1*b2055c35SXin Li // Copyright 2011 Google Inc. All Rights Reserved.
2*b2055c35SXin Li //
3*b2055c35SXin Li // Use of this source code is governed by a BSD-style license
4*b2055c35SXin Li // that can be found in the COPYING file in the root of the source
5*b2055c35SXin Li // tree. An additional intellectual property rights grant can be found
6*b2055c35SXin Li // in the file PATENTS. All contributing project authors may
7*b2055c35SXin Li // be found in the AUTHORS file in the root of the source tree.
8*b2055c35SXin Li // -----------------------------------------------------------------------------
9*b2055c35SXin Li //
10*b2055c35SXin Li // SSE2 version of some decoding functions (idct, loop filtering).
11*b2055c35SXin Li //
12*b2055c35SXin Li // Author: [email protected] (Somnath Banerjee)
13*b2055c35SXin Li // [email protected] (Christian Duvivier)
14*b2055c35SXin Li
15*b2055c35SXin Li #include "src/dsp/dsp.h"
16*b2055c35SXin Li
17*b2055c35SXin Li #if defined(WEBP_USE_SSE2)
18*b2055c35SXin Li
19*b2055c35SXin Li // The 3-coeff sparse transform in SSE2 is not really faster than the plain-C
20*b2055c35SXin Li // one it seems => disable it by default. Uncomment the following to enable:
21*b2055c35SXin Li #if !defined(USE_TRANSFORM_AC3)
22*b2055c35SXin Li #define USE_TRANSFORM_AC3 0 // ALTERNATE_CODE
23*b2055c35SXin Li #endif
24*b2055c35SXin Li
25*b2055c35SXin Li #include <emmintrin.h>
26*b2055c35SXin Li #include "src/dsp/common_sse2.h"
27*b2055c35SXin Li #include "src/dec/vp8i_dec.h"
28*b2055c35SXin Li #include "src/utils/utils.h"
29*b2055c35SXin Li
30*b2055c35SXin Li //------------------------------------------------------------------------------
31*b2055c35SXin Li // Transforms (Paragraph 14.4)
32*b2055c35SXin Li
Transform_SSE2(const int16_t * in,uint8_t * dst,int do_two)33*b2055c35SXin Li static void Transform_SSE2(const int16_t* in, uint8_t* dst, int do_two) {
34*b2055c35SXin Li // This implementation makes use of 16-bit fixed point versions of two
35*b2055c35SXin Li // multiply constants:
36*b2055c35SXin Li // K1 = sqrt(2) * cos (pi/8) ~= 85627 / 2^16
37*b2055c35SXin Li // K2 = sqrt(2) * sin (pi/8) ~= 35468 / 2^16
38*b2055c35SXin Li //
39*b2055c35SXin Li // To be able to use signed 16-bit integers, we use the following trick to
40*b2055c35SXin Li // have constants within range:
41*b2055c35SXin Li // - Associated constants are obtained by subtracting the 16-bit fixed point
42*b2055c35SXin Li // version of one:
43*b2055c35SXin Li // k = K - (1 << 16) => K = k + (1 << 16)
44*b2055c35SXin Li // K1 = 85267 => k1 = 20091
45*b2055c35SXin Li // K2 = 35468 => k2 = -30068
46*b2055c35SXin Li // - The multiplication of a variable by a constant become the sum of the
47*b2055c35SXin Li // variable and the multiplication of that variable by the associated
48*b2055c35SXin Li // constant:
49*b2055c35SXin Li // (x * K) >> 16 = (x * (k + (1 << 16))) >> 16 = ((x * k ) >> 16) + x
50*b2055c35SXin Li const __m128i k1 = _mm_set1_epi16(20091);
51*b2055c35SXin Li const __m128i k2 = _mm_set1_epi16(-30068);
52*b2055c35SXin Li __m128i T0, T1, T2, T3;
53*b2055c35SXin Li
54*b2055c35SXin Li // Load and concatenate the transform coefficients (we'll do two transforms
55*b2055c35SXin Li // in parallel). In the case of only one transform, the second half of the
56*b2055c35SXin Li // vectors will just contain random value we'll never use nor store.
