sha512-armv8.pl 23 KB

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  1. #! /usr/bin/env perl
  2. # Copyright 2014-2018 The OpenSSL Project Authors. All Rights Reserved.
  3. #
  4. # Licensed under the OpenSSL license (the "License"). You may not use
  5. # this file except in compliance with the License. You can obtain a copy
  6. # in the file LICENSE in the source distribution or at
  7. # https://www.openssl.org/source/license.html
  8. # ====================================================================
  9. # Written by Andy Polyakov <appro@openssl.org> for the OpenSSL
  10. # project. The module is, however, dual licensed under OpenSSL and
  11. # CRYPTOGAMS licenses depending on where you obtain it. For further
  12. # details see http://www.openssl.org/~appro/cryptogams/.
  13. #
  14. # Permission to use under GPLv2 terms is granted.
  15. # ====================================================================
  16. #
  17. # SHA256/512 for ARMv8.
  18. #
  19. # Performance in cycles per processed byte and improvement coefficient
  20. # over code generated with "default" compiler:
  21. #
  22. # SHA256-hw SHA256(*) SHA512
  23. # Apple A7 1.97 10.5 (+33%) 6.73 (-1%(**))
  24. # Cortex-A53 2.38 15.5 (+115%) 10.0 (+150%(***))
  25. # Cortex-A57 2.31 11.6 (+86%) 7.51 (+260%(***))
  26. # Denver 2.01 10.5 (+26%) 6.70 (+8%)
  27. # X-Gene 20.0 (+100%) 12.8 (+300%(***))
  28. # Mongoose 2.36 13.0 (+50%) 8.36 (+33%)
  29. # Kryo 1.92 17.4 (+30%) 11.2 (+8%)
  30. #
  31. # (*) Software SHA256 results are of lesser relevance, presented
  32. # mostly for informational purposes.
  33. # (**) The result is a trade-off: it's possible to improve it by
  34. # 10% (or by 1 cycle per round), but at the cost of 20% loss
  35. # on Cortex-A53 (or by 4 cycles per round).
  36. # (***) Super-impressive coefficients over gcc-generated code are
  37. # indication of some compiler "pathology", most notably code
  38. # generated with -mgeneral-regs-only is significantly faster
  39. # and the gap is only 40-90%.
  40. #
  41. # October 2016.
  42. #
  43. # Originally it was reckoned that it makes no sense to implement NEON
  44. # version of SHA256 for 64-bit processors. This is because performance
  45. # improvement on most wide-spread Cortex-A5x processors was observed
  46. # to be marginal, same on Cortex-A53 and ~10% on A57. But then it was
  47. # observed that 32-bit NEON SHA256 performs significantly better than
  48. # 64-bit scalar version on *some* of the more recent processors. As
  49. # result 64-bit NEON version of SHA256 was added to provide best
  50. # all-round performance. For example it executes ~30% faster on X-Gene
  51. # and Mongoose. [For reference, NEON version of SHA512 is bound to
  52. # deliver much less improvement, likely *negative* on Cortex-A5x.
  53. # Which is why NEON support is limited to SHA256.]
  54. $output=pop;
  55. $flavour=pop;
  56. if ($flavour && $flavour ne "void") {
  57. $0 =~ m/(.*[\/\\])[^\/\\]+$/; $dir=$1;
  58. ( $xlate="${dir}arm-xlate.pl" and -f $xlate ) or
  59. ( $xlate="${dir}../../perlasm/arm-xlate.pl" and -f $xlate) or
  60. die "can't locate arm-xlate.pl";
  61. open OUT,"| \"$^X\" $xlate $flavour $output";
  62. *STDOUT=*OUT;
  63. } else {
  64. open STDOUT,">$output";
  65. }
  66. if ($output =~ /512/) {
  67. $BITS=512;
  68. $SZ=8;
  69. @Sigma0=(28,34,39);
  70. @Sigma1=(14,18,41);
  71. @sigma0=(1, 8, 7);
  72. @sigma1=(19,61, 6);
  73. $rounds=80;
  74. $reg_t="x";
  75. } else {
  76. $BITS=256;
  77. $SZ=4;
  78. @Sigma0=( 2,13,22);
  79. @Sigma1=( 6,11,25);
  80. @sigma0=( 7,18, 3);
  81. @sigma1=(17,19,10);
  82. $rounds=64;
  83. $reg_t="w";
  84. }
  85. $func="sha${BITS}_block_data_order";
  86. ($ctx,$inp,$num,$Ktbl)=map("x$_",(0..2,30));
  87. @X=map("$reg_t$_",(3..15,0..2));
  88. @V=($A,$B,$C,$D,$E,$F,$G,$H)=map("$reg_t$_",(20..27));
  89. ($t0,$t1,$t2,$t3)=map("$reg_t$_",(16,17,19,28));
  90. sub BODY_00_xx {
  91. my ($i,$a,$b,$c,$d,$e,$f,$g,$h)=@_;
  92. my $j=($i+1)&15;
  93. my ($T0,$T1,$T2)=(@X[($i-8)&15],@X[($i-9)&15],@X[($i-10)&15]);
  94. $T0=@X[$i+3] if ($i<11);
  95. $code.=<<___ if ($i<16);
  96. #ifndef __AARCH64EB__
  97. rev @X[$i],@X[$i] // $i
  98. #endif
  99. ___
  100. $code.=<<___ if ($i<13 && ($i&1));
  101. ldp @X[$i+1],@X[$i+2],[$inp],#2*$SZ
  102. ___
  103. $code.=<<___ if ($i==13);
  104. ldp @X[14],@X[15],[$inp]
  105. ___
  106. $code.=<<___ if ($i>=14);
  107. ldr @X[($i-11)&15],[sp,#`$SZ*(($i-11)%4)`]
  108. ___
  109. $code.=<<___ if ($i>0 && $i<16);
  110. add $a,$a,$t1 // h+=Sigma0(a)
  111. ___
  112. $code.=<<___ if ($i>=11);
  113. str @X[($i-8)&15],[sp,#`$SZ*(($i-8)%4)`]
  114. ___
  115. # While ARMv8 specifies merged rotate-n-logical operation such as
  116. # 'eor x,y,z,ror#n', it was found to negatively affect performance
  117. # on Apple A7. The reason seems to be that it requires even 'y' to
  118. # be available earlier. This means that such merged instruction is
  119. # not necessarily best choice on critical path... On the other hand
  120. # Cortex-A5x handles merged instructions much better than disjoint
  121. # rotate and logical... See (**) footnote above.
