rtw_security.c 56 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2007 - 2011 Realtek Corporation. All rights reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of version 2 of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. * You should have received a copy of the GNU General Public License along with
  15. * this program; if not, write to the Free Software Foundation, Inc.,
  16. * 51 Franklin Street, Fifth Floor, Boston, MA 02110, USA
  17. *
  18. *
  19. ******************************************************************************/
  20. #define _RTW_SECURITY_C_
  21. #include <osdep_service.h>
  22. #include <drv_types.h>
  23. #include <wifi.h>
  24. #include <osdep_intf.h>
  25. /* WEP related ===== */
  26. #define CRC32_POLY 0x04c11db7
  27. struct arc4context {
  28. u32 x;
  29. u32 y;
  30. u8 state[256];
  31. };
  32. static void arcfour_init(struct arc4context *parc4ctx, u8 *key, u32 key_len)
  33. {
  34. u32 t, u;
  35. u32 keyindex;
  36. u32 stateindex;
  37. u8 *state;
  38. u32 counter;
  39. state = parc4ctx->state;
  40. parc4ctx->x = 0;
  41. parc4ctx->y = 0;
  42. for (counter = 0; counter < 256; counter++)
  43. state[counter] = (u8)counter;
  44. keyindex = 0;
  45. stateindex = 0;
  46. for (counter = 0; counter < 256; counter++) {
  47. t = state[counter];
  48. stateindex = (stateindex + key[keyindex] + t) & 0xff;
  49. u = state[stateindex];
  50. state[stateindex] = (u8)t;
  51. state[counter] = (u8)u;
  52. if (++keyindex >= key_len)
  53. keyindex = 0;
  54. }
  55. }
  56. static u32 arcfour_byte(struct arc4context *parc4ctx)
  57. {
  58. u32 x;
  59. u32 y;
  60. u32 sx, sy;
  61. u8 *state;
  62. state = parc4ctx->state;
  63. x = (parc4ctx->x + 1) & 0xff;
  64. sx = state[x];
  65. y = (sx + parc4ctx->y) & 0xff;
  66. sy = state[y];
  67. parc4ctx->x = x;
  68. parc4ctx->y = y;
  69. state[y] = (u8)sx;
  70. state[x] = (u8)sy;
  71. return state[(sx + sy) & 0xff];
  72. }
  73. static void arcfour_encrypt(struct arc4context *parc4ctx, u8 *dest, u8 *src, u32 len)
  74. {
  75. u32 i;
  76. for (i = 0; i < len; i++)
  77. dest[i] = src[i] ^ (unsigned char)arcfour_byte(parc4ctx);
  78. }
  79. static int bcrc32initialized;
  80. static u32 crc32_table[256];
  81. static u8 crc32_reverseBit(u8 data)
  82. {
  83. return (u8)((data<<7)&0x80) | ((data<<5)&0x40) | ((data<<3)&0x20) |
  84. ((data<<1)&0x10) | ((data>>1)&0x08) | ((data>>3)&0x04) |
  85. ((data>>5)&0x02) | ((data>>7)&0x01);
  86. }
  87. static void crc32_init(void)
  88. {
  89. if (bcrc32initialized == 1) {
  90. return;
  91. } else {
  92. int i, j;
  93. u32 c;
  94. u8 *p = (u8 *)&c, *p1;
  95. u8 k;
  96. c = 0x12340000;
  97. for (i = 0; i < 256; ++i) {
  98. k = crc32_reverseBit((u8)i);
  99. for (c = ((u32)k) << 24, j = 8; j > 0; --j)
  100. c = c & 0x80000000 ? (c << 1) ^ CRC32_POLY : (c << 1);
  101. p1 = (u8 *)&crc32_table[i];
  102. p1[0] = crc32_reverseBit(p[3]);
  103. p1[1] = crc32_reverseBit(p[2]);
  104. p1[2] = crc32_reverseBit(p[1]);
  105. p1[3] = crc32_reverseBit(p[0]);
  106. }
  107. bcrc32initialized = 1;
  108. }
  109. }
  110. static __le32 getcrc32(u8 *buf, int len)
  111. {
  112. u8 *p;
  113. u32 crc;
  114. if (bcrc32initialized == 0)
  115. crc32_init();
  116. crc = 0xffffffff; /* preload shift register, per CRC-32 spec */
  117. for (p = buf; len > 0; ++p, --len)
  118. crc = crc32_table[(crc ^ *p) & 0xff] ^ (crc >> 8);
  119. return cpu_to_le32(~crc); /* transmit complement, per CRC-32 spec */
  120. }
  121. /*
  122. Need to consider the fragment situation
  123. */
  124. void rtw_wep_encrypt(struct adapter *padapter, u8 *pxmitframe)
  125. { /* exclude ICV */
  126. unsigned char crc[4];
  127. struct arc4context mycontext;
  128. int curfragnum, length;
  129. u32 keylength;
  130. u8 *pframe, *payload, *iv; /* wepkey */
  131. u8 wepkey[16];
  132. u8 hw_hdr_offset = 0;
  133. struct pkt_attrib *pattrib = &((struct xmit_frame *)pxmitframe)->attrib;
  134. struct security_priv *psecuritypriv = &padapter->securitypriv;
  135. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  136. if (((struct xmit_frame *)pxmitframe)->buf_addr == NULL)
  137. return;
  138. hw_hdr_offset = TXDESC_SIZE +
  139. (((struct xmit_frame *)pxmitframe)->pkt_offset * PACKET_OFFSET_SZ);
  140. pframe = ((struct xmit_frame *)pxmitframe)->buf_addr + hw_hdr_offset;
  141. /* start to encrypt each fragment */
  142. if ((pattrib->encrypt == _WEP40_) || (pattrib->encrypt == _WEP104_)) {
  143. keylength = psecuritypriv->dot11DefKeylen[psecuritypriv->dot11PrivacyKeyIndex];
  144. for (curfragnum = 0; curfragnum < pattrib->nr_frags; curfragnum++) {
  145. iv = pframe+pattrib->hdrlen;
  146. memcpy(&wepkey[0], iv, 3);
  147. memcpy(&wepkey[3], &psecuritypriv->dot11DefKey[psecuritypriv->dot11PrivacyKeyIndex].skey[0], keylength);
  148. payload = pframe+pattrib->iv_len+pattrib->hdrlen;
  149. if ((curfragnum+1) == pattrib->nr_frags) { /* the last fragment */
  150. length = pattrib->last_txcmdsz-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  151. *((__le32 *)crc) = getcrc32(payload, length);
  152. arcfour_init(&mycontext, wepkey, 3+keylength);
  153. arcfour_encrypt(&mycontext, payload, payload, length);
  154. arcfour_encrypt(&mycontext, payload+length, crc, 4);
  155. } else {
  156. length = pxmitpriv->frag_len-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  157. *((__le32 *)crc) = getcrc32(payload, length);
  158. arcfour_init(&mycontext, wepkey, 3+keylength);
  159. arcfour_encrypt(&mycontext, payload, payload, length);
  160. arcfour_encrypt(&mycontext, payload+length, crc, 4);
  161. pframe += pxmitpriv->frag_len;
  162. pframe = (u8 *)round_up((size_t)(pframe), 4);
  163. }
  164. }
  165. }
  166. }
  167. void rtw_wep_decrypt(struct adapter *padapter, u8 *precvframe)
  168. {
  169. /* exclude ICV */
  170. u8 crc[4];
  171. struct arc4context mycontext;
  172. int length;
  173. u32 keylength;
  174. u8 *pframe, *payload, *iv, wepkey[16];
  175. u8 keyindex;
  176. struct rx_pkt_attrib *prxattrib = &(((struct recv_frame *)precvframe)->attrib);
  177. struct security_priv *psecuritypriv = &padapter->securitypriv;
  178. pframe = (unsigned char *)((struct recv_frame *)precvframe)->rx_data;
  179. /* start to decrypt recvframe */
  180. if ((prxattrib->encrypt == _WEP40_) || (prxattrib->encrypt == _WEP104_)) {
  181. iv = pframe+prxattrib->hdrlen;
  182. keyindex = prxattrib->key_index;
  183. keylength = psecuritypriv->dot11DefKeylen[keyindex];
  184. memcpy(&wepkey[0], iv, 3);
  185. memcpy(&wepkey[3], &psecuritypriv->dot11DefKey[keyindex].skey[0], keylength);
  186. length = ((struct recv_frame *)precvframe)->len-prxattrib->hdrlen-prxattrib->iv_len;
  187. payload = pframe+prxattrib->iv_len+prxattrib->hdrlen;
  188. /* decrypt payload include icv */
  189. arcfour_init(&mycontext, wepkey, 3+keylength);
  190. arcfour_encrypt(&mycontext, payload, payload, length);
  191. /* calculate icv and compare the icv */
  192. *((__le32 *)crc) = getcrc32(payload, length - 4);
  193. if (crc[3] != payload[length-1] ||
  194. crc[2] != payload[length-2] ||
  195. crc[1] != payload[length-3] ||
  196. crc[0] != payload[length-4]) {
  197. RT_TRACE(_module_rtl871x_security_c_, _drv_err_,
  198. ("rtw_wep_decrypt:icv error crc (%4ph)!=payload (%4ph)\n",
  199. &crc, &payload[length-4]));
  200. }
  201. }
  202. return;
  203. }
  204. /* 3 ===== TKIP related ===== */
  205. static u32 secmicgetuint32(u8 *p)
  206. /* Convert from Byte[] to Us3232 in a portable way */
  207. {
  208. s32 i;
  209. u32 res = 0;
  210. for (i = 0; i < 4; i++)
  211. res |= ((u32)(*p++)) << (8*i);
  212. return res;
  213. }
  214. static void secmicputuint32(u8 *p, u32 val)
  215. /* Convert from Us3232 to Byte[] in a portable way */
  216. {
  217. long i;
  218. for (i = 0; i < 4; i++) {
  219. *p++ = (u8)(val & 0xff);
  220. val >>= 8;
  221. }
  222. }
  223. static void secmicclear(struct mic_data *pmicdata)
  224. {
  225. /* Reset the state to the empty message. */
  226. pmicdata->L = pmicdata->K0;
  227. pmicdata->R = pmicdata->K1;
  228. pmicdata->nBytesInM = 0;
  229. pmicdata->M = 0;
  230. }
  231. void rtw_secmicsetkey(struct mic_data *pmicdata, u8 *key)
  232. {
  233. /* Set the key */
  234. pmicdata->K0 = secmicgetuint32(key);
  235. pmicdata->K1 = secmicgetuint32(key + 4);
  236. /* and reset the message */
  237. secmicclear(pmicdata);
  238. }
  239. void rtw_secmicappendbyte(struct mic_data *pmicdata, u8 b)
  240. {
  241. /* Append the byte to our word-sized buffer */
  242. pmicdata->M |= ((unsigned long)b) << (8*pmicdata->nBytesInM);
  243. pmicdata->nBytesInM++;
  244. /* Process the word if it is full. */
  245. if (pmicdata->nBytesInM >= 4) {
  246. pmicdata->L ^= pmicdata->M;
