zcrypt_pcicc.c 18 KB

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  1. /*
  2. * linux/drivers/s390/crypto/zcrypt_pcicc.c
  3. *
  4. * zcrypt 2.1.0
  5. *
  6. * Copyright (C) 2001, 2006 IBM Corporation
  7. * Author(s): Robert Burroughs
  8. * Eric Rossman (edrossma@us.ibm.com)
  9. *
  10. * Hotplug & misc device support: Jochen Roehrig (roehrig@de.ibm.com)
  11. * Major cleanup & driver split: Martin Schwidefsky <schwidefsky@de.ibm.com>
  12. * Ralph Wuerthner <rwuerthn@de.ibm.com>
  13. *
  14. * This program is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License as published by
  16. * the Free Software Foundation; either version 2, or (at your option)
  17. * any later version.
  18. *
  19. * This program is distributed in the hope that it will be useful,
  20. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  21. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  22. * GNU General Public License for more details.
  23. *
  24. * You should have received a copy of the GNU General Public License
  25. * along with this program; if not, write to the Free Software
  26. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  27. */
  28. #include <linux/module.h>
  29. #include <linux/init.h>
  30. #include <linux/err.h>
  31. #include <asm/atomic.h>
  32. #include <asm/uaccess.h>
  33. #include "ap_bus.h"
  34. #include "zcrypt_api.h"
  35. #include "zcrypt_error.h"
  36. #include "zcrypt_pcicc.h"
  37. #include "zcrypt_cca_key.h"
  38. #define PCICC_MIN_MOD_SIZE 64 /* 512 bits */
  39. #define PCICC_MAX_MOD_SIZE_OLD 128 /* 1024 bits */
  40. #define PCICC_MAX_MOD_SIZE 256 /* 2048 bits */
  41. /*
  42. * PCICC cards need a speed rating of 0. This keeps them at the end of
  43. * the zcrypt device list (see zcrypt_api.c). PCICC cards are only
  44. * used if no other cards are present because they are slow and can only
  45. * cope with PKCS12 padded requests. The logic is queer. PKCS11 padded
  46. * requests are rejected. The modexpo function encrypts PKCS12 padded data
  47. * and decrypts any non-PKCS12 padded data (except PKCS11) in the assumption
  48. * that it's encrypted PKCS12 data. The modexpo_crt function always decrypts
  49. * the data in the assumption that its PKCS12 encrypted data.
  50. */
  51. #define PCICC_SPEED_RATING 0
  52. #define PCICC_MAX_MESSAGE_SIZE 0x710 /* max size type6 v1 crt message */
  53. #define PCICC_MAX_RESPONSE_SIZE 0x710 /* max size type86 v1 reply */
  54. #define PCICC_CLEANUP_TIME (15*HZ)
  55. static struct ap_device_id zcrypt_pcicc_ids[] = {
  56. { AP_DEVICE(AP_DEVICE_TYPE_PCICC) },
  57. { /* end of list */ },
  58. };
  59. #ifndef CONFIG_ZCRYPT_MONOLITHIC
  60. MODULE_DEVICE_TABLE(ap, zcrypt_pcicc_ids);
  61. MODULE_AUTHOR("IBM Corporation");
  62. MODULE_DESCRIPTION("PCICC Cryptographic Coprocessor device driver, "
  63. "Copyright 2001, 2006 IBM Corporation");
  64. MODULE_LICENSE("GPL");
  65. #endif
  66. static int zcrypt_pcicc_probe(struct ap_device *ap_dev);
  67. static void zcrypt_pcicc_remove(struct ap_device *ap_dev);
  68. static void zcrypt_pcicc_receive(struct ap_device *, struct ap_message *,
  69. struct ap_message *);
  70. static struct ap_driver zcrypt_pcicc_driver = {
  71. .probe = zcrypt_pcicc_probe,
  72. .remove = zcrypt_pcicc_remove,
  73. .receive = zcrypt_pcicc_receive,
  74. .ids = zcrypt_pcicc_ids,
  75. .request_timeout = PCICC_CLEANUP_TIME,
  76. };
  77. /**
  78. * The following is used to initialize the CPRB passed to the PCICC card
  79. * in a type6 message. The 3 fields that must be filled in at execution
  80. * time are req_parml, rpl_parml and usage_domain. Note that all three
  81. * fields are *little*-endian. Actually, everything about this interface
  82. * is ascii/little-endian, since the device has 'Intel inside'.