57*b2055c35SXin Li __m128i in0, in1, in2, in3;
58*b2055c35SXin Li {
59*b2055c35SXin Li in0 = _mm_loadl_epi64((const __m128i*)&in[0]);
60*b2055c35SXin Li in1 = _mm_loadl_epi64((const __m128i*)&in[4]);
61*b2055c35SXin Li in2 = _mm_loadl_epi64((const __m128i*)&in[8]);
62*b2055c35SXin Li in3 = _mm_loadl_epi64((const __m128i*)&in[12]);
63*b2055c35SXin Li // a00 a10 a20 a30 x x x x
64*b2055c35SXin Li // a01 a11 a21 a31 x x x x
65*b2055c35SXin Li // a02 a12 a22 a32 x x x x
66*b2055c35SXin Li // a03 a13 a23 a33 x x x x
67*b2055c35SXin Li if (do_two) {
68*b2055c35SXin Li const __m128i inB0 = _mm_loadl_epi64((const __m128i*)&in[16]);
69*b2055c35SXin Li const __m128i inB1 = _mm_loadl_epi64((const __m128i*)&in[20]);
70*b2055c35SXin Li const __m128i inB2 = _mm_loadl_epi64((const __m128i*)&in[24]);
71*b2055c35SXin Li const __m128i inB3 = _mm_loadl_epi64((const __m128i*)&in[28]);
72*b2055c35SXin Li in0 = _mm_unpacklo_epi64(in0, inB0);
73*b2055c35SXin Li in1 = _mm_unpacklo_epi64(in1, inB1);
74*b2055c35SXin Li in2 = _mm_unpacklo_epi64(in2, inB2);
75*b2055c35SXin Li in3 = _mm_unpacklo_epi64(in3, inB3);
76*b2055c35SXin Li // a00 a10 a20 a30 b00 b10 b20 b30
77*b2055c35SXin Li // a01 a11 a21 a31 b01 b11 b21 b31
78*b2055c35SXin Li // a02 a12 a22 a32 b02 b12 b22 b32
79*b2055c35SXin Li // a03 a13 a23 a33 b03 b13 b23 b33
80*b2055c35SXin Li }
81*b2055c35SXin Li }
82*b2055c35SXin Li
83*b2055c35SXin Li // Vertical pass and subsequent transpose.
84*b2055c35SXin Li {
85*b2055c35SXin Li // First pass, c and d calculations are longer because of the "trick"
86*b2055c35SXin Li // multiplications.
87*b2055c35SXin Li const __m128i a = _mm_add_epi16(in0, in2);
88*b2055c35SXin Li const __m128i b = _mm_sub_epi16(in0, in2);
89*b2055c35SXin Li // c = MUL(in1, K2) - MUL(in3, K1) = MUL(in1, k2) - MUL(in3, k1) + in1 - in3
90*b2055c35SXin Li const __m128i c1 = _mm_mulhi_epi16(in1, k2);
91*b2055c35SXin Li const __m128i c2 = _mm_mulhi_epi16(in3, k1);
92*b2055c35SXin Li const __m128i c3 = _mm_sub_epi16(in1, in3);
93*b2055c35SXin Li const __m128i c4 = _mm_sub_epi16(c1, c2);
94*b2055c35SXin Li const __m128i c = _mm_add_epi16(c3, c4);
95*b2055c35SXin Li // d = MUL(in1, K1) + MUL(in3, K2) = MUL(in1, k1) + MUL(in3, k2) + in1 + in3
96*b2055c35SXin Li const __m128i d1 = _mm_mulhi_epi16(in1, k1);
97*b2055c35SXin Li const __m128i d2 = _mm_mulhi_epi16(in3, k2);
98*b2055c35SXin Li const __m128i d3 = _mm_add_epi16(in1, in3);
99*b2055c35SXin Li const __m128i d4 = _mm_add_epi16(d1, d2);
100*b2055c35SXin Li const __m128i d = _mm_add_epi16(d3, d4);
101*b2055c35SXin Li
102*b2055c35SXin Li // Second pass.