  247. pmicdata->R ^= ROL32(pmicdata->L, 17);
  248. pmicdata->L += pmicdata->R;
  249. pmicdata->R ^= ((pmicdata->L & 0xff00ff00) >> 8) | ((pmicdata->L & 0x00ff00ff) << 8);
  250. pmicdata->L += pmicdata->R;
  251. pmicdata->R ^= ROL32(pmicdata->L, 3);
  252. pmicdata->L += pmicdata->R;
  253. pmicdata->R ^= ROR32(pmicdata->L, 2);
  254. pmicdata->L += pmicdata->R;
  255. /* Clear the buffer */
  256. pmicdata->M = 0;
  257. pmicdata->nBytesInM = 0;
  258. }
  259. }
  260. void rtw_secmicappend(struct mic_data *pmicdata, u8 *src, u32 nbytes)
  261. {
  262. /* This is simple */
  263. while (nbytes > 0) {
  264. rtw_secmicappendbyte(pmicdata, *src++);
  265. nbytes--;
  266. }
  267. }
  268. void rtw_secgetmic(struct mic_data *pmicdata, u8 *dst)
  269. {
  270. /* Append the minimum padding */
  271. rtw_secmicappendbyte(pmicdata, 0x5a);
  272. rtw_secmicappendbyte(pmicdata, 0);
  273. rtw_secmicappendbyte(pmicdata, 0);
  274. rtw_secmicappendbyte(pmicdata, 0);
  275. rtw_secmicappendbyte(pmicdata, 0);
  276. /* and then zeroes until the length is a multiple of 4 */
  277. while (pmicdata->nBytesInM != 0)
  278. rtw_secmicappendbyte(pmicdata, 0);
  279. /* The appendByte function has already computed the result. */
  280. secmicputuint32(dst, pmicdata->L);
  281. secmicputuint32(dst+4, pmicdata->R);
  282. /* Reset to the empty message. */
  283. secmicclear(pmicdata);
  284. }
  285. void rtw_seccalctkipmic(u8 *key, u8 *header, u8 *data, u32 data_len, u8 *mic_code, u8 pri)
  286. {
  287. struct mic_data micdata;
  288. u8 priority[4] = {0x0, 0x0, 0x0, 0x0};
  289. rtw_secmicsetkey(&micdata, key);
  290. priority[0] = pri;
  291. /* Michael MIC pseudo header: DA, SA, 3 x 0, Priority */
  292. if (header[1]&1) { /* ToDS == 1 */
  293. rtw_secmicappend(&micdata, &header[16], 6); /* DA */
  294. if (header[1]&2) /* From Ds == 1 */
  295. rtw_secmicappend(&micdata, &header[24], 6);
  296. else
  297. rtw_secmicappend(&micdata, &header[10], 6);
  298. } else { /* ToDS == 0 */
  299. rtw_secmicappend(&micdata, &header[4], 6); /* DA */
  300. if (header[1]&2) /* From Ds == 1 */
  301. rtw_secmicappend(&micdata, &header[16], 6);
  302. else
  303. rtw_secmicappend(&micdata, &header[10], 6);
  304. }
  305. rtw_secmicappend(&micdata, &priority[0], 4);
  306. rtw_secmicappend(&micdata, data, data_len);
  307. rtw_secgetmic(&micdata, mic_code);
  308. }
  309. /* macros for extraction/creation of unsigned char/unsigned short values */
  310. #define RotR1(v16) ((((v16) >> 1) & 0x7FFF) ^ (((v16) & 1) << 15))
  311. #define Lo8(v16) ((u8)((v16) & 0x00FF))
  312. #define Hi8(v16) ((u8)(((v16) >> 8) & 0x00FF))
  313. #define Lo16(v32) ((u16)((v32) & 0xFFFF))
  314. #define Hi16(v32) ((u16)(((v32) >> 16) & 0xFFFF))
  315. #define Mk16(hi, lo) ((lo) ^ (((u16)(hi)) << 8))
  316. /* select the Nth 16-bit word of the temporal key unsigned char array TK[] */
  317. #define TK16(N) Mk16(tk[2*(N)+1], tk[2*(N)])
  318. /* S-box lookup: 16 bits --> 16 bits */
  319. #define _S_(v16) (Sbox1[0][Lo8(v16)] ^ Sbox1[1][Hi8(v16)])
  320. /* fixed algorithm "parameters" */
  321. #define PHASE1_LOOP_CNT 8 /* this needs to be "big enough" */
  322. #define TA_SIZE 6 /* 48-bit transmitter address */
  323. #define TK_SIZE 16 /* 128-bit temporal key */
  324. #define P1K_SIZE 10 /* 80-bit Phase1 key */
  325. #define RC4_KEY_SIZE 16 /* 128-bit RC4KEY (104 bits unknown) */
  326. /* 2-unsigned char by 2-unsigned char subset of the full AES S-box table */
  327. static const unsigned short Sbox1[2][256] = { /* Sbox for hash (can be in ROM) */
  328. {
  329. 0xC6A5, 0xF884, 0xEE99, 0xF68D, 0xFF0D, 0xD6BD, 0xDEB1, 0x9154,
  330. 0x6050, 0x0203, 0xCEA9, 0x567D, 0xE719, 0xB562, 0x4DE6, 0xEC9A,
  331. 0x8F45, 0x1F9D, 0x8940, 0xFA87, 0xEF15, 0xB2EB, 0x8EC9, 0xFB0B,
  332. 0x41EC, 0xB367, 0x5FFD, 0x45EA, 0x23BF, 0x53F7, 0xE496, 0x9B5B,
  333. 0x75C2, 0xE11C, 0x3DAE, 0x4C6A, 0x6C5A, 0x7E41, 0xF502, 0x834F,
  334. 0x685C, 0x51F4, 0xD134, 0xF908, 0xE293, 0xAB73, 0x6253, 0x2A3F,
  335. 0x080C, 0x9552, 0x4665, 0x9D5E, 0x3028, 0x37A1, 0x0A0F, 0x2FB5,
  336. 0x0E09, 0x2436, 0x1B9B, 0xDF3D, 0xCD26, 0x4E69, 0x7FCD, 0xEA9F,
  337. 0x121B, 0x1D9E, 0x5874, 0x342E, 0x362D, 0xDCB2, 0xB4EE, 0x5BFB,
  338. 0xA4F6, 0x764D, 0xB761, 0x7DCE, 0x527B, 0xDD3E, 0x5E71, 0x1397,
  339. 0xA6F5, 0xB968, 0x0000, 0xC12C, 0x4060, 0xE31F, 0x79C8, 0xB6ED,
  340. 0xD4BE, 0x8D46, 0x67D9, 0x724B, 0x94DE, 0x98D4, 0xB0E8, 0x854A,
  341. 0xBB6B, 0xC52A, 0x4FE5, 0xED16, 0x86C5, 0x9AD7, 0x6655, 0x1194,
  342. 0x8ACF, 0xE910, 0x0406, 0xFE81, 0xA0F0, 0x7844, 0x25BA, 0x4BE3,
  343. 0xA2F3, 0x5DFE, 0x80C0, 0x058A, 0x3FAD, 0x21BC, 0x7048, 0xF104,
  344. 0x63DF, 0x77C1, 0xAF75, 0x4263, 0x2030, 0xE51A, 0xFD0E, 0xBF6D,
  345. 0x814C, 0x1814, 0x2635, 0xC32F, 0xBEE1, 0x35A2, 0x88CC, 0x2E39,
  346. 0x9357, 0x55F2, 0xFC82, 0x7A47, 0xC8AC, 0xBAE7, 0x322B, 0xE695,
  347. 0xC0A0, 0x1998, 0x9ED1, 0xA37F, 0x4466, 0x547E, 0x3BAB, 0x0B83,
  348. 0x8CCA, 0xC729, 0x6BD3, 0x283C, 0xA779, 0xBCE2, 0x161D, 0xAD76,
  349. 0xDB3B, 0x6456, 0x744E, 0x141E, 0x92DB, 0x0C0A, 0x486C, 0xB8E4,
  350. 0x9F5D, 0xBD6E, 0x43EF, 0xC4A6, 0x39A8, 0x31A4, 0xD337, 0xF28B,
  351. 0xD532, 0x8B43, 0x6E59, 0xDAB7, 0x018C, 0xB164, 0x9CD2, 0x49E0,
  352. 0xD8B4, 0xACFA, 0xF307, 0xCF25, 0xCAAF, 0xF48E, 0x47E9, 0x1018,
  353. 0x6FD5, 0xF088, 0x4A6F, 0x5C72, 0x3824, 0x57F1, 0x73C7, 0x9751,
  354. 0xCB23, 0xA17C, 0xE89C, 0x3E21, 0x96DD, 0x61DC, 0x0D86, 0x0F85,
  355. 0xE090, 0x7C42, 0x71C4, 0xCCAA, 0x90D8, 0x0605, 0xF701, 0x1C12,
  356. 0xC2A3, 0x6A5F, 0xAEF9, 0x69D0, 0x1791, 0x9958, 0x3A27, 0x27B9,
  357. 0xD938, 0xEB13, 0x2BB3, 0x2233, 0xD2BB, 0xA970, 0x0789, 0x33A7,
  358. 0x2DB6, 0x3C22, 0x1592, 0xC920, 0x8749, 0xAAFF, 0x5078, 0xA57A,
  359. 0x038F, 0x59F8, 0x0980, 0x1A17, 0x65DA, 0xD731, 0x84C6, 0xD0B8,
  360. 0x82C3, 0x29B0, 0x5A77, 0x1E11, 0x7BCB, 0xA8FC, 0x6DD6, 0x2C3A,
  361. },
  362. { /* second half of table is unsigned char-reversed version of first! */
  363. 0xA5C6, 0x84F8, 0x99EE, 0x8DF6, 0x0DFF, 0xBDD6, 0xB1DE, 0x5491,
  364. 0x5060, 0x0302, 0xA9CE, 0x7D56, 0x19E7, 0x62B5, 0xE64D, 0x9AEC,
  365. 0x458F, 0x9D1F, 0x4089, 0x87FA, 0x15EF, 0xEBB2, 0xC98E, 0x0BFB,
  366. 0xEC41, 0x67B3, 0xFD5F, 0xEA45, 0xBF23, 0xF753, 0x96E4, 0x5B9B,
  367. 0xC275, 0x1CE1, 0xAE3D, 0x6A4C, 0x5A6C, 0x417E, 0x02F5, 0x4F83,
  368. 0x5C68, 0xF451, 0x34D1, 0x08F9, 0x93E2, 0x73AB, 0x5362, 0x3F2A,
  369. 0x0C08, 0x5295, 0x6546, 0x5E9D, 0x2830, 0xA137, 0x0F0A, 0xB52F,
  370. 0x090E, 0x3624, 0x9B1B, 0x3DDF, 0x26CD, 0x694E, 0xCD7F, 0x9FEA,
  371. 0x1B12, 0x9E1D, 0x7458, 0x2E34, 0x2D36, 0xB2DC, 0xEEB4, 0xFB5B,
  372. 0xF6A4, 0x4D76, 0x61B7, 0xCE7D, 0x7B52, 0x3EDD, 0x715E, 0x9713,
  373. 0xF5A6, 0x68B9, 0x0000, 0x2CC1, 0x6040, 0x1FE3, 0xC879, 0xEDB6,
  374. 0xBED4, 0x468D, 0xD967, 0x4B72, 0xDE94, 0xD498, 0xE8B0, 0x4A85,
  375. 0x6BBB, 0x2AC5, 0xE54F, 0x16ED, 0xC586, 0xD79A, 0x5566, 0x9411,
  376. 0xCF8A, 0x10E9, 0x0604, 0x81FE, 0xF0A0, 0x4478, 0xBA25, 0xE34B,
  377. 0xF3A2, 0xFE5D, 0xC080, 0x8A05, 0xAD3F, 0xBC21, 0x4870, 0x04F1,
  378. 0xDF63, 0xC177, 0x75AF, 0x6342, 0x3020, 0x1AE5, 0x0EFD, 0x6DBF,
  379. 0x4C81, 0x1418, 0x3526, 0x2FC3, 0xE1BE, 0xA235, 0xCC88, 0x392E,
  380. 0x5793, 0xF255, 0x82FC, 0x477A, 0xACC8, 0xE7BA, 0x2B32, 0x95E6,
  381. 0xA0C0, 0x9819, 0xD19E, 0x7FA3, 0x6644, 0x7E54, 0xAB3B, 0x830B,
  382. 0xCA8C, 0x29C7, 0xD36B, 0x3C28, 0x79A7, 0xE2BC, 0x1D16, 0x76AD,
  383. 0x3BDB, 0x5664, 0x4E74, 0x1E14, 0xDB92, 0x0A0C, 0x6C48, 0xE4B8,
  384. 0x5D9F, 0x6EBD, 0xEF43, 0xA6C4, 0xA839, 0xA431, 0x37D3, 0x8BF2,
  385. 0x32D5, 0x438B, 0x596E, 0xB7DA, 0x8C01, 0x64B1, 0xD29C, 0xE049,
  386. 0xB4D8, 0xFAAC, 0x07F3, 0x25CF, 0xAFCA, 0x8EF4, 0xE947, 0x1810,
  387. 0xD56F, 0x88F0, 0x6F4A, 0x725C, 0x2438, 0xF157, 0xC773, 0x5197,
  388. 0x23CB, 0x7CA1, 0x9CE8, 0x213E, 0xDD96, 0xDC61, 0x860D, 0x850F,
  389. 0x90E0, 0x427C, 0xC471, 0xAACC, 0xD890, 0x0506, 0x01F7, 0x121C,
  390. 0xA3C2, 0x5F6A, 0xF9AE, 0xD069, 0x9117, 0x5899, 0x273A, 0xB927,
  391. 0x38D9, 0x13EB, 0xB32B, 0x3322, 0xBBD2, 0x70A9, 0x8907, 0xA733,
  392. 0xB62D, 0x223C, 0x9215, 0x20C9, 0x4987, 0xFFAA, 0x7850, 0x7AA5,
  393. 0x8F03, 0xF859, 0x8009, 0x171A, 0xDA65, 0x31D7, 0xC684, 0xB8D0,
  394. 0xC382, 0xB029, 0x775A, 0x111E, 0xCB7B, 0xFCA8, 0xD66D, 0x3A2C,
  395. }
  396. };
  397. /*
  398. **********************************************************************
  399. * Routine: Phase 1 -- generate P1K, given TA, TK, IV32
  400. *
  401. * Inputs:
  402. * tk[] = temporal key [128 bits]
  403. * ta[] = transmitter's MAC address [ 48 bits]
  404. * iv32 = upper 32 bits of IV [ 32 bits]
  405. * Output:
  406. * p1k[] = Phase 1 key [ 80 bits]
  407. *
  408. * Note:
  409. * This function only needs to be called every 2**16 packets,
  410. * although in theory it could be called every packet.
