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  1. ;******************************************************************************
  2. ;* SSE-optimized functions for the DCA decoder
  3. ;* Copyright (C) 2012-2014 Christophe Gisquet <christophe.gisquet@gmail.com>
  4. ;*
  5. ;* This file is part of Libav.
  6. ;*
  7. ;* Libav is free software; you can redistribute it and/or
  8. ;* modify it under the terms of the GNU Lesser General Public
  9. ;* License as published by the Free Software Foundation; either
  10. ;* version 2.1 of the License, or (at your option) any later version.
  11. ;*
  12. ;* Libav is distributed in the hope that it will be useful,
  13. ;* but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. ;* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. ;* Lesser General Public License for more details.
  16. ;*
  17. ;* You should have received a copy of the GNU Lesser General Public
  18. ;* License along with Libav; if not, write to the Free Software
  19. ;* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. ;******************************************************************************
  21. %include "libavutil/x86/x86util.asm"
  22. SECTION_RODATA
  23. pf_inv16: times 4 dd 0x3D800000 ; 1/16
  24. SECTION_TEXT
  25. ; void decode_hf(float dst[DCA_SUBBANDS][8], const int32_t vq_num[DCA_SUBBANDS],
  26. ; const int8_t hf_vq[1024][32], intptr_t vq_offset,
  27. ; int32_t scale[DCA_SUBBANDS][2], intptr_t start, intptr_t end)
  28. %macro DECODE_HF 0
  29. cglobal decode_hf, 6,6,5, dst, num, src, offset, scale, start, end
  30. lea srcq, [srcq + offsetq]
  31. shl startq, 2
  32. mov offsetd, endm
  33. %define DICT offsetq
  34. shl offsetq, 2
  35. mov endm, offsetq
  36. .loop:
  37. %if ARCH_X86_64
  38. mov offsetd, [scaleq + 2 * startq]
  39. cvtsi2ss m0, offsetd
  40. %else
  41. cvtsi2ss m0, [scaleq + 2 * startq]
  42. %endif
  43. mov offsetd, [numq + startq]
  44. mulss m0, [pf_inv16]
  45. shl DICT, 5
  46. shufps m0, m0, 0
  47. %if cpuflag(sse2)
  48. %if cpuflag(sse4)
  49. pmovsxbd m1, [srcq + DICT + 0]
  50. pmovsxbd m2, [srcq + DICT + 4]
  51. %else
  52. movq m1, [srcq + DICT]
  53. punpcklbw m1, m1
  54. mova m2, m1
  55. punpcklwd m1, m1
  56. punpckhwd m2, m2
  57. psrad m1, 24
  58. psrad m2, 24
  59. %endif
  60. cvtdq2ps m1, m1
  61. cvtdq2ps m2, m2
  62. %else
  63. movd mm0, [srcq + DICT + 0]
  64. movd mm1, [srcq + DICT + 4]
  65. punpcklbw mm0, mm0
  66. punpcklbw mm1, mm1
  67. movq mm2, mm0
  68. movq mm3, mm1
  69. punpcklwd mm0, mm0
  70. punpcklwd mm1, mm1
  71. punpckhwd mm2, mm2
  72. punpckhwd mm3, mm3
  73. psrad mm0, 24
  74. psrad mm1, 24
  75. psrad mm2, 24
  76. psrad mm3, 24
  77. cvtpi2ps m1, mm0
  78. cvtpi2ps m2, mm1
  79. cvtpi2ps m3, mm2
  80. cvtpi2ps m4, mm3
  81. shufps m0, m0, 0
  82. shufps m1, m3, q1010
  83. shufps m2, m4, q1010
  84. %endif
  85. mulps m1, m0
  86. mulps m2, m0
  87. mova [dstq + 8 * startq + 0], m1
  88. mova [dstq + 8 * startq + 16], m2
  89. add startq, 4
  90. cmp startq, endm
  91. jl .loop
  92. .end:
  93. %if notcpuflag(sse2)
  94. emms
  95. %endif
  96. REP_RET
  97. %endmacro
  98. %if ARCH_X86_32
  99. INIT_XMM sse
  100. DECODE_HF
  101. %endif
  102. INIT_XMM sse2
  103. DECODE_HF
  104. INIT_XMM sse4
