jdsample-avx2.asm 27 KB

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  1. ;
  2. ; Upsampling (64-bit AVX2)
  3. ;
  4. ; Copyright 2009 Pierre Ossman <ossman@cendio.se> for Cendio AB
  5. ; Copyright (C) 2009, 2016, 2024, D. R. Commander.
  6. ; Copyright (C) 2015, Intel Corporation.
  7. ; Copyright (C) 2018, Matthias Räncker.
  8. ; Copyright (C) 2023, Aliaksiej Kandracienka.
  9. ;
  10. ; Based on the x86 SIMD extension for IJG JPEG library
  11. ; Copyright (C) 1999-2006, MIYASAKA Masaru.
  12. ; For conditions of distribution and use, see copyright notice in jsimdext.inc
  13. ;
  14. ; This file should be assembled with NASM (Netwide Assembler) or Yasm.
  15. %include "jsimdext.inc"
  16. ; --------------------------------------------------------------------------
  17. SECTION SEG_CONST
  18. ALIGNZ 32
  19. GLOBAL_DATA(jconst_fancy_upsample_avx2)
  20. EXTN(jconst_fancy_upsample_avx2):
  21. PW_ONE times 16 dw 1
  22. PW_TWO times 16 dw 2
  23. PW_THREE times 16 dw 3
  24. PW_SEVEN times 16 dw 7
  25. PW_EIGHT times 16 dw 8
  26. ALIGNZ 32
  27. ; --------------------------------------------------------------------------
  28. SECTION SEG_TEXT
  29. BITS 64
  30. ;
  31. ; Fancy processing for the common case of 2:1 horizontal and 1:1 vertical.
  32. ;
  33. ; The upsampling algorithm is linear interpolation between pixel centers,
  34. ; also known as a "triangle filter". This is a good compromise between
  35. ; speed and visual quality. The centers of the output pixels are 1/4 and 3/4
  36. ; of the way between input pixel centers.
  37. ;
  38. ; GLOBAL(void)
  39. ; jsimd_h2v1_fancy_upsample_avx2(int max_v_samp_factor,
  40. ; JDIMENSION downsampled_width,
  41. ; JSAMPARRAY input_data,
  42. ; JSAMPARRAY *output_data_ptr);
  43. ;
  44. ; r10 = int max_v_samp_factor
  45. ; r11d = JDIMENSION downsampled_width
  46. ; r12 = JSAMPARRAY input_data
  47. ; r13 = JSAMPARRAY *output_data_ptr
  48. align 32
  49. GLOBAL_FUNCTION(jsimd_h2v1_fancy_upsample_avx2)
  50. EXTN(jsimd_h2v1_fancy_upsample_avx2):
  51. ENDBR64
  52. push rbp
  53. mov rbp, rsp
  54. PUSH_XMM 3
  55. COLLECT_ARGS 4
  56. mov eax, r11d ; colctr
  57. test rax, rax
  58. jz near .return
  59. mov rcx, r10 ; rowctr
  60. test rcx, rcx
  61. jz near .return
  62. mov rsi, r12 ; input_data
  63. mov rdi, r13
  64. mov rdip, JSAMPARRAY [rdi] ; output_data
  65. vpxor ymm0, ymm0, ymm0 ; ymm0=(all 0's)
  66. vpcmpeqb xmm9, xmm9, xmm9
  67. vpsrldq xmm10, xmm9, (SIZEOF_XMMWORD-1) ; (ff -- -- -- ... -- --) LSB is ff
  68. vpslldq xmm9, xmm9, (SIZEOF_XMMWORD-1)
  69. vperm2i128 ymm9, ymm9, ymm9, 1 ; (---- ---- ... ---- ---- ff) MSB is ff
  70. .rowloop:
  71. push rax ; colctr
  72. push rdi
  73. push rsi
  74. mov rsip, JSAMPROW [rsi] ; inptr
  75. mov rdip, JSAMPROW [rdi] ; outptr
  76. test rax, SIZEOF_YMMWORD-1
  77. jz short .skip
  78. mov dl, JSAMPLE [rsi+(rax-1)*SIZEOF_JSAMPLE]
  79. mov JSAMPLE [rsi+rax*SIZEOF_JSAMPLE], dl ; insert a dummy sample
  80. .skip:
  81. vpand ymm7, ymm10, YMMWORD [rsi+0*SIZEOF_YMMWORD]
  82. add rax, byte SIZEOF_YMMWORD-1
  83. and rax, byte -SIZEOF_YMMWORD
  84. cmp rax, byte SIZEOF_YMMWORD
  85. ja short .columnloop
  86. .columnloop_last:
  87. vpand ymm6, ymm9, YMMWORD [rsi+0*SIZEOF_YMMWORD]
  88. jmp short .upsample
  89. .columnloop:
  90. vmovdqu ymm6, YMMWORD [rsi+1*SIZEOF_YMMWORD]
  91. vperm2i128 ymm6, ymm0, ymm6, 0x20
  92. vpslldq ymm6, ymm6, 15