  411. *
  412. **********************************************************************
  413. */
  414. static void phase1(u16 *p1k, const u8 *tk, const u8 *ta, u32 iv32)
  415. {
  416. int i;
  417. /* Initialize the 80 bits of P1K[] from IV32 and TA[0..5] */
  418. p1k[0] = Lo16(iv32);
  419. p1k[1] = Hi16(iv32);
  420. p1k[2] = Mk16(ta[1], ta[0]); /* use TA[] as little-endian */
  421. p1k[3] = Mk16(ta[3], ta[2]);
  422. p1k[4] = Mk16(ta[5], ta[4]);
  423. /* Now compute an unbalanced Feistel cipher with 80-bit block */
  424. /* size on the 80-bit block P1K[], using the 128-bit key TK[] */
  425. for (i = 0; i < PHASE1_LOOP_CNT; i++) { /* Each add operation here is mod 2**16 */
  426. p1k[0] += _S_(p1k[4] ^ TK16((i&1)+0));
  427. p1k[1] += _S_(p1k[0] ^ TK16((i&1)+2));
  428. p1k[2] += _S_(p1k[1] ^ TK16((i&1)+4));
  429. p1k[3] += _S_(p1k[2] ^ TK16((i&1)+6));
  430. p1k[4] += _S_(p1k[3] ^ TK16((i&1)+0));
  431. p1k[4] += (unsigned short)i; /* avoid "slide attacks" */
  432. }
  433. }
  434. /*
  435. **********************************************************************
  436. * Routine: Phase 2 -- generate RC4KEY, given TK, P1K, IV16
  437. *
  438. * Inputs:
  439. * tk[] = Temporal key [128 bits]
  440. * p1k[] = Phase 1 output key [ 80 bits]
  441. * iv16 = low 16 bits of IV counter [ 16 bits]
  442. * Output:
  443. * rc4key[] = the key used to encrypt the packet [128 bits]
  444. *
  445. * Note:
  446. * The value {TA, IV32, IV16} for Phase1/Phase2 must be unique
  447. * across all packets using the same key TK value. Then, for a
  448. * given value of TK[], this TKIP48 construction guarantees that
  449. * the final RC4KEY value is unique across all packets.
  450. *
  451. * Suggested implementation optimization: if PPK[] is "overlaid"
  452. * appropriately on RC4KEY[], there is no need for the final
  453. * for loop below that copies the PPK[] result into RC4KEY[].
  454. *
  455. **********************************************************************
  456. */
  457. static void phase2(u8 *rc4key, const u8 *tk, const u16 *p1k, u16 iv16)
  458. {
  459. int i;
  460. u16 PPK[6]; /* temporary key for mixing */
  461. /* Note: all adds in the PPK[] equations below are mod 2**16 */
  462. for (i = 0; i < 5; i++)
  463. PPK[i] = p1k[i]; /* first, copy P1K to PPK */
  464. PPK[5] = p1k[4] + iv16; /* next, add in IV16 */
  465. /* Bijective non-linear mixing of the 96 bits of PPK[0..5] */
  466. PPK[0] += _S_(PPK[5] ^ TK16(0)); /* Mix key in each "round" */
  467. PPK[1] += _S_(PPK[0] ^ TK16(1));
  468. PPK[2] += _S_(PPK[1] ^ TK16(2));
  469. PPK[3] += _S_(PPK[2] ^ TK16(3));
  470. PPK[4] += _S_(PPK[3] ^ TK16(4));
  471. PPK[5] += _S_(PPK[4] ^ TK16(5)); /* Total # S-box lookups == 6 */
  472. /* Final sweep: bijective, "linear". Rotates kill LSB correlations */
  473. PPK[0] += RotR1(PPK[5] ^ TK16(6));
  474. PPK[1] += RotR1(PPK[0] ^ TK16(7)); /* Use all of TK[] in Phase2 */
  475. PPK[2] += RotR1(PPK[1]);
  476. PPK[3] += RotR1(PPK[2]);
  477. PPK[4] += RotR1(PPK[3]);
  478. PPK[5] += RotR1(PPK[4]);
  479. /* Note: At this point, for a given key TK[0..15], the 96-bit output */
  480. /* value PPK[0..5] is guaranteed to be unique, as a function */
  481. /* of the 96-bit "input" value {TA, IV32, IV16}. That is, P1K */
  482. /* is now a keyed permutation of {TA, IV32, IV16}. */
  483. /* Set RC4KEY[0..3], which includes "cleartext" portion of RC4 key */
  484. rc4key[0] = Hi8(iv16); /* RC4KEY[0..2] is the WEP IV */
  485. rc4key[1] = (Hi8(iv16) | 0x20) & 0x7F; /* Help avoid weak (FMS) keys */
  486. rc4key[2] = Lo8(iv16);
  487. rc4key[3] = Lo8((PPK[5] ^ TK16(0)) >> 1);
  488. /* Copy 96 bits of PPK[0..5] to RC4KEY[4..15] (little-endian) */
  489. for (i = 0; i < 6; i++) {
  490. rc4key[4+2*i] = Lo8(PPK[i]);
  491. rc4key[5+2*i] = Hi8(PPK[i]);
  492. }
  493. }
  494. /* The hlen isn't include the IV */
  495. u32 rtw_tkip_encrypt(struct adapter *padapter, u8 *pxmitframe)
  496. { /* exclude ICV */
  497. u16 pnl;
  498. u32 pnh;
  499. u8 rc4key[16];
  500. u8 ttkey[16];
  501. u8 crc[4];
  502. u8 hw_hdr_offset = 0;
  503. struct arc4context mycontext;
  504. int curfragnum, length;
  505. u8 *pframe, *payload, *iv, *prwskey;
  506. union pn48 dot11txpn;
  507. struct sta_info *stainfo;
  508. struct pkt_attrib *pattrib = &((struct xmit_frame *)pxmitframe)->attrib;
  509. struct security_priv *psecuritypriv = &padapter->securitypriv;
  510. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  511. u32 res = _SUCCESS;
  512. if (((struct xmit_frame *)pxmitframe)->buf_addr == NULL)
  513. return _FAIL;
  514. hw_hdr_offset = TXDESC_SIZE +
  515. (((struct xmit_frame *)pxmitframe)->pkt_offset * PACKET_OFFSET_SZ);
  516. pframe = ((struct xmit_frame *)pxmitframe)->buf_addr + hw_hdr_offset;
  517. /* 4 start to encrypt each fragment */
  518. if (pattrib->encrypt == _TKIP_) {
  519. if (pattrib->psta)
  520. stainfo = pattrib->psta;
  521. else
  522. stainfo = rtw_get_stainfo(&padapter->stapriv, &pattrib->ra[0]);
  523. if (stainfo != NULL) {
  524. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_tkip_encrypt: stainfo!= NULL!!!\n"));
  525. if (IS_MCAST(pattrib->ra))
  526. prwskey = psecuritypriv->dot118021XGrpKey[psecuritypriv->dot118021XGrpKeyid].skey;
  527. else
  528. prwskey = &stainfo->dot118021x_UncstKey.skey[0];
  529. for (curfragnum = 0; curfragnum < pattrib->nr_frags; curfragnum++) {
  530. iv = pframe+pattrib->hdrlen;
  531. payload = pframe+pattrib->iv_len+pattrib->hdrlen;
  532. GET_TKIP_PN(iv, dot11txpn);
  533. pnl = (u16)(dot11txpn.val);
  534. pnh = (u32)(dot11txpn.val>>16);
  535. phase1((u16 *)&ttkey[0], prwskey, &pattrib->ta[0], pnh);
  536. phase2(&rc4key[0], prwskey, (u16 *)&ttkey[0], pnl);
  537. if ((curfragnum+1) == pattrib->nr_frags) { /* 4 the last fragment */
  538. length = pattrib->last_txcmdsz-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  539. RT_TRACE(_module_rtl871x_security_c_, _drv_info_,
  540. ("pattrib->iv_len=%x, pattrib->icv_len=%x\n",
  541. pattrib->iv_len, pattrib->icv_len));
  542. *((__le32 *)crc) = getcrc32(payload, length);/* modified by Amy*/
  543. arcfour_init(&mycontext, rc4key, 16);
  544. arcfour_encrypt(&mycontext, payload, payload, length);
  545. arcfour_encrypt(&mycontext, payload+length, crc, 4);
  546. } else {
  547. length = pxmitpriv->frag_len-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  548. *((__le32 *)crc) = getcrc32(payload, length);/* modified by Amy*/
  549. arcfour_init(&mycontext, rc4key, 16);
  550. arcfour_encrypt(&mycontext, payload, payload, length);
  551. arcfour_encrypt(&mycontext, payload+length, crc, 4);
  552. pframe += pxmitpriv->frag_len;
  553. pframe = (u8 *)round_up((size_t)(pframe), 4);
  554. }
  555. }
  556. } else {
  557. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_tkip_encrypt: stainfo==NULL!!!\n"));
  558. res = _FAIL;
  559. }
  560. }
  561. return res;
  562. }
  563. /* The hlen isn't include the IV */
  564. u32 rtw_tkip_decrypt(struct adapter *padapter, u8 *precvframe)
  565. { /* exclude ICV */
  566. u16 pnl;
  567. u32 pnh;
  568. u8 rc4key[16];
  569. u8 ttkey[16];
  570. u8 crc[4];
  571. struct arc4context mycontext;
  572. int length;
  573. u8 *pframe, *payload, *iv, *prwskey;
  574. union pn48 dot11txpn;
  575. struct sta_info *stainfo;
  576. struct rx_pkt_attrib *prxattrib = &((struct recv_frame *)precvframe)->attrib;
  577. struct security_priv *psecuritypriv = &padapter->securitypriv;
  578. u32 res = _SUCCESS;
  579. pframe = (unsigned char *)((struct recv_frame *)precvframe)->rx_data;
  580. /* 4 start to decrypt recvframe */
  581. if (prxattrib->encrypt == _TKIP_) {
  582. stainfo = rtw_get_stainfo(&padapter->stapriv, &prxattrib->ta[0]);
  583. if (stainfo != NULL) {
  584. if (IS_MCAST(prxattrib->ra)) {
  585. if (!psecuritypriv->binstallGrpkey) {
  586. res = _FAIL;
