z90hardware.c 58 KB

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  1. /*
  2. * linux/drivers/s390/crypto/z90hardware.c
  3. *
  4. * z90crypt 1.3.2
  5. *
  6. * Copyright (C) 2001, 2004 IBM Corporation
  7. * Author(s): Robert Burroughs (burrough@us.ibm.com)
  8. * Eric Rossman (edrossma@us.ibm.com)
  9. *
  10. * Hotplug & misc device support: Jochen Roehrig (roehrig@de.ibm.com)
  11. *
  12. * This program is free software; you can redistribute it and/or modify
  13. * it under the terms of the GNU General Public License as published by
  14. * the Free Software Foundation; either version 2, or (at your option)
  15. * any later version.
  16. *
  17. * This program is distributed in the hope that it will be useful,
  18. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  19. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  20. * GNU General Public License for more details.
  21. *
  22. * You should have received a copy of the GNU General Public License
  23. * along with this program; if not, write to the Free Software
  24. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  25. */
  26. #include <asm/uaccess.h>
  27. #include <linux/compiler.h>
  28. #include <linux/delay.h>
  29. #include <linux/init.h>
  30. #include <linux/module.h>
  31. #include "z90crypt.h"
  32. #include "z90common.h"
  33. #define VERSION_Z90HARDWARE_C "$Revision: 1.33 $"
  34. char z90hardware_version[] __initdata =
  35. "z90hardware.o (" VERSION_Z90HARDWARE_C "/"
  36. VERSION_Z90COMMON_H "/" VERSION_Z90CRYPT_H ")";
  37. struct cca_token_hdr {
  38. unsigned char token_identifier;
  39. unsigned char version;
  40. unsigned short token_length;
  41. unsigned char reserved[4];
  42. };
  43. #define CCA_TKN_HDR_ID_EXT 0x1E
  44. struct cca_private_ext_ME_sec {
  45. unsigned char section_identifier;
  46. unsigned char version;
  47. unsigned short section_length;
  48. unsigned char private_key_hash[20];
  49. unsigned char reserved1[4];
  50. unsigned char key_format;
  51. unsigned char reserved2;
  52. unsigned char key_name_hash[20];
  53. unsigned char key_use_flags[4];
  54. unsigned char reserved3[6];
  55. unsigned char reserved4[24];
  56. unsigned char confounder[24];
  57. unsigned char exponent[128];
  58. unsigned char modulus[128];
  59. };
  60. #define CCA_PVT_USAGE_ALL 0x80
  61. struct cca_public_sec {
  62. unsigned char section_identifier;
  63. unsigned char version;
  64. unsigned short section_length;
  65. unsigned char reserved[2];
  66. unsigned short exponent_len;
  67. unsigned short modulus_bit_len;
  68. unsigned short modulus_byte_len;
  69. unsigned char exponent[3];
  70. };
  71. struct cca_private_ext_ME {
  72. struct cca_token_hdr pvtMEHdr;
  73. struct cca_private_ext_ME_sec pvtMESec;
  74. struct cca_public_sec pubMESec;
  75. };
  76. struct cca_public_key {
  77. struct cca_token_hdr pubHdr;
  78. struct cca_public_sec pubSec;
  79. };
  80. struct cca_pvt_ext_CRT_sec {
  81. unsigned char section_identifier;
  82. unsigned char version;
  83. unsigned short section_length;
  84. unsigned char private_key_hash[20];
  85. unsigned char reserved1[4];
  86. unsigned char key_format;
  87. unsigned char reserved2;
  88. unsigned char key_name_hash[20];
  89. unsigned char key_use_flags[4];
  90. unsigned short p_len;
  91. unsigned short q_len;
  92. unsigned short dp_len;
  93. unsigned short dq_len;
  94. unsigned short u_len;
  95. unsigned short mod_len;
  96. unsigned char reserved3[4];
  97. unsigned short pad_len;
  98. unsigned char reserved4[52];
  99. unsigned char confounder[8];
  100. };
  101. #define CCA_PVT_EXT_CRT_SEC_ID_PVT 0x08
  102. #define CCA_PVT_EXT_CRT_SEC_FMT_CL 0x40
  103. struct cca_private_ext_CRT {
  104. struct cca_token_hdr pvtCrtHdr;
  105. struct cca_pvt_ext_CRT_sec pvtCrtSec;
  106. struct cca_public_sec pubCrtSec;
  107. };
  108. struct ap_status_word {
  109. unsigned char q_stat_flags;
  110. unsigned char response_code;
  111. unsigned char reserved[2];
  112. };
  113. #define AP_Q_STATUS_EMPTY 0x80
  114. #define AP_Q_STATUS_REPLIES_WAITING 0x40
  115. #define AP_Q_STATUS_ARRAY_FULL 0x20
  116. #define AP_RESPONSE_NORMAL 0x00
  117. #define AP_RESPONSE_Q_NOT_AVAIL 0x01
  118. #define AP_RESPONSE_RESET_IN_PROGRESS 0x02
  119. #define AP_RESPONSE_DECONFIGURED 0x03
  120. #define AP_RESPONSE_CHECKSTOPPED 0x04
  121. #define AP_RESPONSE_BUSY 0x05
  122. #define AP_RESPONSE_Q_FULL 0x10
  123. #define AP_RESPONSE_NO_PENDING_REPLY 0x10
  124. #define AP_RESPONSE_INDEX_TOO_BIG 0x11
  125. #define AP_RESPONSE_NO_FIRST_PART 0x13
  126. #define AP_RESPONSE_MESSAGE_TOO_BIG 0x15
  127. #define AP_MAX_CDX_BITL 4
  128. #define AP_RQID_RESERVED_BITL 4
  129. #define SKIP_BITL (AP_MAX_CDX_BITL + AP_RQID_RESERVED_BITL)
  130. struct type4_hdr {
  131. unsigned char reserved1;
  132. unsigned char msg_type_code;
  133. unsigned short msg_len;
  134. unsigned char request_code;
  135. unsigned char msg_fmt;
  136. unsigned short reserved2;
  137. };
  138. #define TYPE4_TYPE_CODE 0x04
  139. #define TYPE4_REQU_CODE 0x40
  140. #define TYPE4_SME_LEN 0x0188
  141. #define TYPE4_LME_LEN 0x0308
  142. #define TYPE4_SCR_LEN 0x01E0
  143. #define TYPE4_LCR_LEN 0x03A0
  144. #define TYPE4_SME_FMT 0x00
  145. #define TYPE4_LME_FMT 0x10
  146. #define TYPE4_SCR_FMT 0x40
  147. #define TYPE4_LCR_FMT 0x50
  148. struct type4_sme {
  149. struct type4_hdr header;
  150. unsigned char message[128];
  151. unsigned char exponent[128];
  152. unsigned char modulus[128];
  153. };
  154. struct type4_lme {
  155. struct type4_hdr header;
  156. unsigned char message[256];
  157. unsigned char exponent[256];
  158. unsigned char modulus[256];
  159. };
  160. struct type4_scr {
  161. struct type4_hdr header;
  162. unsigned char message[128];
  163. unsigned char dp[72];
  164. unsigned char dq[64];
  165. unsigned char p[72];
  166. unsigned char q[64];
  167. unsigned char u[72];
  168. };
  169. struct type4_lcr {
  170. struct type4_hdr header;
  171. unsigned char message[256];
  172. unsigned char dp[136];
  173. unsigned char dq[128];
  174. unsigned char p[136];
  175. unsigned char q[128];
  176. unsigned char u[136];
  177. };
  178. union type4_msg {
  179. struct type4_sme sme;
  180. struct type4_lme lme;
  181. struct type4_scr scr;
  182. struct type4_lcr lcr;
  183. };
  184. struct type84_hdr {
  185. unsigned char reserved1;
  186. unsigned char code;
  187. unsigned short len;
  188. unsigned char reserved2[4];
  189. };
  190. #define TYPE84_RSP_CODE 0x84
  191. struct type6_hdr {
  192. unsigned char reserved1;
  193. unsigned char type;
  194. unsigned char reserved2[2];
  195. unsigned char right[4];
  196. unsigned char reserved3[2];
  197. unsigned char reserved4[2];
  198. unsigned char apfs[4];
  199. unsigned int offset1;
  200. unsigned int offset2;
  201. unsigned int offset3;
  202. unsigned int offset4;
  203. unsigned char agent_id[16];
  204. unsigned char rqid[2];
  205. unsigned char reserved5[2];
  206. unsigned char function_code[2];
  207. unsigned char reserved6[2];
  208. unsigned int ToCardLen1;
  209. unsigned int ToCardLen2;
  210. unsigned int ToCardLen3;
  211. unsigned int ToCardLen4;
  212. unsigned int FromCardLen1;
  213. unsigned int FromCardLen2;
  214. unsigned int FromCardLen3;
  215. unsigned int FromCardLen4;
  216. };
  217. struct CPRB {
  218. unsigned char cprb_len[2];
  219. unsigned char cprb_ver_id;
  220. unsigned char pad_000;
  221. unsigned char srpi_rtcode[4];
  222. unsigned char srpi_verb;
  223. unsigned char flags;
  224. unsigned char func_id[2];
  225. unsigned char checkpoint_flag;
  226. unsigned char resv2;
  227. unsigned char req_parml[2];
  228. unsigned char req_parmp[4];
  229. unsigned char req_datal[4];
  230. unsigned char req_datap[4];
  231. unsigned char rpl_parml[2];
  232. unsigned char pad_001[2];
  233. unsigned char rpl_parmp[4];
  234. unsigned char rpl_datal[4];
  235. unsigned char rpl_datap[4];
  236. unsigned char ccp_rscode[2];
  237. unsigned char ccp_rtcode[2];
  238. unsigned char repd_parml[2];
  239. unsigned char mac_data_len[2];
  240. unsigned char repd_datal[4];
  241. unsigned char req_pc[2];
  242. unsigned char res_origin[8];
  243. unsigned char mac_value[8];
  244. unsigned char logon_id[8];
  245. unsigned char usage_domain[2];
  246. unsigned char resv3[18];
  247. unsigned char svr_namel[2];
  248. unsigned char svr_name[8];
  249. };
  250. struct type6_msg {
  251. struct type6_hdr header;
  252. struct CPRB CPRB;
  253. };
  254. union request_msg {
  255. union type4_msg t4msg;
  256. struct type6_msg t6msg;
  257. };
  258. struct request_msg_ext {
  259. int q_nr;
  260. unsigned char *psmid;
  261. union request_msg reqMsg;
  262. };
  263. struct type82_hdr {
  264. unsigned char reserved1;
  265. unsigned char type;
  266. unsigned char reserved2[2];
  267. unsigned char reply_code;
  268. unsigned char reserved3[3];
  269. };