  105. DECODE_HF
  106. ; %1=v0/v1 %2=in1 %3=in2
  107. %macro FIR_LOOP 2-3
  108. .loop%1:
  109. %define va m1
  110. %define vb m2
  111. %if %1
  112. %define OFFSET 0
  113. %else
  114. %define OFFSET NUM_COEF*count
  115. %endif
  116. ; for v0, incrementing and for v1, decrementing
  117. mova va, [cf0q + OFFSET]
  118. mova vb, [cf0q + OFFSET + 4*NUM_COEF]
  119. %if %0 == 3
  120. mova m4, [cf0q + OFFSET + mmsize]
  121. mova m0, [cf0q + OFFSET + 4*NUM_COEF + mmsize]
  122. %endif
  123. mulps va, %2
  124. mulps vb, %2
  125. %if %0 == 3
  126. mulps m4, %3
  127. mulps m0, %3
  128. addps va, m4
  129. addps vb, m0
  130. %endif
  131. ; va = va1 va2 va3 va4
  132. ; vb = vb1 vb2 vb3 vb4
  133. %if %1
  134. SWAP va, vb
  135. %endif
  136. mova m4, va
  137. unpcklps va, vb ; va3 vb3 va4 vb4
  138. unpckhps m4, vb ; va1 vb1 va2 vb2
  139. addps m4, va ; va1+3 vb1+3 va2+4 vb2+4
  140. movhlps vb, m4 ; va1+3 vb1+3
  141. addps vb, m4 ; va0..4 vb0..4
  142. movh [outq + count], vb
  143. %if %1
  144. sub cf0q, 8*NUM_COEF
  145. %endif
  146. add count, 8
  147. jl .loop%1
  148. %endmacro
  149. ; void dca_lfe_fir(float *out, float *in, float *coefs)
  150. %macro DCA_LFE_FIR 1
  151. cglobal dca_lfe_fir%1, 3,3,6-%1, out, in, cf0
  152. %define IN1 m3
  153. %define IN2 m5
  154. %define count inq
  155. %define NUM_COEF 4*(2-%1)
  156. %define NUM_OUT 32*(%1+1)
  157. movu IN1, [inq + 4 - 1*mmsize]
  158. shufps IN1, IN1, q0123
  159. %if %1 == 0
  160. movu IN2, [inq + 4 - 2*mmsize]
  161. shufps IN2, IN2, q0123
  162. %endif
  163. mov count, -4*NUM_OUT
  164. add cf0q, 4*NUM_COEF*NUM_OUT
  165. add outq, 4*NUM_OUT
  166. ; compute v0 first
  167. %if %1 == 0
  168. FIR_LOOP 0, IN1, IN2
  169. %else
  170. FIR_LOOP 0, IN1
  171. %endif
  172. shufps IN1, IN1, q0123
  173. mov count, -4*NUM_OUT
  174. ; cf1 already correctly positioned
  175. add outq, 4*NUM_OUT ; outq now at out2
  176. sub cf0q, 8*NUM_COEF
  177. %if %1 == 0
  178. shufps IN2, IN2, q0123
  179. FIR_LOOP 1, IN2, IN1
  180. %else
  181. FIR_LOOP 1, IN1
  182. %endif
  183. RET
  184. %endmacro
  185. INIT_XMM sse
  186. DCA_LFE_FIR 0
  187. DCA_LFE_FIR 1
  188. INIT_XMM sse2
  189. %macro INNER_LOOP 1
  190. ; reading backwards: ptr1 = synth_buf + j + i; ptr2 = synth_buf + j - i
  191. ;~ a += window[i + j] * (-synth_buf[15 - i + j])
  192. ;~ b += window[i + j + 16] * (synth_buf[i + j])
  193. pshufd m5, [ptr2 + j + (15 - 3) * 4], q0123
  194. mova m6, [ptr1 + j]
  195. %if ARCH_X86_64
  196. pshufd m11, [ptr2 + j + (15 - 3) * 4 - mmsize], q0123
  197. mova m12, [ptr1 + j + mmsize]
  198. %endif
  199. mulps m6, [win + %1 + j + 16 * 4]
  200. mulps m5, [win + %1 + j]
  201. %if ARCH_X86_64
  202. mulps m12, [win + %1 + j + mmsize + 16 * 4]
  203. mulps m11, [win + %1 + j + mmsize]
  204. %endif
  205. addps m2, m6
  206. subps m1, m5
  207. %if ARCH_X86_64
  208. addps m8, m12
  209. subps m7, m11
  210. %endif
  211. ;~ c += window[i + j + 32] * (synth_buf[16 + i + j])
  212. ;~ d += window[i + j + 48] * (synth_buf[31 - i + j])
  213. pshufd m6, [ptr2 + j + (31 - 3) * 4], q0123
  214. mova m5, [ptr1 + j + 16 * 4]
  215. %if ARCH_X86_64
  216. pshufd m12, [ptr2 + j + (31 - 3) * 4 - mmsize], q0123
  217. mova m11, [ptr1 + j + mmsize + 16 * 4]
  218. %endif