  83. *
  84. * The CPRB is followed immediately by the parm block.
  85. * The parm block contains:
  86. * - function code ('PD' 0x5044 or 'PK' 0x504B)
  87. * - rule block (0x0A00 'PKCS-1.2' or 0x0A00 'ZERO-PAD')
  88. * - VUD block
  89. */
  90. static struct CPRB static_cprb = {
  91. .cprb_len = __constant_cpu_to_le16(0x0070),
  92. .cprb_ver_id = 0x41,
  93. .func_id = {0x54,0x32},
  94. .checkpoint_flag= 0x01,
  95. .svr_namel = __constant_cpu_to_le16(0x0008),
  96. .svr_name = {'I','C','S','F',' ',' ',' ',' '}
  97. };
  98. /**
  99. * Check the message for PKCS11 padding.
  100. */
  101. static inline int is_PKCS11_padded(unsigned char *buffer, int length)
  102. {
  103. int i;
  104. if ((buffer[0] != 0x00) || (buffer[1] != 0x01))
  105. return 0;
  106. for (i = 2; i < length; i++)
  107. if (buffer[i] != 0xFF)
  108. break;
  109. if (i < 10 || i == length)
  110. return 0;
  111. if (buffer[i] != 0x00)
  112. return 0;
  113. return 1;
  114. }
  115. /**
  116. * Check the message for PKCS12 padding.
  117. */
  118. static inline int is_PKCS12_padded(unsigned char *buffer, int length)
  119. {
  120. int i;
  121. if ((buffer[0] != 0x00) || (buffer[1] != 0x02))
  122. return 0;
  123. for (i = 2; i < length; i++)
  124. if (buffer[i] == 0x00)
  125. break;
  126. if ((i < 10) || (i == length))
  127. return 0;
  128. if (buffer[i] != 0x00)
  129. return 0;
  130. return 1;
  131. }
  132. /**
  133. * Convert a ICAMEX message to a type6 MEX message.
  134. *
  135. * @zdev: crypto device pointer
  136. * @zreq: crypto request pointer
  137. * @mex: pointer to user input data
  138. *
  139. * Returns 0 on success or -EFAULT.
  140. */
  141. static int ICAMEX_msg_to_type6MEX_msg(struct zcrypt_device *zdev,
  142. struct ap_message *ap_msg,
  143. struct ica_rsa_modexpo *mex)
  144. {
  145. static struct type6_hdr static_type6_hdr = {
  146. .type = 0x06,
  147. .offset1 = 0x00000058,
  148. .agent_id = {0x01,0x00,0x43,0x43,0x41,0x2D,0x41,0x50,
  149. 0x50,0x4C,0x20,0x20,0x20,0x01,0x01,0x01},
  150. .function_code = {'P','K'},
  151. };
  152. static struct function_and_rules_block static_pke_function_and_rules ={
  153. .function_code = {'P','K'},
  154. .ulen = __constant_cpu_to_le16(10),
  155. .only_rule = {'P','K','C','S','-','1','.','2'}
  156. };
  157. struct {
  158. struct type6_hdr hdr;
  159. struct CPRB cprb;
  160. struct function_and_rules_block fr;
  161. unsigned short length;
  162. char text[0];
  163. } __attribute__((packed)) *msg = ap_msg->message;
  164. int vud_len, pad_len, size;
  165. /* VUD.ciphertext */
  166. if (copy_from_user(msg->text, mex->inputdata, mex->inputdatalength))
  167. return -EFAULT;
  168. if (is_PKCS11_padded(msg->text, mex->inputdatalength))
  169. return -EINVAL;
  170. /* static message header and f&r */
  171. msg->hdr = static_type6_hdr;
  172. msg->fr = static_pke_function_and_rules;
  173. if (is_PKCS12_padded(msg->text, mex->inputdatalength)) {
  174. /* strip the padding and adjust the data length */
  175. pad_len = strnlen(msg->text + 2, mex->inputdatalength - 2) + 3;
  176. if (pad_len <= 9 || pad_len >= mex->inputdatalength)
  177. return -ENODEV;
  178. vud_len = mex->inputdatalength - pad_len;
  179. memmove(msg->text, msg->text + pad_len, vud_len);
  180. msg->length = cpu_to_le16(vud_len + 2);
  181. /* Set up key after the variable length text. */
