sha256_xmm_amd64.asm 11 KB

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  1. ;/*
  2. ; * Copyright 2011 Neil Kettle
  3. ; * Copyright 2013 James Z.M. Gao
  4. ; * Copyright 2012-2016 Luke Dashjr
  5. ; *
  6. ; * This program is free software; you can redistribute it and/or modify it
  7. ; * under the terms of the GNU General Public License as published by the Free
  8. ; * Software Foundation; either version 3 of the License, or (at your option)
  9. ; * any later version. See COPYING for more details.
  10. ; */
  11. ; %rbp, %rbx, and %r12-%r15 - callee save
  12. ALIGN 32
  13. BITS 64
  14. %ifidn __OUTPUT_FORMAT__,win64
  15. %define hash rcx
  16. %define hash1 rdx
  17. %define data r8
  18. %define init r9
  19. %else
  20. %define hash rdi
  21. %define hash1 rsi
  22. %define data rdx
  23. %define init rcx
  24. %endif
  25. %define rel_sha256_consts_m128i r10
  26. ; 0 = (1024 - 256) (mod (LAB_CALC_UNROLL*LAB_CALC_PARA*16))
  27. %define SHA_CALC_W_PARA 2
  28. %define SHA_CALC_W_UNROLL 8
  29. %define SHA_ROUND_LOOP_UNROLL 16
  30. extern sha256_consts_m128i
  31. extern sha256_init_sse2
  32. global sha256_sse2_64_new
  33. %define sr1 xmm6
  34. %define sr2 xmm1
  35. %define sr3 xmm2
  36. %define sr4 xmm13
  37. %define rA xmm7
  38. %define rB xmm5
  39. %define rC xmm4
  40. %define rD xmm3
  41. %define rE xmm0
  42. %define rF xmm8
  43. %define rG xmm9
  44. %define rH xmm10
  45. %macro sha_round_blk 0
  46. movdqa sr1, [data+rax] ; T1 = w;
  47. ;movdqa sr1, xmm11
  48. movdqa sr2, rE ; sr2 = rE
  49. pandn sr2, rG ; sr2 = ~rE & rG
  50. movdqa sr3, rF ; sr3 = rF
  51. paddd sr1, rH ; T1 = h + sha256_consts_m128i[i] + w;
  52. movdqa rH, rG ; rH = rG
  53. pand sr3, rE ; sr3 = rE & rF
  54. movdqa rG, rF ; rG = rF
  55. paddd sr1, [rel_sha256_consts_m128i+rax] ; T1 = sha256_consts_m128i[i] + w;
  56. pxor sr2, sr3 ; sr2 = (rE & rF) ^ (~rE & rG) = Ch (e, f, g)
  57. movdqa rF, rE ; rF = rE
  58. paddd sr1, sr2 ; T1 = h + Ch (e, f, g) + sha256_consts_m128i[i] + w;
  59. movdqa sr2, rE ; sr2 = rE
  60. psrld rE, 6 ; e >> 6
  61. movdqa sr3, rE ; e >> 6
  62. pslld sr2, 7 ; e << 7
  63. psrld sr3, 5 ; e >> 11
  64. pxor rE, sr2 ; e >> 6 ^ e << 7
  65. pslld sr2, 14 ; e << 21
  66. pxor rE, sr3 ; e >> 6 ^ e << 7 ^ e >> 11
  67. psrld sr3, 14 ; e >> 25
  68. pxor rE, sr2 ; e >> 6 ^ e << 7 ^ e >> 11 ^ e << 21
  69. pslld sr2, 5 ; e << 26
  70. pxor rE, sr3 ; e >> 6 ^ e << 7 ^ e >> 11 ^ e << 21 ^ e >> 25
  71. pxor rE, sr2 ; e >> 6 ^ e << 7 ^ e >> 11 ^ e << 21 ^ e >> 25 ^ e << 26
  72. movdqa sr2, rB ; sr2 = rB