  587. DBG_88E("%s:rx bc/mc packets, but didn't install group key!!!!!!!!!!\n", __func__);
  588. goto exit;
  589. }
  590. prwskey = psecuritypriv->dot118021XGrpKey[prxattrib->key_index].skey;
  591. } else {
  592. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_tkip_decrypt: stainfo!= NULL!!!\n"));
  593. prwskey = &stainfo->dot118021x_UncstKey.skey[0];
  594. }
  595. iv = pframe+prxattrib->hdrlen;
  596. payload = pframe+prxattrib->iv_len+prxattrib->hdrlen;
  597. length = ((struct recv_frame *)precvframe)->len-prxattrib->hdrlen-prxattrib->iv_len;
  598. GET_TKIP_PN(iv, dot11txpn);
  599. pnl = (u16)(dot11txpn.val);
  600. pnh = (u32)(dot11txpn.val>>16);
  601. phase1((u16 *)&ttkey[0], prwskey, &prxattrib->ta[0], pnh);
  602. phase2(&rc4key[0], prwskey, (unsigned short *)&ttkey[0], pnl);
  603. /* 4 decrypt payload include icv */
  604. arcfour_init(&mycontext, rc4key, 16);
  605. arcfour_encrypt(&mycontext, payload, payload, length);
  606. *((__le32 *)crc) = getcrc32(payload, length-4);
  607. if (crc[3] != payload[length-1] ||
  608. crc[2] != payload[length-2] ||
  609. crc[1] != payload[length-3] ||
  610. crc[0] != payload[length-4]) {
  611. RT_TRACE(_module_rtl871x_security_c_, _drv_err_,
  612. ("rtw_wep_decrypt:icv error crc (%4ph)!=payload (%4ph)\n",
  613. &crc, &payload[length-4]));
  614. res = _FAIL;
  615. }
  616. } else {
  617. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_tkip_decrypt: stainfo==NULL!!!\n"));
  618. res = _FAIL;
  619. }
  620. }
  621. exit:
  622. return res;
  623. }
  624. /* 3 ===== AES related ===== */
  625. #define MAX_MSG_SIZE 2048
  626. /*****************************/
  627. /******** SBOX Table *********/
  628. /*****************************/
  629. static u8 sbox_table[256] = {
  630. 0x63, 0x7c, 0x77, 0x7b, 0xf2, 0x6b, 0x6f, 0xc5,
  631. 0x30, 0x01, 0x67, 0x2b, 0xfe, 0xd7, 0xab, 0x76,
  632. 0xca, 0x82, 0xc9, 0x7d, 0xfa, 0x59, 0x47, 0xf0,
  633. 0xad, 0xd4, 0xa2, 0xaf, 0x9c, 0xa4, 0x72, 0xc0,
  634. 0xb7, 0xfd, 0x93, 0x26, 0x36, 0x3f, 0xf7, 0xcc,
  635. 0x34, 0xa5, 0xe5, 0xf1, 0x71, 0xd8, 0x31, 0x15,
  636. 0x04, 0xc7, 0x23, 0xc3, 0x18, 0x96, 0x05, 0x9a,
  637. 0x07, 0x12, 0x80, 0xe2, 0xeb, 0x27, 0xb2, 0x75,
  638. 0x09, 0x83, 0x2c, 0x1a, 0x1b, 0x6e, 0x5a, 0xa0,
  639. 0x52, 0x3b, 0xd6, 0xb3, 0x29, 0xe3, 0x2f, 0x84,
  640. 0x53, 0xd1, 0x00, 0xed, 0x20, 0xfc, 0xb1, 0x5b,
  641. 0x6a, 0xcb, 0xbe, 0x39, 0x4a, 0x4c, 0x58, 0xcf,
  642. 0xd0, 0xef, 0xaa, 0xfb, 0x43, 0x4d, 0x33, 0x85,
  643. 0x45, 0xf9, 0x02, 0x7f, 0x50, 0x3c, 0x9f, 0xa8,
  644. 0x51, 0xa3, 0x40, 0x8f, 0x92, 0x9d, 0x38, 0xf5,
  645. 0xbc, 0xb6, 0xda, 0x21, 0x10, 0xff, 0xf3, 0xd2,
  646. 0xcd, 0x0c, 0x13, 0xec, 0x5f, 0x97, 0x44, 0x17,
  647. 0xc4, 0xa7, 0x7e, 0x3d, 0x64, 0x5d, 0x19, 0x73,
  648. 0x60, 0x81, 0x4f, 0xdc, 0x22, 0x2a, 0x90, 0x88,
  649. 0x46, 0xee, 0xb8, 0x14, 0xde, 0x5e, 0x0b, 0xdb,
  650. 0xe0, 0x32, 0x3a, 0x0a, 0x49, 0x06, 0x24, 0x5c,
  651. 0xc2, 0xd3, 0xac, 0x62, 0x91, 0x95, 0xe4, 0x79,
  652. 0xe7, 0xc8, 0x37, 0x6d, 0x8d, 0xd5, 0x4e, 0xa9,
  653. 0x6c, 0x56, 0xf4, 0xea, 0x65, 0x7a, 0xae, 0x08,
  654. 0xba, 0x78, 0x25, 0x2e, 0x1c, 0xa6, 0xb4, 0xc6,
  655. 0xe8, 0xdd, 0x74, 0x1f, 0x4b, 0xbd, 0x8b, 0x8a,
  656. 0x70, 0x3e, 0xb5, 0x66, 0x48, 0x03, 0xf6, 0x0e,
  657. 0x61, 0x35, 0x57, 0xb9, 0x86, 0xc1, 0x1d, 0x9e,
  658. 0xe1, 0xf8, 0x98, 0x11, 0x69, 0xd9, 0x8e, 0x94,
  659. 0x9b, 0x1e, 0x87, 0xe9, 0xce, 0x55, 0x28, 0xdf,
  660. 0x8c, 0xa1, 0x89, 0x0d, 0xbf, 0xe6, 0x42, 0x68,
  661. 0x41, 0x99, 0x2d, 0x0f, 0xb0, 0x54, 0xbb, 0x16
  662. };
  663. /*****************************/
  664. /**** Function Prototypes ****/
  665. /*****************************/
  666. static void bitwise_xor(u8 *ina, u8 *inb, u8 *out);
  667. static void construct_mic_iv(u8 *mic_header1, int qc_exists, int a4_exists, u8 *mpdu, uint payload_length, u8 *pn_vector);
  668. static void construct_mic_header1(u8 *mic_header1, int header_length, u8 *mpdu);
  669. static void construct_mic_header2(u8 *mic_header2, u8 *mpdu, int a4_exists, int qc_exists);
  670. static void construct_ctr_preload(u8 *ctr_preload, int a4_exists, int qc_exists, u8 *mpdu, u8 *pn_vector, int c);
  671. static void xor_128(u8 *a, u8 *b, u8 *out);
  672. static void xor_32(u8 *a, u8 *b, u8 *out);
  673. static u8 sbox(u8 a);
  674. static void next_key(u8 *key, int round);
  675. static void byte_sub(u8 *in, u8 *out);
  676. static void shift_row(u8 *in, u8 *out);
  677. static void mix_column(u8 *in, u8 *out);
  678. static void aes128k128d(u8 *key, u8 *data, u8 *ciphertext);
  679. /****************************************/
  680. /* aes128k128d() */
  681. /* Performs a 128 bit AES encrypt with */
  682. /* 128 bit data. */
  683. /****************************************/
  684. static void xor_128(u8 *a, u8 *b, u8 *out)
  685. {
  686. int i;
  687. for (i = 0; i < 16; i++)
  688. out[i] = a[i] ^ b[i];
  689. }
  690. static void xor_32(u8 *a, u8 *b, u8 *out)
  691. {
  692. int i;
  693. for (i = 0; i < 4; i++)
  694. out[i] = a[i] ^ b[i];
  695. }
  696. static u8 sbox(u8 a)
  697. {
  698. return sbox_table[(int)a];
  699. }
  700. static void next_key(u8 *key, int round)
  701. {
  702. u8 rcon;
  703. u8 sbox_key[4];
  704. u8 rcon_table[12] = {
  705. 0x01, 0x02, 0x04, 0x08, 0x10, 0x20, 0x40, 0x80,
  706. 0x1b, 0x36, 0x36, 0x36
  707. };
  708. sbox_key[0] = sbox(key[13]);
  709. sbox_key[1] = sbox(key[14]);
  710. sbox_key[2] = sbox(key[15]);
  711. sbox_key[3] = sbox(key[12]);
  712. rcon = rcon_table[round];
  713. xor_32(&key[0], sbox_key, &key[0]);
  714. key[0] = key[0] ^ rcon;
  715. xor_32(&key[4], &key[0], &key[4]);
  716. xor_32(&key[8], &key[4], &key[8]);
  717. xor_32(&key[12], &key[8], &key[12]);
  718. }
  719. static void byte_sub(u8 *in, u8 *out)
  720. {
  721. int i;
  722. for (i = 0; i < 16; i++)
  723. out[i] = sbox(in[i]);
  724. }
  725. static void shift_row(u8 *in, u8 *out)
  726. {
  727. out[0] = in[0];
  728. out[1] = in[5];
  729. out[2] = in[10];
  730. out[3] = in[15];
  731. out[4] = in[4];
  732. out[5] = in[9];
  733. out[6] = in[14];
  734. out[7] = in[3];
  735. out[8] = in[8];
  736. out[9] = in[13];
  737. out[10] = in[2];
  738. out[11] = in[7];
  739. out[12] = in[12];
  740. out[13] = in[1];
  741. out[14] = in[6];
  742. out[15] = in[11];
  743. }
  744. static void mix_column(u8 *in, u8 *out)
  745. {
  746. int i;
  747. u8 add1b[4];
  748. u8 add1bf7[4];
  749. u8 rotl[4];
  750. u8 swap_halves[4];
  751. u8 andf7[4];
  752. u8 rotr[4];
  753. u8 temp[4];
  754. u8 tempb[4];
  755. for (i = 0 ; i < 4; i++) {
  756. if ((in[i] & 0x80) == 0x80)
  757. add1b[i] = 0x1b;
  758. else
  759. add1b[i] = 0x00;
  760. }
  761. swap_halves[0] = in[2]; /* Swap halves */
  762. swap_halves[1] = in[3];
  763. swap_halves[2] = in[0];
  764. swap_halves[3] = in[1];
  765. rotl[0] = in[3]; /* Rotate left 8 bits */
  766. rotl[1] = in[0];
  767. rotl[2] = in[1];
  768. rotl[3] = in[2];
  769. andf7[0] = in[0] & 0x7f;
  770. andf7[1] = in[1] & 0x7f;
  771. andf7[2] = in[2] & 0x7f;
  772. andf7[3] = in[3] & 0x7f;
  773. for (i = 3; i > 0; i--) { /* logical shift left 1 bit */
  774. andf7[i] = andf7[i] << 1;
  775. if ((andf7[i-1] & 0x80) == 0x80)
  776. andf7[i] = (andf7[i] | 0x01);
  777. }
  778. andf7[0] = andf7[0] << 1;
  779. andf7[0] = andf7[0] & 0xfe;
  780. xor_32(add1b, andf7, add1bf7);
  781. xor_32(in, add1bf7, rotr);
  782. temp[0] = rotr[0]; /* Rotate right 8 bits */
  783. rotr[0] = rotr[1];
  784. rotr[1] = rotr[2];
  785. rotr[2] = rotr[3];
  786. rotr[3] = temp[0];
  787. xor_32(add1bf7, rotr, temp);
  788. xor_32(swap_halves, rotl, tempb);
  789. xor_32(temp, tempb, out);
  790. }
  791. static void aes128k128d(u8 *key, u8 *data, u8 *ciphertext)
  792. {
  793. int round;
  794. int i;
  795. u8 intermediatea[16];
  796. u8 intermediateb[16];
  797. u8 round_key[16];
  798. for (i = 0; i < 16; i++)
  799. round_key[i] = key[i];