  182. size = zcrypt_type6_mex_key_en(mex, msg->text + vud_len, 0);
  183. if (size < 0)
  184. return size;
  185. size += sizeof(*msg) + vud_len; /* total size of msg */
  186. } else {
  187. vud_len = mex->inputdatalength;
  188. msg->length = cpu_to_le16(2 + vud_len);
  189. msg->hdr.function_code[1] = 'D';
  190. msg->fr.function_code[1] = 'D';
  191. /* Set up key after the variable length text. */
  192. size = zcrypt_type6_mex_key_de(mex, msg->text + vud_len, 0);
  193. if (size < 0)
  194. return size;
  195. size += sizeof(*msg) + vud_len; /* total size of msg */
  196. }
  197. /* message header, cprb and f&r */
  198. msg->hdr.ToCardLen1 = (size - sizeof(msg->hdr) + 3) & -4;
  199. msg->hdr.FromCardLen1 = PCICC_MAX_RESPONSE_SIZE - sizeof(msg->hdr);
  200. msg->cprb = static_cprb;
  201. msg->cprb.usage_domain[0]= AP_QID_QUEUE(zdev->ap_dev->qid);
  202. msg->cprb.req_parml = cpu_to_le16(size - sizeof(msg->hdr) -
  203. sizeof(msg->cprb));
  204. msg->cprb.rpl_parml = cpu_to_le16(msg->hdr.FromCardLen1);
  205. ap_msg->length = (size + 3) & -4;
  206. return 0;
  207. }
  208. /**
  209. * Convert a ICACRT message to a type6 CRT message.
  210. *
  211. * @zdev: crypto device pointer
  212. * @zreq: crypto request pointer
  213. * @crt: pointer to user input data
  214. *
  215. * Returns 0 on success or -EFAULT.
  216. */
  217. static int ICACRT_msg_to_type6CRT_msg(struct zcrypt_device *zdev,
  218. struct ap_message *ap_msg,
  219. struct ica_rsa_modexpo_crt *crt)
  220. {
  221. static struct type6_hdr static_type6_hdr = {
  222. .type = 0x06,
  223. .offset1 = 0x00000058,
  224. .agent_id = {0x01,0x00,0x43,0x43,0x41,0x2D,0x41,0x50,
  225. 0x50,0x4C,0x20,0x20,0x20,0x01,0x01,0x01},
  226. .function_code = {'P','D'},
  227. };
  228. static struct function_and_rules_block static_pkd_function_and_rules ={
  229. .function_code = {'P','D'},
  230. .ulen = __constant_cpu_to_le16(10),
  231. .only_rule = {'P','K','C','S','-','1','.','2'}
  232. };
  233. struct {
  234. struct type6_hdr hdr;
  235. struct CPRB cprb;
  236. struct function_and_rules_block fr;
  237. unsigned short length;
  238. char text[0];
  239. } __attribute__((packed)) *msg = ap_msg->message;
  240. int size;
  241. /* VUD.ciphertext */
  242. msg->length = cpu_to_le16(2 + crt->inputdatalength);
  243. if (copy_from_user(msg->text, crt->inputdata, crt->inputdatalength))
  244. return -EFAULT;
  245. if (is_PKCS11_padded(msg->text, crt->inputdatalength))
  246. return -EINVAL;
  247. /* Set up key after the variable length text. */
  248. size = zcrypt_type6_crt_key(crt, msg->text + crt->inputdatalength, 0);
  249. if (size < 0)
  250. return size;
  251. size += sizeof(*msg) + crt->inputdatalength; /* total size of msg */
  252. /* message header, cprb and f&r */
  253. msg->hdr = static_type6_hdr;
  254. msg->hdr.ToCardLen1 = (size - sizeof(msg->hdr) + 3) & -4;
  255. msg->hdr.FromCardLen1 = PCICC_MAX_RESPONSE_SIZE - sizeof(msg->hdr);
  256. msg->cprb = static_cprb;
  257. msg->cprb.usage_domain[0] = AP_QID_QUEUE(zdev->ap_dev->qid);
  258. msg->cprb.req_parml = msg->cprb.rpl_parml =
  259. cpu_to_le16(size - sizeof(msg->hdr) - sizeof(msg->cprb));
  260. msg->fr = static_pkd_function_and_rules;
  261. ap_msg->length = (size + 3) & -4;
  262. return 0;
  263. }
  264. /**
  265. * Copy results from a type 86 reply message back to user space.