103*b2055c35SXin Li const __m128i tmp0 = _mm_add_epi16(a, d);
104*b2055c35SXin Li const __m128i tmp1 = _mm_add_epi16(b, c);
105*b2055c35SXin Li const __m128i tmp2 = _mm_sub_epi16(b, c);
106*b2055c35SXin Li const __m128i tmp3 = _mm_sub_epi16(a, d);
107*b2055c35SXin Li
108*b2055c35SXin Li // Transpose the two 4x4.
109*b2055c35SXin Li VP8Transpose_2_4x4_16b(&tmp0, &tmp1, &tmp2, &tmp3, &T0, &T1, &T2, &T3);
110*b2055c35SXin Li }
111*b2055c35SXin Li
112*b2055c35SXin Li // Horizontal pass and subsequent transpose.
113*b2055c35SXin Li {
114*b2055c35SXin Li // First pass, c and d calculations are longer because of the "trick"
115*b2055c35SXin Li // multiplications.
116*b2055c35SXin Li const __m128i four = _mm_set1_epi16(4);
117*b2055c35SXin Li const __m128i dc = _mm_add_epi16(T0, four);
118*b2055c35SXin Li const __m128i a = _mm_add_epi16(dc, T2);
119*b2055c35SXin Li const __m128i b = _mm_sub_epi16(dc, T2);
120*b2055c35SXin Li // c = MUL(T1, K2) - MUL(T3, K1) = MUL(T1, k2) - MUL(T3, k1) + T1 - T3
121*b2055c35SXin Li const __m128i c1 = _mm_mulhi_epi16(T1, k2);
122*b2055c35SXin Li const __m128i c2 = _mm_mulhi_epi16(T3, k1);
123*b2055c35SXin Li const __m128i c3 = _mm_sub_epi16(T1, T3);
124*b2055c35SXin Li const __m128i c4 = _mm_sub_epi16(c1, c2);
125*b2055c35SXin Li const __m128i c = _mm_add_epi16(c3, c4);
126*b2055c35SXin Li // d = MUL(T1, K1) + MUL(T3, K2) = MUL(T1, k1) + MUL(T3, k2) + T1 + T3
127*b2055c35SXin Li const __m128i d1 = _mm_mulhi_epi16(T1, k1);
128*b2055c35SXin Li const __m128i d2 = _mm_mulhi_epi16(T3, k2);
129*b2055c35SXin Li const __m128i d3 = _mm_add_epi16(T1, T3);
130*b2055c35SXin Li const __m128i d4 = _mm_add_epi16(d1, d2);
131*b2055c35SXin Li const __m128i d = _mm_add_epi16(d3, d4);
132*b2055c35SXin Li
133*b2055c35SXin Li // Second pass.
134*b2055c35SXin Li const __m128i tmp0 = _mm_add_epi16(a, d);
135*b2055c35SXin Li const __m128i tmp1 = _mm_add_epi16(b, c);
136*b2055c35SXin Li const __m128i tmp2 = _mm_sub_epi16(b, c);
137*b2055c35SXin Li const __m128i tmp3 = _mm_sub_epi16(a, d);
138*b2055c35SXin Li const __m128i shifted0 = _mm_srai_epi16(tmp0, 3);
139*b2055c35SXin Li const __m128i shifted1 = _mm_srai_epi16(tmp1, 3);
140*b2055c35SXin Li const __m128i shifted2 = _mm_srai_epi16(tmp2, 3);
141*b2055c35SXin Li const __m128i shifted3 = _mm_srai_epi16(tmp3, 3);
142*b2055c35SXin Li
143*b2055c35SXin Li // Transpose the two 4x4.
144*b2055c35SXin Li VP8Transpose_2_4x4_16b(&shifted0, &shifted1, &shifted2, &shifted3, &T0, &T1,
145*b2055c35SXin Li &T2, &T3);
146*b2055c35SXin Li }
147*b2055c35SXin Li
148*b2055c35SXin Li // Add inverse transform to 'dst' and store.
149*b2055c35SXin Li {
150*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
151*b2055c35SXin Li // Load the reference(s).
152*b2055c35SXin Li __m128i dst0, dst1, dst2, dst3;
153*b2055c35SXin Li if (do_two) {
154*b2055c35SXin Li // Load eight bytes/pixels per line.