  93. .upsample:
  94. vmovdqu ymm1, YMMWORD [rsi+0*SIZEOF_YMMWORD] ; ymm1=( 0 1 2 ... 29 30 31)
  95. vperm2i128 ymm2, ymm0, ymm1, 0x20
  96. vpalignr ymm2, ymm1, ymm2, 15 ; ymm2=(-- 0 1 ... 28 29 30)
  97. vperm2i128 ymm4, ymm0, ymm1, 0x03
  98. vpalignr ymm3, ymm4, ymm1, 1 ; ymm3=( 1 2 3 ... 30 31 --)
  99. vpor ymm2, ymm2, ymm7 ; ymm2=(-1 0 1 ... 28 29 30)
  100. vpor ymm3, ymm3, ymm6 ; ymm3=( 1 2 3 ... 30 31 32)
  101. vpsrldq ymm7, ymm4, (SIZEOF_XMMWORD-1) ; ymm7=(31 -- -- ... -- -- --)
  102. vpunpckhbw ymm4, ymm1, ymm0 ; ymm4=( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  103. vpunpcklbw ymm5, ymm1, ymm0 ; ymm5=( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  104. vperm2i128 ymm1, ymm5, ymm4, 0x20 ; ymm1=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  105. vperm2i128 ymm4, ymm5, ymm4, 0x31 ; ymm4=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  106. vpunpckhbw ymm5, ymm2, ymm0 ; ymm5=( 7 8 9 10 11 12 13 14 23 24 25 26 27 28 29 30)
  107. vpunpcklbw ymm6, ymm2, ymm0 ; ymm6=(-1 0 1 2 3 4 5 6 15 16 17 18 19 20 21 22)
  108. vperm2i128 ymm2, ymm6, ymm5, 0x20 ; ymm2=(-1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14)
  109. vperm2i128 ymm5, ymm6, ymm5, 0x31 ; ymm5=(15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30)
  110. vpunpckhbw ymm6, ymm3, ymm0 ; ymm6=( 1 2 3 4 5 6 7 8 17 18 19 20 21 22 23 24)
  111. vpunpcklbw ymm8, ymm3, ymm0 ; ymm8=( 9 10 11 12 13 14 15 16 25 26 27 28 29 30 31 32)
  112. vperm2i128 ymm3, ymm8, ymm6, 0x20 ; ymm3=( 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16)
  113. vperm2i128 ymm6, ymm8, ymm6, 0x31 ; ymm6=(17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32)
  114. vpmullw ymm1, ymm1, [rel PW_THREE]
  115. vpmullw ymm4, ymm4, [rel PW_THREE]
  116. vpaddw ymm2, ymm2, [rel PW_ONE]
  117. vpaddw ymm5, ymm5, [rel PW_ONE]
  118. vpaddw ymm3, ymm3, [rel PW_TWO]
  119. vpaddw ymm6, ymm6, [rel PW_TWO]
  120. vpaddw ymm2, ymm2, ymm1
  121. vpaddw ymm5, ymm5, ymm4
  122. vpsrlw ymm2, ymm2, 2 ; ymm2=OutLE=( 0 2 4 6 8 10 12 14 16 18 20 22 24 26 28 30)
  123. vpsrlw ymm5, ymm5, 2 ; ymm5=OutHE=(32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62)
  124. vpaddw ymm3, ymm3, ymm1
  125. vpaddw ymm6, ymm6, ymm4
  126. vpsrlw ymm3, ymm3, 2 ; ymm3=OutLO=( 1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31)
  127. vpsrlw ymm6, ymm6, 2 ; ymm6=OutHO=(33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63)
  128. vpsllw ymm3, ymm3, BYTE_BIT
  129. vpsllw ymm6, ymm6, BYTE_BIT
  130. vpor ymm2, ymm2, ymm3 ; ymm2=OutL=( 0 1 2 ... 29 30 31)
  131. vpor ymm5, ymm5, ymm6 ; ymm5=OutH=(32 33 34 ... 61 62 63)
  132. vmovdqu YMMWORD [rdi+0*SIZEOF_YMMWORD], ymm2
  133. vmovdqu YMMWORD [rdi+1*SIZEOF_YMMWORD], ymm5
  134. sub rax, byte SIZEOF_YMMWORD
  135. add rsi, byte 1*SIZEOF_YMMWORD ; inptr
  136. add rdi, byte 2*SIZEOF_YMMWORD ; outptr
  137. cmp rax, byte SIZEOF_YMMWORD
  138. ja near .columnloop
  139. test eax, eax
  140. jnz near .columnloop_last
  141. pop rsi
  142. pop rdi
  143. pop rax
  144. add rsi, byte SIZEOF_JSAMPROW ; input_data
  145. add rdi, byte SIZEOF_JSAMPROW ; output_data
  146. dec rcx ; rowctr
  147. jg near .rowloop
  148. .return:
  149. vzeroupper
  150. UNCOLLECT_ARGS 4
  151. POP_XMM 3
  152. pop rbp
  153. ret
  154. ; --------------------------------------------------------------------------
  155. ;
  156. ; Fancy processing for the common case of 2:1 horizontal and 2:1 vertical.