  122. $code.=<<___ if ($i<15);
  123. ror $t0,$e,#$Sigma1[0]
  124. add $h,$h,$t2 // h+=K[i]
  125. eor $T0,$e,$e,ror#`$Sigma1[2]-$Sigma1[1]`
  126. and $t1,$f,$e
  127. bic $t2,$g,$e
  128. add $h,$h,@X[$i&15] // h+=X[i]
  129. orr $t1,$t1,$t2 // Ch(e,f,g)
  130. eor $t2,$a,$b // a^b, b^c in next round
  131. eor $t0,$t0,$T0,ror#$Sigma1[1] // Sigma1(e)
  132. ror $T0,$a,#$Sigma0[0]
  133. add $h,$h,$t1 // h+=Ch(e,f,g)
  134. eor $t1,$a,$a,ror#`$Sigma0[2]-$Sigma0[1]`
  135. add $h,$h,$t0 // h+=Sigma1(e)
  136. and $t3,$t3,$t2 // (b^c)&=(a^b)
  137. add $d,$d,$h // d+=h
  138. eor $t3,$t3,$b // Maj(a,b,c)
  139. eor $t1,$T0,$t1,ror#$Sigma0[1] // Sigma0(a)
  140. add $h,$h,$t3 // h+=Maj(a,b,c)
  141. ldr $t3,[$Ktbl],#$SZ // *K++, $t2 in next round
  142. //add $h,$h,$t1 // h+=Sigma0(a)
  143. ___
  144. $code.=<<___ if ($i>=15);
  145. ror $t0,$e,#$Sigma1[0]
  146. add $h,$h,$t2 // h+=K[i]
  147. ror $T1,@X[($j+1)&15],#$sigma0[0]
  148. and $t1,$f,$e
  149. ror $T2,@X[($j+14)&15],#$sigma1[0]
  150. bic $t2,$g,$e
  151. ror $T0,$a,#$Sigma0[0]
  152. add $h,$h,@X[$i&15] // h+=X[i]
  153. eor $t0,$t0,$e,ror#$Sigma1[1]
  154. eor $T1,$T1,@X[($j+1)&15],ror#$sigma0[1]
  155. orr $t1,$t1,$t2 // Ch(e,f,g)
  156. eor $t2,$a,$b // a^b, b^c in next round
  157. eor $t0,$t0,$e,ror#$Sigma1[2] // Sigma1(e)
  158. eor $T0,$T0,$a,ror#$Sigma0[1]
  159. add $h,$h,$t1 // h+=Ch(e,f,g)
  160. and $t3,$t3,$t2 // (b^c)&=(a^b)
  161. eor $T2,$T2,@X[($j+14)&15],ror#$sigma1[1]
  162. eor $T1,$T1,@X[($j+1)&15],lsr#$sigma0[2] // sigma0(X[i+1])
  163. add $h,$h,$t0 // h+=Sigma1(e)
  164. eor $t3,$t3,$b // Maj(a,b,c)
  165. eor $t1,$T0,$a,ror#$Sigma0[2] // Sigma0(a)
  166. eor $T2,$T2,@X[($j+14)&15],lsr#$sigma1[2] // sigma1(X[i+14])
  167. add @X[$j],@X[$j],@X[($j+9)&15]
  168. add $d,$d,$h // d+=h
  169. add $h,$h,$t3 // h+=Maj(a,b,c)
  170. ldr $t3,[$Ktbl],#$SZ // *K++, $t2 in next round
  171. add @X[$j],@X[$j],$T1
  172. add $h,$h,$t1 // h+=Sigma0(a)
  173. add @X[$j],@X[$j],$T2
  174. ___
  175. ($t2,$t3)=($t3,$t2);
  176. }
  177. $code.=<<___;
  178. #ifndef __KERNEL__
  179. # include "arm_arch.h"
  180. #endif
  181. .text
  182. .extern OPENSSL_armcap_P
  183. .globl $func
  184. .type $func,%function
  185. .align 6
  186. $func:
  187. #ifndef __KERNEL__
  188. # ifdef __ILP32__
  189. ldrsw x16,.LOPENSSL_armcap_P
  190. # else
  191. ldr x16,.LOPENSSL_armcap_P
  192. # endif
  193. adr x17,.LOPENSSL_armcap_P
  194. add x16,x16,x17
  195. ldr w16,[x16]
  196. ___
  197. $code.=<<___ if ($SZ==4);
  198. tst w16,#ARMV8_SHA256
  199. b.ne .Lv8_entry
  200. tst w16,#ARMV7_NEON
  201. b.ne .Lneon_entry
  202. ___
  203. $code.=<<___ if ($SZ==8);
  204. tst w16,#ARMV8_SHA512
  205. b.ne .Lv8_entry
  206. ___
  207. $code.=<<___;
  208. #endif
  209. stp x29,x30,[sp,#-128]!
