cast6-avx-x86_64-asm_64.S 9.5 KB

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  1. /*
  2. * Cast6 Cipher 8-way parallel algorithm (AVX/x86_64)
  3. *
  4. * Copyright (C) 2012 Johannes Goetzfried
  5. * <Johannes.Goetzfried@informatik.stud.uni-erlangen.de>
  6. *
  7. * Copyright © 2012 Jussi Kivilinna <jussi.kivilinna@mbnet.fi>
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software
  21. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307
  22. * USA
  23. *
  24. */
  25. #include "glue_helper-asm-avx.S"
  26. .file "cast6-avx-x86_64-asm_64.S"
  27. .extern cast_s1
  28. .extern cast_s2
  29. .extern cast_s3
  30. .extern cast_s4
  31. /* structure of crypto context */
  32. #define km 0
  33. #define kr (12*4*4)
  34. /* s-boxes */
  35. #define s1 cast_s1
  36. #define s2 cast_s2
  37. #define s3 cast_s3
  38. #define s4 cast_s4
  39. /**********************************************************************
  40. 8-way AVX cast6
  41. **********************************************************************/
  42. #define CTX %rdi
  43. #define RA1 %xmm0
  44. #define RB1 %xmm1
  45. #define RC1 %xmm2
  46. #define RD1 %xmm3
  47. #define RA2 %xmm4
  48. #define RB2 %xmm5
  49. #define RC2 %xmm6
  50. #define RD2 %xmm7
  51. #define RX %xmm8
  52. #define RKM %xmm9
  53. #define RKR %xmm10
  54. #define RKRF %xmm11
  55. #define RKRR %xmm12
  56. #define R32 %xmm13
  57. #define R1ST %xmm14
  58. #define RTMP %xmm15
  59. #define RID1 %rbp
  60. #define RID1d %ebp
  61. #define RID2 %rsi
  62. #define RID2d %esi
  63. #define RGI1 %rdx
  64. #define RGI1bl %dl
  65. #define RGI1bh %dh
  66. #define RGI2 %rcx
  67. #define RGI2bl %cl
  68. #define RGI2bh %ch
  69. #define RGI3 %rax
  70. #define RGI3bl %al
  71. #define RGI3bh %ah
  72. #define RGI4 %rbx
  73. #define RGI4bl %bl
  74. #define RGI4bh %bh
  75. #define RFS1 %r8
  76. #define RFS1d %r8d
  77. #define RFS2 %r9
  78. #define RFS2d %r9d
  79. #define RFS3 %r10
  80. #define RFS3d %r10d
  81. #define lookup_32bit(src, dst, op1, op2, op3, interleave_op, il_reg) \
  82. movzbl src ## bh, RID1d; \
  83. movzbl src ## bl, RID2d; \
  84. shrq $16, src; \
  85. movl s1(, RID1, 4), dst ## d; \
  86. op1 s2(, RID2, 4), dst ## d; \
  87. movzbl src ## bh, RID1d; \
  88. movzbl src ## bl, RID2d; \
  89. interleave_op(il_reg); \
  90. op2 s3(, RID1, 4), dst ## d; \
  91. op3 s4(, RID2, 4), dst ## d;
  92. #define dummy(d) /* do nothing */
  93. #define shr_next(reg) \
  94. shrq $16, reg;
  95. #define F_head(a, x, gi1, gi2, op0) \
  96. op0 a, RKM, x; \
  97. vpslld RKRF, x, RTMP; \
  98. vpsrld RKRR, x, x; \
  99. vpor RTMP, x, x; \
  100. \
  101. vmovq x, gi1; \
