jidctfst-sse2.asm 20 KB

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  1. ;
  2. ; Fast integer IDCT (64-bit SSE2)
  3. ;
  4. ; Copyright 2009 Pierre Ossman <ossman@cendio.se> for Cendio AB
  5. ; Copyright (C) 2009, 2016, 2024, D. R. Commander.
  6. ; Copyright (C) 2018, Matthias Räncker.
  7. ; Copyright (C) 2023, Aliaksiej Kandracienka.
  8. ;
  9. ; Based on the x86 SIMD extension for IJG JPEG library
  10. ; Copyright (C) 1999-2006, MIYASAKA Masaru.
  11. ; For conditions of distribution and use, see copyright notice in jsimdext.inc
  12. ;
  13. ; This file should be assembled with NASM (Netwide Assembler) or Yasm.
  14. ;
  15. ; This file contains a fast, not so accurate integer implementation of
  16. ; the inverse DCT (Discrete Cosine Transform). The following code is
  17. ; based directly on the IJG's original jidctfst.c; see the jidctfst.c
  18. ; for more details.
  19. %include "jsimdext.inc"
  20. %include "jdct.inc"
  21. ; --------------------------------------------------------------------------
  22. %define CONST_BITS 8 ; 14 is also OK.
  23. %define PASS1_BITS 2
  24. %if IFAST_SCALE_BITS != PASS1_BITS
  25. %error "'IFAST_SCALE_BITS' must be equal to 'PASS1_BITS'."
  26. %endif
  27. %if CONST_BITS == 8
  28. F_1_082 equ 277 ; FIX(1.082392200)
  29. F_1_414 equ 362 ; FIX(1.414213562)
  30. F_1_847 equ 473 ; FIX(1.847759065)
  31. F_2_613 equ 669 ; FIX(2.613125930)
  32. F_1_613 equ (F_2_613 - 256) ; FIX(2.613125930) - FIX(1)
  33. %else
  34. ; NASM cannot do compile-time arithmetic on floating-point constants.
  35. %define DESCALE(x, n) (((x) + (1 << ((n) - 1))) >> (n))
  36. F_1_082 equ DESCALE(1162209775, 30 - CONST_BITS) ; FIX(1.082392200)
  37. F_1_414 equ DESCALE(1518500249, 30 - CONST_BITS) ; FIX(1.414213562)
  38. F_1_847 equ DESCALE(1984016188, 30 - CONST_BITS) ; FIX(1.847759065)
  39. F_2_613 equ DESCALE(2805822602, 30 - CONST_BITS) ; FIX(2.613125930)
  40. F_1_613 equ (F_2_613 - (1 << CONST_BITS)) ; FIX(2.613125930) - FIX(1)
  41. %endif
  42. ; --------------------------------------------------------------------------
  43. SECTION SEG_CONST
  44. ; PRE_MULTIPLY_SCALE_BITS <= 2 (to avoid overflow)
  45. ; CONST_BITS + CONST_SHIFT + PRE_MULTIPLY_SCALE_BITS == 16 (for pmulhw)
  46. %define PRE_MULTIPLY_SCALE_BITS 2
  47. %define CONST_SHIFT (16 - PRE_MULTIPLY_SCALE_BITS - CONST_BITS)
  48. ALIGNZ 32
  49. GLOBAL_DATA(jconst_idct_ifast_sse2)
  50. EXTN(jconst_idct_ifast_sse2):
  51. PW_F1414 times 8 dw F_1_414 << CONST_SHIFT
  52. PW_F1847 times 8 dw F_1_847 << CONST_SHIFT
  53. PW_MF1613 times 8 dw -F_1_613 << CONST_SHIFT
  54. PW_F1082 times 8 dw F_1_082 << CONST_SHIFT
  55. PB_CENTERJSAMP times 16 db CENTERJSAMPLE
  56. ALIGNZ 32
  57. ; --------------------------------------------------------------------------
  58. SECTION SEG_TEXT
  59. BITS 64
  60. ;
  61. ; Perform dequantization and inverse DCT on one block of coefficients.