  210. add x29,sp,#0
  211. stp x19,x20,[sp,#16]
  212. stp x21,x22,[sp,#32]
  213. stp x23,x24,[sp,#48]
  214. stp x25,x26,[sp,#64]
  215. stp x27,x28,[sp,#80]
  216. sub sp,sp,#4*$SZ
  217. ldp $A,$B,[$ctx] // load context
  218. ldp $C,$D,[$ctx,#2*$SZ]
  219. ldp $E,$F,[$ctx,#4*$SZ]
  220. add $num,$inp,$num,lsl#`log(16*$SZ)/log(2)` // end of input
  221. ldp $G,$H,[$ctx,#6*$SZ]
  222. adr $Ktbl,.LK$BITS
  223. stp $ctx,$num,[x29,#96]
  224. .Loop:
  225. ldp @X[0],@X[1],[$inp],#2*$SZ
  226. ldr $t2,[$Ktbl],#$SZ // *K++
  227. eor $t3,$B,$C // magic seed
  228. str $inp,[x29,#112]
  229. ___
  230. for ($i=0;$i<16;$i++) { &BODY_00_xx($i,@V); unshift(@V,pop(@V)); }
  231. $code.=".Loop_16_xx:\n";
  232. for (;$i<32;$i++) { &BODY_00_xx($i,@V); unshift(@V,pop(@V)); }
  233. $code.=<<___;
  234. cbnz $t2,.Loop_16_xx
  235. ldp $ctx,$num,[x29,#96]
  236. ldr $inp,[x29,#112]
  237. sub $Ktbl,$Ktbl,#`$SZ*($rounds+1)` // rewind
  238. ldp @X[0],@X[1],[$ctx]
  239. ldp @X[2],@X[3],[$ctx,#2*$SZ]
  240. add $inp,$inp,#14*$SZ // advance input pointer
  241. ldp @X[4],@X[5],[$ctx,#4*$SZ]
  242. add $A,$A,@X[0]
  243. ldp @X[6],@X[7],[$ctx,#6*$SZ]
  244. add $B,$B,@X[1]
  245. add $C,$C,@X[2]
  246. add $D,$D,@X[3]
  247. stp $A,$B,[$ctx]
  248. add $E,$E,@X[4]
  249. add $F,$F,@X[5]
  250. stp $C,$D,[$ctx,#2*$SZ]
  251. add $G,$G,@X[6]
  252. add $H,$H,@X[7]
  253. cmp $inp,$num
  254. stp $E,$F,[$ctx,#4*$SZ]
  255. stp $G,$H,[$ctx,#6*$SZ]
  256. b.ne .Loop
  257. ldp x19,x20,[x29,#16]
  258. add sp,sp,#4*$SZ
  259. ldp x21,x22,[x29,#32]
  260. ldp x23,x24,[x29,#48]
  261. ldp x25,x26,[x29,#64]
  262. ldp x27,x28,[x29,#80]
  263. ldp x29,x30,[sp],#128
  264. ret
  265. .size $func,.-$func
  266. .align 6
  267. .type .LK$BITS,%object
  268. .LK$BITS:
  269. ___
  270. $code.=<<___ if ($SZ==8);
  271. .quad 0x428a2f98d728ae22,0x7137449123ef65cd
  272. .quad 0xb5c0fbcfec4d3b2f,0xe9b5dba58189dbbc
  273. .quad 0x3956c25bf348b538,0x59f111f1b605d019
  274. .quad 0x923f82a4af194f9b,0xab1c5ed5da6d8118
  275. .quad 0xd807aa98a3030242,0x12835b0145706fbe
  276. .quad 0x243185be4ee4b28c,0x550c7dc3d5ffb4e2
  277. .quad 0x72be5d74f27b896f,0x80deb1fe3b1696b1
  278. .quad 0x9bdc06a725c71235,0xc19bf174cf692694
  279. .quad 0xe49b69c19ef14ad2,0xefbe4786384f25e3
  280. .quad 0x0fc19dc68b8cd5b5,0x240ca1cc77ac9c65
  281. .quad 0x2de92c6f592b0275,0x4a7484aa6ea6e483
  282. .quad 0x5cb0a9dcbd41fbd4,0x76f988da831153b5
  283. .quad 0x983e5152ee66dfab,0xa831c66d2db43210
  284. .quad 0xb00327c898fb213f,0xbf597fc7beef0ee4
  285. .quad 0xc6e00bf33da88fc2,0xd5a79147930aa725
  286. .quad 0x06ca6351e003826f,0x142929670a0e6e70
  287. .quad 0x27b70a8546d22ffc,0x2e1b21385c26c926
  288. .quad 0x4d2c6dfc5ac42aed,0x53380d139d95b3df
  289. .quad 0x650a73548baf63de,0x766a0abb3c77b2a8
  290. .quad 0x81c2c92e47edaee6,0x92722c851482353b
  291. .quad 0xa2bfe8a14cf10364,0xa81a664bbc423001
  292. .quad 0xc24b8b70d0f89791,0xc76c51a30654be30
  293. .quad 0xd192e819d6ef5218,0xd69906245565a910
  294. .quad 0xf40e35855771202a,0x106aa07032bbd1b8
  295. .quad 0x19a4c116b8d2d0c8,0x1e376c085141ab53
  296. .quad 0x2748774cdf8eeb99,0x34b0bcb5e19b48a8
  297. .quad 0x391c0cb3c5c95a63,0x4ed8aa4ae3418acb
  298. .quad 0x5b9cca4f7763e373,0x682e6ff3d6b2b8a3
  299. .quad 0x748f82ee5defb2fc,0x78a5636f43172f60
  300. .quad 0x84c87814a1f0ab72,0x8cc702081a6439ec
  301. .quad 0x90befffa23631e28,0xa4506cebde82bde9
  302. .quad 0xbef9a3f7b2c67915,0xc67178f2e372532b
  303. .quad 0xca273eceea26619c,0xd186b8c721c0c207
  304. .quad 0xeada7dd6cde0eb1e,0xf57d4f7fee6ed178
  305. .quad 0x06f067aa72176fba,0x0a637dc5a2c898a6
  306. .quad 0x113f9804bef90dae,0x1b710b35131c471b
  307. .quad 0x28db77f523047d84,0x32caab7b40c72493
  308. .quad 0x3c9ebe0a15c9bebc,0x431d67c49c100d4c
  309. .quad 0x4cc5d4becb3e42b6,0x597f299cfc657e2a
  310. .quad 0x5fcb6fab3ad6faec,0x6c44198c4a475817