155*b2055c35SXin Li dst0 = _mm_loadl_epi64((__m128i*)(dst + 0 * BPS));
156*b2055c35SXin Li dst1 = _mm_loadl_epi64((__m128i*)(dst + 1 * BPS));
157*b2055c35SXin Li dst2 = _mm_loadl_epi64((__m128i*)(dst + 2 * BPS));
158*b2055c35SXin Li dst3 = _mm_loadl_epi64((__m128i*)(dst + 3 * BPS));
159*b2055c35SXin Li } else {
160*b2055c35SXin Li // Load four bytes/pixels per line.
161*b2055c35SXin Li dst0 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 0 * BPS));
162*b2055c35SXin Li dst1 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 1 * BPS));
163*b2055c35SXin Li dst2 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 2 * BPS));
164*b2055c35SXin Li dst3 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 3 * BPS));
165*b2055c35SXin Li }
166*b2055c35SXin Li // Convert to 16b.
167*b2055c35SXin Li dst0 = _mm_unpacklo_epi8(dst0, zero);
168*b2055c35SXin Li dst1 = _mm_unpacklo_epi8(dst1, zero);
169*b2055c35SXin Li dst2 = _mm_unpacklo_epi8(dst2, zero);
170*b2055c35SXin Li dst3 = _mm_unpacklo_epi8(dst3, zero);
171*b2055c35SXin Li // Add the inverse transform(s).
172*b2055c35SXin Li dst0 = _mm_add_epi16(dst0, T0);
173*b2055c35SXin Li dst1 = _mm_add_epi16(dst1, T1);
174*b2055c35SXin Li dst2 = _mm_add_epi16(dst2, T2);
175*b2055c35SXin Li dst3 = _mm_add_epi16(dst3, T3);
176*b2055c35SXin Li // Unsigned saturate to 8b.
177*b2055c35SXin Li dst0 = _mm_packus_epi16(dst0, dst0);
178*b2055c35SXin Li dst1 = _mm_packus_epi16(dst1, dst1);
179*b2055c35SXin Li dst2 = _mm_packus_epi16(dst2, dst2);
180*b2055c35SXin Li dst3 = _mm_packus_epi16(dst3, dst3);
181*b2055c35SXin Li // Store the results.
182*b2055c35SXin Li if (do_two) {
183*b2055c35SXin Li // Store eight bytes/pixels per line.
184*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + 0 * BPS), dst0);
185*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + 1 * BPS), dst1);
186*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + 2 * BPS), dst2);
187*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + 3 * BPS), dst3);
188*b2055c35SXin Li } else {
189*b2055c35SXin Li // Store four bytes/pixels per line.
190*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32(dst0));
191*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32(dst1));
192*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(dst2));
193*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32(dst3));
194*b2055c35SXin Li }
195*b2055c35SXin Li }
196*b2055c35SXin Li }
197*b2055c35SXin Li
198*b2055c35SXin Li #if (USE_TRANSFORM_AC3 == 1)
199*b2055c35SXin Li
TransformAC3(const int16_t * in,uint8_t * dst)200*b2055c35SXin Li static void TransformAC3(const int16_t* in, uint8_t* dst) {
201*b2055c35SXin Li const __m128i A = _mm_set1_epi16(in[0] + 4);
202*b2055c35SXin Li const __m128i c4 = _mm_set1_epi16(WEBP_TRANSFORM_AC3_MUL2(in[4]));
203*b2055c35SXin Li const __m128i d4 = _mm_set1_epi16(WEBP_TRANSFORM_AC3_MUL1(in[4]));
204*b2055c35SXin Li const int c1 = WEBP_TRANSFORM_AC3_MUL2(in[1]);
205*b2055c35SXin Li const int d1 = WEBP_TRANSFORM_AC3_MUL1(in[1]);
206*b2055c35SXin Li const __m128i CD = _mm_set_epi16(0, 0, 0, 0, -d1, -c1, c1, d1);
207*b2055c35SXin Li const __m128i B = _mm_adds_epi16(A, CD);
208*b2055c35SXin Li const __m128i m0 = _mm_adds_epi16(B, d4);
209*b2055c35SXin Li const __m128i m1 = _mm_adds_epi16(B, c4);
210*b2055c35SXin Li const __m128i m2 = _mm_subs_epi16(B, c4);
211*b2055c35SXin Li const __m128i m3 = _mm_subs_epi16(B, d4);
212*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
213*b2055c35SXin Li // Load the source pixels.