  270. #define TYPE82_RSP_CODE 0x82
  271. #define REPLY_ERROR_MACHINE_FAILURE 0x10
  272. #define REPLY_ERROR_PREEMPT_FAILURE 0x12
  273. #define REPLY_ERROR_CHECKPT_FAILURE 0x14
  274. #define REPLY_ERROR_MESSAGE_TYPE 0x20
  275. #define REPLY_ERROR_INVALID_COMM_CD 0x21
  276. #define REPLY_ERROR_INVALID_MSG_LEN 0x23
  277. #define REPLY_ERROR_RESERVD_FIELD 0x24
  278. #define REPLY_ERROR_FORMAT_FIELD 0x29
  279. #define REPLY_ERROR_INVALID_COMMAND 0x30
  280. #define REPLY_ERROR_MALFORMED_MSG 0x40
  281. #define REPLY_ERROR_RESERVED_FIELDO 0x50
  282. #define REPLY_ERROR_WORD_ALIGNMENT 0x60
  283. #define REPLY_ERROR_MESSAGE_LENGTH 0x80
  284. #define REPLY_ERROR_OPERAND_INVALID 0x82
  285. #define REPLY_ERROR_OPERAND_SIZE 0x84
  286. #define REPLY_ERROR_EVEN_MOD_IN_OPND 0x85
  287. #define REPLY_ERROR_RESERVED_FIELD 0x88
  288. #define REPLY_ERROR_TRANSPORT_FAIL 0x90
  289. #define REPLY_ERROR_PACKET_TRUNCATED 0xA0
  290. #define REPLY_ERROR_ZERO_BUFFER_LEN 0xB0
  291. struct type86_hdr {
  292. unsigned char reserved1;
  293. unsigned char type;
  294. unsigned char format;
  295. unsigned char reserved2;
  296. unsigned char reply_code;
  297. unsigned char reserved3[3];
  298. };
  299. #define TYPE86_RSP_CODE 0x86
  300. #define TYPE86_FMT2 0x02
  301. struct type86_fmt2_msg {
  302. struct type86_hdr hdr;
  303. unsigned char reserved[4];
  304. unsigned char apfs[4];
  305. unsigned int count1;
  306. unsigned int offset1;
  307. unsigned int count2;
  308. unsigned int offset2;
  309. unsigned int count3;
  310. unsigned int offset3;
  311. unsigned int count4;
  312. unsigned int offset4;
  313. };
  314. static struct type6_hdr static_type6_hdr = {
  315. 0x00,
  316. 0x06,
  317. {0x00,0x00},
  318. {0x00,0x00,0x00,0x00},
  319. {0x00,0x00},
  320. {0x00,0x00},
  321. {0x00,0x00,0x00,0x00},
  322. 0x00000058,
  323. 0x00000000,
  324. 0x00000000,
  325. 0x00000000,
  326. {0x01,0x00,0x43,0x43,0x41,0x2D,0x41,0x50,
  327. 0x50,0x4C,0x20,0x20,0x20,0x01,0x01,0x01},
  328. {0x00,0x00},
  329. {0x00,0x00},
  330. {0x50,0x44},
  331. {0x00,0x00},
  332. 0x00000000,
  333. 0x00000000,
  334. 0x00000000,
  335. 0x00000000,
  336. 0x00000000,
  337. 0x00000000,
  338. 0x00000000,
  339. 0x00000000
  340. };
  341. static struct type6_hdr static_type6_hdrX = {
  342. 0x00,
  343. 0x06,
  344. {0x00,0x00},
  345. {0x00,0x00,0x00,0x00},
  346. {0x00,0x00},
  347. {0x00,0x00},
  348. {0x00,0x00,0x00,0x00},
  349. 0x00000058,
  350. 0x00000000,
  351. 0x00000000,
  352. 0x00000000,
  353. {0x43,0x41,0x00,0x00,0x00,0x00,0x00,0x00,
  354. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  355. {0x00,0x00},
  356. {0x00,0x00},
  357. {0x50,0x44},
  358. {0x00,0x00},
  359. 0x00000000,
  360. 0x00000000,
  361. 0x00000000,
  362. 0x00000000,
  363. 0x00000000,
  364. 0x00000000,
  365. 0x00000000,
  366. 0x00000000
  367. };
  368. static struct CPRB static_cprb = {
  369. {0x70,0x00},
  370. 0x41,
  371. 0x00,
  372. {0x00,0x00,0x00,0x00},
  373. 0x00,
  374. 0x00,
  375. {0x54,0x32},
  376. 0x01,
  377. 0x00,
  378. {0x00,0x00},
  379. {0x00,0x00,0x00,0x00},
  380. {0x00,0x00,0x00,0x00},
  381. {0x00,0x00,0x00,0x00},
  382. {0x00,0x00},
  383. {0x00,0x00},
  384. {0x00,0x00,0x00,0x00},
  385. {0x00,0x00,0x00,0x00},
  386. {0x00,0x00,0x00,0x00},
  387. {0x00,0x00},
  388. {0x00,0x00},
  389. {0x00,0x00},
  390. {0x00,0x00},
  391. {0x00,0x00,0x00,0x00},
  392. {0x00,0x00},
  393. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  394. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  395. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  396. {0x00,0x00},
  397. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  398. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  399. 0x00,0x00},
  400. {0x08,0x00},
  401. {0x49,0x43,0x53,0x46,0x20,0x20,0x20,0x20}
  402. };
  403. struct function_and_rules_block {
  404. unsigned char function_code[2];
  405. unsigned char ulen[2];
  406. unsigned char only_rule[8];
  407. };
  408. static struct function_and_rules_block static_pkd_function_and_rules = {
  409. {0x50,0x44},
  410. {0x0A,0x00},
  411. {'P','K','C','S','-','1','.','2'}
  412. };
  413. static struct function_and_rules_block static_pke_function_and_rules = {
  414. {0x50,0x4B},
  415. {0x0A,0x00},
  416. {'P','K','C','S','-','1','.','2'}
  417. };
  418. struct T6_keyBlock_hdr {
  419. unsigned char blen[2];
  420. unsigned char ulen[2];
  421. unsigned char flags[2];
  422. };
  423. static struct T6_keyBlock_hdr static_T6_keyBlock_hdr = {
  424. {0x89,0x01},
  425. {0x87,0x01},
  426. {0x00}
  427. };
  428. static struct CPRBX static_cprbx = {
  429. 0x00DC,
  430. 0x02,
  431. {0x00,0x00,0x00},
  432. {0x54,0x32},
  433. {0x00,0x00,0x00,0x00},
  434. 0x00000000,
  435. 0x00000000,
  436. 0x00000000,
  437. 0x00000000,
  438. 0x00000000,
  439. 0x00000000,
  440. 0x00000000,
  441. {0x00,0x00,0x00,0x00},
  442. 0x00000000,
  443. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  444. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  445. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  446. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  447. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  448. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  449. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  450. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  451. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  452. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  453. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  454. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  455. 0x0000,
  456. 0x0000,
  457. 0x00000000,
  458. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  459. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  460. 0x00,
  461. 0x00,
  462. 0x0000,
  463. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  464. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  465. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  466. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00}
  467. };
  468. static struct function_and_rules_block static_pkd_function_and_rulesX_MCL2 = {
  469. {0x50,0x44},
  470. {0x00,0x0A},
  471. {'P','K','C','S','-','1','.','2'}
  472. };
  473. static struct function_and_rules_block static_pke_function_and_rulesX_MCL2 = {
  474. {0x50,0x4B},
  475. {0x00,0x0A},
  476. {'Z','E','R','O','-','P','A','D'}
  477. };
  478. static struct function_and_rules_block static_pkd_function_and_rulesX = {
  479. {0x50,0x44},
  480. {0x00,0x0A},
  481. {'Z','E','R','O','-','P','A','D'}
  482. };
  483. static struct function_and_rules_block static_pke_function_and_rulesX = {
  484. {0x50,0x4B},
  485. {0x00,0x0A},
  486. {'M','R','P',' ',' ',' ',' ',' '}
  487. };
  488. struct T6_keyBlock_hdrX {
  489. unsigned short blen;
  490. unsigned short ulen;
  491. unsigned char flags[2];
  492. };
  493. static unsigned char static_pad[256] = {
  494. 0x1B,0x7B,0x5D,0xB5,0x75,0x01,0x3D,0xFD,0x8D,0xD1,0xC7,0x03,0x2D,0x09,0x23,0x57,
  495. 0x89,0x49,0xB9,0x3F,0xBB,0x99,0x41,0x5B,0x75,0x21,0x7B,0x9D,0x3B,0x6B,0x51,0x39,
  496. 0xBB,0x0D,0x35,0xB9,0x89,0x0F,0x93,0xA5,0x0B,0x47,0xF1,0xD3,0xBB,0xCB,0xF1,0x9D,
  497. 0x23,0x73,0x71,0xFF,0xF3,0xF5,0x45,0xFB,0x61,0x29,0x23,0xFD,0xF1,0x29,0x3F,0x7F,
  498. 0x17,0xB7,0x1B,0xA9,0x19,0xBD,0x57,0xA9,0xD7,0x95,0xA3,0xCB,0xED,0x1D,0xDB,0x45,
  499. 0x7D,0x11,0xD1,0x51,0x1B,0xED,0x71,0xE9,0xB1,0xD1,0xAB,0xAB,0x21,0x2B,0x1B,0x9F,
  500. 0x3B,0x9F,0xF7,0xF7,0xBD,0x63,0xEB,0xAD,0xDF,0xB3,0x6F,0x5B,0xDB,0x8D,0xA9,0x5D,
  501. 0xE3,0x7D,0x77,0x49,0x47,0xF5,0xA7,0xFD,0xAB,0x2F,0x27,0x35,0x77,0xD3,0x49,0xC9,
  502. 0x09,0xEB,0xB1,0xF9,0xBF,0x4B,0xCB,0x2B,0xEB,0xEB,0x05,0xFF,0x7D,0xC7,0x91,0x8B,
  503. 0x09,0x83,0xB9,0xB9,0x69,0x33,0x39,0x6B,0x79,0x75,0x19,0xBF,0xBB,0x07,0x1D,0xBD,
  504. 0x29,0xBF,0x39,0x95,0x93,0x1D,0x35,0xC7,0xC9,0x4D,0xE5,0x97,0x0B,0x43,0x9B,0xF1,
  505. 0x16,0x93,0x03,0x1F,0xA5,0xFB,0xDB,0xF3,0x27,0x4F,0x27,0x61,0x05,0x1F,0xB9,0x23,
  506. 0x2F,0xC3,0x81,0xA9,0x23,0x71,0x55,0x55,0xEB,0xED,0x41,0xE5,0xF3,0x11,0xF1,0x43,
  507. 0x69,0x03,0xBD,0x0B,0x37,0x0F,0x51,0x8F,0x0B,0xB5,0x89,0x5B,0x67,0xA9,0xD9,0x4F,
  508. 0x01,0xF9,0x21,0x77,0x37,0x73,0x79,0xC5,0x7F,0x51,0xC1,0xCF,0x97,0xA1,0x75,0xAD,
  509. 0x35,0x9D,0xD3,0xD3,0xA7,0x9D,0x5D,0x41,0x6F,0x65,0x1B,0xCF,0xA9,0x87,0x91,0x09
  510. };
  511. static struct cca_private_ext_ME static_pvt_me_key = {
  512. {
  513. 0x1E,
  514. 0x00,
  515. 0x0183,
  516. {0x00,0x00,0x00,0x00}
  517. },
  518. {
  519. 0x02,
  520. 0x00,
  521. 0x016C,
  522. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  523. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  524. 0x00,0x00,0x00,0x00},
  525. {0x00,0x00,0x00,0x00},
  526. 0x00,
  527. 0x00,
  528. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  529. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  530. 0x00,0x00,0x00,0x00},
  531. {0x80,0x00,0x00,0x00},