  800. for (round = 0; round < 11; round++) {
  801. if (round == 0) {
  802. xor_128(round_key, data, ciphertext);
  803. next_key(round_key, round);
  804. } else if (round == 10) {
  805. byte_sub(ciphertext, intermediatea);
  806. shift_row(intermediatea, intermediateb);
  807. xor_128(intermediateb, round_key, ciphertext);
  808. } else { /* 1 - 9 */
  809. byte_sub(ciphertext, intermediatea);
  810. shift_row(intermediatea, intermediateb);
  811. mix_column(&intermediateb[0], &intermediatea[0]);
  812. mix_column(&intermediateb[4], &intermediatea[4]);
  813. mix_column(&intermediateb[8], &intermediatea[8]);
  814. mix_column(&intermediateb[12], &intermediatea[12]);
  815. xor_128(intermediatea, round_key, ciphertext);
  816. next_key(round_key, round);
  817. }
  818. }
  819. }
  820. /************************************************/
  821. /* construct_mic_iv() */
  822. /* Builds the MIC IV from header fields and PN */
  823. /************************************************/
  824. static void construct_mic_iv(u8 *mic_iv, int qc_exists, int a4_exists, u8 *mpdu,
  825. uint payload_length, u8 *pn_vector)
  826. {
  827. int i;
  828. mic_iv[0] = 0x59;
  829. if (qc_exists && a4_exists)
  830. mic_iv[1] = mpdu[30] & 0x0f; /* QoS_TC */
  831. if (qc_exists && !a4_exists)
  832. mic_iv[1] = mpdu[24] & 0x0f; /* mute bits 7-4 */
  833. if (!qc_exists)
  834. mic_iv[1] = 0x00;
  835. for (i = 2; i < 8; i++)
  836. mic_iv[i] = mpdu[i + 8]; /* mic_iv[2:7] = A2[0:5] = mpdu[10:15] */
  837. for (i = 8; i < 14; i++)
  838. mic_iv[i] = pn_vector[13 - i]; /* mic_iv[8:13] = PN[5:0] */
  839. mic_iv[14] = (unsigned char)(payload_length / 256);
  840. mic_iv[15] = (unsigned char)(payload_length % 256);
  841. }
  842. /************************************************/
  843. /* construct_mic_header1() */
  844. /* Builds the first MIC header block from */
  845. /* header fields. */
  846. /************************************************/
  847. static void construct_mic_header1(u8 *mic_header1, int header_length, u8 *mpdu)
  848. {
  849. mic_header1[0] = (u8)((header_length - 2) / 256);
  850. mic_header1[1] = (u8)((header_length - 2) % 256);
  851. mic_header1[2] = mpdu[0] & 0xcf; /* Mute CF poll & CF ack bits */
  852. mic_header1[3] = mpdu[1] & 0xc7; /* Mute retry, more data and pwr mgt bits */
  853. mic_header1[4] = mpdu[4]; /* A1 */
  854. mic_header1[5] = mpdu[5];
  855. mic_header1[6] = mpdu[6];
  856. mic_header1[7] = mpdu[7];
  857. mic_header1[8] = mpdu[8];
  858. mic_header1[9] = mpdu[9];
  859. mic_header1[10] = mpdu[10]; /* A2 */
  860. mic_header1[11] = mpdu[11];
  861. mic_header1[12] = mpdu[12];
  862. mic_header1[13] = mpdu[13];
  863. mic_header1[14] = mpdu[14];
  864. mic_header1[15] = mpdu[15];
  865. }
  866. /************************************************/
  867. /* construct_mic_header2() */
  868. /* Builds the last MIC header block from */
  869. /* header fields. */
  870. /************************************************/
  871. static void construct_mic_header2(u8 *mic_header2, u8 *mpdu, int a4_exists, int qc_exists)
  872. {
  873. int i;
  874. for (i = 0; i < 16; i++)
  875. mic_header2[i] = 0x00;
  876. mic_header2[0] = mpdu[16]; /* A3 */
  877. mic_header2[1] = mpdu[17];
  878. mic_header2[2] = mpdu[18];
  879. mic_header2[3] = mpdu[19];
  880. mic_header2[4] = mpdu[20];
  881. mic_header2[5] = mpdu[21];
  882. mic_header2[6] = 0x00;
  883. mic_header2[7] = 0x00; /* mpdu[23]; */
  884. if (!qc_exists && a4_exists) {
  885. for (i = 0; i < 6; i++)
  886. mic_header2[8+i] = mpdu[24+i]; /* A4 */
  887. }
  888. if (qc_exists && !a4_exists) {
  889. mic_header2[8] = mpdu[24] & 0x0f; /* mute bits 15 - 4 */
  890. mic_header2[9] = mpdu[25] & 0x00;
  891. }
  892. if (qc_exists && a4_exists) {
  893. for (i = 0; i < 6; i++)
  894. mic_header2[8+i] = mpdu[24+i]; /* A4 */
  895. mic_header2[14] = mpdu[30] & 0x0f;
  896. mic_header2[15] = mpdu[31] & 0x00;
  897. }
  898. }
  899. /************************************************/
  900. /* construct_mic_header2() */
  901. /* Builds the last MIC header block from */
  902. /* header fields. */
  903. /************************************************/
  904. static void construct_ctr_preload(u8 *ctr_preload, int a4_exists, int qc_exists, u8 *mpdu, u8 *pn_vector, int c)
  905. {
  906. int i;
  907. for (i = 0; i < 16; i++)
  908. ctr_preload[i] = 0x00;
  909. i = 0;
  910. ctr_preload[0] = 0x01; /* flag */
  911. if (qc_exists && a4_exists)
  912. ctr_preload[1] = mpdu[30] & 0x0f; /* QoC_Control */
  913. if (qc_exists && !a4_exists)
  914. ctr_preload[1] = mpdu[24] & 0x0f;
  915. for (i = 2; i < 8; i++)
  916. ctr_preload[i] = mpdu[i + 8]; /* ctr_preload[2:7] = A2[0:5] = mpdu[10:15] */
  917. for (i = 8; i < 14; i++)
  918. ctr_preload[i] = pn_vector[13 - i]; /* ctr_preload[8:13] = PN[5:0] */
  919. ctr_preload[14] = (unsigned char)(c / 256); /* Ctr */
  920. ctr_preload[15] = (unsigned char)(c % 256);
  921. }
  922. /************************************/
  923. /* bitwise_xor() */
  924. /* A 128 bit, bitwise exclusive or */
  925. /************************************/
  926. static void bitwise_xor(u8 *ina, u8 *inb, u8 *out)
  927. {
  928. int i;
  929. for (i = 0; i < 16; i++)
  930. out[i] = ina[i] ^ inb[i];
  931. }
  932. static int aes_cipher(u8 *key, uint hdrlen, u8 *pframe, uint plen)
  933. {
  934. uint qc_exists, a4_exists, i, j, payload_remainder,
  935. num_blocks, payload_index;
  936. u8 pn_vector[6];
  937. u8 mic_iv[16];
  938. u8 mic_header1[16];
  939. u8 mic_header2[16];
  940. u8 ctr_preload[16];
  941. /* Intermediate Buffers */
  942. u8 chain_buffer[16];
  943. u8 aes_out[16];
  944. u8 padded_buffer[16];
  945. u8 mic[8];
  946. uint frtype = GetFrameType(pframe);
  947. uint frsubtype = GetFrameSubType(pframe);
  948. frsubtype >>= 4;
  949. memset((void *)mic_iv, 0, 16);
  950. memset((void *)mic_header1, 0, 16);
  951. memset((void *)mic_header2, 0, 16);
  952. memset((void *)ctr_preload, 0, 16);
  953. memset((void *)chain_buffer, 0, 16);
  954. memset((void *)aes_out, 0, 16);
  955. memset((void *)padded_buffer, 0, 16);
  956. if ((hdrlen == WLAN_HDR_A3_LEN) || (hdrlen == WLAN_HDR_A3_QOS_LEN))
  957. a4_exists = 0;
  958. else
  959. a4_exists = 1;
  960. if ((frtype == WIFI_DATA_CFACK) || (frtype == WIFI_DATA_CFPOLL) || (frtype == WIFI_DATA_CFACKPOLL)) {
  961. qc_exists = 1;
  962. if (hdrlen != WLAN_HDR_A3_QOS_LEN)
  963. hdrlen += 2;
  964. } else if ((frsubtype == 0x08) || (frsubtype == 0x09) || (frsubtype == 0x0a) || (frsubtype == 0x0b)) {
  965. if (hdrlen != WLAN_HDR_A3_QOS_LEN)
  966. hdrlen += 2;
  967. qc_exists = 1;
  968. } else {
  969. qc_exists = 0;
  970. }
  971. pn_vector[0] = pframe[hdrlen];
  972. pn_vector[1] = pframe[hdrlen+1];
  973. pn_vector[2] = pframe[hdrlen+4];
  974. pn_vector[3] = pframe[hdrlen+5];
  975. pn_vector[4] = pframe[hdrlen+6];
  976. pn_vector[5] = pframe[hdrlen+7];
  977. construct_mic_iv(mic_iv, qc_exists, a4_exists, pframe, plen, pn_vector);
  978. construct_mic_header1(mic_header1, hdrlen, pframe);
  979. construct_mic_header2(mic_header2, pframe, a4_exists, qc_exists);
  980. payload_remainder = plen % 16;
  981. num_blocks = plen / 16;
  982. /* Find start of payload */
  983. payload_index = hdrlen + 8;
  984. /* Calculate MIC */
  985. aes128k128d(key, mic_iv, aes_out);
  986. bitwise_xor(aes_out, mic_header1, chain_buffer);
  987. aes128k128d(key, chain_buffer, aes_out);
  988. bitwise_xor(aes_out, mic_header2, chain_buffer);
  989. aes128k128d(key, chain_buffer, aes_out);
  990. for (i = 0; i < num_blocks; i++) {
  991. bitwise_xor(aes_out, &pframe[payload_index], chain_buffer);/* bitwise_xor(aes_out, &message[payload_index], chain_buffer); */
  992. payload_index += 16;
  993. aes128k128d(key, chain_buffer, aes_out);
  994. }
  995. /* Add on the final payload block if it needs padding */