214*b2055c35SXin Li __m128i dst0 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 0 * BPS));
215*b2055c35SXin Li __m128i dst1 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 1 * BPS));
216*b2055c35SXin Li __m128i dst2 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 2 * BPS));
217*b2055c35SXin Li __m128i dst3 = _mm_cvtsi32_si128(WebPMemToInt32(dst + 3 * BPS));
218*b2055c35SXin Li // Convert to 16b.
219*b2055c35SXin Li dst0 = _mm_unpacklo_epi8(dst0, zero);
220*b2055c35SXin Li dst1 = _mm_unpacklo_epi8(dst1, zero);
221*b2055c35SXin Li dst2 = _mm_unpacklo_epi8(dst2, zero);
222*b2055c35SXin Li dst3 = _mm_unpacklo_epi8(dst3, zero);
223*b2055c35SXin Li // Add the inverse transform.
224*b2055c35SXin Li dst0 = _mm_adds_epi16(dst0, _mm_srai_epi16(m0, 3));
225*b2055c35SXin Li dst1 = _mm_adds_epi16(dst1, _mm_srai_epi16(m1, 3));
226*b2055c35SXin Li dst2 = _mm_adds_epi16(dst2, _mm_srai_epi16(m2, 3));
227*b2055c35SXin Li dst3 = _mm_adds_epi16(dst3, _mm_srai_epi16(m3, 3));
228*b2055c35SXin Li // Unsigned saturate to 8b.
229*b2055c35SXin Li dst0 = _mm_packus_epi16(dst0, dst0);
230*b2055c35SXin Li dst1 = _mm_packus_epi16(dst1, dst1);
231*b2055c35SXin Li dst2 = _mm_packus_epi16(dst2, dst2);
232*b2055c35SXin Li dst3 = _mm_packus_epi16(dst3, dst3);
233*b2055c35SXin Li // Store the results.
234*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32(dst0));
235*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32(dst1));
236*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(dst2));
237*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32(dst3));
238*b2055c35SXin Li }
239*b2055c35SXin Li
240*b2055c35SXin Li #endif // USE_TRANSFORM_AC3
241*b2055c35SXin Li
242*b2055c35SXin Li //------------------------------------------------------------------------------
243*b2055c35SXin Li // Loop Filter (Paragraph 15)
244*b2055c35SXin Li
245*b2055c35SXin Li // Compute abs(p - q) = subs(p - q) OR subs(q - p)
246*b2055c35SXin Li #define MM_ABS(p, q) _mm_or_si128( \
247*b2055c35SXin Li _mm_subs_epu8((q), (p)), \
248*b2055c35SXin Li _mm_subs_epu8((p), (q)))
249*b2055c35SXin Li
250*b2055c35SXin Li // Shift each byte of "x" by 3 bits while preserving by the sign bit.