  311. .quad 0 // terminator
  312. ___
  313. $code.=<<___ if ($SZ==4);
  314. .long 0x428a2f98,0x71374491,0xb5c0fbcf,0xe9b5dba5
  315. .long 0x3956c25b,0x59f111f1,0x923f82a4,0xab1c5ed5
  316. .long 0xd807aa98,0x12835b01,0x243185be,0x550c7dc3
  317. .long 0x72be5d74,0x80deb1fe,0x9bdc06a7,0xc19bf174
  318. .long 0xe49b69c1,0xefbe4786,0x0fc19dc6,0x240ca1cc
  319. .long 0x2de92c6f,0x4a7484aa,0x5cb0a9dc,0x76f988da
  320. .long 0x983e5152,0xa831c66d,0xb00327c8,0xbf597fc7
  321. .long 0xc6e00bf3,0xd5a79147,0x06ca6351,0x14292967
  322. .long 0x27b70a85,0x2e1b2138,0x4d2c6dfc,0x53380d13
  323. .long 0x650a7354,0x766a0abb,0x81c2c92e,0x92722c85
  324. .long 0xa2bfe8a1,0xa81a664b,0xc24b8b70,0xc76c51a3
  325. .long 0xd192e819,0xd6990624,0xf40e3585,0x106aa070
  326. .long 0x19a4c116,0x1e376c08,0x2748774c,0x34b0bcb5
  327. .long 0x391c0cb3,0x4ed8aa4a,0x5b9cca4f,0x682e6ff3
  328. .long 0x748f82ee,0x78a5636f,0x84c87814,0x8cc70208
  329. .long 0x90befffa,0xa4506ceb,0xbef9a3f7,0xc67178f2
  330. .long 0 //terminator
  331. ___
  332. $code.=<<___;
  333. .size .LK$BITS,.-.LK$BITS
  334. #ifndef __KERNEL__
  335. .align 3
  336. .LOPENSSL_armcap_P:
  337. # ifdef __ILP32__
  338. .long OPENSSL_armcap_P-.
  339. # else
  340. .quad OPENSSL_armcap_P-.
  341. # endif
  342. #endif
  343. .asciz "SHA$BITS block transform for ARMv8, CRYPTOGAMS by <appro\@openssl.org>"
  344. .align 2
  345. ___
  346. if ($SZ==4) {
  347. my $Ktbl="x3";
  348. my ($ABCD,$EFGH,$abcd)=map("v$_.16b",(0..2));
  349. my @MSG=map("v$_.16b",(4..7));
  350. my ($W0,$W1)=("v16.4s","v17.4s");
  351. my ($ABCD_SAVE,$EFGH_SAVE)=("v18.16b","v19.16b");
  352. $code.=<<___;
  353. #ifndef __KERNEL__
  354. .type sha256_block_armv8,%function
  355. .align 6
  356. sha256_block_armv8:
  357. .Lv8_entry:
  358. stp x29,x30,[sp,#-16]!
  359. add x29,sp,#0
  360. ld1.32 {$ABCD,$EFGH},[$ctx]
  361. adr $Ktbl,.LK256
  362. .Loop_hw:
  363. ld1 {@MSG[0]-@MSG[3]},[$inp],#64
  364. sub $num,$num,#1
  365. ld1.32 {$W0},[$Ktbl],#16
  366. rev32 @MSG[0],@MSG[0]
  367. rev32 @MSG[1],@MSG[1]
  368. rev32 @MSG[2],@MSG[2]
  369. rev32 @MSG[3],@MSG[3]
  370. orr $ABCD_SAVE,$ABCD,$ABCD // offload
  371. orr $EFGH_SAVE,$EFGH,$EFGH
  372. ___
  373. for($i=0;$i<12;$i++) {
  374. $code.=<<___;
  375. ld1.32 {$W1},[$Ktbl],#16
  376. add.i32 $W0,$W0,@MSG[0]
  377. sha256su0 @MSG[0],@MSG[1]
  378. orr $abcd,$ABCD,$ABCD
  379. sha256h $ABCD,$EFGH,$W0
  380. sha256h2 $EFGH,$abcd,$W0
  381. sha256su1 @MSG[0],@MSG[2],@MSG[3]
  382. ___
  383. ($W0,$W1)=($W1,$W0); push(@MSG,shift(@MSG));
  384. }
  385. $code.=<<___;
  386. ld1.32 {$W1},[$Ktbl],#16
  387. add.i32 $W0,$W0,@MSG[0]
  388. orr $abcd,$ABCD,$ABCD
  389. sha256h $ABCD,$EFGH,$W0
  390. sha256h2 $EFGH,$abcd,$W0
  391. ld1.32 {$W0},[$Ktbl],#16
  392. add.i32 $W1,$W1,@MSG[1]
  393. orr $abcd,$ABCD,$ABCD
  394. sha256h $ABCD,$EFGH,$W1
  395. sha256h2 $EFGH,$abcd,$W1
  396. ld1.32 {$W1},[$Ktbl]
  397. add.i32 $W0,$W0,@MSG[2]
  398. sub $Ktbl,$Ktbl,#$rounds*$SZ-16 // rewind
  399. orr $abcd,$ABCD,$ABCD
  400. sha256h $ABCD,$EFGH,$W0
  401. sha256h2 $EFGH,$abcd,$W0
  402. add.i32 $W1,$W1,@MSG[3]
  403. orr $abcd,$ABCD,$ABCD
  404. sha256h $ABCD,$EFGH,$W1
  405. sha256h2 $EFGH,$abcd,$W1
  406. add.i32 $ABCD,$ABCD,$ABCD_SAVE
  407. add.i32 $EFGH,$EFGH,$EFGH_SAVE
  408. cbnz $num,.Loop_hw
  409. st1.32 {$ABCD,$EFGH},[$ctx]
  410. ldr x29,[sp],#16
  411. ret
  412. .size sha256_block_armv8,.-sha256_block_armv8
  413. #endif
  414. ___
  415. }
  416. if ($SZ==4) { ######################################### NEON stuff #
  417. # You'll surely note a lot of similarities with sha256-armv4 module,
  418. # and of course it's not a coincidence. sha256-armv4 was used as
  419. # initial template, but was adapted for ARMv8 instruction set and
  420. # extensively re-tuned for all-round performance.