  62. ;
  63. ; GLOBAL(void)
  64. ; jsimd_idct_ifast_sse2(void *dct_table, JCOEFPTR coef_block,
  65. ; JSAMPARRAY output_buf, JDIMENSION output_col)
  66. ;
  67. ; r10 = jpeg_component_info *compptr
  68. ; r11 = JCOEFPTR coef_block
  69. ; r12 = JSAMPARRAY output_buf
  70. ; r13d = JDIMENSION output_col
  71. %define wk(i) r15 - (WK_NUM - (i)) * SIZEOF_XMMWORD
  72. ; xmmword wk[WK_NUM]
  73. %define WK_NUM 2
  74. align 32
  75. GLOBAL_FUNCTION(jsimd_idct_ifast_sse2)
  76. EXTN(jsimd_idct_ifast_sse2):
  77. ENDBR64
  78. push rbp
  79. mov rbp, rsp
  80. push r15
  81. and rsp, byte (-SIZEOF_XMMWORD) ; align to 128 bits
  82. ; Allocate stack space for wk array. r15 is used to access it.
  83. mov r15, rsp
  84. sub rsp, byte (SIZEOF_XMMWORD * WK_NUM)
  85. COLLECT_ARGS 4
  86. ; ---- Pass 1: process columns from input.
  87. mov rdx, r10 ; quantptr
  88. mov rsi, r11 ; inptr
  89. %ifndef NO_ZERO_COLUMN_TEST_IFAST_SSE2
  90. mov eax, dword [DWBLOCK(1,0,rsi,SIZEOF_JCOEF)]
  91. or eax, dword [DWBLOCK(2,0,rsi,SIZEOF_JCOEF)]
  92. jnz near .columnDCT
  93. movdqa xmm0, XMMWORD [XMMBLOCK(1,0,rsi,SIZEOF_JCOEF)]
  94. movdqa xmm1, XMMWORD [XMMBLOCK(2,0,rsi,SIZEOF_JCOEF)]
  95. por xmm0, XMMWORD [XMMBLOCK(3,0,rsi,SIZEOF_JCOEF)]
  96. por xmm1, XMMWORD [XMMBLOCK(4,0,rsi,SIZEOF_JCOEF)]
  97. por xmm0, XMMWORD [XMMBLOCK(5,0,rsi,SIZEOF_JCOEF)]
  98. por xmm1, XMMWORD [XMMBLOCK(6,0,rsi,SIZEOF_JCOEF)]
  99. por xmm0, XMMWORD [XMMBLOCK(7,0,rsi,SIZEOF_JCOEF)]
  100. por xmm1, xmm0
  101. packsswb xmm1, xmm1
  102. packsswb xmm1, xmm1
  103. movd eax, xmm1
  104. test rax, rax
  105. jnz short .columnDCT
  106. ; -- AC terms all zero
  107. movdqa xmm0, XMMWORD [XMMBLOCK(0,0,rsi,SIZEOF_JCOEF)]
  108. pmullw xmm0, XMMWORD [XMMBLOCK(0,0,rdx,SIZEOF_ISLOW_MULT_TYPE)]
  109. movdqa xmm7, xmm0 ; xmm0=in0=(00 01 02 03 04 05 06 07)
  110. punpcklwd xmm0, xmm0 ; xmm0=(00 00 01 01 02 02 03 03)
  111. punpckhwd xmm7, xmm7 ; xmm7=(04 04 05 05 06 06 07 07)
  112. pshufd xmm6, xmm0, 0x00 ; xmm6=col0=(00 00 00 00 00 00 00 00)
  113. pshufd xmm2, xmm0, 0x55 ; xmm2=col1=(01 01 01 01 01 01 01 01)
  114. pshufd xmm5, xmm0, 0xAA ; xmm5=col2=(02 02 02 02 02 02 02 02)
  115. pshufd xmm0, xmm0, 0xFF ; xmm0=col3=(03 03 03 03 03 03 03 03)
  116. pshufd xmm1, xmm7, 0x00 ; xmm1=col4=(04 04 04 04 04 04 04 04)
  117. pshufd xmm4, xmm7, 0x55 ; xmm4=col5=(05 05 05 05 05 05 05 05)
  118. pshufd xmm3, xmm7, 0xAA ; xmm3=col6=(06 06 06 06 06 06 06 06)
  119. pshufd xmm7, xmm7, 0xFF ; xmm7=col7=(07 07 07 07 07 07 07 07)