SignedShift8b_SSE2(__m128i * const x)251*b2055c35SXin Li static WEBP_INLINE void SignedShift8b_SSE2(__m128i* const x) {
252*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
253*b2055c35SXin Li const __m128i lo_0 = _mm_unpacklo_epi8(zero, *x);
254*b2055c35SXin Li const __m128i hi_0 = _mm_unpackhi_epi8(zero, *x);
255*b2055c35SXin Li const __m128i lo_1 = _mm_srai_epi16(lo_0, 3 + 8);
256*b2055c35SXin Li const __m128i hi_1 = _mm_srai_epi16(hi_0, 3 + 8);
257*b2055c35SXin Li *x = _mm_packs_epi16(lo_1, hi_1);
258*b2055c35SXin Li }
259*b2055c35SXin Li
260*b2055c35SXin Li #define FLIP_SIGN_BIT2(a, b) do { \
261*b2055c35SXin Li (a) = _mm_xor_si128(a, sign_bit); \
262*b2055c35SXin Li (b) = _mm_xor_si128(b, sign_bit); \
263*b2055c35SXin Li } while (0)
264*b2055c35SXin Li
265*b2055c35SXin Li #define FLIP_SIGN_BIT4(a, b, c, d) do { \
266*b2055c35SXin Li FLIP_SIGN_BIT2(a, b); \
267*b2055c35SXin Li FLIP_SIGN_BIT2(c, d); \
268*b2055c35SXin Li } while (0)
269*b2055c35SXin Li
270*b2055c35SXin Li // input/output is uint8_t
GetNotHEV_SSE2(const __m128i * const p1,const __m128i * const p0,const __m128i * const q0,const __m128i * const q1,int hev_thresh,__m128i * const not_hev)271*b2055c35SXin Li static WEBP_INLINE void GetNotHEV_SSE2(const __m128i* const p1,
272*b2055c35SXin Li const __m128i* const p0,
273*b2055c35SXin Li const __m128i* const q0,
274*b2055c35SXin Li const __m128i* const q1,
275*b2055c35SXin Li int hev_thresh, __m128i* const not_hev) {
276*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
277*b2055c35SXin Li const __m128i t_1 = MM_ABS(*p1, *p0);
278*b2055c35SXin Li const __m128i t_2 = MM_ABS(*q1, *q0);
279*b2055c35SXin Li
280*b2055c35SXin Li const __m128i h = _mm_set1_epi8(hev_thresh);
281*b2055c35SXin Li const __m128i t_max = _mm_max_epu8(t_1, t_2);
282*b2055c35SXin Li
283*b2055c35SXin Li const __m128i t_max_h = _mm_subs_epu8(t_max, h);
284*b2055c35SXin Li *not_hev = _mm_cmpeq_epi8(t_max_h, zero); // not_hev <= t1 && not_hev <= t2
285*b2055c35SXin Li }
286*b2055c35SXin Li
287*b2055c35SXin Li // input pixels are int8_t
GetBaseDelta_SSE2(const __m128i * const p1,const __m128i * const p0,const __m128i * const q0,const __m128i * const q1,__m128i * const delta)288*b2055c35SXin Li static WEBP_INLINE void GetBaseDelta_SSE2(const __m128i* const p1,
289*b2055c35SXin Li const __m128i* const p0,
290*b2055c35SXin Li const __m128i* const q0,
291*b2055c35SXin Li const __m128i* const q1,
292*b2055c35SXin Li __m128i* const delta) {
293*b2055c35SXin Li // beware of addition order, for saturation!
294*b2055c35SXin Li const __m128i p1_q1 = _mm_subs_epi8(*p1, *q1); // p1 - q1
295*b2055c35SXin Li const __m128i q0_p0 = _mm_subs_epi8(*q0, *p0); // q0 - p0
296*b2055c35SXin Li const __m128i s1 = _mm_adds_epi8(p1_q1, q0_p0); // p1 - q1 + 1 * (q0 - p0)
297*b2055c35SXin Li const __m128i s2 = _mm_adds_epi8(q0_p0, s1); // p1 - q1 + 2 * (q0 - p0)
298*b2055c35SXin Li const __m128i s3 = _mm_adds_epi8(q0_p0, s2); // p1 - q1 + 3 * (q0 - p0)
299*b2055c35SXin Li *delta = s3;
300*b2055c35SXin Li }
301*b2055c35SXin Li
302*b2055c35SXin Li // input and output are int8_t
DoSimpleFilter_SSE2(__m128i * const p0,__m128i * const q0,const __m128i * const fl)303*b2055c35SXin Li static WEBP_INLINE void DoSimpleFilter_SSE2(__m128i* const p0,
304*b2055c35SXin Li __m128i* const q0,
305*b2055c35SXin Li const __m128i* const fl) {
306*b2055c35SXin Li const __m128i k3 = _mm_set1_epi8(3);
307*b2055c35SXin Li const __m128i k4 = _mm_set1_epi8(4);
308*b2055c35SXin Li __m128i v3 = _mm_adds_epi8(*fl, k3);
309*b2055c35SXin Li __m128i v4 = _mm_adds_epi8(*fl, k4);
310*b2055c35SXin Li
311*b2055c35SXin Li SignedShift8b_SSE2(&v4); // v4 >> 3
312*b2055c35SXin Li SignedShift8b_SSE2(&v3); // v3 >> 3
313*b2055c35SXin Li *q0 = _mm_subs_epi8(*q0, v4); // q0 -= v4
314*b2055c35SXin Li *p0 = _mm_adds_epi8(*p0, v3); // p0 += v3
315*b2055c35SXin Li }
316*b2055c35SXin Li
317*b2055c35SXin Li // Updates values of 2 pixels at MB edge during complex filtering.