  532. {0x00,0x00,0x00,0x00,0x00,0x00},
  533. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  534. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  535. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  536. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  537. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  538. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  539. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  540. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  541. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  542. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  543. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  544. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  545. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  546. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  547. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  548. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  549. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  550. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  551. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  552. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  553. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  554. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00},
  555. {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  556. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  557. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  558. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  559. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  560. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  561. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  562. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  563. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  564. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  565. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  566. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  567. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  568. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  569. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  570. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00}
  571. },
  572. {
  573. 0x04,
  574. 0x00,
  575. 0x000F,
  576. {0x00,0x00},
  577. 0x0003,
  578. 0x0000,
  579. 0x0000,
  580. {0x01,0x00,0x01}
  581. }
  582. };
  583. static struct cca_public_key static_public_key = {
  584. {
  585. 0x1E,
  586. 0x00,
  587. 0x0000,
  588. {0x00,0x00,0x00,0x00}
  589. },
  590. {
  591. 0x04,
  592. 0x00,
  593. 0x0000,
  594. {0x00,0x00},
  595. 0x0000,
  596. 0x0000,
  597. 0x0000,
  598. {0x01,0x00,0x01}
  599. }
  600. };
  601. #define FIXED_TYPE6_ME_LEN 0x0000025F
  602. #define FIXED_TYPE6_ME_EN_LEN 0x000000F0
  603. #define FIXED_TYPE6_ME_LENX 0x000002CB
  604. #define FIXED_TYPE6_ME_EN_LENX 0x0000015C
  605. static struct cca_public_sec static_cca_pub_sec = {
  606. 0x04,
  607. 0x00,
  608. 0x000f,
  609. {0x00,0x00},
  610. 0x0003,
  611. 0x0000,
  612. 0x0000,
  613. {0x01,0x00,0x01}
  614. };
  615. #define FIXED_TYPE6_CR_LEN 0x00000177
  616. #define FIXED_TYPE6_CR_LENX 0x000001E3
  617. #define MAX_RESPONSE_SIZE 0x00000710
  618. #define MAX_RESPONSEX_SIZE 0x0000077C
  619. #define RESPONSE_CPRB_SIZE 0x000006B8
  620. #define RESPONSE_CPRBX_SIZE 0x00000724
  621. #define CALLER_HEADER 12
  622. static unsigned char static_PKE_function_code[2] = {0x50, 0x4B};
  623. static inline int
  624. testq(int q_nr, int *q_depth, int *dev_type, struct ap_status_word *stat)
  625. {
  626. int ccode;
  627. asm volatile
  628. #ifdef __s390x__
  629. (" llgfr 0,%4 \n"
  630. " slgr 1,1 \n"
  631. " lgr 2,1 \n"
  632. "0: .long 0xb2af0000 \n"
  633. "1: ipm %0 \n"
  634. " srl %0,28 \n"
  635. " iihh %0,0 \n"
  636. " iihl %0,0 \n"
  637. " lgr %1,1 \n"
  638. " lgr %3,2 \n"
  639. " srl %3,24 \n"
  640. " sll 2,24 \n"
  641. " srl 2,24 \n"
  642. " lgr %2,2 \n"
  643. "2: \n"
  644. ".section .fixup,\"ax\" \n"
  645. "3: \n"
  646. " lhi %0,%h5 \n"
  647. " jg 2b \n"
  648. ".previous \n"
  649. ".section __ex_table,\"a\" \n"
  650. " .align 8 \n"
  651. " .quad 0b,3b \n"
  652. " .quad 1b,3b \n"
  653. ".previous"
  654. :"=d" (ccode),"=d" (*stat),"=d" (*q_depth), "=d" (*dev_type)
  655. :"d" (q_nr), "K" (DEV_TSQ_EXCEPTION)
  656. :"cc","0","1","2","memory");
  657. #else
  658. (" lr 0,%4 \n"
  659. " slr 1,1 \n"
  660. " lr 2,1 \n"
  661. "0: .long 0xb2af0000 \n"
  662. "1: ipm %0 \n"
  663. " srl %0,28 \n"
  664. " lr %1,1 \n"
  665. " lr %3,2 \n"
  666. " srl %3,24 \n"
  667. " sll 2,24 \n"
  668. " srl 2,24 \n"
  669. " lr %2,2 \n"
  670. "2: \n"
  671. ".section .fixup,\"ax\" \n"
  672. "3: \n"
  673. " lhi %0,%h5 \n"
  674. " bras 1,4f \n"
  675. " .long 2b \n"
  676. "4: \n"
  677. " l 1,0(1) \n"
  678. " br 1 \n"
  679. ".previous \n"
  680. ".section __ex_table,\"a\" \n"
  681. " .align 4 \n"
  682. " .long 0b,3b \n"
  683. " .long 1b,3b \n"
  684. ".previous"
  685. :"=d" (ccode),"=d" (*stat),"=d" (*q_depth), "=d" (*dev_type)
  686. :"d" (q_nr), "K" (DEV_TSQ_EXCEPTION)
  687. :"cc","0","1","2","memory");
  688. #endif
  689. return ccode;
  690. }
  691. static inline int
  692. resetq(int q_nr, struct ap_status_word *stat_p)
  693. {
  694. int ccode;
  695. asm volatile
  696. #ifdef __s390x__
  697. (" llgfr 0,%2 \n"
  698. " lghi 1,1 \n"
  699. " sll 1,24 \n"
  700. " or 0,1 \n"
  701. " slgr 1,1 \n"
  702. " lgr 2,1 \n"
  703. "0: .long 0xb2af0000 \n"
  704. "1: ipm %0 \n"
  705. " srl %0,28 \n"
  706. " iihh %0,0 \n"
  707. " iihl %0,0 \n"
  708. " lgr %1,1 \n"
  709. "2: \n"
  710. ".section .fixup,\"ax\" \n"
  711. "3: \n"
  712. " lhi %0,%h3 \n"
  713. " jg 2b \n"
  714. ".previous \n"
  715. ".section __ex_table,\"a\" \n"
  716. " .align 8 \n"
  717. " .quad 0b,3b \n"
  718. " .quad 1b,3b \n"
  719. ".previous"
  720. :"=d" (ccode),"=d" (*stat_p)
  721. :"d" (q_nr), "K" (DEV_RSQ_EXCEPTION)
  722. :"cc","0","1","2","memory");
  723. #else
  724. (" lr 0,%2 \n"
  725. " lhi 1,1 \n"
  726. " sll 1,24 \n"
  727. " or 0,1 \n"
  728. " slr 1,1 \n"
  729. " lr 2,1 \n"
  730. "0: .long 0xb2af0000 \n"
  731. "1: ipm %0 \n"
  732. " srl %0,28 \n"
  733. " lr %1,1 \n"
  734. "2: \n"
  735. ".section .fixup,\"ax\" \n"
  736. "3: \n"
  737. " lhi %0,%h3 \n"
  738. " bras 1,4f \n"
  739. " .long 2b \n"
  740. "4: \n"
  741. " l 1,0(1) \n"
  742. " br 1 \n"
  743. ".previous \n"
  744. ".section __ex_table,\"a\" \n"
  745. " .align 4 \n"
  746. " .long 0b,3b \n"
  747. " .long 1b,3b \n"
  748. ".previous"
  749. :"=d" (ccode),"=d" (*stat_p)
  750. :"d" (q_nr), "K" (DEV_RSQ_EXCEPTION)
  751. :"cc","0","1","2","memory");
  752. #endif
  753. return ccode;
  754. }
  755. static inline int
  756. sen(int msg_len, unsigned char *msg_ext, struct ap_status_word *stat)
  757. {
  758. int ccode;
  759. asm volatile
  760. #ifdef __s390x__
  761. (" lgr 6,%3 \n"
  762. " llgfr 7,%2 \n"
  763. " llgt 0,0(6) \n"
  764. " lghi 1,64 \n"
  765. " sll 1,24 \n"
  766. " or 0,1 \n"
  767. " la 6,4(6) \n"
  768. " llgt 2,0(6) \n"
  769. " llgt 3,4(6) \n"
  770. " la 6,8(6) \n"
  771. " slr 1,1 \n"
  772. "0: .long 0xb2ad0026 \n"
  773. "1: brc 2,0b \n"
  774. " ipm %0 \n"
  775. " srl %0,28 \n"
  776. " iihh %0,0 \n"
  777. " iihl %0,0 \n"
  778. " lgr %1,1 \n"
  779. "2: \n"
  780. ".section .fixup,\"ax\" \n"
  781. "3: \n"
  782. " lhi %0,%h4 \n"
  783. " jg 2b \n"
  784. ".previous \n"
  785. ".section __ex_table,\"a\" \n"
  786. " .align 8 \n"
  787. " .quad 0b,3b \n"
  788. " .quad 1b,3b \n"
  789. ".previous"
  790. :"=d" (ccode),"=d" (*stat)
  791. :"d" (msg_len),"a" (msg_ext), "K" (DEV_SEN_EXCEPTION)
  792. :"cc","0","1","2","3","6","7","memory");
  793. #else
  794. (" lr 6,%3 \n"
  795. " lr 7,%2 \n"
  796. " l 0,0(6) \n"
  797. " lhi 1,64 \n"
  798. " sll 1,24 \n"
  799. " or 0,1 \n"
  800. " la 6,4(6) \n"
  801. " l 2,0(6) \n"
  802. " l 3,4(6) \n"
  803. " la 6,8(6) \n"
  804. " slr 1,1 \n"
  805. "0: .long 0xb2ad0026 \n"
  806. "1: brc 2,0b \n"
  807. " ipm %0 \n"
  808. " srl %0,28 \n"
  809. " lr %1,1 \n"
  810. "2: \n"
  811. ".section .fixup,\"ax\" \n"
  812. "3: \n"
  813. " lhi %0,%h4 \n"
  814. " bras 1,4f \n"
  815. " .long 2b \n"
  816. "4: \n"
  817. " l 1,0(1) \n"
  818. " br 1 \n"
  819. ".previous \n"
  820. ".section __ex_table,\"a\" \n"
  821. " .align 4 \n"
  822. " .long 0b,3b \n"
  823. " .long 1b,3b \n"
  824. ".previous"
  825. :"=d" (ccode),"=d" (*stat)
  826. :"d" (msg_len),"a" (msg_ext), "K" (DEV_SEN_EXCEPTION)
  827. :"cc","0","1","2","3","6","7","memory");
  828. #endif
  829. return ccode;
  830. }
  831. static inline int
  832. rec(int q_nr, int buff_l, unsigned char *rsp, unsigned char *id,
  833. struct ap_status_word *st)
  834. {
  835. int ccode;
  836. asm volatile
  837. #ifdef __s390x__
  838. (" llgfr 0,%2 \n"
  839. " lgr 3,%4 \n"
  840. " lgr 6,%3 \n"
  841. " llgfr 7,%5 \n"