  157. ; Again a triangle filter; see comments for h2v1 case, above.
  158. ;
  159. ; GLOBAL(void)
  160. ; jsimd_h2v2_fancy_upsample_avx2(int max_v_samp_factor,
  161. ; JDIMENSION downsampled_width,
  162. ; JSAMPARRAY input_data,
  163. ; JSAMPARRAY *output_data_ptr);
  164. ;
  165. ; r10 = int max_v_samp_factor
  166. ; r11d = JDIMENSION downsampled_width
  167. ; r12 = JSAMPARRAY input_data
  168. ; r13 = JSAMPARRAY *output_data_ptr
  169. %define wk(i) r15 - (WK_NUM - (i)) * SIZEOF_YMMWORD ; ymmword wk[WK_NUM]
  170. %define WK_NUM 4
  171. align 32
  172. GLOBAL_FUNCTION(jsimd_h2v2_fancy_upsample_avx2)
  173. EXTN(jsimd_h2v2_fancy_upsample_avx2):
  174. ENDBR64
  175. push rbp
  176. mov rbp, rsp
  177. push r15
  178. and rsp, byte (-SIZEOF_YMMWORD) ; align to 128 bits
  179. ; Allocate stack space for wk array. r15 is used to access it.
  180. mov r15, rsp
  181. sub rsp, (SIZEOF_YMMWORD * WK_NUM)
  182. PUSH_XMM 3
  183. COLLECT_ARGS 4
  184. push rbx
  185. mov eax, r11d ; colctr
  186. test rax, rax
  187. jz near .return
  188. mov rcx, r10 ; rowctr
  189. test rcx, rcx
  190. jz near .return
  191. mov rsi, r12 ; input_data
  192. mov rdi, r13
  193. mov rdip, JSAMPARRAY [rdi] ; output_data
  194. .rowloop:
  195. push rax ; colctr
  196. push rcx
  197. push rdi
  198. push rsi
  199. mov rcxp, JSAMPROW [rsi-1*SIZEOF_JSAMPROW] ; inptr1(above)
  200. mov rbxp, JSAMPROW [rsi+0*SIZEOF_JSAMPROW] ; inptr0
  201. mov rsip, JSAMPROW [rsi+1*SIZEOF_JSAMPROW] ; inptr1(below)
  202. mov rdxp, JSAMPROW [rdi+0*SIZEOF_JSAMPROW] ; outptr0
  203. mov rdip, JSAMPROW [rdi+1*SIZEOF_JSAMPROW] ; outptr1
  204. vpxor ymm8, ymm8, ymm8 ; ymm8=(all 0's)
  205. vpcmpeqb xmm9, xmm9, xmm9
  206. vpsrldq xmm10, xmm9, (SIZEOF_XMMWORD-2) ; (ffff ---- ---- ... ---- ----) LSB is ffff
  207. vpslldq xmm9, xmm9, (SIZEOF_XMMWORD-2)
  208. vperm2i128 ymm9, ymm9, ymm9, 1 ; (---- ---- ... ---- ---- ffff) MSB is ffff
  209. test rax, SIZEOF_YMMWORD-1
  210. jz short .skip
  211. push rdx
  212. mov dl, JSAMPLE [rcx+(rax-1)*SIZEOF_JSAMPLE]
  213. mov JSAMPLE [rcx+rax*SIZEOF_JSAMPLE], dl
  214. mov dl, JSAMPLE [rbx+(rax-1)*SIZEOF_JSAMPLE]
  215. mov JSAMPLE [rbx+rax*SIZEOF_JSAMPLE], dl
  216. mov dl, JSAMPLE [rsi+(rax-1)*SIZEOF_JSAMPLE]
  217. mov JSAMPLE [rsi+rax*SIZEOF_JSAMPLE], dl ; insert a dummy sample
  218. pop rdx
  219. .skip:
  220. ; -- process the first column block
  221. vmovdqu ymm0, YMMWORD [rbx+0*SIZEOF_YMMWORD] ; ymm0=row[ 0][0]
  222. vmovdqu ymm1, YMMWORD [rcx+0*SIZEOF_YMMWORD] ; ymm1=row[-1][0]
  223. vmovdqu ymm2, YMMWORD [rsi+0*SIZEOF_YMMWORD] ; ymm2=row[+1][0]
  224. vpunpckhbw ymm4, ymm0, ymm8 ; ymm4=row[ 0]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  225. vpunpcklbw ymm5, ymm0, ymm8 ; ymm5=row[ 0]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  226. vperm2i128 ymm0, ymm5, ymm4, 0x20 ; ymm0=row[ 0]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  227. vperm2i128 ymm4, ymm5, ymm4, 0x31 ; ymm4=row[ 0](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  228. vpunpckhbw ymm5, ymm1, ymm8 ; ymm5=row[-1]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  229. vpunpcklbw ymm6, ymm1, ymm8 ; ymm6=row[-1]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  230. vperm2i128 ymm1, ymm6, ymm5, 0x20 ; ymm1=row[-1]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  231. vperm2i128 