318*b2055c35SXin Li // Update operations:
319*b2055c35SXin Li // q = q - delta and p = p + delta; where delta = [(a_hi >> 7), (a_lo >> 7)]
320*b2055c35SXin Li // Pixels 'pi' and 'qi' are int8_t on input, uint8_t on output (sign flip).
Update2Pixels_SSE2(__m128i * const pi,__m128i * const qi,const __m128i * const a0_lo,const __m128i * const a0_hi)321*b2055c35SXin Li static WEBP_INLINE void Update2Pixels_SSE2(__m128i* const pi, __m128i* const qi,
322*b2055c35SXin Li const __m128i* const a0_lo,
323*b2055c35SXin Li const __m128i* const a0_hi) {
324*b2055c35SXin Li const __m128i a1_lo = _mm_srai_epi16(*a0_lo, 7);
325*b2055c35SXin Li const __m128i a1_hi = _mm_srai_epi16(*a0_hi, 7);
326*b2055c35SXin Li const __m128i delta = _mm_packs_epi16(a1_lo, a1_hi);
327*b2055c35SXin Li const __m128i sign_bit = _mm_set1_epi8((char)0x80);
328*b2055c35SXin Li *pi = _mm_adds_epi8(*pi, delta);
329*b2055c35SXin Li *qi = _mm_subs_epi8(*qi, delta);
330*b2055c35SXin Li FLIP_SIGN_BIT2(*pi, *qi);
331*b2055c35SXin Li }
332*b2055c35SXin Li
333*b2055c35SXin Li // input pixels are uint8_t
NeedsFilter_SSE2(const __m128i * const p1,const __m128i * const p0,const __m128i * const q0,const __m128i * const q1,int thresh,__m128i * const mask)334*b2055c35SXin Li static WEBP_INLINE void NeedsFilter_SSE2(const __m128i* const p1,
335*b2055c35SXin Li const __m128i* const p0,
336*b2055c35SXin Li const __m128i* const q0,
337*b2055c35SXin Li const __m128i* const q1,
338*b2055c35SXin Li int thresh, __m128i* const mask) {
339*b2055c35SXin Li const __m128i m_thresh = _mm_set1_epi8((char)thresh);
340*b2055c35SXin Li const __m128i t1 = MM_ABS(*p1, *q1); // abs(p1 - q1)
341*b2055c35SXin Li const __m128i kFE = _mm_set1_epi8((char)0xFE);
342*b2055c35SXin Li const __m128i t2 = _mm_and_si128(t1, kFE); // set lsb of each byte to zero
343*b2055c35SXin Li const __m128i t3 = _mm_srli_epi16(t2, 1); // abs(p1 - q1) / 2
344*b2055c35SXin Li
345*b2055c35SXin Li const __m128i t4 = MM_ABS(*p0, *q0); // abs(p0 - q0)
346*b2055c35SXin Li const __m128i t5 = _mm_adds_epu8(t4, t4); // abs(p0 - q0) * 2
347*b2055c35SXin Li const __m128i t6 = _mm_adds_epu8(t5, t3); // abs(p0-q0)*2 + abs(p1-q1)/2
348*b2055c35SXin Li
349*b2055c35SXin Li const __m128i t7 = _mm_subs_epu8(t6, m_thresh); // mask <= m_thresh
350*b2055c35SXin Li *mask = _mm_cmpeq_epi8(t7, _mm_setzero_si128());
351*b2055c35SXin Li }
352*b2055c35SXin Li
353*b2055c35SXin Li //------------------------------------------------------------------------------
354*b2055c35SXin Li // Edge filtering functions
355*b2055c35SXin Li
356*b2055c35SXin Li // Applies filter on 2 pixels (p0 and q0)
DoFilter2_SSE2(__m128i * const p1,__m128i * const p0,__m128i * const q0,__m128i * const q1,int thresh)357*b2055c35SXin Li static WEBP_INLINE void DoFilter2_SSE2(__m128i* const p1, __m128i* const p0,
