. * Module exit
  1092. */
  1093. static void __exit pkey_exit(void)
  1094. {
  1095. misc_deregister(&pkey_dev);
  1096. mkvp_cache_free();
  1097. pkey_debug_exit();
  1098. }
  1099. module_init(pkey_init);
  1100. module_exit(pkey_exit);