  266. *
  267. * @zdev: crypto device pointer
  268. * @reply: reply AP message.
  269. * @data: pointer to user output data
  270. * @length: size of user output data
  271. *
  272. * Returns 0 on success or -EINVAL, -EFAULT, -EAGAIN in case of an error.
  273. */
  274. struct type86_reply {
  275. struct type86_hdr hdr;
  276. struct type86_fmt2_ext fmt2;
  277. struct CPRB cprb;
  278. unsigned char pad[4]; /* 4 byte function code/rules block ? */
  279. unsigned short length;
  280. char text[0];
  281. } __attribute__((packed));
  282. static int convert_type86(struct zcrypt_device *zdev,
  283. struct ap_message *reply,
  284. char __user *outputdata,
  285. unsigned int outputdatalength)
  286. {
  287. static unsigned char static_pad[] = {
  288. 0x00,0x02,
  289. 0x1B,0x7B,0x5D,0xB5,0x75,0x01,0x3D,0xFD,
  290. 0x8D,0xD1,0xC7,0x03,0x2D,0x09,0x23,0x57,
  291. 0x89,0x49,0xB9,0x3F,0xBB,0x99,0x41,0x5B,
  292. 0x75,0x21,0x7B,0x9D,0x3B,0x6B,0x51,0x39,
  293. 0xBB,0x0D,0x35,0xB9,0x89,0x0F,0x93,0xA5,
  294. 0x0B,0x47,0xF1,0xD3,0xBB,0xCB,0xF1,0x9D,
  295. 0x23,0x73,0x71,0xFF,0xF3,0xF5,0x45,0xFB,
  296. 0x61,0x29,0x23,0xFD,0xF1,0x29,0x3F,0x7F,
  297. 0x17,0xB7,0x1B,0xA9,0x19,0xBD,0x57,0xA9,
  298. 0xD7,0x95,0xA3,0xCB,0xED,0x1D,0xDB,0x45,
  299. 0x7D,0x11,0xD1,0x51,0x1B,0xED,0x71,0xE9,
  300. 0xB1,0xD1,0xAB,0xAB,0x21,0x2B,0x1B,0x9F,
  301. 0x3B,0x9F,0xF7,0xF7,0xBD,0x63,0xEB,0xAD,
  302. 0xDF,0xB3,0x6F,0x5B,0xDB,0x8D,0xA9,0x5D,
  303. 0xE3,0x7D,0x77,0x49,0x47,0xF5,0xA7,0xFD,
  304. 0xAB,0x2F,0x27,0x35,0x77,0xD3,0x49,0xC9,
  305. 0x09,0xEB,0xB1,0xF9,0xBF,0x4B,0xCB,0x2B,
  306. 0xEB,0xEB,0x05,0xFF,0x7D,0xC7,0x91,0x8B,
  307. 0x09,0x83,0xB9,0xB9,0x69,0x33,0x39,0x6B,
  308. 0x79,0x75,0x19,0xBF,0xBB,0x07,0x1D,0xBD,
  309. 0x29,0xBF,0x39,0x95,0x93,0x1D,0x35,0xC7,
  310. 0xC9,0x4D,0xE5,0x97,0x0B,0x43,0x9B,0xF1,
  311. 0x16,0x93,0x03,0x1F,0xA5,0xFB,0xDB,0xF3,
  312. 0x27,0x4F,0x27,0x61,0x05,0x1F,0xB9,0x23,
  313. 0x2F,0xC3,0x81,0xA9,0x23,0x71,0x55,0x55,
  314. 0xEB,0xED,0x41,0xE5,0xF3,0x11,0xF1,0x43,
  315. 0x69,0x03,0xBD,0x0B,0x37,0x0F,0x51,0x8F,
  316. 0x0B,0xB5,0x89,0x5B,0x67,0xA9,0xD9,0x4F,
  317. 0x01,0xF9,0x21,0x77,0x37,0x73,0x79,0xC5,
  318. 0x7F,0x51,0xC1,0xCF,0x97,0xA1,0x75,0xAD,
  319. 0x35,0x9D,0xD3,0xD3,0xA7,0x9D,0x5D,0x41,
  320. 0x6F,0x65,0x1B,0xCF,0xA9,0x87,0x91,0x09
  321. };
  322. struct type86_reply *msg = reply->message;
  323. unsigned short service_rc, service_rs;
  324. unsigned int reply_len, pad_len;
  325. char *data;
  326. service_rc = le16_to_cpu(msg->cprb.ccp_rtcode);
  327. if (unlikely(service_rc != 0)) {
  328. service_rs = le16_to_cpu(msg->cprb.ccp_rscode);
  329. if (service_rc == 8 && service_rs == 66)