  73. paddd sr1, rE ; sr1 = h + BIGSIGMA1_256(e) + Ch (e, f, g) + sha256_consts_m128i[i] + w;
  74. movdqa rE, rD ; rE = rD
  75. movdqa rD, rC ; rD = rC
  76. paddd rE, sr1 ; rE = rD + T1
  77. movdqa sr3, rC ; sr3 = rC
  78. pand rC, rA ; rC = rC & rA
  79. pand sr3, rB ; sr3 = rB & rC
  80. pand sr2, rA ; sr2 = rB & rA
  81. pxor sr2, rC ; sr2 = (rB & rA) ^ (rC & rA)
  82. movdqa rC, rB ; rC = rB
  83. pxor sr2, sr3 ; sr2 = (rB & rA) ^ (rC & rA) ^ (rB & rC)
  84. movdqa rB, rA ; rB = rA
  85. paddd sr1, sr2 ; sr1 = T1 + (rB & rA) ^ (rC & rA) ^ (rB & rC)
  86. lea rax, [rax+16]
  87. movdqa sr3, rA ; sr3 = rA
  88. psrld rA, 2 ; a >> 2
  89. pslld sr3, 10 ; a << 10
  90. movdqa sr2, rA ; a >> 2
  91. pxor rA, sr3 ; a >> 2 ^ a << 10
  92. psrld sr2, 11 ; a >> 13
  93. pxor rA, sr2 ; a >> 2 ^ a << 10 ^ a >> 13
  94. pslld sr3, 9 ; a << 19
  95. pxor rA, sr3 ; a >> 2 ^ a << 10 ^ a >> 13 ^ a << 19
  96. psrld sr2, 9 ; a >> 21
  97. pxor rA, sr2 ; a >> 2 ^ a << 10 ^ a >> 13 ^ a << 19 ^ a >> 21
  98. pslld sr3, 11 ; a << 30
  99. pxor rA, sr3 ; a >> 2 ^ a << 10 ^ a >> 13 ^ a << 19 ^ a >> 21 ^ a << 30
  100. paddd rA, sr1 ; T1 + BIGSIGMA0_256(a) + Maj(a, b, c);
  101. %endmacro
  102. %macro sha_calc_w_blk 1
  103. movdqa xmm0, [r11-(15-%1)*16] ; xmm0 = W[I-15]
  104. movdqa xmm4, [r11-(15-(%1+1))*16] ; xmm4 = W[I-15+1]
  105. movdqa xmm2, xmm0 ; xmm2 = W[I-15]
  106. movdqa xmm6, xmm4 ; xmm6 = W[I-15+1]
  107. psrld xmm0, 3 ; xmm0 = W[I-15] >> 3
  108. psrld xmm4, 3 ; xmm4 = W[I-15+1] >> 3
  109. movdqa xmm1, xmm0 ; xmm1 = W[I-15] >> 3
  110. movdqa xmm5, xmm4 ; xmm5 = W[I-15+1] >> 3
  111. pslld xmm2, 14 ; xmm2 = W[I-15] << 14
  112. pslld xmm6, 14 ; xmm6 = W[I-15+1] << 14
  113. psrld xmm1, 4 ; xmm1 = W[I-15] >> 7
  114. psrld xmm5, 4 ; xmm5 = W[I-15+1] >> 7
  115. pxor xmm0, xmm1 ; xmm0 = (W[I-15] >> 3) ^ (W[I-15] >> 7)
  116. pxor xmm4, xmm5 ; xmm4 = (W[I-15+1] >> 3) ^ (W[I-15+1] >> 7)
  117. psrld xmm1, 11 ; xmm1 = W[I-15] >> 18
  118. psrld xmm5, 11 ; xmm5 = W[I-15+1] >> 18
  119. pxor xmm0, xmm2 ; xmm0 = (W[I-15] >> 3) ^ (W[I-15] >> 7) ^ (W[I-15] << 14)
  120. pxor xmm4, xmm6 ; xmm4 = (W[I-15+1] >> 3) ^ (W[I-15+1] >> 7) ^ (W[I-15+1] << 14)
  121. pslld xmm2, 11 ; xmm2 = W[I-15] << 25
  122. pslld xmm6, 11 ; xmm6 = W[I-15+1] << 25
  123. pxor xmm0, xmm1 ; xmm0 = (W[I-15] >> 3) ^ (W[I-15] >> 7) ^ (W[I-15] << 14) ^ (W[I-15] >> 18)
  124. pxor xmm4, xmm5 ; xmm4 = (W[I-15+1] >> 3) ^ (W[I-15+1] >> 7) ^ (W[I-15+1] << 14) ^ (W[I-15+1] >> 18)
  125. pxor xmm0, xmm2 ; xmm0 = (W[I-15] >> 3) ^ (W[I-15] >> 7) ^ (W[I-15] << 14) ^ (W[I-15] >> 18) ^ (W[I-15] << 25)