  842. " lghi 1,128 \n"
  843. " sll 1,24 \n"
  844. " or 0,1 \n"
  845. " slgr 1,1 \n"
  846. " lgr 2,1 \n"
  847. " lgr 4,1 \n"
  848. " lgr 5,1 \n"
  849. "0: .long 0xb2ae0046 \n"
  850. "1: brc 2,0b \n"
  851. " brc 4,0b \n"
  852. " ipm %0 \n"
  853. " srl %0,28 \n"
  854. " iihh %0,0 \n"
  855. " iihl %0,0 \n"
  856. " lgr %1,1 \n"
  857. " st 4,0(3) \n"
  858. " st 5,4(3) \n"
  859. "2: \n"
  860. ".section .fixup,\"ax\" \n"
  861. "3: \n"
  862. " lhi %0,%h6 \n"
  863. " jg 2b \n"
  864. ".previous \n"
  865. ".section __ex_table,\"a\" \n"
  866. " .align 8 \n"
  867. " .quad 0b,3b \n"
  868. " .quad 1b,3b \n"
  869. ".previous"
  870. :"=d"(ccode),"=d"(*st)
  871. :"d" (q_nr), "d" (rsp), "d" (id), "d" (buff_l), "K" (DEV_REC_EXCEPTION)
  872. :"cc","0","1","2","3","4","5","6","7","memory");
  873. #else
  874. (" lr 0,%2 \n"
  875. " lr 3,%4 \n"
  876. " lr 6,%3 \n"
  877. " lr 7,%5 \n"
  878. " lhi 1,128 \n"
  879. " sll 1,24 \n"
  880. " or 0,1 \n"
  881. " slr 1,1 \n"
  882. " lr 2,1 \n"
  883. " lr 4,1 \n"
  884. " lr 5,1 \n"
  885. "0: .long 0xb2ae0046 \n"
  886. "1: brc 2,0b \n"
  887. " brc 4,0b \n"
  888. " ipm %0 \n"
  889. " srl %0,28 \n"
  890. " lr %1,1 \n"
  891. " st 4,0(3) \n"
  892. " st 5,4(3) \n"
  893. "2: \n"
  894. ".section .fixup,\"ax\" \n"
  895. "3: \n"
  896. " lhi %0,%h6 \n"
  897. " bras 1,4f \n"
  898. " .long 2b \n"
  899. "4: \n"
  900. " l 1,0(1) \n"
  901. " br 1 \n"
  902. ".previous \n"
  903. ".section __ex_table,\"a\" \n"
  904. " .align 4 \n"
  905. " .long 0b,3b \n"
  906. " .long 1b,3b \n"
  907. ".previous"
  908. :"=d"(ccode),"=d"(*st)
  909. :"d" (q_nr), "d" (rsp), "d" (id), "d" (buff_l), "K" (DEV_REC_EXCEPTION)
  910. :"cc","0","1","2","3","4","5","6","7","memory");
  911. #endif
  912. return ccode;
  913. }
  914. static inline void
  915. itoLe2(int *i_p, unsigned char *lechars)
  916. {
  917. *lechars = *((unsigned char *) i_p + sizeof(int) - 1);
  918. *(lechars + 1) = *((unsigned char *) i_p + sizeof(int) - 2);
  919. }
  920. static inline void
  921. le2toI(unsigned char *lechars, int *i_p)
  922. {
  923. unsigned char *ic_p;
  924. *i_p = 0;
  925. ic_p = (unsigned char *) i_p;
  926. *(ic_p + 2) = *(lechars + 1);
  927. *(ic_p + 3) = *(lechars);
  928. }
  929. static inline int
  930. is_empty(unsigned char *ptr, int len)
  931. {
  932. return !memcmp(ptr, (unsigned char *) &static_pvt_me_key+60, len);
  933. }
  934. enum hdstat
  935. query_online(int deviceNr, int cdx, int resetNr, int *q_depth, int *dev_type)
  936. {
  937. int q_nr, i, t_depth, t_dev_type;
  938. enum devstat ccode;
  939. struct ap_status_word stat_word;
  940. enum hdstat stat;
  941. int break_out;
  942. q_nr = (deviceNr << SKIP_BITL) + cdx;
  943. stat = HD_BUSY;
  944. ccode = testq(q_nr, &t_depth, &t_dev_type, &stat_word);
  945. PDEBUG("ccode %d response_code %02X\n", ccode, stat_word.response_code);
  946. break_out = 0;
  947. for (i = 0; i < resetNr; i++) {
  948. if (ccode > 3) {
  949. PRINTKC("Exception testing device %d\n", i);
  950. return HD_TSQ_EXCEPTION;
  951. }
  952. switch (ccode) {
  953. case 0:
  954. PDEBUG("t_dev_type %d\n", t_dev_type);
  955. break_out = 1;
  956. stat = HD_ONLINE;
  957. *q_depth = t_depth + 1;
  958. switch (t_dev_type) {
  959. case OTHER_HW:
  960. stat = HD_NOT_THERE;
  961. *dev_type = NILDEV;
  962. break;
  963. case PCICA_HW:
  964. *dev_type = PCICA;
  965. break;
  966. case PCICC_HW:
  967. *dev_type = PCICC;
  968. break;
  969. case PCIXCC_HW:
  970. *dev_type = PCIXCC_UNK;
  971. break;
  972. case CEX2C_HW:
  973. *dev_type = CEX2C;
  974. break;
  975. default:
  976. *dev_type = NILDEV;
  977. break;
  978. }
  979. PDEBUG("available device %d: Q depth = %d, dev "
  980. "type = %d, stat = %02X%02X%02X%02X\n",
  981. deviceNr, *q_depth, *dev_type,
  982. stat_word.q_stat_flags,
  983. stat_word.response_code,
  984. stat_word.reserved[0],
  985. stat_word.reserved[1]);
  986. break;
  987. case 3:
  988. switch (stat_word.response_code) {
  989. case AP_RESPONSE_NORMAL:
  990. stat = HD_ONLINE;
  991. break_out = 1;
  992. *q_depth = t_depth + 1;
  993. *dev_type = t_dev_type;
  994. PDEBUG("cc3, available device "
  995. "%d: Q depth = %d, dev "
  996. "type = %d, stat = "
  997. "%02X%02X%02X%02X\n",
  998. deviceNr, *q_depth,
  999. *dev_type,
  1000. stat_word.q_stat_flags,
  1001. stat_word.response_code,
  1002. stat_word.reserved[0],
  1003. stat_word.reserved[1]);
  1004. break;
  1005. case AP_RESPONSE_Q_NOT_AVAIL:
  1006. stat = HD_NOT_THERE;
  1007. break_out = 1;
  1008. break;
  1009. case AP_RESPONSE_RESET_IN_PROGRESS:
  1010. PDEBUG("device %d in reset\n",
  1011. deviceNr);
  1012. break;
  1013. case AP_RESPONSE_DECONFIGURED:
  1014. stat = HD_DECONFIGURED;
  1015. break_out = 1;
  1016. break;
  1017. case AP_RESPONSE_CHECKSTOPPED:
  1018. stat = HD_CHECKSTOPPED;
  1019. break_out = 1;
  1020. break;
  1021. case AP_RESPONSE_BUSY:
  1022. PDEBUG("device %d busy\n",
  1023. deviceNr);
  1024. break;
  1025. default:
  1026. break;
  1027. }
  1028. break;
  1029. default:
  1030. stat = HD_NOT_THERE;
  1031. break_out = 1;
  1032. break;
  1033. }
  1034. if (break_out)
  1035. break;
  1036. udelay(5);
  1037. ccode = testq(q_nr, &t_depth, &t_dev_type, &stat_word);
  1038. }
  1039. return stat;
  1040. }
  1041. enum devstat
  1042. reset_device(int deviceNr, int cdx, int resetNr)
  1043. {
  1044. int q_nr, ccode = 0, dummy_qdepth, dummy_devType, i;
  1045. struct ap_status_word stat_word;
  1046. enum devstat stat;
  1047. int break_out;
  1048. q_nr = (deviceNr << SKIP_BITL) + cdx;
  1049. stat = DEV_GONE;
  1050. ccode = resetq(q_nr, &stat_word);
  1051. if (ccode > 3)
  1052. return DEV_RSQ_EXCEPTION;
  1053. break_out = 0;
  1054. for (i = 0; i < resetNr; i++) {
  1055. switch (ccode) {
  1056. case 0:
  1057. stat = DEV_ONLINE;
  1058. if (stat_word.q_stat_flags & AP_Q_STATUS_EMPTY)
  1059. break_out = 1;
  1060. break;
  1061. case 3:
  1062. switch (stat_word.response_code) {
  1063. case AP_RESPONSE_NORMAL:
  1064. stat = DEV_ONLINE;
  1065. if (stat_word.q_stat_flags & AP_Q_STATUS_EMPTY)
  1066. break_out = 1;
  1067. break;
  1068. case AP_RESPONSE_Q_NOT_AVAIL:
  1069. case AP_RESPONSE_DECONFIGURED:
  1070. case AP_RESPONSE_CHECKSTOPPED:
  1071. stat = DEV_GONE;
  1072. break_out = 1;
  1073. break;
  1074. case AP_RESPONSE_RESET_IN_PROGRESS:
  1075. case AP_RESPONSE_BUSY:
  1076. default:
  1077. break;
  1078. }
  1079. break;
  1080. default:
  1081. stat = DEV_GONE;
  1082. break_out = 1;
  1083. break;
  1084. }
  1085. if (break_out == 1)
  1086. break;
  1087. udelay(5);
  1088. ccode = testq(q_nr, &dummy_qdepth, &dummy_devType, &stat_word);
  1089. if (ccode > 3) {
  1090. stat = DEV_TSQ_EXCEPTION;
  1091. break;
  1092. }
  1093. }
  1094. PDEBUG("Number of testq's needed for reset: %d\n", i);
  1095. if (i >= resetNr) {
  1096. stat = DEV_GONE;
  1097. }
  1098. return stat;
  1099. }
  1100. #ifdef DEBUG_HYDRA_MSGS
  1101. static inline void
  1102. print_buffer(unsigned char *buffer, int bufflen)
  1103. {
  1104. int i;
  1105. for (i = 0; i < bufflen; i += 16) {
  1106. PRINTK("%04X: %02X%02X%02X%02X %02X%02X%02X%02X "
  1107. "%02X%02X%02X%02X %02X%02X%02X%02X\n", i,
  1108. buffer[i+0], buffer[i+1], buffer[i+2], buffer[i+3],
  1109. buffer[i+4], buffer[i+5], buffer[i+6], buffer[i+7],
  1110. buffer[i+8], buffer[i+9], buffer[i+10], buffer[i+11],
  1111. buffer[i+12], buffer[i+13], buffer[i+14], buffer[i+15]);
  1112. }
  1113. }
  1114. #endif
  1115. enum devstat
  1116. send_to_AP(int dev_nr, int cdx, int msg_len, unsigned char *msg_ext)
  1117. {
  1118. struct ap_status_word stat_word;
  1119. enum devstat stat;
  1120. int ccode;
  1121. ((struct request_msg_ext *) msg_ext)->q_nr =
  1122. (dev_nr << SKIP_BITL) + cdx;
  1123. PDEBUG("msg_len passed to sen: %d\n", msg_len);
  1124. PDEBUG("q number passed to sen: %02x%02x%02x%02x\n",
  1125. msg_ext[0], msg_ext[1], msg_ext[2], msg_ext[3]);
  1126. stat = DEV_GONE;
  1127. #ifdef DEBUG_HYDRA_MSGS
  1128. PRINTK("Request header: %02X%02X%02X%02X %02X%02X%02X%02X "
  1129. "%02X%02X%02X%02X\n",
  1130. msg_ext[0], msg_ext[1], msg_ext[2], msg_ext[3],
  1131. msg_ext[4], msg_ext[5], msg_ext[6], msg_ext[7],
  1132. msg_ext[8], msg_ext[9], msg_ext[10], msg_ext[11]);
  1133. print_buffer(msg_ext+CALLER_HEADER, msg_len);
  1134. #endif
  1135. ccode = sen(msg_len, msg_ext, &stat_word);
  1136. if (ccode > 3)
  1137. return DEV_SEN_EXCEPTION;
  1138. PDEBUG("nq cc: %u, st: %02x%02x%02x%02x\n",
  1139. ccode, stat_word.q_stat_flags, stat_word.response_code,
  1140. stat_word.reserved[0], stat_word.reserved[1]);
  1141. switch (ccode) {
  1142. case 0:
  1143. stat = DEV_ONLINE;
  1144. break;
  1145. case 1:
  1146. stat = DEV_GONE;
  1147. break;
  1148. case 3:
  1149. switch (stat_word.response_code) {
  1150. case AP_RESPONSE_NORMAL:
  1151. stat = DEV_ONLINE;
  1152. break;
  1153. case AP_RESPONSE_Q_FULL:
  1154. stat = DEV_QUEUE_FULL;
  1155. break;
  1156. default:
  1157. stat = DEV_GONE;
  1158. break;
  1159. }
  1160. break;
  1161. default:
  1162. stat = DEV_GONE;
  1163. break;
  1164. }
  1165. return stat;
  1166. }
  1167. enum devstat
  1168. receive_from_AP(int dev_nr, int cdx, int resplen, unsigned char *resp,
  1169. unsigned char *psmid)
  1170. {
  1171. int ccode;
  1172. struct ap_status_word stat_word;
  1173. enum devstat stat;
  1174. memset(resp, 0x00, 8);
  1175. ccode = rec((dev_nr << SKIP_BITL) + cdx, resplen, resp, psmid,
  1176. &stat_word);
  1177. if (ccode > 3)
  1178. return DEV_REC_EXCEPTION;
  1179. PDEBUG("dq cc: %u, st: %02x%02x%02x%02x\n",
  1180. ccode, stat_word.q_stat_flags, stat_word.response_code,
  1181. stat_word.reserved[0], stat_word.reserved[1]);
  1182. stat = DEV_GONE;
  1183. switch (ccode) {
  1184. case 0:
  1185. stat = DEV_ONLINE;
  1186. #ifdef DEBUG_HYDRA_MSGS
  1187. print_buffer(resp, resplen);
  1188. #endif
  1189. break;
  1190. case 3:
  1191. switch (stat_word.response_code) {
  1192. case AP_RESPONSE_NORMAL:
  1193. stat = DEV_ONLINE;
  1194. break;
  1195. case AP_RESPONSE_NO_PENDING_REPLY:
  1196. if (stat_word.q_stat_flags & AP_Q_STATUS_EMPTY)
  1197. stat = DEV_EMPTY;
  1198. else
  1199. stat = DEV_NO_WORK;
  1200. break;
  1201. case AP_RESPONSE_INDEX_TOO_BIG:
  1202. case AP_RESPONSE_NO_FIRST_PART:
  1203. case AP_RESPONSE_MESSAGE_TOO_BIG:
  1204. stat = DEV_BAD_MESSAGE;
  1205. break;
  1206. default:
  1207. break;
  1208. }
  1209. break;
  1210. default:
  1211. break;
  1212. }
  1213. return stat;
  1214. }
  1215. static inline int
  1216. pad_msg(unsigned char *buffer, int totalLength, int msgLength)
  1217. {
  1218. int pad_len;
  1219. for (pad_len = 0; pad_len < (totalLength - msgLength); pad_len++)
  1220. if (buffer[pad_len] != 0x00)
  1221. break;
  1222. pad_len -= 3;
  1223. if (pad_len < 8)
  1224. return SEN_PAD_ERROR;
  1225. buffer[0] = 0x00;
  1226. buffer[1] = 0x02;
  1227. memcpy(buffer+2, static_pad, pad_len);
  1228. buffer[pad_len + 2] = 0x00;
  1229. return 0;
  1230. }
  1231. static inline int
  1232. is_common_public_key(unsigned char *key, int len)
  1233. {
  1234. int i;
  1235. for (i = 0; i < len; i++)
  1236. if (key[i])
  1237. break;
  1238. key += i;
  1239. len -= i;
  1240. if (((len == 1) && (key[0] == 3)) ||
  1241. ((len == 3) && (key[0] == 1) && (key[1] == 0) && (key[2] == 1)))
  1242. return 1;
  1243. return 0;
  1244. }
  1245. static int
  1246. ICAMEX_msg_to_type4MEX_msg(struct ica_rsa_modexpo *icaMex_p, int *z90cMsg_l_p,
  1247. union type4_msg *z90cMsg_p)
  1248. {
  1249. int mod_len, msg_size, mod_tgt_len, exp_tgt_len, inp_tgt_len;
  1250. unsigned char *mod_tgt, *exp_tgt, *inp_tgt;
  1251. union type4_msg *tmp_type4_msg;
  1252. mod_len = icaMex_p->inputdatalength;
  1253. msg_size = ((mod_len <= 128) ? TYPE4_SME_LEN : TYPE4_LME_LEN) +
  1254. CALLER_HEADER;
  1255. memset(z90cMsg_p, 0, msg_size);
  1256. tmp_type4_msg = (union type4_msg *)
  1257. ((unsigned char *) z90cMsg_p + CALLER_HEADER);
  1258. tmp_type4_msg->sme.header.msg_type_code = TYPE4_TYPE_CODE;
  1259. tmp_type4_msg->sme.header.request_code = TYPE4_REQU_CODE;
  1260. if (mod_len <= 128) {
  1261. tmp_type4_msg->sme.header.msg_fmt = TYPE4_SME_FMT;
  1262. tmp_type4_msg->sme.header.msg_len = TYPE4_SME_LEN;
  1263. mod_tgt = tmp_type4_msg->sme.modulus;
  1264. mod_tgt_len = sizeof(tmp_type4_msg->sme.modulus);
  1265. exp_tgt = tmp_type4_msg->sme.exponent;
  1266. exp_tgt_len = sizeof(tmp_type4_msg->sme.exponent);
  1267. inp_tgt = tmp_type4_msg->sme.message;
  1268. inp_tgt_len = sizeof(tmp_type4_msg->sme.message);
  1269. } else {
  1270. tmp_type4_msg->lme.header.msg_fmt = TYPE4_LME_FMT;
  1271. tmp_type4_msg->lme.header.msg_len = TYPE4_LME_LEN;
  1272. mod_tgt = tmp_type4_msg->lme.modulus;
  1273. mod_tgt_len = sizeof(tmp_type4_msg->lme.modulus);
  1274. exp_tgt = tmp_type4_msg->lme.exponent;
  1275. exp_tgt_len = sizeof(tmp_type4_msg->lme.exponent);
  1276. inp_tgt = tmp_type4_msg->lme.message;
  1277. inp_tgt_len = sizeof(tmp_type4_msg->lme.message);
  1278. }
  1279. mod_tgt += (mod_tgt_len - mod_len);
  1280. if (copy_from_user(mod_tgt, icaMex_p->n_modulus, mod_len))
  1281. return SEN_RELEASED;
  1282. if (is_empty(mod_tgt, mod_len))
  1283. return SEN_USER_ERROR;
  1284. exp_tgt += (exp_tgt_len - mod_len);
  1285. if (copy_from_user(exp_tgt, icaMex_p->b_key, mod_len))
  1286. return SEN_RELEASED;
  1287. if (is_empty(exp_tgt, mod_len))
  1288. return SEN_USER_ERROR;
  1289. inp_tgt += (inp_tgt_len - mod_len);
  1290. if (copy_from_user(inp_tgt, icaMex_p->inputdata, mod_len))
  1291. return SEN_RELEASED;
  1292. if (is_empty(inp_tgt, mod_len))
  1293. return SEN_USER_ERROR;
  1294. *z90cMsg_l_p = msg_size - CALLER_HEADER;
  1295. return 0;
  1296. }
  1297. static int
  1298. ICACRT_msg_to_type4CRT_msg(struct ica_rsa_modexpo_crt *icaMsg_p,
  1299. int *z90cMsg_l_p, union type4_msg *z90cMsg_p)
  1300. {
  1301. int mod_len, short_len, long_len, tmp_size, p_tgt_len, q_tgt_len,
  1302. dp_tgt_len, dq_tgt_len, u_tgt_len, inp_tgt_len;
  1303. unsigned char *p_tgt, *q_tgt, *dp_tgt, *dq_tgt, *u_tgt, *inp_tgt;
  1304. union type4_msg *tmp_type4_msg;
  1305. mod_len = icaMsg_p->inputdatalength;
  1306. short_len = mod_len / 2;
  1307. long_len = mod_len / 2 + 8;
  1308. tmp_size = ((mod_len <= 128) ? TYPE4_SCR_LEN : TYPE4_LCR_LEN) +
  1309. CALLER_HEADER;
  1310. memset(z90cMsg_p, 0, tmp_size);
  1311. tmp_type4_msg = (union type4_msg *)
  1312. ((unsigned char *) z90cMsg_p + CALLER_HEADER);
  1313. tmp_type4_msg->scr.header.msg_type_code = TYPE4_TYPE_CODE;
  1314. tmp_type4_msg->scr.header.request_code = TYPE4_REQU_CODE;
  1315. if (mod_len <= 128) {
  1316. tmp_type4_msg->scr.header.msg_fmt = TYPE4_SCR_FMT;
  1317. tmp_type4_msg->scr.header.msg_len = TYPE4_SCR_LEN;
  1318. p_tgt = tmp_type4_msg->scr.p;
  1319. p_tgt_len = sizeof(tmp_type4_msg->scr.p);
  1320. q_tgt = tmp_type4_msg->scr.q;
  1321. q_tgt_len = sizeof(tmp_type4_msg->scr.q);
  1322. dp_tgt = tmp_type4_msg->scr.dp;
  1323. dp_tgt_len = sizeof(tmp_type4_msg->scr.dp);
  1324. dq_tgt = tmp_type4_msg->scr.dq;
  1325. dq_tgt_len = sizeof(tmp_type4_msg->scr.dq);
  1326. u_tgt = tmp_type4_msg->scr.u;
  1327. u_tgt_len = sizeof(tmp_type4_msg->scr.u);
  1328. inp_tgt = tmp_type4_msg->scr.message;
  1329. inp_tgt_len = sizeof(tmp_type4_msg->scr.message);
  1330. } else {
  1331. tmp_type4_msg->lcr.header.msg_fmt = TYPE4_LCR_FMT;
  1332. tmp_type4_msg->lcr.header.msg_len = TYPE4_LCR_LEN;
  1333. p_tgt = tmp_type4_msg->lcr.p;
  1334. p_tgt_len = sizeof(tmp_type4_msg->lcr.p);
  1335. q_tgt = tmp_type4_msg->lcr.q;
  1336. q_tgt_len = sizeof(tmp_type4_msg->lcr.q);
  1337. dp_tgt = tmp_type4_msg->lcr.dp;
  1338. dp_tgt_len = sizeof(tmp_type4_msg->lcr.dp);
  1339. dq_tgt = tmp_type4_msg->lcr.dq;
  1340. dq_tgt_len = sizeof(tmp_type4_msg->lcr.dq);
  1341. u_tgt = tmp_type4_msg->lcr.u;
  1342. u_tgt_len = sizeof(tmp_type4_msg->lcr.u);
  1343. inp_tgt = tmp_type4_msg->lcr.message;
  1344. inp_tgt_len = sizeof(tmp_type4_msg->lcr.message);
  1345. }
  1346. p_tgt += (p_tgt_len - long_len);
  1347. if (copy_from_user(p_tgt, icaMsg_p->np_prime, long_len))
  1348. return SEN_RELEASED;
  1349. if (is_empty(p_tgt, long_len))
  1350. return SEN_USER_ERROR;
  1351. q_tgt += (q_tgt_len - short_len);
  1352. if (copy_from_user(q_tgt, icaMsg_p->nq_prime, short_len))
  1353. return SEN_RELEASED;
  1354. if (is_empty(q_tgt, short_len))
  1355. return SEN_USER_ERROR;
  1356. dp_tgt += (dp_tgt_len - long_len);
  1357. if (copy_from_user(dp_tgt, icaMsg_p->bp_key, long_len))
  1358. return SEN_RELEASED;
  1359. if (is_empty(dp_tgt, long_len))
  1360. return SEN_USER_ERROR;
  1361. dq_tgt += (dq_tgt_len - short_len);
  1362. if (copy_from_user(dq_tgt, icaMsg_p->bq_key, short_len))
  1363. return SEN_RELEASED;
  1364. if (is_empty(dq_tgt, short_len))
  1365. return SEN_USER_ERROR;
  1366. u_tgt += (u_tgt_len - long_len);
  1367. if (copy_from_user(u_tgt, icaMsg_p->u_mult_inv, long_len))
  1368. return SEN_RELEASED;
  1369. if (is_empty(u_tgt, long_len))
  1370. return SEN_USER_ERROR;
  1371. inp_tgt += (inp_tgt_len - mod_len);
  1372. if (copy_from_user(inp_tgt, icaMsg_p->inputdata, mod_len))
  1373. return SEN_RELEASED;
  1374. if (is_empty(inp_tgt, mod_len))
  1375. return SEN_USER_ERROR;
  1376. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1377. return 0;
  1378. }
  1379. static int
  1380. ICAMEX_msg_to_type6MEX_de_msg(struct ica_rsa_modexpo *icaMsg_p, int cdx,
  1381. int *z90cMsg_l_p, struct type6_msg *z90cMsg_p)
  1382. {
  1383. int mod_len, vud_len, tmp_size, total_CPRB_len, parmBlock_l;
  1384. unsigned char *temp;
  1385. struct type6_hdr *tp6Hdr_p;
  1386. struct CPRB *cprb_p;
  1387. struct cca_private_ext_ME *key_p;
  1388. static int deprecated_msg_count = 0;
  1389. mod_len = icaMsg_p->inputdatalength;
  1390. tmp_size = FIXED_TYPE6_ME_LEN + mod_len;