  120. movdqa XMMWORD [wk(0)], xmm2 ; wk(0)=col1
  121. movdqa XMMWORD [wk(1)], xmm0 ; wk(1)=col3
  122. jmp near .column_end
  123. %endif
  124. .columnDCT:
  125. ; -- Even part
  126. movdqa xmm0, XMMWORD [XMMBLOCK(0,0,rsi,SIZEOF_JCOEF)]
  127. movdqa xmm1, XMMWORD [XMMBLOCK(2,0,rsi,SIZEOF_JCOEF)]
  128. pmullw xmm0, XMMWORD [XMMBLOCK(0,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  129. pmullw xmm1, XMMWORD [XMMBLOCK(2,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  130. movdqa xmm2, XMMWORD [XMMBLOCK(4,0,rsi,SIZEOF_JCOEF)]
  131. movdqa xmm3, XMMWORD [XMMBLOCK(6,0,rsi,SIZEOF_JCOEF)]
  132. pmullw xmm2, XMMWORD [XMMBLOCK(4,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  133. pmullw xmm3, XMMWORD [XMMBLOCK(6,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  134. movdqa xmm4, xmm0
  135. movdqa xmm5, xmm1
  136. psubw xmm0, xmm2 ; xmm0=tmp11
  137. psubw xmm1, xmm3
  138. paddw xmm4, xmm2 ; xmm4=tmp10
  139. paddw xmm5, xmm3 ; xmm5=tmp13
  140. psllw xmm1, PRE_MULTIPLY_SCALE_BITS
  141. pmulhw xmm1, [rel PW_F1414]
  142. psubw xmm1, xmm5 ; xmm1=tmp12
  143. movdqa xmm6, xmm4
  144. movdqa xmm7, xmm0
  145. psubw xmm4, xmm5 ; xmm4=tmp3
  146. psubw xmm0, xmm1 ; xmm0=tmp2
  147. paddw xmm6, xmm5 ; xmm6=tmp0
  148. paddw xmm7, xmm1 ; xmm7=tmp1
  149. movdqa XMMWORD [wk(1)], xmm4 ; wk(1)=tmp3
  150. movdqa XMMWORD [wk(0)], xmm0 ; wk(0)=tmp2
  151. ; -- Odd part
  152. movdqa xmm2, XMMWORD [XMMBLOCK(1,0,rsi,SIZEOF_JCOEF)]
  153. movdqa xmm3, XMMWORD [XMMBLOCK(3,0,rsi,SIZEOF_JCOEF)]
  154. pmullw xmm2, XMMWORD [XMMBLOCK(1,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  155. pmullw xmm3, XMMWORD [XMMBLOCK(3,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  156. movdqa xmm5, XMMWORD [XMMBLOCK(5,0,rsi,SIZEOF_JCOEF)]
  157. movdqa xmm1, XMMWORD [XMMBLOCK(7,0,rsi,SIZEOF_JCOEF)]
  158. pmullw xmm5, XMMWORD [XMMBLOCK(5,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  159. pmullw xmm1, XMMWORD [XMMBLOCK(7,0,rdx,SIZEOF_IFAST_MULT_TYPE)]
  160. movdqa xmm4, xmm2
  161. movdqa xmm0, xmm5
  162. psubw xmm2, xmm1 ; xmm2=z12
  163. psubw xmm5, xmm3 ; xmm5=z10
  164. paddw xmm4, xmm1 ; xmm4=z11
  165. paddw xmm0, xmm3 ; xmm0=z13
  166. movdqa xmm1, xmm5 ; xmm1=z10(unscaled)
  167. psllw xmm2, PRE_MULTIPLY_SCALE_BITS
  168. psllw xmm5, PRE_MULTIPLY_SCALE_BITS
  169. movdqa xmm3, xmm4
  170. psubw xmm4, xmm0
  171. paddw xmm3, xmm0 ; xmm3=tmp7
  172. psllw xmm4, PRE_MULTIPLY_SCALE_BITS
  173. pmulhw xmm4, [rel PW_F1414] ; xmm4=tmp11
  174. ; To avoid overflow...