  126. pxor xmm4, xmm6 ; xmm4 = (W[I-15+1] >> 3) ^ (W[I-15+1] >> 7) ^ (W[I-15+1] << 14) ^ (W[I-15+1] >> 18) ^ (W[I-15+1] << 25)
  127. movdqa xmm3, [r11-(2-%1)*16] ; xmm3 = W[I-2]
  128. movdqa xmm7, [r11-(2-(%1+1))*16] ; xmm7 = W[I-2+1]
  129. paddd xmm0, [r11-(16-%1)*16] ; xmm0 = s0(W[I-15]) + W[I-16]
  130. paddd xmm4, [r11-(16-(%1+1))*16] ; xmm4 = s0(W[I-15+1]) + W[I-16+1]
  131. ;;;;;;;;;;;;;;;;;;
  132. movdqa xmm2, xmm3 ; xmm2 = W[I-2]
  133. movdqa xmm6, xmm7 ; xmm6 = W[I-2+1]
  134. psrld xmm3, 10 ; xmm3 = W[I-2] >> 10
  135. psrld xmm7, 10 ; xmm7 = W[I-2+1] >> 10
  136. movdqa xmm1, xmm3 ; xmm1 = W[I-2] >> 10
  137. movdqa xmm5, xmm7 ; xmm5 = W[I-2+1] >> 10
  138. paddd xmm0, [r11-(7-%1)*16] ; xmm0 = s0(W[I-15]) + W[I-16] + W[I-7]
  139. pslld xmm2, 13 ; xmm2 = W[I-2] << 13
  140. pslld xmm6, 13 ; xmm6 = W[I-2+1] << 13
  141. psrld xmm1, 7 ; xmm1 = W[I-2] >> 17
  142. psrld xmm5, 7 ; xmm5 = W[I-2+1] >> 17
  143. paddd xmm4, [r11-(7-(%1+1))*16] ; xmm4 = s0(W[I-15+1]) + W[I-16+1] + W[I-7+1]
  144. pxor xmm3, xmm1 ; xmm3 = (W[I-2] >> 10) ^ (W[I-2] >> 17)
  145. pxor xmm7, xmm5 ; xmm7 = (W[I-2+1] >> 10) ^ (W[I-2+1] >> 17)
  146. psrld xmm1, 2 ; xmm1 = W[I-2] >> 19
  147. psrld xmm5, 2 ; xmm5 = W[I-2+1] >> 19
  148. pxor xmm3, xmm2 ; xmm3 = (W[I-2] >> 10) ^ (W[I-2] >> 17) ^ (W[I-2] << 13)
  149. pxor xmm7, xmm6 ; xmm7 = (W[I-2+1] >> 10) ^ (W[I-2+1] >> 17) ^ (W[I-2+1] << 13)
  150. pslld xmm2, 2 ; xmm2 = W[I-2] << 15
  151. pslld xmm6, 2 ; xmm6 = W[I-2+1] << 15
  152. pxor xmm3, xmm1 ; xmm3 = (W[I-2] >> 10) ^ (W[I-2] >> 17) ^ (W[I-2] << 13) ^ (W[I-2] >> 19)
  153. pxor xmm7, xmm5 ; xmm7 = (W[I-2+1] >> 10) ^ (W[I-2+1] >> 17) ^ (W[I-2+1] << 13) ^ (W[I-2+1] >> 19)
  154. pxor xmm3, xmm2 ; xmm3 = (W[I-2] >> 10) ^ (W[I-2] >> 17) ^ (W[I-2] << 13) ^ (W[I-2] >> 19) ^ (W[I-2] << 15)
  155. pxor xmm7, xmm6 ; xmm7 = (W[I-2+1] >> 10) ^ (W[I-2+1] >> 17) ^ (W[I-2+1] << 13) ^ (W[I-2+1] >> 19) ^ (W[I-2+1] << 15)
  156. paddd xmm0, xmm3 ; xmm0 = s0(W[I-15]) + W[I-16] + s1(W[I-2]) + W[I-7]
  157. paddd xmm4, xmm7 ; xmm4 = s0(W[I-15+1]) + W[I-16+1] + s1(W[I-2+1]) + W[I-7+1]
  158. movdqa [r11+(%1*16)], xmm0
  159. movdqa [r11+((%1+1)*16)], xmm4
  160. %endmacro
  161. ; _sha256_sse2_64_new hash(rdi), hash1(rsi), data(rdx), init(rcx),
  162. sha256_sse2_64_new:
  163. push rbx
  164. %ifidn __OUTPUT_FORMAT__,win64
  165. sub rsp, 16 * 6
  166. movdqa [rsp + 16*0], xmm6
  167. movdqa [rsp + 16*1], xmm7
  168. movdqa [rsp + 16*2], xmm8
  169. movdqa [rsp + 16*3], xmm9
  170. movdqa [rsp + 16*4], xmm10