  219. mulps m5, [win + %1 + j + 32 * 4]
  220. mulps m6, [win + %1 + j + 48 * 4]
  221. %if ARCH_X86_64
  222. mulps m11, [win + %1 + j + mmsize + 32 * 4]
  223. mulps m12, [win + %1 + j + mmsize + 48 * 4]
  224. %endif
  225. addps m3, m5
  226. addps m4, m6
  227. %if ARCH_X86_64
  228. addps m9, m11
  229. addps m10, m12
  230. %endif
  231. sub j, 64 * 4
  232. %endmacro
  233. ; void ff_synth_filter_inner_sse2(float *synth_buf, float synth_buf2[32],
  234. ; const float window[512], float out[32],
  235. ; intptr_t offset, float scale)
  236. cglobal synth_filter_inner, 0, 6 + 4 * ARCH_X86_64, 7 + 6 * ARCH_X86_64, \
  237. synth_buf, synth_buf2, window, out, off, scale
  238. %define scale m0
  239. %if ARCH_X86_32 || WIN64
  240. movd scale, scalem
  241. ; Make sure offset is in a register and not on the stack
  242. %define OFFQ r4q
  243. %else
  244. %define OFFQ offq
  245. %endif
  246. pshufd m0, m0, 0
  247. ; prepare inner counter limit 1
  248. mov r5q, 480
  249. sub r5q, offmp
  250. and r5q, -64
  251. shl r5q, 2
  252. mov OFFQ, r5q
  253. %define i r5q
  254. mov i, 16 * 4 - (ARCH_X86_64 + 1) * mmsize ; main loop counter
  255. %define buf2 synth_buf2q
  256. %if ARCH_X86_32
  257. mov buf2, synth_buf2mp
  258. %endif
  259. .mainloop
  260. ; m1 = a m2 = b m3 = c m4 = d
  261. pxor m3, m3
  262. pxor m4, m4
  263. mova m1, [buf2 + i]
  264. mova m2, [buf2 + i + 16 * 4]
  265. %if ARCH_X86_32
  266. %define ptr1 r0q
  267. %define ptr2 r1q
  268. %define win r2q
  269. %define j r3q
  270. mov win, windowm
  271. mov ptr1, synth_bufm
  272. add win, i
  273. add ptr1, i
  274. %else ; ARCH_X86_64
  275. %define ptr1 r6q
  276. %define ptr2 r7q ; must be loaded
  277. %define win r8q
  278. %define j r9q
  279. pxor m9, m9
  280. pxor m10, m10
  281. mova m7, [buf2 + i + mmsize]
  282. mova m8, [buf2 + i + mmsize + 16 * 4]
  283. lea win, [windowq + i]
  284. lea ptr1, [synth_bufq + i]
  285. %endif
  286. mov ptr2, synth_bufmp
  287. ; prepare the inner loop counter
  288. mov j, OFFQ
  289. sub ptr2, i
  290. .loop1:
  291. INNER_LOOP 0
  292. jge .loop1
  293. mov j, 448 * 4
  294. sub j, OFFQ
  295. jz .end
  296. sub ptr1, j
  297. sub ptr2, j
  298. add win, OFFQ ; now at j-64, so define OFFSET
  299. sub j, 64 * 4
  300. .loop2:
  301. INNER_LOOP 64 * 4
  302. jge .loop2
  303. .end:
  304. %if ARCH_X86_32
  305. mov buf2, synth_buf2m ; needed for next iteration anyway
  306. mov outq, outmp ; j, which will be set again during it
  307. %endif
  308. ;~ out[i] = a * scale;
  309. ;~ out[i + 16] = b * scale;
  310. mulps m1, scale
  311. mulps m2, scale
  312. %if ARCH_X86_64
  313. mulps m7, scale
  314. mulps m8, scale
  315. %endif
  316. ;~ synth_buf2[i] = c;
  317. ;~ synth_buf2[i + 16] = d;
  318. mova [buf2 + i + 0 * 4], m3
  319. mova [buf2 + i + 16 * 4], m4
  320. %if ARCH_X86_64
  321. mova [buf2 + i + 0 * 4 + mmsize], m9
  322. mova [buf2 + i + 16 * 4 + mmsize], m10
  323. %endif
  324. ;~ out[i] = a;
  325. ;~ out[i + 16] = a;
  326. mova [outq + i + 0 * 4], m1
  327. mova [outq + i + 16 * 4], m2
  328. %if ARCH_X86_64
  329. mova [outq + i + 0 * 4 + mmsize], m7
  330. mova [outq + i + 16 * 4 + mmsize], m8
  331. %endif
  332. sub i, (ARCH_X86_64 + 1) * mmsize
  333. jge .mainloop
  334. RET