  102. vpextrq $1, x, gi2;
  103. #define F_tail(a, x, gi1, gi2, op1, op2, op3) \
  104. lookup_32bit(##gi1, RFS1, op1, op2, op3, shr_next, ##gi1); \
  105. lookup_32bit(##gi2, RFS3, op1, op2, op3, shr_next, ##gi2); \
  106. \
  107. lookup_32bit(##gi1, RFS2, op1, op2, op3, dummy, none); \
  108. shlq $32, RFS2; \
  109. orq RFS1, RFS2; \
  110. lookup_32bit(##gi2, RFS1, op1, op2, op3, dummy, none); \
  111. shlq $32, RFS1; \
  112. orq RFS1, RFS3; \
  113. \
  114. vmovq RFS2, x; \
  115. vpinsrq $1, RFS3, x, x;
  116. #define F_2(a1, b1, a2, b2, op0, op1, op2, op3) \
  117. F_head(b1, RX, RGI1, RGI2, op0); \
  118. F_head(b2, RX, RGI3, RGI4, op0); \
  119. \
  120. F_tail(b1, RX, RGI1, RGI2, op1, op2, op3); \
  121. F_tail(b2, RTMP, RGI3, RGI4, op1, op2, op3); \
  122. \
  123. vpxor a1, RX, a1; \
  124. vpxor a2, RTMP, a2;
  125. #define F1_2(a1, b1, a2, b2) \
  126. F_2(a1, b1, a2, b2, vpaddd, xorl, subl, addl)
  127. #define F2_2(a1, b1, a2, b2) \
  128. F_2(a1, b1, a2, b2, vpxor, subl, addl, xorl)
  129. #define F3_2(a1, b1, a2, b2) \
  130. F_2(a1, b1, a2, b2, vpsubd, addl, xorl, subl)
  131. #define qop(in, out, f) \
  132. F ## f ## _2(out ## 1, in ## 1, out ## 2, in ## 2);
  133. #define get_round_keys(nn) \
  134. vbroadcastss (km+(4*(nn)))(CTX), RKM; \
  135. vpand R1ST, RKR, RKRF; \
  136. vpsubq RKRF, R32, RKRR; \
  137. vpsrldq $1, RKR, RKR;
  138. #define Q(n) \
  139. get_round_keys(4*n+0); \
  140. qop(RD, RC, 1); \
  141. \
  142. get_round_keys(4*n+1); \
  143. qop(RC, RB, 2); \
  144. \
  145. get_round_keys(4*n+2); \
  146. qop(RB, RA, 3); \
  147. \
  148. get_round_keys(4*n+3); \
  149. qop(RA, RD, 1);
  150. #define QBAR(n) \
  151. get_round_keys(4*n+3); \
  152. qop(RA, RD, 1); \
  153. \
  154. get_round_keys(4*n+2); \
  155. qop(RB, RA, 3); \
  156. \
  157. get_round_keys(4*n+1); \
  158. qop(RC, RB, 2); \
  159. \
  160. get_round_keys(4*n+0); \
  161. qop(RD, RC, 1);
  162. #define shuffle(mask) \
  163. vpshufb mask, RKR, RKR;
  164. #define preload_rkr(n, do_mask, mask) \
  165. vbroadcastss .L16_mask, RKR; \
  166. /* add 16-bit rotation to key rotations (mod 32) */ \
  167. vpxor (kr+n*16)(CTX), RKR, RKR; \
  168. do_mask(mask);
  169. #define transpose_4x4(x0, x1, x2, x3, t0, t1, t2) \
  170. vpunpckldq x1, x0, t0; \
  171. vpunpckhdq x1, x0, t2; \
  172. vpunpckldq x3, x2, t1; \
  173. vpunpckhdq x3, x2, x3; \
  174. \
  175. vpunpcklqdq t1, t0, x0; \
  176. vpunpckhqdq t1, t0, x1; \
  177. vpunpcklqdq x3, t2, x2; \
  178. vpunpckhqdq x3, t2, x3;
  179. #define inpack_blocks(x0, x1, x2, x3, t0, t1, t2, rmask) \
  180. vpshufb rmask, x0, x0; \
  181. vpshufb rmask, x1, x1; \
  182. vpshufb rmask, x2, x2; \