  421. my @V = ($A,$B,$C,$D,$E,$F,$G,$H) = map("w$_",(3..10));
  422. my ($t0,$t1,$t2,$t3,$t4) = map("w$_",(11..15));
  423. my $Ktbl="x16";
  424. my $Xfer="x17";
  425. my @X = map("q$_",(0..3));
  426. my ($T0,$T1,$T2,$T3,$T4,$T5,$T6,$T7) = map("q$_",(4..7,16..19));
  427. my $j=0;
  428. sub AUTOLOAD() # thunk [simplified] x86-style perlasm
  429. { my $opcode = $AUTOLOAD; $opcode =~ s/.*:://; $opcode =~ s/_/\./;
  430. my $arg = pop;
  431. $arg = "#$arg" if ($arg*1 eq $arg);
  432. $code .= "\t$opcode\t".join(',',@_,$arg)."\n";
  433. }
  434. sub Dscalar { shift =~ m|[qv]([0-9]+)|?"d$1":""; }
  435. sub Dlo { shift =~ m|[qv]([0-9]+)|?"v$1.d[0]":""; }
  436. sub Dhi { shift =~ m|[qv]([0-9]+)|?"v$1.d[1]":""; }
  437. sub Xupdate()
  438. { use integer;
  439. my $body = shift;
  440. my @insns = (&$body,&$body,&$body,&$body);
  441. my ($a,$b,$c,$d,$e,$f,$g,$h);
  442. &ext_8 ($T0,@X[0],@X[1],4); # X[1..4]
  443. eval(shift(@insns));
  444. eval(shift(@insns));
  445. eval(shift(@insns));
  446. &ext_8 ($T3,@X[2],@X[3],4); # X[9..12]
  447. eval(shift(@insns));
  448. eval(shift(@insns));
  449. &mov (&Dscalar($T7),&Dhi(@X[3])); # X[14..15]
  450. eval(shift(@insns));
  451. eval(shift(@insns));
  452. &ushr_32 ($T2,$T0,$sigma0[0]);
  453. eval(shift(@insns));
  454. &ushr_32 ($T1,$T0,$sigma0[2]);
  455. eval(shift(@insns));
  456. &add_32 (@X[0],@X[0],$T3); # X[0..3] += X[9..12]
  457. eval(shift(@insns));
  458. &sli_32 ($T2,$T0,32-$sigma0[0]);
  459. eval(shift(@insns));
  460. eval(shift(@insns));
  461. &ushr_32 ($T3,$T0,$sigma0[1]);
  462. eval(shift(@insns));
  463. eval(shift(@insns));
  464. &eor_8 ($T1,$T1,$T2);
  465. eval(shift(@insns));
  466. eval(shift(@insns));
  467. &sli_32 ($T3,$T0,32-$sigma0[1]);
  468. eval(shift(@insns));
  469. eval(shift(@insns));
  470. &ushr_32 ($T4,$T7,$sigma1[0]);
  471. eval(shift(@insns));
  472. eval(shift(@insns));
  473. &eor_8 ($T1,$T1,$T3); # sigma0(X[1..4])
  474. eval(shift(@insns));
  475. eval(shift(@insns));
  476. &sli_32 ($T4,$T7,32-$sigma1[0]);
  477. eval(shift(@insns));
  478. eval(shift(@insns));
  479. &ushr_32 ($T5,$T7,$sigma1[2]);
  480. eval(shift(@insns));
  481. eval(shift(@insns));
  482. &ushr_32 ($T3,$T7,$sigma1[1]);
  483. eval(shift(@insns));
  484. eval(shift(@insns));
  485. &add_32 (@X[0],@X[0],$T1); # X[0..3] += sigma0(X[1..4])
  486. eval(shift(@insns));
  487. eval(shift(@insns));
  488. &sli_u32 ($T3,$T7,32-$sigma1[1]);
  489. eval(shift(@insns));
  490. eval(shift(@insns));
  491. &eor_8 ($T5,$T5,$T4);
  492. eval(shift(@insns));
  493. eval(shift(@insns));
  494. eval(shift(@insns));
  495. &eor_8 ($T5,$T5,$T3); # sigma1(X[14..15])
  496. eval(shift(@insns));
  497. eval(shift(@insns));
  498. eval(shift(@insns));
  499. &add_32 (@X[0],@X[0],$T5); # X[0..1] += sigma1(X[14..15])
  500. eval(shift(@insns));
  501. eval(shift(@insns));
  502. eval(shift(@insns));
  503. &ushr_32 ($T6,@X[0],$sigma1[0]);
  504. eval(shift(@insns));
  505. &ushr_32 ($T7,@X[0],$sigma1[2]);
  506. eval(shift(@insns));
  507. eval(shift(@insns));
  508. &sli_32 ($T6,@X[0],32-$sigma1[0]);
  509. eval(shift(@insns));