ymm5, ymm6, ymm5, 0x31 ; ymm5=row[-1](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  232. vpunpckhbw ymm6, ymm2, ymm8 ; ymm6=row[+1]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  233. vpunpcklbw ymm3, ymm2, ymm8 ; ymm3=row[+1]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  234. vperm2i128 ymm2, ymm3, ymm6, 0x20 ; ymm2=row[+1]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  235. vperm2i128 ymm6, ymm3, ymm6, 0x31 ; ymm6=row[+1](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  236. vpmullw ymm0, ymm0, [rel PW_THREE]
  237. vpmullw ymm4, ymm4, [rel PW_THREE]
  238. vpaddw ymm1, ymm1, ymm0 ; ymm1=Int0L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  239. vpaddw ymm5, ymm5, ymm4 ; ymm5=Int0H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  240. vpaddw ymm2, ymm2, ymm0 ; ymm2=Int1L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  241. vpaddw ymm6, ymm6, ymm4 ; ymm6=Int1H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  242. vmovdqu YMMWORD [rdx+0*SIZEOF_YMMWORD], ymm1 ; temporarily save
  243. vmovdqu YMMWORD [rdx+1*SIZEOF_YMMWORD], ymm5 ; the intermediate data
  244. vmovdqu YMMWORD [rdi+0*SIZEOF_YMMWORD], ymm2
  245. vmovdqu YMMWORD [rdi+1*SIZEOF_YMMWORD], ymm6
  246. vpand ymm1, ymm1, ymm10 ; ymm1=( 0 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  247. vpand ymm2, ymm2, ymm10 ; ymm2=( 0 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  248. vmovdqa YMMWORD [wk(0)], ymm1
  249. vmovdqa YMMWORD [wk(1)], ymm2
  250. add rax, byte SIZEOF_YMMWORD-1
  251. and rax, byte -SIZEOF_YMMWORD
  252. cmp rax, byte SIZEOF_YMMWORD
  253. ja short .columnloop
  254. .columnloop_last:
  255. ; -- process the last column block
  256. vpand ymm1, ymm9, YMMWORD [rdx+1*SIZEOF_YMMWORD]
  257. vpand ymm2, ymm9, YMMWORD [rdi+1*SIZEOF_YMMWORD]
  258. vmovdqa YMMWORD [wk(2)], ymm1 ; ymm1=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 31)
  259. vmovdqa YMMWORD [wk(3)], ymm2 ; ymm2=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 31)
  260. jmp near .upsample
  261. .columnloop:
  262. ; -- process the next column block
  263. vmovdqu ymm0, YMMWORD [rbx+1*SIZEOF_YMMWORD] ; ymm0=row[ 0][1]
  264. vmovdqu ymm1, YMMWORD [rcx+1*SIZEOF_YMMWORD] ; ymm1=row[-1][1]
  265. vmovdqu ymm2, YMMWORD [rsi+1*SIZEOF_YMMWORD] ; ymm2=row[+1][1]
  266. vpunpckhbw ymm4, ymm0, ymm8 ; ymm4=row[ 0]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  267. vpunpcklbw ymm5, ymm0, ymm8 ; ymm5=row[ 0]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  268. vperm2i128 ymm0, ymm5, ymm4, 0x20 ; ymm0=row[ 0]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  269. vperm2i128 ymm4, ymm5, ymm4, 0x31 ; ymm4=row[ 0](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  270. vpunpckhbw ymm5, ymm1, ymm8 ; ymm5=row[-1]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  271. vpunpcklbw ymm6, ymm1, ymm8 ; ymm6=row[-1]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  272. vperm2i128 ymm1, ymm6, ymm5, 0x20 ; ymm1=row[-1]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  273. vperm2i128 ymm5, ymm6, ymm5, 0x31 ; ymm5=row[-1](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  274. vpunpckhbw ymm6, ymm2, ymm8 ; ymm6=row[+1]( 8 9 10 11 12 13 14 15 24 25 26 27 28 29 30 31)
  275. vpunpcklbw ymm7, ymm2, ymm8 ; ymm7=row[+1]( 0 1 2 3 4 5 6 7 16 17 18 19 20 21 22 23)