  1391. total_CPRB_len = tmp_size - sizeof(struct type6_hdr);
  1392. parmBlock_l = total_CPRB_len - sizeof(struct CPRB);
  1393. tmp_size = 4*((tmp_size + 3)/4) + CALLER_HEADER;
  1394. memset(z90cMsg_p, 0, tmp_size);
  1395. temp = (unsigned char *)z90cMsg_p + CALLER_HEADER;
  1396. memcpy(temp, &static_type6_hdr, sizeof(struct type6_hdr));
  1397. tp6Hdr_p = (struct type6_hdr *)temp;
  1398. tp6Hdr_p->ToCardLen1 = 4*((total_CPRB_len+3)/4);
  1399. tp6Hdr_p->FromCardLen1 = RESPONSE_CPRB_SIZE;
  1400. temp += sizeof(struct type6_hdr);
  1401. memcpy(temp, &static_cprb, sizeof(struct CPRB));
  1402. cprb_p = (struct CPRB *) temp;
  1403. cprb_p->usage_domain[0]= (unsigned char)cdx;
  1404. itoLe2(&parmBlock_l, cprb_p->req_parml);
  1405. itoLe2((int *)&(tp6Hdr_p->FromCardLen1), cprb_p->rpl_parml);
  1406. temp += sizeof(struct CPRB);
  1407. memcpy(temp, &static_pkd_function_and_rules,
  1408. sizeof(struct function_and_rules_block));
  1409. temp += sizeof(struct function_and_rules_block);
  1410. vud_len = 2 + icaMsg_p->inputdatalength;
  1411. itoLe2(&vud_len, temp);
  1412. temp += 2;
  1413. if (copy_from_user(temp, icaMsg_p->inputdata, mod_len))
  1414. return SEN_RELEASED;
  1415. if (is_empty(temp, mod_len))
  1416. return SEN_USER_ERROR;
  1417. temp += mod_len;
  1418. memcpy(temp, &static_T6_keyBlock_hdr, sizeof(struct T6_keyBlock_hdr));
  1419. temp += sizeof(struct T6_keyBlock_hdr);
  1420. memcpy(temp, &static_pvt_me_key, sizeof(struct cca_private_ext_ME));
  1421. key_p = (struct cca_private_ext_ME *)temp;
  1422. temp = key_p->pvtMESec.exponent + sizeof(key_p->pvtMESec.exponent)
  1423. - mod_len;
  1424. if (copy_from_user(temp, icaMsg_p->b_key, mod_len))
  1425. return SEN_RELEASED;
  1426. if (is_empty(temp, mod_len))
  1427. return SEN_USER_ERROR;
  1428. if (is_common_public_key(temp, mod_len)) {
  1429. if (deprecated_msg_count < 20) {
  1430. PRINTK("Common public key used for modex decrypt\n");
  1431. deprecated_msg_count++;
  1432. if (deprecated_msg_count == 20)
  1433. PRINTK("No longer issuing messages about common"
  1434. " public key for modex decrypt.\n");
  1435. }
  1436. return SEN_NOT_AVAIL;
  1437. }
  1438. temp = key_p->pvtMESec.modulus + sizeof(key_p->pvtMESec.modulus)
  1439. - mod_len;
  1440. if (copy_from_user(temp, icaMsg_p->n_modulus, mod_len))
  1441. return SEN_RELEASED;
  1442. if (is_empty(temp, mod_len))
  1443. return SEN_USER_ERROR;
  1444. key_p->pubMESec.modulus_bit_len = 8 * mod_len;
  1445. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1446. return 0;
  1447. }
  1448. static int
  1449. ICAMEX_msg_to_type6MEX_en_msg(struct ica_rsa_modexpo *icaMsg_p, int cdx,
  1450. int *z90cMsg_l_p, struct type6_msg *z90cMsg_p)
  1451. {
  1452. int mod_len, vud_len, exp_len, key_len;
  1453. int pad_len, tmp_size, total_CPRB_len, parmBlock_l, i;
  1454. unsigned char *temp_exp, *exp_p, *temp;
  1455. struct type6_hdr *tp6Hdr_p;
  1456. struct CPRB *cprb_p;
  1457. struct cca_public_key *key_p;
  1458. struct T6_keyBlock_hdr *keyb_p;
  1459. temp_exp = kmalloc(256, GFP_KERNEL);
  1460. if (!temp_exp)
  1461. return EGETBUFF;
  1462. mod_len = icaMsg_p->inputdatalength;
  1463. if (copy_from_user(temp_exp, icaMsg_p->b_key, mod_len)) {
  1464. kfree(temp_exp);
  1465. return SEN_RELEASED;
  1466. }
  1467. if (is_empty(temp_exp, mod_len)) {
  1468. kfree(temp_exp);
  1469. return SEN_USER_ERROR;
  1470. }
  1471. exp_p = temp_exp;
  1472. for (i = 0; i < mod_len; i++)
  1473. if (exp_p[i])
  1474. break;
  1475. if (i >= mod_len) {
  1476. kfree(temp_exp);
  1477. return SEN_USER_ERROR;
  1478. }
  1479. exp_len = mod_len - i;
  1480. exp_p += i;
  1481. PDEBUG("exp_len after computation: %08x\n", exp_len);
  1482. tmp_size = FIXED_TYPE6_ME_EN_LEN + 2 * mod_len + exp_len;
  1483. total_CPRB_len = tmp_size - sizeof(struct type6_hdr);
  1484. parmBlock_l = total_CPRB_len - sizeof(struct CPRB);
  1485. tmp_size = 4*((tmp_size + 3)/4) + CALLER_HEADER;
  1486. vud_len = 2 + mod_len;
  1487. memset(z90cMsg_p, 0, tmp_size);
  1488. temp = (unsigned char *)z90cMsg_p + CALLER_HEADER;
  1489. memcpy(temp, &static_type6_hdr, sizeof(struct type6_hdr));
  1490. tp6Hdr_p = (struct type6_hdr *)temp;
  1491. tp6Hdr_p->ToCardLen1 = 4*((total_CPRB_len+3)/4);
  1492. tp6Hdr_p->FromCardLen1 = RESPONSE_CPRB_SIZE;
  1493. memcpy(tp6Hdr_p->function_code, static_PKE_function_code,
  1494. sizeof(static_PKE_function_code));
  1495. temp += sizeof(struct type6_hdr);
  1496. memcpy(temp, &static_cprb, sizeof(struct CPRB));
  1497. cprb_p = (struct CPRB *) temp;
  1498. cprb_p->usage_domain[0]= (unsigned char)cdx;
  1499. itoLe2((int *)&(tp6Hdr_p->FromCardLen1), cprb_p->rpl_parml);
  1500. temp += sizeof(struct CPRB);
  1501. memcpy(temp, &static_pke_function_and_rules,
  1502. sizeof(struct function_and_rules_block));
  1503. temp += sizeof(struct function_and_rules_block);
  1504. temp += 2;
  1505. if (copy_from_user(temp, icaMsg_p->inputdata, mod_len)) {
  1506. kfree(temp_exp);
  1507. return SEN_RELEASED;
  1508. }
  1509. if (is_empty(temp, mod_len)) {
  1510. kfree(temp_exp);
  1511. return SEN_USER_ERROR;
  1512. }
  1513. if ((temp[0] != 0x00) || (temp[1] != 0x02)) {
  1514. kfree(temp_exp);
  1515. return SEN_NOT_AVAIL;
  1516. }
  1517. for (i = 2; i < mod_len; i++)
  1518. if (temp[i] == 0x00)
  1519. break;
  1520. if ((i < 9) || (i > (mod_len - 2))) {
  1521. kfree(temp_exp);
  1522. return SEN_NOT_AVAIL;
  1523. }
  1524. pad_len = i + 1;
  1525. vud_len = mod_len - pad_len;
  1526. memmove(temp, temp+pad_len, vud_len);
  1527. temp -= 2;
  1528. vud_len += 2;
  1529. itoLe2(&vud_len, temp);
  1530. temp += (vud_len);
  1531. keyb_p = (struct T6_keyBlock_hdr *)temp;
  1532. temp += sizeof(struct T6_keyBlock_hdr);
  1533. memcpy(temp, &static_public_key, sizeof(static_public_key));
  1534. key_p = (struct cca_public_key *)temp;
  1535. temp = key_p->pubSec.exponent;
  1536. memcpy(temp, exp_p, exp_len);
  1537. kfree(temp_exp);
  1538. temp += exp_len;
  1539. if (copy_from_user(temp, icaMsg_p->n_modulus, mod_len))
  1540. return SEN_RELEASED;
  1541. if (is_empty(temp, mod_len))
  1542. return SEN_USER_ERROR;
  1543. key_p->pubSec.modulus_bit_len = 8 * mod_len;
  1544. key_p->pubSec.modulus_byte_len = mod_len;
  1545. key_p->pubSec.exponent_len = exp_len;
  1546. key_p->pubSec.section_length = CALLER_HEADER + mod_len + exp_len;
  1547. key_len = key_p->pubSec.section_length + sizeof(struct cca_token_hdr);
  1548. key_p->pubHdr.token_length = key_len;
  1549. key_len += 4;
  1550. itoLe2(&key_len, keyb_p->ulen);
  1551. key_len += 2;
  1552. itoLe2(&key_len, keyb_p->blen);
  1553. parmBlock_l -= pad_len;
  1554. itoLe2(&parmBlock_l, cprb_p->req_parml);
  1555. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1556. return 0;
  1557. }
  1558. static int
  1559. ICACRT_msg_to_type6CRT_msg(struct ica_rsa_modexpo_crt *icaMsg_p, int cdx,
  1560. int *z90cMsg_l_p, struct type6_msg *z90cMsg_p)
  1561. {
  1562. int mod_len, vud_len, tmp_size, total_CPRB_len, parmBlock_l, short_len;
  1563. int long_len, pad_len, keyPartsLen, tmp_l;
  1564. unsigned char *tgt_p, *temp;
  1565. struct type6_hdr *tp6Hdr_p;
  1566. struct CPRB *cprb_p;
  1567. struct cca_token_hdr *keyHdr_p;
  1568. struct cca_pvt_ext_CRT_sec *pvtSec_p;
  1569. struct cca_public_sec *pubSec_p;
  1570. mod_len = icaMsg_p->inputdatalength;
  1571. short_len = mod_len / 2;
  1572. long_len = 8 + short_len;
  1573. keyPartsLen = 3 * long_len + 2 * short_len;
  1574. pad_len = (8 - (keyPartsLen % 8)) % 8;
  1575. keyPartsLen += pad_len + mod_len;
  1576. tmp_size = FIXED_TYPE6_CR_LEN + keyPartsLen + mod_len;
  1577. total_CPRB_len = tmp_size - sizeof(struct type6_hdr);
  1578. parmBlock_l = total_CPRB_len - sizeof(struct CPRB);
  1579. vud_len = 2 + mod_len;
  1580. tmp_size = 4*((tmp_size + 3)/4) + CALLER_HEADER;
  1581. memset(z90cMsg_p, 0, tmp_size);
  1582. tgt_p = (unsigned char *)z90cMsg_p + CALLER_HEADER;
  1583. memcpy(tgt_p, &static_type6_hdr, sizeof(struct type6_hdr));
  1584. tp6Hdr_p = (struct type6_hdr *)tgt_p;
  1585. tp6Hdr_p->ToCardLen1 = 4*((total_CPRB_len+3)/4);
  1586. tp6Hdr_p->FromCardLen1 = RESPONSE_CPRB_SIZE;
  1587. tgt_p += sizeof(struct type6_hdr);
  1588. cprb_p = (struct CPRB *) tgt_p;
  1589. memcpy(tgt_p, &static_cprb, sizeof(struct CPRB));
  1590. cprb_p->usage_domain[0]= *((unsigned char *)(&(cdx))+3);
  1591. itoLe2(&parmBlock_l, cprb_p->req_parml);
  1592. memcpy(cprb_p->rpl_parml, cprb_p->req_parml,
  1593. sizeof(cprb_p->req_parml));
  1594. tgt_p += sizeof(struct CPRB);
  1595. memcpy(tgt_p, &static_pkd_function_and_rules,
  1596. sizeof(struct function_and_rules_block));
  1597. tgt_p += sizeof(struct function_and_rules_block);
  1598. itoLe2(&vud_len, tgt_p);
  1599. tgt_p += 2;
  1600. if (copy_from_user(tgt_p, icaMsg_p->inputdata, mod_len))
  1601. return SEN_RELEASED;
  1602. if (is_empty(tgt_p, mod_len))
  1603. return SEN_USER_ERROR;
  1604. tgt_p += mod_len;