  510. &ushr_32 ($T5,@X[0],$sigma1[1]);
  511. eval(shift(@insns));
  512. eval(shift(@insns));
  513. &eor_8 ($T7,$T7,$T6);
  514. eval(shift(@insns));
  515. eval(shift(@insns));
  516. &sli_32 ($T5,@X[0],32-$sigma1[1]);
  517. eval(shift(@insns));
  518. eval(shift(@insns));
  519. &ld1_32 ("{$T0}","[$Ktbl], #16");
  520. eval(shift(@insns));
  521. &eor_8 ($T7,$T7,$T5); # sigma1(X[16..17])
  522. eval(shift(@insns));
  523. eval(shift(@insns));
  524. &eor_8 ($T5,$T5,$T5);
  525. eval(shift(@insns));
  526. eval(shift(@insns));
  527. &mov (&Dhi($T5), &Dlo($T7));
  528. eval(shift(@insns));
  529. eval(shift(@insns));
  530. eval(shift(@insns));
  531. &add_32 (@X[0],@X[0],$T5); # X[2..3] += sigma1(X[16..17])
  532. eval(shift(@insns));
  533. eval(shift(@insns));
  534. eval(shift(@insns));
  535. &add_32 ($T0,$T0,@X[0]);
  536. while($#insns>=1) { eval(shift(@insns)); }
  537. &st1_32 ("{$T0}","[$Xfer], #16");
  538. eval(shift(@insns));
  539. push(@X,shift(@X)); # "rotate" X[]
  540. }
  541. sub Xpreload()
  542. { use integer;
  543. my $body = shift;
  544. my @insns = (&$body,&$body,&$body,&$body);
  545. my ($a,$b,$c,$d,$e,$f,$g,$h);
  546. eval(shift(@insns));
  547. eval(shift(@insns));
  548. &ld1_8 ("{@X[0]}","[$inp],#16");
  549. eval(shift(@insns));
  550. eval(shift(@insns));
  551. &ld1_32 ("{$T0}","[$Ktbl],#16");
  552. eval(shift(@insns));
  553. eval(shift(@insns));
  554. eval(shift(@insns));
  555. eval(shift(@insns));
  556. &rev32 (@X[0],@X[0]);
  557. eval(shift(@insns));
  558. eval(shift(@insns));
  559. eval(shift(@insns));
  560. eval(shift(@insns));
  561. &add_32 ($T0,$T0,@X[0]);
  562. foreach (@insns) { eval; } # remaining instructions
  563. &st1_32 ("{$T0}","[$Xfer], #16");
  564. push(@X,shift(@X)); # "rotate" X[]
  565. }
  566. sub body_00_15 () {
  567. (
  568. '($a,$b,$c,$d,$e,$f,$g,$h)=@V;'.
  569. '&add ($h,$h,$t1)', # h+=X[i]+K[i]
  570. '&add ($a,$a,$t4);'. # h+=Sigma0(a) from the past
  571. '&and ($t1,$f,$e)',
  572. '&bic ($t4,$g,$e)',
  573. '&eor ($t0,$e,$e,"ror#".($Sigma1[1]-$Sigma1[0]))',
  574. '&add ($a,$a,$t2)', # h+=Maj(a,b,c) from the past
  575. '&orr ($t1,$t1,$t4)', # Ch(e,f,g)
  576. '&eor ($t0,$t0,$e,"ror#".($Sigma1[2]-$Sigma1[0]))', # Sigma1(e)
  577. '&eor ($t4,$a,$a,"ror#".($Sigma0[1]-$Sigma0[0]))',
  578. '&add ($h,$h,$t1)', # h+=Ch(e,f,g)
  579. '&ror ($t0,$t0,"#$Sigma1[0]")',
  580. '&eor ($t2,$a,$b)', # a^b, b^c in next round
  581. '&eor ($t4,$t4,$a,"ror#".($Sigma0[2]-$Sigma0[0]))', # Sigma0(a)
  582. '&add ($h,$h,$t0)', # h+=Sigma1(e)
  583. '&ldr ($t1,sprintf "[sp,#%d]",4*(($j+1)&15)) if (($j&15)!=15);'.
  584. '&ldr ($t1,"[$Ktbl]") if ($j==15);'.
  585. '&and ($t3,$t3,$t2)', # (b^c)&=(a^b)
  586. '&ror ($t4,$t4,"#$Sigma0[0]")',
  587. '&add ($d,$d,$h)', # d+=h
  588. '&eor ($t3,$t3,$b)', # Maj(a,b,c)
  589. '$j++; unshift(@V,pop(@V)); ($t2,$t3)=($t3,$t2);'
  590. )
  591. }
  592. $code.=<<___;
  593. #ifdef __KERNEL__
  594. .globl sha256_block_neon
  595. #endif
  596. .type sha256_block_neon,%function
  597. .align 4
  598. sha256_block_neon:
  599. .Lneon_entry:
  600. stp x29, x30, [sp, #-16]!