  276. vperm2i128 ymm2, ymm7, ymm6, 0x20 ; ymm2=row[+1]( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  277. vperm2i128 ymm6, ymm7, ymm6, 0x31 ; ymm6=row[+1](16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  278. vpmullw ymm0, ymm0, [rel PW_THREE]
  279. vpmullw ymm4, ymm4, [rel PW_THREE]
  280. vpaddw ymm1, ymm1, ymm0 ; ymm1=Int0L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  281. vpaddw ymm5, ymm5, ymm4 ; ymm5=Int0H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  282. vpaddw ymm2, ymm2, ymm0 ; ymm2=Int1L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  283. vpaddw ymm6, ymm6, ymm4 ; ymm6=Int1H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  284. vmovdqu YMMWORD [rdx+2*SIZEOF_YMMWORD], ymm1 ; temporarily save
  285. vmovdqu YMMWORD [rdx+3*SIZEOF_YMMWORD], ymm5 ; the intermediate data
  286. vmovdqu YMMWORD [rdi+2*SIZEOF_YMMWORD], ymm2
  287. vmovdqu YMMWORD [rdi+3*SIZEOF_YMMWORD], ymm6
  288. vperm2i128 ymm1, ymm8, ymm1, 0x20
  289. vpslldq ymm1, ymm1, 14 ; ymm1=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 0)
  290. vperm2i128 ymm2, ymm8, ymm2, 0x20
  291. vpslldq ymm2, ymm2, 14 ; ymm2=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 0)
  292. vmovdqa YMMWORD [wk(2)], ymm1
  293. vmovdqa YMMWORD [wk(3)], ymm2
  294. .upsample:
  295. ; -- process the upper row
  296. vmovdqu ymm7, YMMWORD [rdx+0*SIZEOF_YMMWORD] ; ymm7=Int0L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  297. vmovdqu ymm3, YMMWORD [rdx+1*SIZEOF_YMMWORD] ; ymm3=Int0H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  298. vperm2i128 ymm0, ymm8, ymm7, 0x03
  299. vpalignr ymm0, ymm0, ymm7, 2 ; ymm0=( 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 --)
  300. vperm2i128 ymm4, ymm8, ymm3, 0x20
  301. vpslldq ymm4, ymm4, 14 ; ymm4=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 16)
  302. vperm2i128 ymm5, ymm8, ymm7, 0x03
  303. vpsrldq ymm5, ymm5, 14 ; ymm5=(15 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  304. vperm2i128 ymm6, ymm8, ymm3, 0x20
  305. vpalignr ymm6, ymm3, ymm6, 14 ; ymm6=(-- 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30)
  306. vpor ymm0, ymm0, ymm4 ; ymm0=( 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16)
  307. vpor ymm5, ymm5, ymm6 ; ymm5=(15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30)
  308. vperm2i128 ymm2, ymm8, ymm3, 0x03
  309. vpalignr ymm2, ymm2, ymm3, 2 ; ymm2=(17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 --)
  310. vperm2i128 ymm4, ymm8, ymm3, 0x03
  311. vpsrldq ymm4, ymm4, 14 ; ymm4=(31 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  312. vperm2i128 ymm1, ymm8, ymm7, 0x20
  313. vpalignr ymm1, ymm7, ymm1, 14 ; ymm1=(-- 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14)
  314. vpor ymm1, ymm1, YMMWORD [wk(0)] ; ymm1=(-1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14)
  315. vpor ymm2, ymm2, YMMWORD [wk(2)] ; ymm2=(17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32)
  316. vmovdqa YMMWORD [wk(0)], ymm4
  317. vpmullw ymm7, ymm7, [rel PW_THREE]
  318. vpmullw ymm3, ymm3, [rel PW_THREE]
  319. vpaddw ymm1, ymm1, [rel PW_EIGHT]
  320. vpaddw ymm5, ymm5, [rel PW_EIGHT]
  321. vpaddw ymm0, ymm0, [rel PW_SEVEN]
  322. vpaddw ymm2, [rel PW_SEVEN]
  323. vpaddw ymm1, ymm1, ymm7
  324. vpaddw ymm5, ymm5, ymm3