  175. ;
  176. ; (Original)
  177. ; tmp12 = -2.613125930 * z10 + z5;
  178. ;
  179. ; (This implementation)
  180. ; tmp12 = (-1.613125930 - 1) * z10 + z5;
  181. ; = -1.613125930 * z10 - z10 + z5;
  182. movdqa xmm0, xmm5
  183. paddw xmm5, xmm2
  184. pmulhw xmm5, [rel PW_F1847] ; xmm5=z5
  185. pmulhw xmm0, [rel PW_MF1613]
  186. pmulhw xmm2, [rel PW_F1082]
  187. psubw xmm0, xmm1
  188. psubw xmm2, xmm5 ; xmm2=tmp10
  189. paddw xmm0, xmm5 ; xmm0=tmp12
  190. ; -- Final output stage
  191. psubw xmm0, xmm3 ; xmm0=tmp6
  192. movdqa xmm1, xmm6
  193. movdqa xmm5, xmm7
  194. paddw xmm6, xmm3 ; xmm6=data0=(00 01 02 03 04 05 06 07)
  195. paddw xmm7, xmm0 ; xmm7=data1=(10 11 12 13 14 15 16 17)
  196. psubw xmm1, xmm3 ; xmm1=data7=(70 71 72 73 74 75 76 77)
  197. psubw xmm5, xmm0 ; xmm5=data6=(60 61 62 63 64 65 66 67)
  198. psubw xmm4, xmm0 ; xmm4=tmp5
  199. movdqa xmm3, xmm6 ; transpose coefficients(phase 1)
  200. punpcklwd xmm6, xmm7 ; xmm6=(00 10 01 11 02 12 03 13)
  201. punpckhwd xmm3, xmm7 ; xmm3=(04 14 05 15 06 16 07 17)
  202. movdqa xmm0, xmm5 ; transpose coefficients(phase 1)
  203. punpcklwd xmm5, xmm1 ; xmm5=(60 70 61 71 62 72 63 73)
  204. punpckhwd xmm0, xmm1 ; xmm0=(64 74 65 75 66 76 67 77)
  205. movdqa xmm7, XMMWORD [wk(0)] ; xmm7=tmp2
  206. movdqa xmm1, XMMWORD [wk(1)] ; xmm1=tmp3
  207. movdqa XMMWORD [wk(0)], xmm5 ; wk(0)=(60 70 61 71 62 72 63 73)
  208. movdqa XMMWORD [wk(1)], xmm0 ; wk(1)=(64 74 65 75 66 76 67 77)
  209. paddw xmm2, xmm4 ; xmm2=tmp4
  210. movdqa xmm5, xmm7
  211. movdqa xmm0, xmm1
  212. paddw xmm7, xmm4 ; xmm7=data2=(20 21 22 23 24 25 26 27)
  213. paddw xmm1, xmm2 ; xmm1=data4=(40 41 42 43 44 45 46 47)
  214. psubw xmm5, xmm4 ; xmm5=data5=(50 51 52 53 54 55 56 57)
  215. psubw xmm0, xmm2 ; xmm0=data3=(30 31 32 33 34 35 36 37)
  216. movdqa xmm4, xmm7 ; transpose coefficients(phase 1)
  217. punpcklwd xmm7, xmm0 ; xmm7=(20 30 21 31 22 32 23 33)
  218. punpckhwd xmm4, xmm0 ; xmm4=(24 34 25 35 26 36 27 37)
  219. movdqa xmm2, xmm1 ; transpose coefficients(phase 1)
  220. punpcklwd xmm1, xmm5 ; xmm1=(40 50 41 51 42 52 43 53)
  221. punpckhwd xmm2, xmm5 ; xmm2=(44 54 45 55 46 56 47 57)
  222. movdqa xmm0, xmm3 ; transpose coefficients(phase 2)
  223. punpckldq xmm3, xmm4 ; xmm3=(04 14 24 34 05 15 25 35)