  1605. tmp_l = sizeof(struct T6_keyBlock_hdr) + sizeof(struct cca_token_hdr) +
  1606. sizeof(struct cca_pvt_ext_CRT_sec) + 0x0F + keyPartsLen;
  1607. itoLe2(&tmp_l, tgt_p);
  1608. temp = tgt_p + 2;
  1609. tmp_l -= 2;
  1610. itoLe2(&tmp_l, temp);
  1611. tgt_p += sizeof(struct T6_keyBlock_hdr);
  1612. keyHdr_p = (struct cca_token_hdr *)tgt_p;
  1613. keyHdr_p->token_identifier = CCA_TKN_HDR_ID_EXT;
  1614. tmp_l -= 4;
  1615. keyHdr_p->token_length = tmp_l;
  1616. tgt_p += sizeof(struct cca_token_hdr);
  1617. pvtSec_p = (struct cca_pvt_ext_CRT_sec *)tgt_p;
  1618. pvtSec_p->section_identifier = CCA_PVT_EXT_CRT_SEC_ID_PVT;
  1619. pvtSec_p->section_length =
  1620. sizeof(struct cca_pvt_ext_CRT_sec) + keyPartsLen;
  1621. pvtSec_p->key_format = CCA_PVT_EXT_CRT_SEC_FMT_CL;
  1622. pvtSec_p->key_use_flags[0] = CCA_PVT_USAGE_ALL;
  1623. pvtSec_p->p_len = long_len;
  1624. pvtSec_p->q_len = short_len;
  1625. pvtSec_p->dp_len = long_len;
  1626. pvtSec_p->dq_len = short_len;
  1627. pvtSec_p->u_len = long_len;
  1628. pvtSec_p->mod_len = mod_len;
  1629. pvtSec_p->pad_len = pad_len;
  1630. tgt_p += sizeof(struct cca_pvt_ext_CRT_sec);
  1631. if (copy_from_user(tgt_p, icaMsg_p->np_prime, long_len))
  1632. return SEN_RELEASED;
  1633. if (is_empty(tgt_p, long_len))
  1634. return SEN_USER_ERROR;
  1635. tgt_p += long_len;
  1636. if (copy_from_user(tgt_p, icaMsg_p->nq_prime, short_len))
  1637. return SEN_RELEASED;
  1638. if (is_empty(tgt_p, short_len))
  1639. return SEN_USER_ERROR;
  1640. tgt_p += short_len;
  1641. if (copy_from_user(tgt_p, icaMsg_p->bp_key, long_len))
  1642. return SEN_RELEASED;
  1643. if (is_empty(tgt_p, long_len))
  1644. return SEN_USER_ERROR;
  1645. tgt_p += long_len;
  1646. if (copy_from_user(tgt_p, icaMsg_p->bq_key, short_len))
  1647. return SEN_RELEASED;
  1648. if (is_empty(tgt_p, short_len))
  1649. return SEN_USER_ERROR;
  1650. tgt_p += short_len;
  1651. if (copy_from_user(tgt_p, icaMsg_p->u_mult_inv, long_len))
  1652. return SEN_RELEASED;
  1653. if (is_empty(tgt_p, long_len))
  1654. return SEN_USER_ERROR;
  1655. tgt_p += long_len;
  1656. tgt_p += pad_len;
  1657. memset(tgt_p, 0xFF, mod_len);
  1658. tgt_p += mod_len;
  1659. memcpy(tgt_p, &static_cca_pub_sec, sizeof(struct cca_public_sec));
  1660. pubSec_p = (struct cca_public_sec *) tgt_p;
  1661. pubSec_p->modulus_bit_len = 8 * mod_len;
  1662. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1663. return 0;
  1664. }
  1665. static int
  1666. ICAMEX_msg_to_type6MEX_msgX(struct ica_rsa_modexpo *icaMsg_p, int cdx,
  1667. int *z90cMsg_l_p, struct type6_msg *z90cMsg_p,
  1668. int dev_type)
  1669. {
  1670. int mod_len, exp_len, vud_len, tmp_size, total_CPRB_len, parmBlock_l;
  1671. int key_len, i;
  1672. unsigned char *temp_exp, *tgt_p, *temp, *exp_p;
  1673. struct type6_hdr *tp6Hdr_p;
  1674. struct CPRBX *cprbx_p;
  1675. struct cca_public_key *key_p;
  1676. struct T6_keyBlock_hdrX *keyb_p;
  1677. temp_exp = kmalloc(256, GFP_KERNEL);
  1678. if (!temp_exp)
  1679. return EGETBUFF;
  1680. mod_len = icaMsg_p->inputdatalength;
  1681. if (copy_from_user(temp_exp, icaMsg_p->b_key, mod_len)) {
  1682. kfree(temp_exp);
  1683. return SEN_RELEASED;
  1684. }
  1685. if (is_empty(temp_exp, mod_len)) {
  1686. kfree(temp_exp);
  1687. return SEN_USER_ERROR;
  1688. }
  1689. exp_p = temp_exp;
  1690. for (i = 0; i < mod_len; i++)
  1691. if (exp_p[i])
  1692. break;
  1693. if (i >= mod_len) {
  1694. kfree(temp_exp);
  1695. return SEN_USER_ERROR;
  1696. }
  1697. exp_len = mod_len - i;
  1698. exp_p += i;
  1699. PDEBUG("exp_len after computation: %08x\n", exp_len);
  1700. tmp_size = FIXED_TYPE6_ME_EN_LENX + 2 * mod_len + exp_len;
  1701. total_CPRB_len = tmp_size - sizeof(struct type6_hdr);
  1702. parmBlock_l = total_CPRB_len - sizeof(struct CPRBX);
  1703. tmp_size = tmp_size + CALLER_HEADER;
  1704. vud_len = 2 + mod_len;
  1705. memset(z90cMsg_p, 0, tmp_size);
  1706. tgt_p = (unsigned char *)z90cMsg_p + CALLER_HEADER;
  1707. memcpy(tgt_p, &static_type6_hdrX, sizeof(struct type6_hdr));
  1708. tp6Hdr_p = (struct type6_hdr *)tgt_p;
  1709. tp6Hdr_p->ToCardLen1 = total_CPRB_len;
  1710. tp6Hdr_p->FromCardLen1 = RESPONSE_CPRBX_SIZE;
  1711. memcpy(tp6Hdr_p->function_code, static_PKE_function_code,
  1712. sizeof(static_PKE_function_code));
  1713. tgt_p += sizeof(struct type6_hdr);
  1714. memcpy(tgt_p, &static_cprbx, sizeof(struct CPRBX));
  1715. cprbx_p = (struct CPRBX *) tgt_p;
  1716. cprbx_p->domain = (unsigned short)cdx;
  1717. cprbx_p->rpl_msgbl = RESPONSE_CPRBX_SIZE;
  1718. tgt_p += sizeof(struct CPRBX);
  1719. if (dev_type == PCIXCC_MCL2)
  1720. memcpy(tgt_p, &static_pke_function_and_rulesX_MCL2,
  1721. sizeof(struct function_and_rules_block));
  1722. else
  1723. memcpy(tgt_p, &static_pke_function_and_rulesX,
  1724. sizeof(struct function_and_rules_block));
  1725. tgt_p += sizeof(struct function_and_rules_block);
  1726. tgt_p += 2;
  1727. if (copy_from_user(tgt_p, icaMsg_p->inputdata, mod_len)) {
  1728. kfree(temp_exp);
  1729. return SEN_RELEASED;
  1730. }
  1731. if (is_empty(tgt_p, mod_len)) {
  1732. kfree(temp_exp);
  1733. return SEN_USER_ERROR;
  1734. }
  1735. tgt_p -= 2;
  1736. *((short *)tgt_p) = (short) vud_len;
  1737. tgt_p += vud_len;
  1738. keyb_p = (struct T6_keyBlock_hdrX *)tgt_p;
  1739. tgt_p += sizeof(struct T6_keyBlock_hdrX);
  1740. memcpy(tgt_p, &static_public_key, sizeof(static_public_key));
  1741. key_p = (struct cca_public_key *)tgt_p;
  1742. temp = key_p->pubSec.exponent;
  1743. memcpy(temp, exp_p, exp_len);
  1744. kfree(temp_exp);
  1745. temp += exp_len;
  1746. if (copy_from_user(temp, icaMsg_p->n_modulus, mod_len))
  1747. return SEN_RELEASED;
  1748. if (is_empty(temp, mod_len))
  1749. return SEN_USER_ERROR;
  1750. key_p->pubSec.modulus_bit_len = 8 * mod_len;
  1751. key_p->pubSec.modulus_byte_len = mod_len;
  1752. key_p->pubSec.exponent_len = exp_len;
  1753. key_p->pubSec.section_length = CALLER_HEADER + mod_len + exp_len;
  1754. key_len = key_p->pubSec.section_length + sizeof(struct cca_token_hdr);
  1755. key_p->pubHdr.token_length = key_len;
  1756. key_len += 4;
  1757. keyb_p->ulen = (unsigned short)key_len;
  1758. key_len += 2;
  1759. keyb_p->blen = (unsigned short)key_len;
  1760. cprbx_p->req_parml = parmBlock_l;
  1761. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1762. return 0;
  1763. }
  1764. static int
  1765. ICACRT_msg_to_type6CRT_msgX(struct ica_rsa_modexpo_crt *icaMsg_p, int cdx,
  1766. int *z90cMsg_l_p, struct type6_msg *z90cMsg_p,
  1767. int dev_type)
  1768. {
  1769. int mod_len, vud_len, tmp_size, total_CPRB_len, parmBlock_l, short_len;
  1770. int long_len, pad_len, keyPartsLen, tmp_l;
  1771. unsigned char *tgt_p, *temp;
  1772. struct type6_hdr *tp6Hdr_p;
  1773. struct CPRBX *cprbx_p;
  1774. struct cca_token_hdr *keyHdr_p;
  1775. struct cca_pvt_ext_CRT_sec *pvtSec_p;
  1776. struct cca_public_sec *pubSec_p;
  1777. mod_len = icaMsg_p->inputdatalength;
  1778. short_len = mod_len / 2;
  1779. long_len = 8 + short_len;
  1780. keyPartsLen = 3 * long_len + 2 * short_len;
  1781. pad_len = (8 - (keyPartsLen % 8)) % 8;
  1782. keyPartsLen += pad_len + mod_len;
  1783. tmp_size = FIXED_TYPE6_CR_LENX + keyPartsLen + mod_len;
  1784. total_CPRB_len = tmp_size - sizeof(struct type6_hdr);
  1785. parmBlock_l = total_CPRB_len - sizeof(struct CPRBX);
  1786. vud_len = 2 + mod_len;
  1787. tmp_size = tmp_size + CALLER_HEADER;
  1788. memset(z90cMsg_p, 0, tmp_size);
  1789. tgt_p = (unsigned char *)z90cMsg_p + CALLER_HEADER;
  1790. memcpy(tgt_p, &static_type6_hdrX, sizeof(struct type6_hdr));
  1791. tp6Hdr_p = (struct type6_hdr *)tgt_p;
  1792. tp6Hdr_p->ToCardLen1 = total_CPRB_len;
  1793. tp6Hdr_p->FromCardLen1 = RESPONSE_CPRBX_SIZE;
  1794. tgt_p += sizeof(struct type6_hdr);
  1795. cprbx_p = (struct CPRBX *) tgt_p;
  1796. memcpy(tgt_p, &static_cprbx, sizeof(struct CPRBX));
  1797. cprbx_p->domain = (unsigned short)cdx;
  1798. cprbx_p->req_parml = parmBlock_l;
  1799. cprbx_p->rpl_msgbl = parmBlock_l;
  1800. tgt_p += sizeof(struct CPRBX);
  1801. if (dev_type == PCIXCC_MCL2)
  1802. memcpy(tgt_p, &static_pkd_function_and_rulesX_MCL2,
  1803. sizeof(struct function_and_rules_block));
  1804. else
  1805. memcpy(tgt_p, &static_pkd_function_and_rulesX,
  1806. sizeof(struct function_and_rules_block));
  1807. tgt_p += sizeof(struct function_and_rules_block);
  1808. *((short *)tgt_p) = (short) vud_len;
  1809. tgt_p += 2;
  1810. if (copy_from_user(tgt_p, icaMsg_p->inputdata, mod_len))
  1811. return SEN_RELEASED;
  1812. if (is_empty(tgt_p, mod_len))
  1813. return SEN_USER_ERROR;
  1814. tgt_p += mod_len;
  1815. tmp_l = sizeof(struct T6_keyBlock_hdr) + sizeof(struct cca_token_hdr) +
  1816. sizeof(struct cca_pvt_ext_CRT_sec) + 0x0F + keyPartsLen;
  1817. *((short *)tgt_p) = (short) tmp_l;
  1818. temp = tgt_p + 2;
  1819. tmp_l -= 2;
  1820. *((short *)temp) = (short) tmp_l;
  1821. tgt_p += sizeof(struct T6_keyBlock_hdr);