  325. vpsrlw ymm1, ymm1, 4 ; ymm1=Out0LE=( 0 2 4 6 8 10 12 14 16 18 20 22 24 26 28 30)
  326. vpsrlw ymm5, ymm5, 4 ; ymm5=Out0HE=(32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62)
  327. vpaddw ymm0, ymm0, ymm7
  328. vpaddw ymm2, ymm2, ymm3
  329. vpsrlw ymm0, ymm0, 4 ; ymm0=Out0LO=( 1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31)
  330. vpsrlw ymm2, ymm2, 4 ; ymm2=Out0HO=(33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63)
  331. vpsllw ymm0, ymm0, BYTE_BIT
  332. vpsllw ymm2, ymm2, BYTE_BIT
  333. vpor ymm1, ymm1, ymm0 ; ymm1=Out0L=( 0 1 2 ... 29 30 31)
  334. vpor ymm5, ymm5, ymm2 ; ymm5=Out0H=(32 33 34 ... 61 62 63)
  335. vmovdqu YMMWORD [rdx+0*SIZEOF_YMMWORD], ymm1
  336. vmovdqu YMMWORD [rdx+1*SIZEOF_YMMWORD], ymm5
  337. ; -- process the lower row
  338. vmovdqu ymm6, YMMWORD [rdi+0*SIZEOF_YMMWORD] ; ymm6=Int1L=( 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15)
  339. vmovdqu ymm4, YMMWORD [rdi+1*SIZEOF_YMMWORD] ; ymm4=Int1H=(16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31)
  340. vperm2i128 ymm7, ymm8, ymm6, 0x03
  341. vpalignr ymm7, ymm7, ymm6, 2 ; ymm7=( 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 --)
  342. vperm2i128 ymm3, ymm8, ymm4, 0x20
  343. vpslldq ymm3, ymm3, 14 ; ymm3=(-- -- -- -- -- -- -- -- -- -- -- -- -- -- -- 16)
  344. vperm2i128 ymm0, ymm8, ymm6, 0x03
  345. vpsrldq ymm0, ymm0, 14 ; ymm0=(15 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  346. vperm2i128 ymm2, ymm8, ymm4, 0x20
  347. vpalignr ymm2, ymm4, ymm2, 14 ; ymm2=(-- 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30)
  348. vpor ymm7, ymm7, ymm3 ; ymm7=( 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16)
  349. vpor ymm0, ymm0, ymm2 ; ymm0=(15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30)
  350. vperm2i128 ymm5, ymm8, ymm4, 0x03
  351. vpalignr ymm5, ymm5, ymm4, 2 ; ymm5=(17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 --)
  352. vperm2i128 ymm3, ymm8, ymm4, 0x03
  353. vpsrldq ymm3, ymm3, 14 ; ymm3=(31 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --)
  354. vperm2i128 ymm1, ymm8, ymm6, 0x20
  355. vpalignr ymm1, ymm6, ymm1, 14 ; ymm1=(-- 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14)
  356. vpor ymm1, ymm1, YMMWORD [wk(1)] ; ymm1=(-1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14)
  357. vpor ymm5, ymm5, YMMWORD [wk(3)] ; ymm5=(17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32)
  358. vmovdqa YMMWORD [wk(1)], ymm3
  359. vpmullw ymm6, ymm6, [rel PW_THREE]
  360. vpmullw ymm4, ymm4, [rel PW_THREE]
  361. vpaddw ymm1, ymm1, [rel PW_EIGHT]
  362. vpaddw ymm0, ymm0, [rel PW_EIGHT]
  363. vpaddw ymm7, ymm7, [rel PW_SEVEN]
  364. vpaddw ymm5, ymm5, [rel PW_SEVEN]
  365. vpaddw ymm1, ymm1, ymm6
  366. vpaddw ymm0, ymm0, ymm4
  367. vpsrlw ymm1, ymm1, 4 ; ymm1=Out1LE=( 0 2 4 6 8 10 12 14 16 18 20 22 24 26 28 30)
  368. vpsrlw ymm0, ymm0, 4 ; ymm0=Out1HE=(32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62)
  369. vpaddw ymm7, ymm7, ymm6
  370. vpaddw ymm5, ymm5, ymm4
  371. vpsrlw ymm7, ymm7, 4 ; ymm7=Out1LO=( 1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31)
  372. vpsrlw ymm5, ymm5, 4 ; ymm5=Out1HO=(33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63)
  373. vpsllw ymm7, ymm7, BYTE_BIT
  374. vpsllw ymm5, ymm5, BYTE_BIT
  375. vpor ymm1, ymm1, ymm7 ; ymm1=Out1L=( 0 1 2 ... 29 30 31)