  601. mov x29, sp
  602. sub sp,sp,#16*4
  603. adr $Ktbl,.LK256
  604. add $num,$inp,$num,lsl#6 // len to point at the end of inp
  605. ld1.8 {@X[0]},[$inp], #16
  606. ld1.8 {@X[1]},[$inp], #16
  607. ld1.8 {@X[2]},[$inp], #16
  608. ld1.8 {@X[3]},[$inp], #16
  609. ld1.32 {$T0},[$Ktbl], #16
  610. ld1.32 {$T1},[$Ktbl], #16
  611. ld1.32 {$T2},[$Ktbl], #16
  612. ld1.32 {$T3},[$Ktbl], #16
  613. rev32 @X[0],@X[0] // yes, even on
  614. rev32 @X[1],@X[1] // big-endian
  615. rev32 @X[2],@X[2]
  616. rev32 @X[3],@X[3]
  617. mov $Xfer,sp
  618. add.32 $T0,$T0,@X[0]
  619. add.32 $T1,$T1,@X[1]
  620. add.32 $T2,$T2,@X[2]
  621. st1.32 {$T0-$T1},[$Xfer], #32
  622. add.32 $T3,$T3,@X[3]
  623. st1.32 {$T2-$T3},[$Xfer]
  624. sub $Xfer,$Xfer,#32
  625. ldp $A,$B,[$ctx]
  626. ldp $C,$D,[$ctx,#8]
  627. ldp $E,$F,[$ctx,#16]
  628. ldp $G,$H,[$ctx,#24]
  629. ldr $t1,[sp,#0]
  630. mov $t2,wzr
  631. eor $t3,$B,$C
  632. mov $t4,wzr
  633. b .L_00_48
  634. .align 4
  635. .L_00_48:
  636. ___
  637. &Xupdate(\&body_00_15);
  638. &Xupdate(\&body_00_15);
  639. &Xupdate(\&body_00_15);
  640. &Xupdate(\&body_00_15);
  641. $code.=<<___;
  642. cmp $t1,#0 // check for K256 terminator
  643. ldr $t1,[sp,#0]
  644. sub $Xfer,$Xfer,#64
  645. bne .L_00_48
  646. sub $Ktbl,$Ktbl,#256 // rewind $Ktbl
  647. cmp $inp,$num
  648. mov $Xfer, #64
  649. csel $Xfer, $Xfer, xzr, eq
  650. sub $inp,$inp,$Xfer // avoid SEGV
  651. mov $Xfer,sp
  652. ___
  653. &Xpreload(\&body_00_15);
  654. &Xpreload(\&body_00_15);
  655. &Xpreload(\&body_00_15);
  656. &Xpreload(\&body_00_15);
  657. $code.=<<___;
  658. add $A,$A,$t4 // h+=Sigma0(a) from the past
  659. ldp $t0,$t1,[$ctx,#0]
  660. add $A,$A,$t2 // h+=Maj(a,b,c) from the past
  661. ldp $t2,$t3,[$ctx,#8]
  662. add $A,$A,$t0 // accumulate
  663. add $B,$B,$t1
  664. ldp $t0,$t1,[$ctx,#16]
  665. add $C,$C,$t2
  666. add $D,$D,$t3
  667. ldp $t2,$t3,[$ctx,#24]
  668. add $E,$E,$t0
  669. add $F,$F,$t1
  670. ldr $t1,[sp,#0]
  671. stp $A,$B,[$ctx,#0]
  672. add $G,$G,$t2
  673. mov $t2,wzr
  674. stp $C,$D,[$ctx,#8]
  675. add $H,$H,$t3
  676. stp $E,$F,[$ctx,#16]
  677. eor $t3,$B,$C
  678. stp $G,$H,[$ctx,#24]
  679. mov $t4,wzr
  680. mov $Xfer,sp
  681. b.ne .L_00_48
  682. ldr x29,[x29]
  683. add sp,sp,#16*4+16
  684. ret
  685. .size sha256_block_neon,.-sha256_block_neon
  686. ___
  687. }
  688. if ($SZ==8) {
  689. my $Ktbl="x3";
  690. my @H = map("v$_.16b",(0..4));
  691. my ($fg,$de,$m9_10)=map("v$_.16b",(5..7));
  692. my @MSG=map("v$_.16b",(16..23));
  693. my ($W0,$W1)=("v24.2d","v25.2d");
  694. my ($AB,$CD,$EF,$GH)=map("v$_.16b",(26..29));
  695. $code.=<<___;
  696. #ifndef __KERNEL__
  697. .type sha512_block_armv8,%function
  698. .align 6
  699. sha512_block_armv8:
  700. .Lv8_entry:
  701. stp x29,x30,[sp,#-16]!