  224. punpckhdq xmm0, xmm4 ; xmm0=(06 16 26 36 07 17 27 37)
  225. movdqa xmm5, xmm6 ; transpose coefficients(phase 2)
  226. punpckldq xmm6, xmm7 ; xmm6=(00 10 20 30 01 11 21 31)
  227. punpckhdq xmm5, xmm7 ; xmm5=(02 12 22 32 03 13 23 33)
  228. movdqa xmm4, XMMWORD [wk(0)] ; xmm4=(60 70 61 71 62 72 63 73)
  229. movdqa xmm7, XMMWORD [wk(1)] ; xmm7=(64 74 65 75 66 76 67 77)
  230. movdqa XMMWORD [wk(0)], xmm3 ; wk(0)=(04 14 24 34 05 15 25 35)
  231. movdqa XMMWORD [wk(1)], xmm0 ; wk(1)=(06 16 26 36 07 17 27 37)
  232. movdqa xmm3, xmm1 ; transpose coefficients(phase 2)
  233. punpckldq xmm1, xmm4 ; xmm1=(40 50 60 70 41 51 61 71)
  234. punpckhdq xmm3, xmm4 ; xmm3=(42 52 62 72 43 53 63 73)
  235. movdqa xmm0, xmm2 ; transpose coefficients(phase 2)
  236. punpckldq xmm2, xmm7 ; xmm2=(44 54 64 74 45 55 65 75)
  237. punpckhdq xmm0, xmm7 ; xmm0=(46 56 66 76 47 57 67 77)
  238. movdqa xmm4, xmm6 ; transpose coefficients(phase 3)
  239. punpcklqdq xmm6, xmm1 ; xmm6=col0=(00 10 20 30 40 50 60 70)
  240. punpckhqdq xmm4, xmm1 ; xmm4=col1=(01 11 21 31 41 51 61 71)
  241. movdqa xmm7, xmm5 ; transpose coefficients(phase 3)
  242. punpcklqdq xmm5, xmm3 ; xmm5=col2=(02 12 22 32 42 52 62 72)
  243. punpckhqdq xmm7, xmm3 ; xmm7=col3=(03 13 23 33 43 53 63 73)
  244. movdqa xmm1, XMMWORD [wk(0)] ; xmm1=(04 14 24 34 05 15 25 35)
  245. movdqa xmm3, XMMWORD [wk(1)] ; xmm3=(06 16 26 36 07 17 27 37)
  246. movdqa XMMWORD [wk(0)], xmm4 ; wk(0)=col1
  247. movdqa XMMWORD [wk(1)], xmm7 ; wk(1)=col3
  248. movdqa xmm4, xmm1 ; transpose coefficients(phase 3)
  249. punpcklqdq xmm1, xmm2 ; xmm1=col4=(04 14 24 34 44 54 64 74)
  250. punpckhqdq xmm4, xmm2 ; xmm4=col5=(05 15 25 35 45 55 65 75)
  251. movdqa xmm7, xmm3 ; transpose coefficients(phase 3)
  252. punpcklqdq xmm3, xmm0 ; xmm3=col6=(06 16 26 36 46 56 66 76)
  253. punpckhqdq xmm7, xmm0 ; xmm7=col7=(07 17 27 37 47 57 67 77)
  254. .column_end:
  255. ; -- Prefetch the next coefficient block
  256. prefetchnta [rsi + DCTSIZE2*SIZEOF_JCOEF + 0*32]
  257. prefetchnta [rsi + DCTSIZE2*SIZEOF_JCOEF + 1*32]
  258. prefetchnta [rsi + DCTSIZE2*SIZEOF_JCOEF + 2*32]
  259. prefetchnta [rsi + DCTSIZE2*SIZEOF_JCOEF + 3*32]
  260. ; ---- Pass 2: process rows from work array, store into output array.