  183. vpshufb rmask, x3, x3; \
  184. \
  185. transpose_4x4(x0, x1, x2, x3, t0, t1, t2)
  186. #define outunpack_blocks(x0, x1, x2, x3, t0, t1, t2, rmask) \
  187. transpose_4x4(x0, x1, x2, x3, t0, t1, t2) \
  188. \
  189. vpshufb rmask, x0, x0; \
  190. vpshufb rmask, x1, x1; \
  191. vpshufb rmask, x2, x2; \
  192. vpshufb rmask, x3, x3;
  193. .data
  194. .align 16
  195. .Lbswap_mask:
  196. .byte 3, 2, 1, 0, 7, 6, 5, 4, 11, 10, 9, 8, 15, 14, 13, 12
  197. .Lbswap128_mask:
  198. .byte 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0
  199. .Lrkr_enc_Q_Q_QBAR_QBAR:
  200. .byte 0, 1, 2, 3, 4, 5, 6, 7, 11, 10, 9, 8, 15, 14, 13, 12
  201. .Lrkr_enc_QBAR_QBAR_QBAR_QBAR:
  202. .byte 3, 2, 1, 0, 7, 6, 5, 4, 11, 10, 9, 8, 15, 14, 13, 12
  203. .Lrkr_dec_Q_Q_Q_Q:
  204. .byte 12, 13, 14, 15, 8, 9, 10, 11, 4, 5, 6, 7, 0, 1, 2, 3
  205. .Lrkr_dec_Q_Q_QBAR_QBAR:
  206. .byte 12, 13, 14, 15, 8, 9, 10, 11, 7, 6, 5, 4, 3, 2, 1, 0
  207. .Lrkr_dec_QBAR_QBAR_QBAR_QBAR:
  208. .byte 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0
  209. .L16_mask:
  210. .byte 16, 16, 16, 16
  211. .L32_mask:
  212. .byte 32, 0, 0, 0
  213. .Lfirst_mask:
  214. .byte 0x1f, 0, 0, 0
  215. .text
  216. .align 8
  217. .type __cast6_enc_blk8,@function;
  218. __cast6_enc_blk8:
  219. /* input:
  220. * %rdi: ctx, CTX
  221. * RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2: blocks
  222. * output:
  223. * RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2: encrypted blocks
  224. */
  225. pushq %rbp;
  226. pushq %rbx;
  227. vmovdqa .Lbswap_mask, RKM;
  228. vmovd .Lfirst_mask, R1ST;
  229. vmovd .L32_mask, R32;
  230. inpack_blocks(RA1, RB1, RC1, RD1, RTMP, RX, RKRF, RKM);
  231. inpack_blocks(RA2, RB2, RC2, RD2, RTMP, RX, RKRF, RKM);
  232. preload_rkr(0, dummy, none);
  233. Q(0);
  234. Q(1);
  235. Q(2);
  236. Q(3);
  237. preload_rkr(1, shuffle, .Lrkr_enc_Q_Q_QBAR_QBAR);
  238. Q(4);
  239. Q(5);
  240. QBAR(6);
  241. QBAR(7);
  242. preload_rkr(2, shuffle, .Lrkr_enc_QBAR_QBAR_QBAR_QBAR);
  243. QBAR(8);
  244. QBAR(9);
  245. QBAR(10);
  246. QBAR(11);
  247. popq %rbx;
  248. popq %rbp;
  249. vmovdqa .Lbswap_mask, RKM;
  250. outunpack_blocks(RA1, RB1, RC1, RD1, RTMP, RX, RKRF, RKM);
  251. outunpack_blocks(RA2, RB2, RC2, RD2, RTMP, RX, RKRF, RKM);
  252. ret;
  253. .align 8
  254. .type __cast6_dec_blk8,@function;
  255. __cast6_dec_blk8:
  256. /* input:
  257. * %rdi: ctx, CTX
  258. * RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2: encrypted blocks
  259. * output:
  260. * RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2: decrypted blocks
  261. */
  262. pushq %rbp;
  263. pushq %rbx;