  702. add x29,sp,#0
  703. ld1 {@MSG[0]-@MSG[3]},[$inp],#64 // load input
  704. ld1 {@MSG[4]-@MSG[7]},[$inp],#64
  705. ld1.64 {@H[0]-@H[3]},[$ctx] // load context
  706. adr $Ktbl,.LK512
  707. rev64 @MSG[0],@MSG[0]
  708. rev64 @MSG[1],@MSG[1]
  709. rev64 @MSG[2],@MSG[2]
  710. rev64 @MSG[3],@MSG[3]
  711. rev64 @MSG[4],@MSG[4]
  712. rev64 @MSG[5],@MSG[5]
  713. rev64 @MSG[6],@MSG[6]
  714. rev64 @MSG[7],@MSG[7]
  715. b .Loop_hw
  716. .align 4
  717. .Loop_hw:
  718. ld1.64 {$W0},[$Ktbl],#16
  719. subs $num,$num,#1
  720. sub x4,$inp,#128
  721. orr $AB,@H[0],@H[0] // offload
  722. orr $CD,@H[1],@H[1]
  723. orr $EF,@H[2],@H[2]
  724. orr $GH,@H[3],@H[3]
  725. csel $inp,$inp,x4,ne // conditional rewind
  726. ___
  727. for($i=0;$i<32;$i++) {
  728. $code.=<<___;
  729. add.i64 $W0,$W0,@MSG[0]
  730. ld1.64 {$W1},[$Ktbl],#16
  731. ext $W0,$W0,$W0,#8
  732. ext $fg,@H[2],@H[3],#8
  733. ext $de,@H[1],@H[2],#8
  734. add.i64 @H[3],@H[3],$W0 // "T1 + H + K512[i]"
  735. sha512su0 @MSG[0],@MSG[1]
  736. ext $m9_10,@MSG[4],@MSG[5],#8
  737. sha512h @H[3],$fg,$de
  738. sha512su1 @MSG[0],@MSG[7],$m9_10
  739. add.i64 @H[4],@H[1],@H[3] // "D + T1"
  740. sha512h2 @H[3],$H[1],@H[0]
  741. ___
  742. ($W0,$W1)=($W1,$W0); push(@MSG,shift(@MSG));
  743. @H = (@H[3],@H[0],@H[4],@H[2],@H[1]);
  744. }
  745. for(;$i<40;$i++) {
  746. $code.=<<___ if ($i<39);
  747. ld1.64 {$W1},[$Ktbl],#16
  748. ___
  749. $code.=<<___ if ($i==39);
  750. sub $Ktbl,$Ktbl,#$rounds*$SZ // rewind
  751. ___
  752. $code.=<<___;
  753. add.i64 $W0,$W0,@MSG[0]
  754. ld1 {@MSG[0]},[$inp],#16 // load next input
  755. ext $W0,$W0,$W0,#8
  756. ext $fg,@H[2],@H[3],#8
  757. ext $de,@H[1],@H[2],#8
  758. add.i64 @H[3],@H[3],$W0 // "T1 + H + K512[i]"
  759. sha512h @H[3],$fg,$de
  760. rev64 @MSG[0],@MSG[0]
  761. add.i64 @H[4],@H[1],@H[3] // "D + T1"
  762. sha512h2 @H[3],$H[1],@H[0]
  763. ___
  764. ($W0,$W1)=($W1,$W0); push(@MSG,shift(@MSG));
  765. @H = (@H[3],@H[0],@H[4],@H[2],@H[1]);
  766. }
  767. $code.=<<___;
  768. add.i64 @H[0],@H[0],$AB // accumulate
  769. add.i64 @H[1],@H[1],$CD
  770. add.i64 @H[2],@H[2],$EF
  771. add.i64 @H[3],@H[3],$GH
  772. cbnz $num,.Loop_hw
  773. st1.64 {@H[0]-@H[3]},[$ctx] // store context
  774. ldr x29,[sp],#16
  775. ret
  776. .size sha512_block_armv8,.-sha512_block_armv8
  777. #endif
  778. ___
  779. }
  780. $code.=<<___;
  781. #ifndef __KERNEL__
  782. .comm OPENSSL_armcap_P,4,4
  783. #endif
  784. ___
  785. { my %opcode = (
  786. "sha256h" => 0x5e004000, "sha256h2" => 0x5e005000,
  787. "sha256su0" => 0x5e282800, "sha256su1" => 0x5e006000 );
  788. sub unsha256 {
  789. my ($mnemonic,$arg)=@_;
  790. $arg =~ m/[qv]([0-9]+)[^,]*,\s*[qv]([0-9]+)[^,]*(?:,\s*[qv]([0-9]+))?/o
  791. &&
  792. sprintf ".inst\t0x%08x\t//%s %s",
  793. $opcode{$mnemonic}|$1|($2<<5)|($3<<16),
  794. $mnemonic,$arg;
  795. }
  796. }
  797. { my %opcode = (
  798. "sha512h" => 0xce608000, "sha512h2" => 0xce608400,
  799. "sha512su0" => 0xcec08000, "sha512su1" => 0xce608800 );
  800. sub unsha512 {
  801. my ($mnemonic,$arg)=@_;
  802. $arg =~ m/[qv]([0-9]+)[^,]*,\s*[qv]([0-9]+)[^,]*(?:,\s*[qv]([0-9]+))?/o
  803. &&
  804. sprintf ".inst\t0x%08x\t//%s %s",
  805. $opcode{$mnemonic}|$1|($2<<5)|($3<<16),
  806. $mnemonic,$arg;
  807. }
  808. }
  809. open SELF,$0;
  810. while(<SELF>) {
  811. next if (/^#!/);
  812. last if (!s/^#/\/\// and !/^$/);
  813. print;
  814. }
  815. close SELF;
  816. foreach(split("\n",$code)) {
  817. s/\`([^\`]*)\`/eval($1)/ge;
  818. s/\b(sha512\w+)\s+([qv].*)/unsha512($1,$2)/ge or
  819. s/\b(sha256\w+)\s+([qv].*)/unsha256($1,$2)/ge;
  820. s/\bq([0-9]+)\b/v$1.16b/g; # old->new registers
  821. s/\.[ui]?8(\s)/$1/;
  822. s/\.\w?64\b// and s/\.16b/\.2d/g or
  823. s/\.\w?32\b// and s/\.16b/\.4s/g;
  824. m/\bext\b/ and s/\.2d/\.16b/g or
  825. m/(ld|st)1[^\[]+\[0\]/ and s/\.4s/\.s/g;
  826. print $_,"\n";
  827. }
  828. close STDOUT;