  261. mov rdi, r12 ; (JSAMPROW *)
  262. mov eax, r13d
  263. ; -- Even part
  264. ; xmm6=col0, xmm5=col2, xmm1=col4, xmm3=col6
  265. movdqa xmm2, xmm6
  266. movdqa xmm0, xmm5
  267. psubw xmm6, xmm1 ; xmm6=tmp11
  268. psubw xmm5, xmm3
  269. paddw xmm2, xmm1 ; xmm2=tmp10
  270. paddw xmm0, xmm3 ; xmm0=tmp13
  271. psllw xmm5, PRE_MULTIPLY_SCALE_BITS
  272. pmulhw xmm5, [rel PW_F1414]
  273. psubw xmm5, xmm0 ; xmm5=tmp12
  274. movdqa xmm1, xmm2
  275. movdqa xmm3, xmm6
  276. psubw xmm2, xmm0 ; xmm2=tmp3
  277. psubw xmm6, xmm5 ; xmm6=tmp2
  278. paddw xmm1, xmm0 ; xmm1=tmp0
  279. paddw xmm3, xmm5 ; xmm3=tmp1
  280. movdqa xmm0, XMMWORD [wk(0)] ; xmm0=col1
  281. movdqa xmm5, XMMWORD [wk(1)] ; xmm5=col3
  282. movdqa XMMWORD [wk(0)], xmm2 ; wk(0)=tmp3
  283. movdqa XMMWORD [wk(1)], xmm6 ; wk(1)=tmp2
  284. ; -- Odd part
  285. ; xmm0=col1, xmm5=col3, xmm4=col5, xmm7=col7
  286. movdqa xmm2, xmm0
  287. movdqa xmm6, xmm4
  288. psubw xmm0, xmm7 ; xmm0=z12
  289. psubw xmm4, xmm5 ; xmm4=z10
  290. paddw xmm2, xmm7 ; xmm2=z11
  291. paddw xmm6, xmm5 ; xmm6=z13
  292. movdqa xmm7, xmm4 ; xmm7=z10(unscaled)
  293. psllw xmm0, PRE_MULTIPLY_SCALE_BITS
  294. psllw xmm4, PRE_MULTIPLY_SCALE_BITS
  295. movdqa xmm5, xmm2
  296. psubw xmm2, xmm6
  297. paddw xmm5, xmm6 ; xmm5=tmp7
  298. psllw xmm2, PRE_MULTIPLY_SCALE_BITS
  299. pmulhw xmm2, [rel PW_F1414] ; xmm2=tmp11
  300. ; To avoid overflow...