  330. return -EINVAL;
  331. if (service_rc == 8 && service_rs == 65)
  332. return -EINVAL;
  333. if (service_rc == 8 && service_rs == 770) {
  334. zdev->max_mod_size = PCICC_MAX_MOD_SIZE_OLD;
  335. return -EAGAIN;
  336. }
  337. if (service_rc == 8 && service_rs == 783) {
  338. zdev->max_mod_size = PCICC_MAX_MOD_SIZE_OLD;
  339. return -EAGAIN;
  340. }
  341. zdev->online = 0;
  342. return -EAGAIN; /* repeat the request on a different device. */
  343. }
  344. data = msg->text;
  345. reply_len = le16_to_cpu(msg->length) - 2;
  346. if (reply_len > outputdatalength)
  347. return -EINVAL;
  348. /*
  349. * For all encipher requests, the length of the ciphertext (reply_len)
  350. * will always equal the modulus length. For MEX decipher requests
  351. * the output needs to get padded. Minimum pad size is 10.
  352. *
  353. * Currently, the cases where padding will be added is for:
  354. * - PCIXCC_MCL2 using a CRT form token (since PKD didn't support
  355. * ZERO-PAD and CRT is only supported for PKD requests)
  356. * - PCICC, always
  357. */
  358. pad_len = outputdatalength - reply_len;
  359. if (pad_len > 0) {
  360. if (pad_len < 10)
  361. return -EINVAL;
  362. /* 'restore' padding left in the PCICC/PCIXCC card. */
  363. if (copy_to_user(outputdata, static_pad, pad_len - 1))
  364. return -EFAULT;
  365. if (put_user(0, outputdata + pad_len - 1))
  366. return -EFAULT;
  367. }
  368. /* Copy the crypto response to user space. */
  369. if (copy_to_user(outputdata + pad_len, data, reply_len))
  370. return -EFAULT;
  371. return 0;
  372. }
  373. static int convert_response(struct zcrypt_device *zdev,
  374. struct ap_message *reply,
  375. char __user *outputdata,
  376. unsigned int outputdatalength)
  377. {
  378. struct type86_reply *msg = reply->message;
  379. /* Response type byte is the second byte in the response. */
  380. switch (msg->hdr.type) {
  381. case TYPE82_RSP_CODE:
  382. case TYPE88_RSP_CODE:
  383. return convert_error(zdev, reply);
  384. case TYPE86_RSP_CODE:
  385. if (msg->hdr.reply_code)
  386. return convert_error(zdev, reply);
  387. if (msg->cprb.cprb_ver_id == 0x01)
  388. return convert_type86(zdev, reply,
  389. outputdata, outputdatalength);
  390. /* no break, incorrect cprb version is an unknown response */
  391. default: /* Unknown response type, this should NEVER EVER happen */
  392. zdev->online = 0;
  393. return -EAGAIN; /* repeat the request on a different device. */
  394. }
  395. }
  396. /**
  397. * This function is called from the AP bus code after a crypto request
  398. * "msg" has finished with the reply message "reply".