  264. vmovdqa .Lbswap_mask, RKM;
  265. vmovd .Lfirst_mask, R1ST;
  266. vmovd .L32_mask, R32;
  267. inpack_blocks(RA1, RB1, RC1, RD1, RTMP, RX, RKRF, RKM);
  268. inpack_blocks(RA2, RB2, RC2, RD2, RTMP, RX, RKRF, RKM);
  269. preload_rkr(2, shuffle, .Lrkr_dec_Q_Q_Q_Q);
  270. Q(11);
  271. Q(10);
  272. Q(9);
  273. Q(8);
  274. preload_rkr(1, shuffle, .Lrkr_dec_Q_Q_QBAR_QBAR);
  275. Q(7);
  276. Q(6);
  277. QBAR(5);
  278. QBAR(4);
  279. preload_rkr(0, shuffle, .Lrkr_dec_QBAR_QBAR_QBAR_QBAR);
  280. QBAR(3);
  281. QBAR(2);
  282. QBAR(1);
  283. QBAR(0);
  284. popq %rbx;
  285. popq %rbp;
  286. vmovdqa .Lbswap_mask, RKM;
  287. outunpack_blocks(RA1, RB1, RC1, RD1, RTMP, RX, RKRF, RKM);
  288. outunpack_blocks(RA2, RB2, RC2, RD2, RTMP, RX, RKRF, RKM);
  289. ret;
  290. .align 8
  291. .global cast6_ecb_enc_8way
  292. .type cast6_ecb_enc_8way,@function;
  293. cast6_ecb_enc_8way:
  294. /* input:
  295. * %rdi: ctx, CTX
  296. * %rsi: dst
  297. * %rdx: src
  298. */
  299. movq %rsi, %r11;
  300. load_8way(%rdx, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  301. call __cast6_enc_blk8;
  302. store_8way(%r11, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  303. ret;
  304. .align 8
  305. .global cast6_ecb_dec_8way
  306. .type cast6_ecb_dec_8way,@function;
  307. cast6_ecb_dec_8way:
  308. /* input:
  309. * %rdi: ctx, CTX
  310. * %rsi: dst
  311. * %rdx: src
  312. */
  313. movq %rsi, %r11;
  314. load_8way(%rdx, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  315. call __cast6_dec_blk8;
  316. store_8way(%r11, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  317. ret;
  318. .align 8
  319. .global cast6_cbc_dec_8way
  320. .type cast6_cbc_dec_8way,@function;
  321. cast6_cbc_dec_8way:
  322. /* input:
  323. * %rdi: ctx, CTX
  324. * %rsi: dst
  325. * %rdx: src
  326. */
  327. pushq %r12;
  328. movq %rsi, %r11;
  329. movq %rdx, %r12;
  330. load_8way(%rdx, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  331. call __cast6_dec_blk8;
  332. store_cbc_8way(%r12, %r11, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  333. popq %r12;
  334. ret;
  335. .align 8
  336. .global cast6_ctr_8way
  337. .type cast6_ctr_8way,@function;
  338. cast6_ctr_8way:
  339. /* input:
  340. * %rdi: ctx, CTX
  341. * %rsi: dst
  342. * %rdx: src
  343. * %rcx: iv (little endian, 128bit)
  344. */
  345. pushq %r12;
  346. movq %rsi, %r11;
  347. movq %rdx, %r12;
  348. load_ctr_8way(%rcx, .Lbswap128_mask, RA1, RB1, RC1, RD1, RA2, RB2, RC2,
  349. RD2, RX, RKR, RKM);
  350. call __cast6_enc_blk8;
  351. store_ctr_8way(%r12, %r11, RA1, RB1, RC1, RD1, RA2, RB2, RC2, RD2);
  352. popq %r12;
  353. ret;