  1822. keyHdr_p = (struct cca_token_hdr *)tgt_p;
  1823. keyHdr_p->token_identifier = CCA_TKN_HDR_ID_EXT;
  1824. tmp_l -= 4;
  1825. keyHdr_p->token_length = tmp_l;
  1826. tgt_p += sizeof(struct cca_token_hdr);
  1827. pvtSec_p = (struct cca_pvt_ext_CRT_sec *)tgt_p;
  1828. pvtSec_p->section_identifier = CCA_PVT_EXT_CRT_SEC_ID_PVT;
  1829. pvtSec_p->section_length =
  1830. sizeof(struct cca_pvt_ext_CRT_sec) + keyPartsLen;
  1831. pvtSec_p->key_format = CCA_PVT_EXT_CRT_SEC_FMT_CL;
  1832. pvtSec_p->key_use_flags[0] = CCA_PVT_USAGE_ALL;
  1833. pvtSec_p->p_len = long_len;
  1834. pvtSec_p->q_len = short_len;
  1835. pvtSec_p->dp_len = long_len;
  1836. pvtSec_p->dq_len = short_len;
  1837. pvtSec_p->u_len = long_len;
  1838. pvtSec_p->mod_len = mod_len;
  1839. pvtSec_p->pad_len = pad_len;
  1840. tgt_p += sizeof(struct cca_pvt_ext_CRT_sec);
  1841. if (copy_from_user(tgt_p, icaMsg_p->np_prime, long_len))
  1842. return SEN_RELEASED;
  1843. if (is_empty(tgt_p, long_len))
  1844. return SEN_USER_ERROR;
  1845. tgt_p += long_len;
  1846. if (copy_from_user(tgt_p, icaMsg_p->nq_prime, short_len))
  1847. return SEN_RELEASED;
  1848. if (is_empty(tgt_p, short_len))
  1849. return SEN_USER_ERROR;
  1850. tgt_p += short_len;
  1851. if (copy_from_user(tgt_p, icaMsg_p->bp_key, long_len))
  1852. return SEN_RELEASED;
  1853. if (is_empty(tgt_p, long_len))
  1854. return SEN_USER_ERROR;
  1855. tgt_p += long_len;
  1856. if (copy_from_user(tgt_p, icaMsg_p->bq_key, short_len))
  1857. return SEN_RELEASED;
  1858. if (is_empty(tgt_p, short_len))
  1859. return SEN_USER_ERROR;
  1860. tgt_p += short_len;
  1861. if (copy_from_user(tgt_p, icaMsg_p->u_mult_inv, long_len))
  1862. return SEN_RELEASED;
  1863. if (is_empty(tgt_p, long_len))
  1864. return SEN_USER_ERROR;
  1865. tgt_p += long_len;
  1866. tgt_p += pad_len;
  1867. memset(tgt_p, 0xFF, mod_len);
  1868. tgt_p += mod_len;
  1869. memcpy(tgt_p, &static_cca_pub_sec, sizeof(struct cca_public_sec));
  1870. pubSec_p = (struct cca_public_sec *) tgt_p;
  1871. pubSec_p->modulus_bit_len = 8 * mod_len;
  1872. *z90cMsg_l_p = tmp_size - CALLER_HEADER;
  1873. return 0;
  1874. }
  1875. int
  1876. convert_request(unsigned char *buffer, int func, unsigned short function,
  1877. int cdx, int dev_type, int *msg_l_p, unsigned char *msg_p)
  1878. {
  1879. if (dev_type == PCICA) {
  1880. if (func == ICARSACRT)
  1881. return ICACRT_msg_to_type4CRT_msg(
  1882. (struct ica_rsa_modexpo_crt *) buffer,
  1883. msg_l_p, (union type4_msg *) msg_p);
  1884. else
  1885. return ICAMEX_msg_to_type4MEX_msg(
  1886. (struct ica_rsa_modexpo *) buffer,
  1887. msg_l_p, (union type4_msg *) msg_p);
  1888. }
  1889. if (dev_type == PCICC) {
  1890. if (func == ICARSACRT)
  1891. return ICACRT_msg_to_type6CRT_msg(
  1892. (struct ica_rsa_modexpo_crt *) buffer,
  1893. cdx, msg_l_p, (struct type6_msg *)msg_p);
  1894. if (function == PCI_FUNC_KEY_ENCRYPT)
  1895. return ICAMEX_msg_to_type6MEX_en_msg(
  1896. (struct ica_rsa_modexpo *) buffer,
  1897. cdx, msg_l_p, (struct type6_msg *) msg_p);
  1898. else
  1899. return ICAMEX_msg_to_type6MEX_de_msg(
  1900. (struct ica_rsa_modexpo *) buffer,
  1901. cdx, msg_l_p, (struct type6_msg *) msg_p);
  1902. }
  1903. if ((dev_type == PCIXCC_MCL2) ||
  1904. (dev_type == PCIXCC_MCL3) ||
  1905. (dev_type == CEX2C)) {
  1906. if (func == ICARSACRT)
  1907. return ICACRT_msg_to_type6CRT_msgX(
  1908. (struct ica_rsa_modexpo_crt *) buffer,
  1909. cdx, msg_l_p, (struct type6_msg *) msg_p,
  1910. dev_type);
  1911. else
  1912. return ICAMEX_msg_to_type6MEX_msgX(
  1913. (struct ica_rsa_modexpo *) buffer,
  1914. cdx, msg_l_p, (struct type6_msg *) msg_p,
  1915. dev_type);
  1916. }
  1917. return 0;
  1918. }
  1919. int ext_bitlens_msg_count = 0;
  1920. static inline void
  1921. unset_ext_bitlens(void)
  1922. {
  1923. if (!ext_bitlens_msg_count) {
  1924. PRINTK("Unable to use coprocessors for extended bitlengths. "
  1925. "Using PCICAs (if present) for extended bitlengths. "
  1926. "This is not an error.\n");
  1927. ext_bitlens_msg_count++;
  1928. }
  1929. ext_bitlens = 0;
  1930. }
  1931. int
  1932. convert_response(unsigned char *response, unsigned char *buffer,
  1933. int *respbufflen_p, unsigned char *resp_buff)
  1934. {
  1935. struct ica_rsa_modexpo *icaMsg_p = (struct ica_rsa_modexpo *) buffer;
  1936. struct type82_hdr *t82h_p = (struct type82_hdr *) response;
  1937. struct type84_hdr *t84h_p = (struct type84_hdr *) response;
  1938. struct type86_fmt2_msg *t86m_p = (struct type86_fmt2_msg *) response;
  1939. int reply_code, service_rc, service_rs, src_l;
  1940. unsigned char *src_p, *tgt_p;
  1941. struct CPRB *cprb_p;
  1942. struct CPRBX *cprbx_p;
  1943. src_p = 0;
  1944. reply_code = 0;
  1945. service_rc = 0;
  1946. service_rs = 0;
  1947. src_l = 0;
  1948. switch (t82h_p->type) {
  1949. case TYPE82_RSP_CODE:
  1950. reply_code = t82h_p->reply_code;
  1951. src_p = (unsigned char *)t82h_p;
  1952. PRINTK("Hardware error: Type 82 Message Header: "
  1953. "%02x%02x%02x%02x%02x%02x%02x%02x\n",
  1954. src_p[0], src_p[1], src_p[2], src_p[3],
  1955. src_p[4], src_p[5], src_p[6], src_p[7]);
  1956. break;
  1957. case TYPE84_RSP_CODE:
  1958. src_l = icaMsg_p->outputdatalength;
  1959. src_p = response + (int)t84h_p->len - src_l;
  1960. break;
  1961. case TYPE86_RSP_CODE:
  1962. reply_code = t86m_p->hdr.reply_code;
  1963. if (reply_code != 0)
  1964. break;
  1965. cprb_p = (struct CPRB *)
  1966. (response + sizeof(struct type86_fmt2_msg));
  1967. cprbx_p = (struct CPRBX *) cprb_p;
  1968. if (cprb_p->cprb_ver_id != 0x02) {
  1969. le2toI(cprb_p->ccp_rtcode, &service_rc);
  1970. if (service_rc != 0) {
  1971. le2toI(cprb_p->ccp_rscode, &service_rs);
  1972. if ((service_rc == 8) && (service_rs == 66))
  1973. PDEBUG("Bad block format on PCICC\n");
  1974. else if ((service_rc == 8) && (service_rs == 770)) {
  1975. PDEBUG("Invalid key length on PCICC\n");
  1976. unset_ext_bitlens();
  1977. return REC_USE_PCICA;
  1978. }
  1979. else if ((service_rc == 8) && (service_rs == 783)) {
  1980. PDEBUG("Extended bitlengths not enabled"
  1981. "on PCICC\n");
  1982. unset_ext_bitlens();
  1983. return REC_USE_PCICA;
  1984. }
  1985. else
  1986. PRINTK("service rc/rs: %d/%d\n",
  1987. service_rc, service_rs);
  1988. return REC_OPERAND_INV;
  1989. }
  1990. src_p = (unsigned char *)cprb_p + sizeof(struct CPRB);
  1991. src_p += 4;
  1992. le2toI(src_p, &src_l);
  1993. src_l -= 2;
  1994. src_p += 2;
  1995. } else {
  1996. service_rc = (int)cprbx_p->ccp_rtcode;
  1997. if (service_rc != 0) {
  1998. service_rs = (int) cprbx_p->ccp_rscode;
  1999. if ((service_rc == 8) && (service_rs == 66))
  2000. PDEBUG("Bad block format on PCXICC\n");
  2001. else if ((service_rc == 8) && (service_rs == 770)) {
  2002. PDEBUG("Invalid key length on PCIXCC\n");
  2003. unset_ext_bitlens();
  2004. return REC_USE_PCICA;
  2005. }
  2006. else if ((service_rc == 8) && (service_rs == 783)) {
  2007. PDEBUG("Extended bitlengths not enabled"
  2008. "on PCIXCC\n");
  2009. unset_ext_bitlens();
  2010. return REC_USE_PCICA;
  2011. }
  2012. else
  2013. PRINTK("service rc/rs: %d/%d\n",
  2014. service_rc, service_rs);
  2015. return REC_OPERAND_INV;
  2016. }
  2017. src_p = (unsigned char *)
  2018. cprbx_p + sizeof(struct CPRBX);
  2019. src_p += 4;
  2020. src_l = (int)(*((short *) src_p));
  2021. src_l -= 2;
  2022. src_p += 2;
  2023. }
  2024. break;
  2025. default:
  2026. return REC_BAD_MESSAGE;
  2027. }
  2028. if (reply_code)
  2029. switch (reply_code) {
  2030. case REPLY_ERROR_OPERAND_INVALID:
  2031. return REC_OPERAND_INV;
  2032. case REPLY_ERROR_OPERAND_SIZE:
  2033. return REC_OPERAND_SIZE;
  2034. case REPLY_ERROR_EVEN_MOD_IN_OPND:
  2035. return REC_EVEN_MOD;
  2036. case REPLY_ERROR_MESSAGE_TYPE:
  2037. return WRONG_DEVICE_TYPE;
  2038. case REPLY_ERROR_TRANSPORT_FAIL:
  2039. PRINTKW("Transport failed (APFS = %02X%02X%02X%02X)\n",
  2040. t86m_p->apfs[0], t86m_p->apfs[1],
  2041. t86m_p->apfs[2], t86m_p->apfs[3]);
  2042. return REC_HARDWAR_ERR;
  2043. default:
  2044. PRINTKW("reply code = %d\n", reply_code);
  2045. return REC_HARDWAR_ERR;
  2046. }
  2047. if (service_rc != 0)
  2048. return REC_OPERAND_INV;
  2049. if ((src_l > icaMsg_p->outputdatalength) ||
  2050. (src_l > RESPBUFFSIZE) ||
  2051. (src_l <= 0))
  2052. return REC_OPERAND_SIZE;
  2053. PDEBUG("Length returned = %d\n", src_l);
  2054. tgt_p = resp_buff + icaMsg_p->outputdatalength - src_l;
  2055. memcpy(tgt_p, src_p, src_l);
  2056. if ((t82h_p->type == TYPE86_RSP_CODE) && (resp_buff < tgt_p)) {
  2057. memset(resp_buff, 0, icaMsg_p->outputdatalength - src_l);
  2058. if (pad_msg(resp_buff, icaMsg_p->outputdatalength, src_l))
  2059. return REC_INVALID_PAD;
  2060. }
  2061. *respbufflen_p = icaMsg_p->outputdatalength;
  2062. if (*respbufflen_p == 0)
  2063. PRINTK("Zero *respbufflen_p\n");
  2064. return 0;
  2065. }