  399. * It is called from tasklet context.
  400. * @ap_dev: pointer to the AP device
  401. * @msg: pointer to the AP message
  402. * @reply: pointer to the AP reply message
  403. */
  404. static void zcrypt_pcicc_receive(struct ap_device *ap_dev,
  405. struct ap_message *msg,
  406. struct ap_message *reply)
  407. {
  408. static struct error_hdr error_reply = {
  409. .type = TYPE82_RSP_CODE,
  410. .reply_code = REP82_ERROR_MACHINE_FAILURE,
  411. };
  412. struct type86_reply *t86r = reply->message;
  413. int length;
  414. /* Copy the reply message to the request message buffer. */
  415. if (IS_ERR(reply))
  416. memcpy(msg->message, &error_reply, sizeof(error_reply));
  417. else if (t86r->hdr.type == TYPE86_RSP_CODE &&
  418. t86r->cprb.cprb_ver_id == 0x01) {
  419. length = sizeof(struct type86_reply) + t86r->length - 2;
  420. length = min(PCICC_MAX_RESPONSE_SIZE, length);
  421. memcpy(msg->message, reply->message, length);
  422. } else
  423. memcpy(msg->message, reply->message, sizeof error_reply);
  424. complete((struct completion *) msg->private);
  425. }
  426. static atomic_t zcrypt_step = ATOMIC_INIT(0);
  427. /**
  428. * The request distributor calls this function if it picked the PCICC
  429. * device to handle a modexpo request.
  430. * @zdev: pointer to zcrypt_device structure that identifies the
  431. * PCICC device to the request distributor
  432. * @mex: pointer to the modexpo request buffer
  433. */
  434. static long zcrypt_pcicc_modexpo(struct zcrypt_device *zdev,
  435. struct ica_rsa_modexpo *mex)
  436. {
  437. struct ap_message ap_msg;
  438. struct completion work;
  439. int rc;
  440. ap_msg.message = (void *) get_zeroed_page(GFP_KERNEL);
  441. if (!ap_msg.message)
  442. return -ENOMEM;
  443. ap_msg.length = PAGE_SIZE;
  444. ap_msg.psmid = (((unsigned long long) current->pid) << 32) +
  445. atomic_inc_return(&zcrypt_step);
  446. ap_msg.private = &work;
  447. rc = ICAMEX_msg_to_type6MEX_msg(zdev, &ap_msg, mex);
  448. if (rc)
  449. goto out_free;
  450. init_completion(&work);
  451. ap_queue_message(zdev->ap_dev, &ap_msg);
  452. rc = wait_for_completion_interruptible(&work);
  453. if (rc == 0)
  454. rc = convert_response(zdev, &ap_msg, mex->outputdata,
  455. mex->outputdatalength);
  456. else
  457. /* Signal pending. */
  458. ap_cancel_message(zdev->ap_dev, &ap_msg);
  459. out_free:
  460. free_page((unsigned long) ap_msg.message);
  461. return rc;
  462. }
  463. /**
  464. * The request distributor calls this function if it picked the PCICC
  465. * device to handle a modexpo_crt request.