  301. ;
  302. ; (Original)
  303. ; tmp12 = -2.613125930 * z10 + z5;
  304. ;
  305. ; (This implementation)
  306. ; tmp12 = (-1.613125930 - 1) * z10 + z5;
  307. ; = -1.613125930 * z10 - z10 + z5;
  308. movdqa xmm6, xmm4
  309. paddw xmm4, xmm0
  310. pmulhw xmm4, [rel PW_F1847] ; xmm4=z5
  311. pmulhw xmm6, [rel PW_MF1613]
  312. pmulhw xmm0, [rel PW_F1082]
  313. psubw xmm6, xmm7
  314. psubw xmm0, xmm4 ; xmm0=tmp10
  315. paddw xmm6, xmm4 ; xmm6=tmp12
  316. ; -- Final output stage
  317. psubw xmm6, xmm5 ; xmm6=tmp6
  318. movdqa xmm7, xmm1
  319. movdqa xmm4, xmm3
  320. paddw xmm1, xmm5 ; xmm1=data0=(00 10 20 30 40 50 60 70)
  321. paddw xmm3, xmm6 ; xmm3=data1=(01 11 21 31 41 51 61 71)
  322. psraw xmm1, (PASS1_BITS+3) ; descale
  323. psraw xmm3, (PASS1_BITS+3) ; descale
  324. psubw xmm7, xmm5 ; xmm7=data7=(07 17 27 37 47 57 67 77)
  325. psubw xmm4, xmm6 ; xmm4=data6=(06 16 26 36 46 56 66 76)
  326. psraw xmm7, (PASS1_BITS+3) ; descale
  327. psraw xmm4, (PASS1_BITS+3) ; descale
  328. psubw xmm2, xmm6 ; xmm2=tmp5
  329. packsswb xmm1, xmm4 ; xmm1=(00 10 20 30 40 50 60 70 06 16 26 36 46 56 66 76)
  330. packsswb xmm3, xmm7 ; xmm3=(01 11 21 31 41 51 61 71 07 17 27 37 47 57 67 77)
  331. movdqa xmm5, XMMWORD [wk(1)] ; xmm5=tmp2
  332. movdqa xmm6, XMMWORD [wk(0)] ; xmm6=tmp3
  333. paddw xmm0, xmm2 ; xmm0=tmp4
  334. movdqa xmm4, xmm5
  335. movdqa xmm7, xmm6
  336. paddw xmm5, xmm2 ; xmm5=data2=(02 12 22 32 42 52 62 72)
  337. paddw xmm6, xmm0 ; xmm6=data4=(04 14 24 34 44 54 64 74)
  338. psraw xmm5, (PASS1_BITS+3) ; descale
  339. psraw xmm6, (PASS1_BITS+3) ; descale
  340. psubw xmm4, xmm2 ; xmm4=data5=(05 15 25 35 45 55 65 75)
  341. psubw xmm7, xmm0 ; xmm7=data3=(03 13 23 33 43 53 63 73)
  342. psraw xmm4, (PASS1_BITS+3) ; descale
  343. psraw xmm7, (PASS1_BITS+3) ; descale
  344. movdqa xmm2, [rel PB_CENTERJSAMP] ; xmm2=[rel PB_CENTERJSAMP]
  345. packsswb xmm5, xmm6 ; xmm5=(02 12 22 32 42 52 62 72 04 14 24 34 44 54 64 74)
  346. packsswb xmm7, xmm4 ; xmm7=(03 13 23 33 43 53 63 73 05 15 25 35 45 55 65 75)
  347. paddb xmm1, xmm2
  348. paddb xmm3, xmm2
  349. paddb xmm5, xmm2
  350. paddb xmm7, xmm2
  351. movdqa xmm0, xmm1 ; transpose coefficients(phase 1)
  352. punpcklbw xmm1, xmm3 ; xmm1=(00 01 10 11 20 21 30 31 40 41 50 51 60 61 70 71)
  353. punpckhbw xmm0, xmm3 ; xmm0=(06 07 16 17 26 27 36 37 46 47 56 57 66 67 76 77)
  354. movdqa xmm6, xmm5 ; transpose coefficients(phase 1)