  996. if (payload_remainder > 0) {
  997. for (j = 0; j < 16; j++)
  998. padded_buffer[j] = 0x00;
  999. for (j = 0; j < payload_remainder; j++)
  1000. padded_buffer[j] = pframe[payload_index++];/* padded_buffer[j] = message[payload_index++]; */
  1001. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1002. aes128k128d(key, chain_buffer, aes_out);
  1003. }
  1004. for (j = 0; j < 8; j++)
  1005. mic[j] = aes_out[j];
  1006. /* Insert MIC into payload */
  1007. for (j = 0; j < 8; j++)
  1008. pframe[payload_index+j] = mic[j];
  1009. payload_index = hdrlen + 8;
  1010. for (i = 0; i < num_blocks; i++) {
  1011. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, pframe, pn_vector, i+1);
  1012. aes128k128d(key, ctr_preload, aes_out);
  1013. bitwise_xor(aes_out, &pframe[payload_index], chain_buffer);
  1014. for (j = 0; j < 16; j++)
  1015. pframe[payload_index++] = chain_buffer[j];
  1016. }
  1017. if (payload_remainder > 0) { /* If there is a short final block, then pad it,*/
  1018. /* encrypt it and copy the unpadded part back */
  1019. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, pframe, pn_vector, num_blocks+1);
  1020. for (j = 0; j < 16; j++)
  1021. padded_buffer[j] = 0x00;
  1022. for (j = 0; j < payload_remainder; j++)
  1023. padded_buffer[j] = pframe[payload_index+j];
  1024. aes128k128d(key, ctr_preload, aes_out);
  1025. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1026. for (j = 0; j < payload_remainder; j++)
  1027. pframe[payload_index++] = chain_buffer[j];
  1028. }
  1029. /* Encrypt the MIC */
  1030. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, pframe, pn_vector, 0);
  1031. for (j = 0; j < 16; j++)
  1032. padded_buffer[j] = 0x00;
  1033. for (j = 0; j < 8; j++)
  1034. padded_buffer[j] = pframe[j+hdrlen+8+plen];
  1035. aes128k128d(key, ctr_preload, aes_out);
  1036. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1037. for (j = 0; j < 8; j++)
  1038. pframe[payload_index++] = chain_buffer[j];
  1039. return _SUCCESS;
  1040. }
  1041. u32 rtw_aes_encrypt(struct adapter *padapter, u8 *pxmitframe)
  1042. { /* exclude ICV */
  1043. /*static*/
  1044. /* unsigned char message[MAX_MSG_SIZE]; */
  1045. /* Intermediate Buffers */
  1046. int curfragnum, length;
  1047. u8 *pframe, *prwskey; /* *payload,*iv */
  1048. u8 hw_hdr_offset = 0;
  1049. struct sta_info *stainfo;
  1050. struct pkt_attrib *pattrib = &((struct xmit_frame *)pxmitframe)->attrib;
  1051. struct security_priv *psecuritypriv = &padapter->securitypriv;
  1052. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  1053. /* uint offset = 0; */
  1054. u32 res = _SUCCESS;
  1055. if (((struct xmit_frame *)pxmitframe)->buf_addr == NULL)
  1056. return _FAIL;
  1057. hw_hdr_offset = TXDESC_SIZE +
  1058. (((struct xmit_frame *)pxmitframe)->pkt_offset * PACKET_OFFSET_SZ);
  1059. pframe = ((struct xmit_frame *)pxmitframe)->buf_addr + hw_hdr_offset;
  1060. /* 4 start to encrypt each fragment */
  1061. if (pattrib->encrypt == _AES_) {
  1062. if (pattrib->psta)
  1063. stainfo = pattrib->psta;
  1064. else
  1065. stainfo = rtw_get_stainfo(&padapter->stapriv, &pattrib->ra[0]);
  1066. if (stainfo != NULL) {
  1067. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_aes_encrypt: stainfo!= NULL!!!\n"));
  1068. if (IS_MCAST(pattrib->ra))
  1069. prwskey = psecuritypriv->dot118021XGrpKey[psecuritypriv->dot118021XGrpKeyid].skey;
  1070. else
  1071. prwskey = &stainfo->dot118021x_UncstKey.skey[0];
  1072. for (curfragnum = 0; curfragnum < pattrib->nr_frags; curfragnum++) {
  1073. if ((curfragnum+1) == pattrib->nr_frags) { /* 4 the last fragment */
  1074. length = pattrib->last_txcmdsz-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  1075. aes_cipher(prwskey, pattrib->hdrlen, pframe, length);
  1076. } else{
  1077. length = pxmitpriv->frag_len-pattrib->hdrlen-pattrib->iv_len-pattrib->icv_len;
  1078. aes_cipher(prwskey, pattrib->hdrlen, pframe, length);
  1079. pframe += pxmitpriv->frag_len;
  1080. pframe = (u8 *)round_up((size_t)(pframe), 8);
  1081. }
  1082. }
  1083. } else{
  1084. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_aes_encrypt: stainfo==NULL!!!\n"));
  1085. res = _FAIL;
  1086. }
  1087. }
  1088. return res;
  1089. }
  1090. static int aes_decipher(u8 *key, uint hdrlen,
  1091. u8 *pframe, uint plen)
  1092. {
  1093. static u8 message[MAX_MSG_SIZE];
  1094. uint qc_exists, a4_exists, i, j, payload_remainder,
  1095. num_blocks, payload_index;
  1096. int res = _SUCCESS;
  1097. u8 pn_vector[6];
  1098. u8 mic_iv[16];
  1099. u8 mic_header1[16];
  1100. u8 mic_header2[16];
  1101. u8 ctr_preload[16];
  1102. /* Intermediate Buffers */
  1103. u8 chain_buffer[16];
  1104. u8 aes_out[16];
  1105. u8 padded_buffer[16];
  1106. u8 mic[8];
  1107. /* uint offset = 0; */
  1108. uint frtype = GetFrameType(pframe);
  1109. uint frsubtype = GetFrameSubType(pframe);
  1110. frsubtype >>= 4;
  1111. memset((void *)mic_iv, 0, 16);
  1112. memset((void *)mic_header1, 0, 16);
  1113. memset((void *)mic_header2, 0, 16);
  1114. memset((void *)ctr_preload, 0, 16);
  1115. memset((void *)chain_buffer, 0, 16);
  1116. memset((void *)aes_out, 0, 16);
  1117. memset((void *)padded_buffer, 0, 16);
  1118. /* start to decrypt the payload */
  1119. num_blocks = (plen-8) / 16; /* plen including llc, payload_length and mic) */
  1120. payload_remainder = (plen-8) % 16;
  1121. pn_vector[0] = pframe[hdrlen];
  1122. pn_vector[1] = pframe[hdrlen+1];
  1123. pn_vector[2] = pframe[hdrlen+4];
  1124. pn_vector[3] = pframe[hdrlen+5];
  1125. pn_vector[4] = pframe[hdrlen+6];
  1126. pn_vector[5] = pframe[hdrlen+7];
  1127. if ((hdrlen == WLAN_HDR_A3_LEN) || (hdrlen == WLAN_HDR_A3_QOS_LEN))
  1128. a4_exists = 0;
  1129. else
  1130. a4_exists = 1;
  1131. if ((frtype == WIFI_DATA_CFACK) || (frtype == WIFI_DATA_CFPOLL) ||
  1132. (frtype == WIFI_DATA_CFACKPOLL)) {
  1133. qc_exists = 1;
  1134. if (hdrlen != WLAN_HDR_A3_QOS_LEN)
  1135. hdrlen += 2;
  1136. } else if ((frsubtype == 0x08) || (frsubtype == 0x09) ||
  1137. (frsubtype == 0x0a) || (frsubtype == 0x0b)) {
  1138. if (hdrlen != WLAN_HDR_A3_QOS_LEN)
  1139. hdrlen += 2;
  1140. qc_exists = 1;
  1141. } else {
  1142. qc_exists = 0;
  1143. }
  1144. /* now, decrypt pframe with hdrlen offset and plen long */
  1145. payload_index = hdrlen + 8; /* 8 is for extiv */
  1146. for (i = 0; i < num_blocks; i++) {
  1147. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, pframe, pn_vector, i+1);
  1148. aes128k128d(key, ctr_preload, aes_out);
  1149. bitwise_xor(aes_out, &pframe[payload_index], chain_buffer);
  1150. for (j = 0; j < 16; j++)
  1151. pframe[payload_index++] = chain_buffer[j];
  1152. }
  1153. if (payload_remainder > 0) { /* If there is a short final block, then pad it,*/
  1154. /* encrypt it and copy the unpadded part back */
  1155. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, pframe, pn_vector, num_blocks+1);
  1156. for (j = 0; j < 16; j++)
  1157. padded_buffer[j] = 0x00;
  1158. for (j = 0; j < payload_remainder; j++)
  1159. padded_buffer[j] = pframe[payload_index+j];
  1160. aes128k128d(key, ctr_preload, aes_out);
  1161. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1162. for (j = 0; j < payload_remainder; j++)
  1163. pframe[payload_index++] = chain_buffer[j];
  1164. }
  1165. /* start to calculate the mic */
  1166. if ((hdrlen+plen+8) <= MAX_MSG_SIZE)
  1167. memcpy(message, pframe, (hdrlen + plen+8)); /* 8 is for ext iv len */
  1168. pn_vector[0] = pframe[hdrlen];
  1169. pn_vector[1] = pframe[hdrlen+1];
  1170. pn_vector[2] = pframe[hdrlen+4];
  1171. pn_vector[3] = pframe[hdrlen+5];
  1172. pn_vector[4] = pframe[hdrlen+6];
  1173. pn_vector[5] = pframe[hdrlen+7];
  1174. construct_mic_iv(mic_iv, qc_exists, a4_exists, message, plen-8, pn_vector);
  1175. construct_mic_header1(mic_header1, hdrlen, message);