  171. movdqa [rsp + 16*5], xmm13
  172. %endif
  173. %macro SHA_256 0
  174. mov rbx, 64*4 ; rbx is # of SHA-2 rounds
  175. mov rax, 16*4 ; rax is where we expand to
  176. push rbx
  177. lea rbx, qword [data+rbx*4]
  178. lea r11, qword [data+rax*4]
  179. %%SHA_CALC_W:
  180. %assign i 0
  181. %rep SHA_CALC_W_UNROLL
  182. sha_calc_w_blk i
  183. %assign i i+SHA_CALC_W_PARA
  184. %endrep
  185. add r11, SHA_CALC_W_UNROLL*SHA_CALC_W_PARA*16
  186. cmp r11, rbx
  187. jb %%SHA_CALC_W
  188. pop rbx
  189. mov rax, 0
  190. lea rbx, [rbx*4]
  191. movdqa rA, [init]
  192. pshufd rB, rA, 0x55 ; rB == B
  193. pshufd rC, rA, 0xAA ; rC == C
  194. pshufd rD, rA, 0xFF ; rD == D
  195. pshufd rA, rA, 0 ; rA == A
  196. movdqa rE, [init+4*4]
  197. pshufd rF, rE, 0x55 ; rF == F
  198. pshufd rG, rE, 0xAA ; rG == G
  199. pshufd rH, rE, 0xFF ; rH == H
  200. pshufd rE, rE, 0 ; rE == E
  201. lea rel_sha256_consts_m128i, [sha256_consts_m128i wrt rip]
  202. %%SHAROUND_LOOP:
  203. %assign i 0
  204. %rep SHA_ROUND_LOOP_UNROLL
  205. sha_round_blk
  206. %assign i i+1
  207. %endrep
  208. cmp rax, rbx
  209. jb %%SHAROUND_LOOP
  210. ; Finished the 64 rounds, calculate hash and save
  211. movdqa sr1, [init]
  212. pshufd sr2, sr1, 0x55
  213. pshufd sr3, sr1, 0xAA
  214. pshufd sr4, sr1, 0xFF
  215. pshufd sr1, sr1, 0
  216. paddd rB, sr2
  217. paddd rC, sr3
  218. paddd rD, sr4
  219. paddd rA, sr1
  220. movdqa sr1, [init+4*4]
  221. pshufd sr2, sr1, 0x55
  222. pshufd sr3, sr1, 0xAA
  223. pshufd sr4, sr1, 0xFF
  224. pshufd sr1, sr1, 0
  225. paddd rF, sr2
  226. paddd rG, sr3
  227. paddd rH, sr4
  228. paddd rE, sr1
  229. %endmacro
  230. SHA_256
  231. movdqa [hash1+0*16], rA
  232. movdqa [hash1+1*16], rB
  233. movdqa [hash1+2*16], rC
  234. movdqa [hash1+3*16], rD
  235. movdqa [hash1+4*16], rE
  236. movdqa [hash1+5*16], rF
  237. movdqa [hash1+6*16], rG
  238. movdqa [hash1+7*16], rH
  239. mov data, hash1
  240. mov init, qword sha256_init_sse2
  241. SHA_256
  242. movdqa [hash+7*16], rH
  243. LAB_RET:
  244. %ifidn __OUTPUT_FORMAT__,win64
  245. movdqa xmm6, [rsp + 16*0]
  246. movdqa xmm7, [rsp + 16*1]
  247. movdqa xmm8, [rsp + 16*2]
  248. movdqa xmm9, [rsp + 16*3]
  249. movdqa xmm10, [rsp + 16*4]
  250. movdqa xmm13, [rsp + 16*5]
  251. add rsp, 16 * 6
  252. %endif
  253. pop rbx
  254. ret
  255. %ifidn __OUTPUT_FORMAT__,elf
  256. section .note.GNU-stack noalloc noexec nowrite progbits
  257. %endif
  258. %ifidn __OUTPUT_FORMAT__,elf64
  259. section .note.GNU-stack noalloc noexec nowrite progbits
  260. %endif