  376. vpor ymm0, ymm0, ymm5 ; ymm0=Out1H=(32 33 34 ... 61 62 63)
  377. vmovdqu YMMWORD [rdi+0*SIZEOF_YMMWORD], ymm1
  378. vmovdqu YMMWORD [rdi+1*SIZEOF_YMMWORD], ymm0
  379. sub rax, byte SIZEOF_YMMWORD
  380. add rcx, byte 1*SIZEOF_YMMWORD ; inptr1(above)
  381. add rbx, byte 1*SIZEOF_YMMWORD ; inptr0
  382. add rsi, byte 1*SIZEOF_YMMWORD ; inptr1(below)
  383. add rdx, byte 2*SIZEOF_YMMWORD ; outptr0
  384. add rdi, byte 2*SIZEOF_YMMWORD ; outptr1
  385. cmp rax, byte SIZEOF_YMMWORD
  386. ja near .columnloop
  387. test rax, rax
  388. jnz near .columnloop_last
  389. pop rsi
  390. pop rdi
  391. pop rcx
  392. pop rax
  393. add rsi, byte 1*SIZEOF_JSAMPROW ; input_data
  394. add rdi, byte 2*SIZEOF_JSAMPROW ; output_data
  395. sub rcx, byte 2 ; rowctr
  396. jg near .rowloop
  397. .return:
  398. pop rbx
  399. vzeroupper
  400. UNCOLLECT_ARGS 4
  401. POP_XMM 3
  402. lea rsp, [rbp-8]
  403. pop r15
  404. pop rbp
  405. ret
  406. ; --------------------------------------------------------------------------
  407. ;
  408. ; Fast processing for the common case of 2:1 horizontal and 1:1 vertical.
  409. ; It's still a box filter.
  410. ;
  411. ; GLOBAL(void)
  412. ; jsimd_h2v1_upsample_avx2(int max_v_samp_factor, JDIMENSION output_width,
  413. ; JSAMPARRAY input_data, JSAMPARRAY *output_data_ptr);
  414. ;
  415. ; r10 = int max_v_samp_factor
  416. ; r11d = JDIMENSION output_width
  417. ; r12 = JSAMPARRAY input_data
  418. ; r13 = JSAMPARRAY *output_data_ptr
  419. align 32
  420. GLOBAL_FUNCTION(jsimd_h2v1_upsample_avx2)
  421. EXTN(jsimd_h2v1_upsample_avx2):
  422. ENDBR64
  423. push rbp
  424. mov rbp, rsp
  425. COLLECT_ARGS 4
  426. mov edx, r11d
  427. add rdx, byte (SIZEOF_YMMWORD-1)
  428. and rdx, -SIZEOF_YMMWORD
  429. jz near .return
  430. mov rcx, r10 ; rowctr
  431. test rcx, rcx
  432. jz short .return
  433. mov rsi, r12 ; input_data
  434. mov rdi, r13
  435. mov rdip, JSAMPARRAY [rdi] ; output_data
  436. .rowloop:
  437. push rdi
  438. push rsi
  439. mov rsip, JSAMPROW [rsi] ; inptr
  440. mov rdip, JSAMPROW [rdi] ; outptr
  441. mov rax, rdx ; colctr
  442. .columnloop:
  443. cmp rax, byte SIZEOF_YMMWORD
  444. ja near .above_16
  445. vmovdqu xmm0, XMMWORD [rsi+0*SIZEOF_YMMWORD]
  446. vpunpckhbw xmm1, xmm0, xmm0
  447. vpunpcklbw xmm0, xmm0, xmm0
  448. vmovdqu XMMWORD [rdi+0*SIZEOF_XMMWORD], xmm0
  449. vmovdqu XMMWORD [rdi+1*SIZEOF_XMMWORD], xmm1
  450. jmp short .nextrow
  451. .above_16:
  452. vmovdqu ymm0, YMMWORD [rsi+0*SIZEOF_YMMWORD]
  453. vpermq ymm0, ymm0, 0xd8
  454. vpunpckhbw ymm1, ymm0, ymm0
  455. vpunpcklbw ymm0, ymm0, ymm0
  456. vmovdqu YMMWORD [rdi+0*SIZEOF_YMMWORD], ymm0
  457. vmovdqu YMMWORD [rdi+1*SIZEOF_YMMWORD], ymm1
  458. sub rax, byte 2*SIZEOF_YMMWORD
  459. jz short .nextrow
  460. add rsi, byte SIZEOF_YMMWORD ; inptr
  461. add rdi, byte 2*SIZEOF_YMMWORD ; outptr
  462. jmp short .columnloop
  463. .nextrow:
  464. pop rsi
  465. pop rdi
  466. add rsi, byte SIZEOF_JSAMPROW ; input_data
  467. add rdi, byte SIZEOF_JSAMPROW ; output_data
  468. dec rcx ; rowctr
  469. jg short .rowloop
  470. .return:
  471. vzeroupper
  472. UNCOLLECT_ARGS 4
  473. pop rbp
  474. ret
  475. ; --------------------------------------------------------------------------
  476. ;
  477. ; Fast processing for the common case of 2:1 horizontal and 2:1 vertical.