  1176. construct_mic_header2(mic_header2, message, a4_exists, qc_exists);
  1177. payload_remainder = (plen-8) % 16;
  1178. num_blocks = (plen-8) / 16;
  1179. /* Find start of payload */
  1180. payload_index = hdrlen + 8;
  1181. /* Calculate MIC */
  1182. aes128k128d(key, mic_iv, aes_out);
  1183. bitwise_xor(aes_out, mic_header1, chain_buffer);
  1184. aes128k128d(key, chain_buffer, aes_out);
  1185. bitwise_xor(aes_out, mic_header2, chain_buffer);
  1186. aes128k128d(key, chain_buffer, aes_out);
  1187. for (i = 0; i < num_blocks; i++) {
  1188. bitwise_xor(aes_out, &message[payload_index], chain_buffer);
  1189. payload_index += 16;
  1190. aes128k128d(key, chain_buffer, aes_out);
  1191. }
  1192. /* Add on the final payload block if it needs padding */
  1193. if (payload_remainder > 0) {
  1194. for (j = 0; j < 16; j++)
  1195. padded_buffer[j] = 0x00;
  1196. for (j = 0; j < payload_remainder; j++)
  1197. padded_buffer[j] = message[payload_index++];
  1198. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1199. aes128k128d(key, chain_buffer, aes_out);
  1200. }
  1201. for (j = 0 ; j < 8; j++)
  1202. mic[j] = aes_out[j];
  1203. /* Insert MIC into payload */
  1204. for (j = 0; j < 8; j++)
  1205. message[payload_index+j] = mic[j];
  1206. payload_index = hdrlen + 8;
  1207. for (i = 0; i < num_blocks; i++) {
  1208. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, message, pn_vector, i+1);
  1209. aes128k128d(key, ctr_preload, aes_out);
  1210. bitwise_xor(aes_out, &message[payload_index], chain_buffer);
  1211. for (j = 0; j < 16; j++)
  1212. message[payload_index++] = chain_buffer[j];
  1213. }
  1214. if (payload_remainder > 0) { /* If there is a short final block, then pad it,*/
  1215. /* encrypt it and copy the unpadded part back */
  1216. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, message, pn_vector, num_blocks+1);
  1217. for (j = 0; j < 16; j++)
  1218. padded_buffer[j] = 0x00;
  1219. for (j = 0; j < payload_remainder; j++)
  1220. padded_buffer[j] = message[payload_index+j];
  1221. aes128k128d(key, ctr_preload, aes_out);
  1222. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1223. for (j = 0; j < payload_remainder; j++)
  1224. message[payload_index++] = chain_buffer[j];
  1225. }
  1226. /* Encrypt the MIC */
  1227. construct_ctr_preload(ctr_preload, a4_exists, qc_exists, message, pn_vector, 0);
  1228. for (j = 0; j < 16; j++)
  1229. padded_buffer[j] = 0x00;
  1230. for (j = 0; j < 8; j++)
  1231. padded_buffer[j] = message[j+hdrlen+8+plen-8];
  1232. aes128k128d(key, ctr_preload, aes_out);
  1233. bitwise_xor(aes_out, padded_buffer, chain_buffer);
  1234. for (j = 0; j < 8; j++)
  1235. message[payload_index++] = chain_buffer[j];
  1236. /* compare the mic */
  1237. for (i = 0; i < 8; i++) {
  1238. if (pframe[hdrlen+8+plen-8+i] != message[hdrlen+8+plen-8+i]) {
  1239. RT_TRACE(_module_rtl871x_security_c_, _drv_err_,
  1240. ("aes_decipher:mic check error mic[%d]: pframe(%x)!=message(%x)\n",
  1241. i, pframe[hdrlen+8+plen-8+i], message[hdrlen+8+plen-8+i]));
  1242. DBG_88E("aes_decipher:mic check error mic[%d]: pframe(%x)!=message(%x)\n",
  1243. i, pframe[hdrlen+8+plen-8+i], message[hdrlen+8+plen-8+i]);
  1244. res = _FAIL;
  1245. }
  1246. }
  1247. return res;
  1248. }
  1249. u32 rtw_aes_decrypt(struct adapter *padapter, u8 *precvframe)
  1250. { /* exclude ICV */
  1251. /* Intermediate Buffers */
  1252. int length;
  1253. u8 *pframe, *prwskey; /* *payload,*iv */
  1254. struct sta_info *stainfo;
  1255. struct rx_pkt_attrib *prxattrib = &((struct recv_frame *)precvframe)->attrib;
  1256. struct security_priv *psecuritypriv = &padapter->securitypriv;
  1257. u32 res = _SUCCESS;
  1258. pframe = (unsigned char *)((struct recv_frame *)precvframe)->rx_data;
  1259. /* 4 start to encrypt each fragment */
  1260. if (prxattrib->encrypt == _AES_) {
  1261. stainfo = rtw_get_stainfo(&padapter->stapriv, &prxattrib->ta[0]);
  1262. if (stainfo != NULL) {
  1263. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_aes_decrypt: stainfo!= NULL!!!\n"));
  1264. if (IS_MCAST(prxattrib->ra)) {
  1265. /* in concurrent we should use sw descrypt in group key, so we remove this message */
  1266. if (!psecuritypriv->binstallGrpkey) {
  1267. res = _FAIL;
  1268. DBG_88E("%s:rx bc/mc packets, but didn't install group key!!!!!!!!!!\n", __func__);
  1269. goto exit;
  1270. }
  1271. prwskey = psecuritypriv->dot118021XGrpKey[prxattrib->key_index].skey;
  1272. if (psecuritypriv->dot118021XGrpKeyid != prxattrib->key_index) {
  1273. DBG_88E("not match packet_index=%d, install_index=%d\n",
  1274. prxattrib->key_index, psecuritypriv->dot118021XGrpKeyid);
  1275. res = _FAIL;
  1276. goto exit;
  1277. }
  1278. } else {
  1279. prwskey = &stainfo->dot118021x_UncstKey.skey[0];
  1280. }
  1281. length = ((struct recv_frame *)precvframe)->len-prxattrib->hdrlen-prxattrib->iv_len;
  1282. res = aes_decipher(prwskey, prxattrib->hdrlen, pframe, length);
  1283. } else {
  1284. RT_TRACE(_module_rtl871x_security_c_, _drv_err_, ("rtw_aes_encrypt: stainfo==NULL!!!\n"));
  1285. res = _FAIL;
  1286. }
  1287. }
  1288. exit:
  1289. return res;
  1290. }
  1291. /* AES tables*/
  1292. const u32 Te0[256] = {
  1293. 0xc66363a5U, 0xf87c7c84U, 0xee777799U, 0xf67b7b8dU,
  1294. 0xfff2f20dU, 0xd66b6bbdU, 0xde6f6fb1U, 0x91c5c554U,
  1295. 0x60303050U, 0x02010103U, 0xce6767a9U, 0x562b2b7dU,
  1296. 0xe7fefe19U, 0xb5d7d762U, 0x4dababe6U, 0xec76769aU,
  1297. 0x8fcaca45U, 0x1f82829dU, 0x89c9c940U, 0xfa7d7d87U,
  1298. 0xeffafa15U, 0xb25959ebU, 0x8e4747c9U, 0xfbf0f00bU,
  1299. 0x41adadecU, 0xb3d4d467U, 0x5fa2a2fdU, 0x45afafeaU,
  1300. 0x239c9cbfU, 0x53a4a4f7U, 0xe4727296U, 0x9bc0c05bU,
  1301. 0x75b7b7c2U, 0xe1fdfd1cU, 0x3d9393aeU, 0x4c26266aU,
  1302. 0x6c36365aU, 0x7e3f3f41U, 0xf5f7f702U, 0x83cccc4fU,
  1303. 0x6834345cU, 0x51a5a5f4U, 0xd1e5e534U, 0xf9f1f108U,
  1304. 0xe2717193U, 0xabd8d873U, 0x62313153U, 0x2a15153fU,
  1305. 0x0804040cU, 0x95c7c752U, 0x46232365U, 0x9dc3c35eU,
  1306. 0x30181828U, 0x379696a1U, 0x0a05050fU, 0x2f9a9ab5U,
  1307. 0x0e070709U, 0x24121236U, 0x1b80809bU, 0xdfe2e23dU,
  1308. 0xcdebeb26U, 0x4e272769U, 0x7fb2b2cdU, 0xea75759fU,
  1309. 0x1209091bU, 0x1d83839eU, 0x582c2c74U, 0x341a1a2eU,
  1310. 0x361b1b2dU, 0xdc6e6eb2U, 0xb45a5aeeU, 0x5ba0a0fbU,
  1311. 0xa45252f6U, 0x763b3b4dU, 0xb7d6d661U, 0x7db3b3ceU,
  1312. 0x5229297bU, 0xdde3e33eU, 0x5e2f2f71U, 0x13848497U,
  1313. 0xa65353f5U, 0xb9d1d168U, 0x00000000U, 0xc1eded2cU,
  1314. 0x40202060U, 0xe3fcfc1fU, 0x79b1b1c8U, 0xb65b5bedU,
  1315. 0xd46a6abeU, 0x8dcbcb46U, 0x67bebed9U, 0x7239394bU,
  1316. 0x944a4adeU, 0x984c4cd4U, 0xb05858e8U, 0x85cfcf4aU,
  1317. 0xbbd0d06bU, 0xc5efef2aU, 0x4faaaae5U, 0xedfbfb16U,
  1318. 0x864343c5U, 0x9a4d4dd7U, 0x66333355U, 0x11858594U,
  1319. 0x8a4545cfU, 0xe9f9f910U, 0x04020206U, 0xfe7f7f81U,
  1320. 0xa05050f0U, 0x783c3c44U, 0x259f9fbaU, 0x4ba8a8e3U,
  1321. 0xa25151f3U, 0x5da3a3feU, 0x804040c0U, 0x058f8f8aU,
  1322. 0x3f9292adU, 0x219d9dbcU, 0x70383848U, 0xf1f5f504U,
  1323. 0x63bcbcdfU, 0x77b6b6c1U, 0xafdada75U, 0x42212163U,
  1324. 0x20101030U, 0xe5ffff1aU, 0xfdf3f30eU, 0xbfd2d26dU,
  1325. 0x81cdcd4cU, 0x180c0c14U, 0x26131335U, 0xc3ecec2fU,
  1326. 0xbe5f5fe1U, 0x359797a2U, 0x884444ccU, 0x2e171739U,
  1327. 0x93c4c457U, 0x55a7a7f2U, 0xfc7e7e82U, 0x7a3d3d47U,
  1328. 0xc86464acU, 0xba5d5de7U, 0x3219192bU, 0xe6737395U,
  1329. 0xc06060a0U, 0x19818198U, 0x9e4f4fd1U, 0xa3dcdc7fU,
  1330. 0x44222266U, 0x542a2a7eU, 0x3b9090abU, 0x0b888883U,
  1331. 0x8c4646caU, 0xc7eeee29U, 0x6bb8b8d3U, 0x2814143cU,
  1332. 0xa7dede79U, 0xbc5e5ee2U, 0x160b0b1dU, 0xaddbdb76U,
  1333. 0xdbe0e03bU, 0x64323256U, 0x743a3a4eU, 0x140a0a1eU,
  1334. 0x924949dbU, 0x0c06060aU, 0x4824246cU, 0xb85c5ce4U,
  1335. 0x9fc2c25dU, 0xbdd3d36eU, 0x43acacefU, 0xc46262a6U,
  1336. 0x399191a8U, 0x319595a4U, 0xd3e4e437U, 0xf279798bU,