  466. * @zdev: pointer to zcrypt_device structure that identifies the
  467. * PCICC device to the request distributor
  468. * @crt: pointer to the modexpoc_crt request buffer
  469. */
  470. static long zcrypt_pcicc_modexpo_crt(struct zcrypt_device *zdev,
  471. struct ica_rsa_modexpo_crt *crt)
  472. {
  473. struct ap_message ap_msg;
  474. struct completion work;
  475. int rc;
  476. ap_msg.message = (void *) get_zeroed_page(GFP_KERNEL);
  477. if (!ap_msg.message)
  478. return -ENOMEM;
  479. ap_msg.length = PAGE_SIZE;
  480. ap_msg.psmid = (((unsigned long long) current->pid) << 32) +
  481. atomic_inc_return(&zcrypt_step);
  482. ap_msg.private = &work;
  483. rc = ICACRT_msg_to_type6CRT_msg(zdev, &ap_msg, crt);
  484. if (rc)
  485. goto out_free;
  486. init_completion(&work);
  487. ap_queue_message(zdev->ap_dev, &ap_msg);
  488. rc = wait_for_completion_interruptible(&work);
  489. if (rc == 0)
  490. rc = convert_response(zdev, &ap_msg, crt->outputdata,
  491. crt->outputdatalength);
  492. else
  493. /* Signal pending. */
  494. ap_cancel_message(zdev->ap_dev, &ap_msg);
  495. out_free:
  496. free_page((unsigned long) ap_msg.message);
  497. return rc;
  498. }
  499. /**
  500. * The crypto operations for a PCICC card.
  501. */
  502. static struct zcrypt_ops zcrypt_pcicc_ops = {
  503. .rsa_modexpo = zcrypt_pcicc_modexpo,
  504. .rsa_modexpo_crt = zcrypt_pcicc_modexpo_crt,
  505. };
  506. /**
  507. * Probe function for PCICC cards. It always accepts the AP device
  508. * since the bus_match already checked the hardware type.
  509. * @ap_dev: pointer to the AP device.
  510. */
  511. static int zcrypt_pcicc_probe(struct ap_device *ap_dev)
  512. {
  513. struct zcrypt_device *zdev;
  514. int rc;
  515. zdev = zcrypt_device_alloc(PCICC_MAX_RESPONSE_SIZE);
  516. if (!zdev)
  517. return -ENOMEM;
  518. zdev->ap_dev = ap_dev;
  519. zdev->ops = &zcrypt_pcicc_ops;
  520. zdev->online = 1;
  521. zdev->user_space_type = ZCRYPT_PCICC;
  522. zdev->type_string = "PCICC";
  523. zdev->min_mod_size = PCICC_MIN_MOD_SIZE;
  524. zdev->max_mod_size = PCICC_MAX_MOD_SIZE;
  525. zdev->speed_rating = PCICC_SPEED_RATING;
  526. ap_dev->reply = &zdev->reply;
  527. ap_dev->private = zdev;
  528. rc = zcrypt_device_register(zdev);
  529. if (rc)
  530. goto out_free;
  531. return 0;
  532. out_free:
  533. ap_dev->private = NULL;
  534. zcrypt_device_free(zdev);
  535. return rc;
  536. }
  537. /**
  538. * This is called to remove the extended PCICC driver information
  539. * if an AP device is removed.
  540. */
  541. static void zcrypt_pcicc_remove(struct ap_device *ap_dev)
  542. {
  543. struct zcrypt_device *zdev = ap_dev->private;
  544. zcrypt_device_unregister(zdev);
  545. }
  546. int __init zcrypt_pcicc_init(void)
  547. {
  548. return ap_driver_register(&zcrypt_pcicc_driver, THIS_MODULE, "pcicc");
  549. }
  550. void zcrypt_pcicc_exit(void)
  551. {
  552. ap_driver_unregister(&zcrypt_pcicc_driver);
  553. }
  554. #ifndef CONFIG_ZCRYPT_MONOLITHIC
  555. module_init(zcrypt_pcicc_init);
  556. module_exit(zcrypt_pcicc_exit);
  557. #endif