  355. punpcklbw xmm5, xmm7 ; xmm5=(02 03 12 13 22 23 32 33 42 43 52 53 62 63 72 73)
  356. punpckhbw xmm6, xmm7 ; xmm6=(04 05 14 15 24 25 34 35 44 45 54 55 64 65 74 75)
  357. movdqa xmm4, xmm1 ; transpose coefficients(phase 2)
  358. punpcklwd xmm1, xmm5 ; xmm1=(00 01 02 03 10 11 12 13 20 21 22 23 30 31 32 33)
  359. punpckhwd xmm4, xmm5 ; xmm4=(40 41 42 43 50 51 52 53 60 61 62 63 70 71 72 73)
  360. movdqa xmm2, xmm6 ; transpose coefficients(phase 2)
  361. punpcklwd xmm6, xmm0 ; xmm6=(04 05 06 07 14 15 16 17 24 25 26 27 34 35 36 37)
  362. punpckhwd xmm2, xmm0 ; xmm2=(44 45 46 47 54 55 56 57 64 65 66 67 74 75 76 77)
  363. movdqa xmm3, xmm1 ; transpose coefficients(phase 3)
  364. punpckldq xmm1, xmm6 ; xmm1=(00 01 02 03 04 05 06 07 10 11 12 13 14 15 16 17)
  365. punpckhdq xmm3, xmm6 ; xmm3=(20 21 22 23 24 25 26 27 30 31 32 33 34 35 36 37)
  366. movdqa xmm7, xmm4 ; transpose coefficients(phase 3)
  367. punpckldq xmm4, xmm2 ; xmm4=(40 41 42 43 44 45 46 47 50 51 52 53 54 55 56 57)
  368. punpckhdq xmm7, xmm2 ; xmm7=(60 61 62 63 64 65 66 67 70 71 72 73 74 75 76 77)
  369. pshufd xmm5, xmm1, 0x4E ; xmm5=(10 11 12 13 14 15 16 17 00 01 02 03 04 05 06 07)
  370. pshufd xmm0, xmm3, 0x4E ; xmm0=(30 31 32 33 34 35 36 37 20 21 22 23 24 25 26 27)
  371. pshufd xmm6, xmm4, 0x4E ; xmm6=(50 51 52 53 54 55 56 57 40 41 42 43 44 45 46 47)
  372. pshufd xmm2, xmm7, 0x4E ; xmm2=(70 71 72 73 74 75 76 77 60 61 62 63 64 65 66 67)
  373. mov rdxp, JSAMPROW [rdi+0*SIZEOF_JSAMPROW]
  374. mov rsip, JSAMPROW [rdi+2*SIZEOF_JSAMPROW]
  375. movq XMM_MMWORD [rdx+rax*SIZEOF_JSAMPLE], xmm1
  376. movq XMM_MMWORD [rsi+rax*SIZEOF_JSAMPLE], xmm3
  377. mov rdxp, JSAMPROW [rdi+4*SIZEOF_JSAMPROW]
  378. mov rsip, JSAMPROW [rdi+6*SIZEOF_JSAMPROW]
  379. movq XMM_MMWORD [rdx+rax*SIZEOF_JSAMPLE], xmm4
  380. movq XMM_MMWORD [rsi+rax*SIZEOF_JSAMPLE], xmm7
  381. mov rdxp, JSAMPROW [rdi+1*SIZEOF_JSAMPROW]
  382. mov rsip, JSAMPROW [rdi+3*SIZEOF_JSAMPROW]
  383. movq XMM_MMWORD [rdx+rax*SIZEOF_JSAMPLE], xmm5
  384. movq XMM_MMWORD [rsi+rax*SIZEOF_JSAMPLE], xmm0
  385. mov rdxp, JSAMPROW [rdi+5*SIZEOF_JSAMPROW]
  386. mov rsip, JSAMPROW [rdi+7*SIZEOF_JSAMPROW]
  387. movq XMM_MMWORD [rdx+rax*SIZEOF_JSAMPLE], xmm6
  388. movq XMM_MMWORD [rsi+rax*SIZEOF_JSAMPLE], xmm2
  389. UNCOLLECT_ARGS 4
  390. lea rsp, [rbp-8]
  391. pop r15
  392. pop rbp
  393. ret
  394. ret
  395. ; For some reason, the OS X linker does not honor the request to align the
  396. ; segment unless we do this.
  397. align 32