  1337. 0xd5e7e732U, 0x8bc8c843U, 0x6e373759U, 0xda6d6db7U,
  1338. 0x018d8d8cU, 0xb1d5d564U, 0x9c4e4ed2U, 0x49a9a9e0U,
  1339. 0xd86c6cb4U, 0xac5656faU, 0xf3f4f407U, 0xcfeaea25U,
  1340. 0xca6565afU, 0xf47a7a8eU, 0x47aeaee9U, 0x10080818U,
  1341. 0x6fbabad5U, 0xf0787888U, 0x4a25256fU, 0x5c2e2e72U,
  1342. 0x381c1c24U, 0x57a6a6f1U, 0x73b4b4c7U, 0x97c6c651U,
  1343. 0xcbe8e823U, 0xa1dddd7cU, 0xe874749cU, 0x3e1f1f21U,
  1344. 0x964b4bddU, 0x61bdbddcU, 0x0d8b8b86U, 0x0f8a8a85U,
  1345. 0xe0707090U, 0x7c3e3e42U, 0x71b5b5c4U, 0xcc6666aaU,
  1346. 0x904848d8U, 0x06030305U, 0xf7f6f601U, 0x1c0e0e12U,
  1347. 0xc26161a3U, 0x6a35355fU, 0xae5757f9U, 0x69b9b9d0U,
  1348. 0x17868691U, 0x99c1c158U, 0x3a1d1d27U, 0x279e9eb9U,
  1349. 0xd9e1e138U, 0xebf8f813U, 0x2b9898b3U, 0x22111133U,
  1350. 0xd26969bbU, 0xa9d9d970U, 0x078e8e89U, 0x339494a7U,
  1351. 0x2d9b9bb6U, 0x3c1e1e22U, 0x15878792U, 0xc9e9e920U,
  1352. 0x87cece49U, 0xaa5555ffU, 0x50282878U, 0xa5dfdf7aU,
  1353. 0x038c8c8fU, 0x59a1a1f8U, 0x09898980U, 0x1a0d0d17U,
  1354. 0x65bfbfdaU, 0xd7e6e631U, 0x844242c6U, 0xd06868b8U,
  1355. 0x824141c3U, 0x299999b0U, 0x5a2d2d77U, 0x1e0f0f11U,
  1356. 0x7bb0b0cbU, 0xa85454fcU, 0x6dbbbbd6U, 0x2c16163aU,
  1357. };
  1358. const u32 Td0[256] = {
  1359. 0x51f4a750U, 0x7e416553U, 0x1a17a4c3U, 0x3a275e96U,
  1360. 0x3bab6bcbU, 0x1f9d45f1U, 0xacfa58abU, 0x4be30393U,
  1361. 0x2030fa55U, 0xad766df6U, 0x88cc7691U, 0xf5024c25U,
  1362. 0x4fe5d7fcU, 0xc52acbd7U, 0x26354480U, 0xb562a38fU,
  1363. 0xdeb15a49U, 0x25ba1b67U, 0x45ea0e98U, 0x5dfec0e1U,
  1364. 0xc32f7502U, 0x814cf012U, 0x8d4697a3U, 0x6bd3f9c6U,
  1365. 0x038f5fe7U, 0x15929c95U, 0xbf6d7aebU, 0x955259daU,
  1366. 0xd4be832dU, 0x587421d3U, 0x49e06929U, 0x8ec9c844U,
  1367. 0x75c2896aU, 0xf48e7978U, 0x99583e6bU, 0x27b971ddU,
  1368. 0xbee14fb6U, 0xf088ad17U, 0xc920ac66U, 0x7dce3ab4U,
  1369. 0x63df4a18U, 0xe51a3182U, 0x97513360U, 0x62537f45U,
  1370. 0xb16477e0U, 0xbb6bae84U, 0xfe81a01cU, 0xf9082b94U,
  1371. 0x70486858U, 0x8f45fd19U, 0x94de6c87U, 0x527bf8b7U,
  1372. 0xab73d323U, 0x724b02e2U, 0xe31f8f57U, 0x6655ab2aU,
  1373. 0xb2eb2807U, 0x2fb5c203U, 0x86c57b9aU, 0xd33708a5U,
  1374. 0x302887f2U, 0x23bfa5b2U, 0x02036abaU, 0xed16825cU,
  1375. 0x8acf1c2bU, 0xa779b492U, 0xf307f2f0U, 0x4e69e2a1U,
  1376. 0x65daf4cdU, 0x0605bed5U, 0xd134621fU, 0xc4a6fe8aU,
  1377. 0x342e539dU, 0xa2f355a0U, 0x058ae132U, 0xa4f6eb75U,
  1378. 0x0b83ec39U, 0x4060efaaU, 0x5e719f06U, 0xbd6e1051U,
  1379. 0x3e218af9U, 0x96dd063dU, 0xdd3e05aeU, 0x4de6bd46U,
  1380. 0x91548db5U, 0x71c45d05U, 0x0406d46fU, 0x605015ffU,
  1381. 0x1998fb24U, 0xd6bde997U, 0x894043ccU, 0x67d99e77U,
  1382. 0xb0e842bdU, 0x07898b88U, 0xe7195b38U, 0x79c8eedbU,
  1383. 0xa17c0a47U, 0x7c420fe9U, 0xf8841ec9U, 0x00000000U,
  1384. 0x09808683U, 0x322bed48U, 0x1e1170acU, 0x6c5a724eU,
  1385. 0xfd0efffbU, 0x0f853856U, 0x3daed51eU, 0x362d3927U,
  1386. 0x0a0fd964U, 0x685ca621U, 0x9b5b54d1U, 0x24362e3aU,
  1387. 0x0c0a67b1U, 0x9357e70fU, 0xb4ee96d2U, 0x1b9b919eU,
  1388. 0x80c0c54fU, 0x61dc20a2U, 0x5a774b69U, 0x1c121a16U,
  1389. 0xe293ba0aU, 0xc0a02ae5U, 0x3c22e043U, 0x121b171dU,
  1390. 0x0e090d0bU, 0xf28bc7adU, 0x2db6a8b9U, 0x141ea9c8U,
  1391. 0x57f11985U, 0xaf75074cU, 0xee99ddbbU, 0xa37f60fdU,
  1392. 0xf701269fU, 0x5c72f5bcU, 0x44663bc5U, 0x5bfb7e34U,
  1393. 0x8b432976U, 0xcb23c6dcU, 0xb6edfc68U, 0xb8e4f163U,
  1394. 0xd731dccaU, 0x42638510U, 0x13972240U, 0x84c61120U,
  1395. 0x854a247dU, 0xd2bb3df8U, 0xaef93211U, 0xc729a16dU,
  1396. 0x1d9e2f4bU, 0xdcb230f3U, 0x0d8652ecU, 0x77c1e3d0U,
  1397. 0x2bb3166cU, 0xa970b999U, 0x119448faU, 0x47e96422U,
  1398. 0xa8fc8cc4U, 0xa0f03f1aU, 0x567d2cd8U, 0x223390efU,
  1399. 0x87494ec7U, 0xd938d1c1U, 0x8ccaa2feU, 0x98d40b36U,
  1400. 0xa6f581cfU, 0xa57ade28U, 0xdab78e26U, 0x3fadbfa4U,
  1401. 0x2c3a9de4U, 0x5078920dU, 0x6a5fcc9bU, 0x547e4662U,
  1402. 0xf68d13c2U, 0x90d8b8e8U, 0x2e39f75eU, 0x82c3aff5U,
  1403. 0x9f5d80beU, 0x69d0937cU, 0x6fd52da9U, 0xcf2512b3U,
  1404. 0xc8ac993bU, 0x10187da7U, 0xe89c636eU, 0xdb3bbb7bU,
  1405. 0xcd267809U, 0x6e5918f4U, 0xec9ab701U, 0x834f9aa8U,
  1406. 0xe6956e65U, 0xaaffe67eU, 0x21bccf08U, 0xef15e8e6U,
  1407. 0xbae79bd9U, 0x4a6f36ceU, 0xea9f09d4U, 0x29b07cd6U,
  1408. 0x31a4b2afU, 0x2a3f2331U, 0xc6a59430U, 0x35a266c0U,
  1409. 0x744ebc37U, 0xfc82caa6U, 0xe090d0b0U, 0x33a7d815U,
  1410. 0xf104984aU, 0x41ecdaf7U, 0x7fcd500eU, 0x1791f62fU,
  1411. 0x764dd68dU, 0x43efb04dU, 0xccaa4d54U, 0xe49604dfU,
  1412. 0x9ed1b5e3U, 0x4c6a881bU, 0xc12c1fb8U, 0x4665517fU,
  1413. 0x9d5eea04U, 0x018c355dU, 0xfa877473U, 0xfb0b412eU,
  1414. 0xb3671d5aU, 0x92dbd252U, 0xe9105633U, 0x6dd64713U,
  1415. 0x9ad7618cU, 0x37a10c7aU, 0x59f8148eU, 0xeb133c89U,
  1416. 0xcea927eeU, 0xb761c935U, 0xe11ce5edU, 0x7a47b13cU,
  1417. 0x9cd2df59U, 0x55f2733fU, 0x1814ce79U, 0x73c737bfU,
  1418. 0x53f7cdeaU, 0x5ffdaa5bU, 0xdf3d6f14U, 0x7844db86U,
  1419. 0xcaaff381U, 0xb968c43eU, 0x3824342cU, 0xc2a3405fU,
  1420. 0x161dc372U, 0xbce2250cU, 0x283c498bU, 0xff0d9541U,
  1421. 0x39a80171U, 0x080cb3deU, 0xd8b4e49cU, 0x6456c190U,
  1422. 0x7bcb8461U, 0xd532b670U, 0x486c5c74U, 0xd0b85742U,
  1423. };
  1424. const u8 Td4s[256] = {
  1425. 0x52U, 0x09U, 0x6aU, 0xd5U, 0x30U, 0x36U, 0xa5U, 0x38U,
  1426. 0xbfU, 0x40U, 0xa3U, 0x9eU, 0x81U, 0xf3U, 0xd7U, 0xfbU,
  1427. 0x7cU, 0xe3U, 0x39U, 0x82U, 0x9bU, 0x2fU, 0xffU, 0x87U,
  1428. 0x34U, 0x8eU, 0x43U, 0x44U, 0xc4U, 0xdeU, 0xe9U, 0xcbU,
  1429. 0x54U, 0x7bU, 0x94U, 0x32U, 0xa6U, 0xc2U, 0x23U, 0x3dU,
  1430. 0xeeU, 0x4cU, 0x95U, 0x0bU, 0x42U, 0xfaU, 0xc3U, 0x4eU,
  1431. 0x08U, 0x2eU, 0xa1U, 0x66U, 0x28U, 0xd9U, 0x24U, 0xb2U,
  1432. 0x76U, 0x5bU, 0xa2U, 0x49U, 0x6dU, 0x8bU, 0xd1U, 0x25U,
  1433. 0x72U, 0xf8U, 0xf6U, 0x64U, 0x86U, 0x68U, 0x98U, 0x16U,
  1434. 0xd4U, 0xa4U, 0x5cU, 0xccU, 0x5dU, 0x65U, 0xb6U, 0x92U,
  1435. 0x6cU, 0x70U, 0x48U, 0x50U, 0xfdU, 0xedU, 0xb9U, 0xdaU,
  1436. 0x5eU, 0x15U, 0x46U, 0x57U, 0xa7U, 0x8dU, 0x9dU, 0x84U,
  1437. 0x90U, 0xd8U, 0xabU, 0x00U, 0x8cU, 0xbcU, 0xd3U, 0x0aU,
  1438. 0xf7U, 0xe4U, 0x58U, 0x05U, 0xb8U, 0xb3U, 0x45U, 0x06U,
  1439. 0xd0U, 0x2cU, 0x1eU, 0x8fU, 0xcaU, 0x3fU, 0x0fU, 0x02U,
  1440. 0xc1U, 0xafU, 0xbdU, 0x03U, 0x01U, 0x13U, 0x8aU, 0x6bU,
  1441. 0x3aU, 0x91U, 0x11U, 0x41U, 0x4fU, 0x67U, 0xdcU, 0xeaU,
  1442. 0x97U, 0xf2U, 0xcfU, 0xceU, 0xf0U, 0xb4U, 0xe6U, 0x73U,
  1443. 0x96U, 0xacU, 0x74U, 0x22U, 0xe7U, 0xadU, 0x35U, 0x85U,
  1444. 0xe2U, 0xf9U, 0x37U, 0xe8U, 0x1cU, 0x75U, 0xdfU, 0x6eU,
  1445. 0x47U, 0xf1U, 0x1aU, 0x71U, 0x1dU, 0x29U, 0xc5U, 0x89U,
  1446. 0x6fU, 0xb7U, 0x62U, 0x0eU, 0xaaU, 0x18U, 0xbeU, 0x1bU,
  1447. 0xfcU, 0x56U, 0x3eU, 0x4bU, 0xc6U, 0xd2U, 0x79U, 0x20U,
  1448. 0x9aU, 0xdbU, 0xc0U, 0xfeU, 0x78U, 0xcdU, 0x5aU, 0xf4U,
  1449. 0x1fU, 0xddU, 0xa8U, 0x33U, 0x88U, 0x07U, 0xc7U, 0x31U,
  1450. 0xb1U, 0x12U, 0x10U, 0x59U, 0x27U, 0x80U, 0xecU, 0x5fU,
  1451. 0x60U, 0x51U, 0x7fU, 0xa9U, 0x19U, 0xb5U, 0x4aU, 0x0dU,
  1452. 0x2dU, 0xe5U, 0x7aU, 0x9fU, 0x93U, 0xc9U, 0x9cU, 0xefU,
  1453. 0xa0U, 0xe0U, 0x3bU, 0x4dU, 0xaeU, 0x2aU, 0xf5U, 0xb0U,
  1454. 0xc8U, 0xebU, 0xbbU, 0x3cU, 0x83U, 0x53U, 0x99U, 0x61U,
  1455. 0x17U, 0x2bU, 0x04U, 0x7eU, 0xbaU, 0x77U, 0xd6U, 0x26U,
  1456. 0xe1U, 0x69U, 0x14U, 0x63U, 0x55U, 0x21U, 0x0cU, 0x7dU,
  1457. };
  1458. const u8 rcons[] = {
  1459. 0x01, 0x02, 0x04, 0x08, 0x10, 0x20, 0x40, 0x80, 0x1B, 0x36
  1460. /* for 128-bit blocks, Rijndael never uses more than 10 rcon values */
  1461. };
  1462. /**
  1463. * Expand the cipher key into the encryption key schedule.
  1464. *
  1465. * @return the number of rounds for the given cipher key size.
  1466. */
  1467. #define ROUND(i, d, s) \
  1468. do { \
  1469. d##0 = TE0(s##0) ^ TE1(s##1) ^ TE2(s##2) ^ TE3(s##3) ^ rk[4 * i]; \
  1470. d##1 = TE0(s##1) ^ TE1(s##2) ^ TE2(s##3) ^ TE3(s##0) ^ rk[4 * i + 1]; \
  1471. d##2 = TE0(s##2) ^ TE1(s##3) ^ TE2(s##0) ^ TE3(s##1) ^ rk[4 * i + 2]; \
  1472. d##3 = TE0(s##3) ^ TE1(s##0) ^ TE2(s##1) ^ TE3(s##2) ^ rk[4 * i + 3]; \
  1473. } while (0);