  478. ; It's still a box filter.
  479. ;
  480. ; GLOBAL(void)
  481. ; jsimd_h2v2_upsample_avx2(int max_v_samp_factor, JDIMENSION output_width,
  482. ; JSAMPARRAY input_data, JSAMPARRAY *output_data_ptr);
  483. ;
  484. ; r10 = int max_v_samp_factor
  485. ; r11d = JDIMENSION output_width
  486. ; r12 = JSAMPARRAY input_data
  487. ; r13 = JSAMPARRAY *output_data_ptr
  488. align 32
  489. GLOBAL_FUNCTION(jsimd_h2v2_upsample_avx2)
  490. EXTN(jsimd_h2v2_upsample_avx2):
  491. ENDBR64
  492. push rbp
  493. mov rbp, rsp
  494. COLLECT_ARGS 4
  495. push rbx
  496. mov edx, r11d
  497. add rdx, byte (SIZEOF_YMMWORD-1)
  498. and rdx, -SIZEOF_YMMWORD
  499. jz near .return
  500. mov rcx, r10 ; rowctr
  501. test rcx, rcx
  502. jz near .return
  503. mov rsi, r12 ; input_data
  504. mov rdi, r13
  505. mov rdip, JSAMPARRAY [rdi] ; output_data
  506. .rowloop:
  507. push rdi
  508. push rsi
  509. mov rsip, JSAMPROW [rsi] ; inptr
  510. mov rbxp, JSAMPROW [rdi+0*SIZEOF_JSAMPROW] ; outptr0
  511. mov rdip, JSAMPROW [rdi+1*SIZEOF_JSAMPROW] ; outptr1
  512. mov rax, rdx ; colctr
  513. .columnloop:
  514. cmp rax, byte SIZEOF_YMMWORD
  515. ja short .above_16
  516. vmovdqu xmm0, XMMWORD [rsi+0*SIZEOF_XMMWORD]
  517. vpunpckhbw xmm1, xmm0, xmm0
  518. vpunpcklbw xmm0, xmm0, xmm0
  519. vmovdqu XMMWORD [rbx+0*SIZEOF_XMMWORD], xmm0
  520. vmovdqu XMMWORD [rbx+1*SIZEOF_XMMWORD], xmm1
  521. vmovdqu XMMWORD [rdi+0*SIZEOF_XMMWORD], xmm0
  522. vmovdqu XMMWORD [rdi+1*SIZEOF_XMMWORD], xmm1
  523. jmp near .nextrow
  524. .above_16:
  525. vmovdqu ymm0, YMMWORD [rsi+0*SIZEOF_YMMWORD]
  526. vpermq ymm0, ymm0, 0xd8
  527. vpunpckhbw ymm1, ymm0, ymm0
  528. vpunpcklbw ymm0, ymm0, ymm0
  529. vmovdqu YMMWORD [rbx+0*SIZEOF_YMMWORD], ymm0
  530. vmovdqu YMMWORD [rbx+1*SIZEOF_YMMWORD], ymm1
  531. vmovdqu YMMWORD [rdi+0*SIZEOF_YMMWORD], ymm0
  532. vmovdqu YMMWORD [rdi+1*SIZEOF_YMMWORD], ymm1
  533. sub rax, byte 2*SIZEOF_YMMWORD
  534. jz short .nextrow
  535. add rsi, byte SIZEOF_YMMWORD ; inptr
  536. add rbx, 2*SIZEOF_YMMWORD ; outptr0
  537. add rdi, 2*SIZEOF_YMMWORD ; outptr1
  538. jmp short .columnloop
  539. .nextrow:
  540. pop rsi
  541. pop rdi
  542. add rsi, byte 1*SIZEOF_JSAMPROW ; input_data
  543. add rdi, byte 2*SIZEOF_JSAMPROW ; output_data
  544. sub rcx, byte 2 ; rowctr
  545. jg near .rowloop
  546. .return:
  547. pop rbx
  548. vzeroupper
  549. UNCOLLECT_ARGS 4
  550. pop rbp
  551. ret
  552. ; For some reason, the OS X linker does not honor the request to align the
  553. ; segment unless we do this.
  554. align 32