358*b2055c35SXin Li __m128i* const q0, __m128i* const q1,
359*b2055c35SXin Li int thresh) {
360*b2055c35SXin Li __m128i a, mask;
361*b2055c35SXin Li const __m128i sign_bit = _mm_set1_epi8((char)0x80);
362*b2055c35SXin Li // convert p1/q1 to int8_t (for GetBaseDelta_SSE2)
363*b2055c35SXin Li const __m128i p1s = _mm_xor_si128(*p1, sign_bit);
364*b2055c35SXin Li const __m128i q1s = _mm_xor_si128(*q1, sign_bit);
365*b2055c35SXin Li
366*b2055c35SXin Li NeedsFilter_SSE2(p1, p0, q0, q1, thresh, &mask);
367*b2055c35SXin Li
368*b2055c35SXin Li FLIP_SIGN_BIT2(*p0, *q0);
369*b2055c35SXin Li GetBaseDelta_SSE2(&p1s, p0, q0, &q1s, &a);
370*b2055c35SXin Li a = _mm_and_si128(a, mask); // mask filter values we don't care about
371*b2055c35SXin Li DoSimpleFilter_SSE2(p0, q0, &a);
372*b2055c35SXin Li FLIP_SIGN_BIT2(*p0, *q0);
373*b2055c35SXin Li }
374*b2055c35SXin Li
375*b2055c35SXin Li // Applies filter on 4 pixels (p1, p0, q0 and q1)
DoFilter4_SSE2(__m128i * const p1,__m128i * const p0,__m128i * const q0,__m128i * const q1,const __m128i * const mask,int hev_thresh)376*b2055c35SXin Li static WEBP_INLINE void DoFilter4_SSE2(__m128i* const p1, __m128i* const p0,
377*b2055c35SXin Li __m128i* const q0, __m128i* const q1,
378*b2055c35SXin Li const __m128i* const mask,
379*b2055c35SXin Li int hev_thresh) {
380*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
381*b2055c35SXin Li const __m128i sign_bit = _mm_set1_epi8((char)0x80);
382*b2055c35SXin Li const __m128i k64 = _mm_set1_epi8(64);
383*b2055c35SXin Li const __m128i k3 = _mm_set1_epi8(3);
384*b2055c35SXin Li const __m128i k4 = _mm_set1_epi8(4);
385*b2055c35SXin Li __m128i not_hev;
386*b2055c35SXin Li __m128i t1, t2, t3;
387*b2055c35SXin Li
388*b2055c35SXin Li // compute hev mask
389*b2055c35SXin Li GetNotHEV_SSE2(p1, p0, q0, q1, hev_thresh, ¬_hev);
390*b2055c35SXin Li
391*b2055c35SXin Li // convert to signed values
392*b2055c35SXin Li FLIP_SIGN_BIT4(*p1, *p0, *q0, *q1);
393*b2055c35SXin Li
394*b2055c35SXin Li t1 = _mm_subs_epi8(*p1, *q1); // p1 - q1
395*b2055c35SXin Li t1 = _mm_andnot_si128(not_hev, t1); // hev(p1 - q1)
396*b2055c35SXin Li t2 = _mm_subs_epi8(*q0, *p0); // q0 - p0
397*b2055c35SXin Li t1 = _mm_adds_epi8(t1, t2); // hev(p1 - q1) + 1 * (q0 - p0)
398*b2055c35SXin Li t1 = _mm_adds_epi8(t1, t2); // hev(p1 - q1) + 2 * (q0 - p0)
399*b2055c35SXin Li t1 = _mm_adds_epi8(t1, t2); // hev(p1 - q1) + 3 * (q0 - p0)
400*b2055c35SXin Li t1 = _mm_and_si128(t1, *mask); // mask filter values we don't care about
401*b2055c35SXin Li
402*b2055c35SXin Li t2 = _mm_adds_epi8(t1, k3); // 3 * (q0 - p0) + hev(p1 - q1) + 3
403*b2055c35SXin Li t3 = _mm_adds_epi8(t1, k4); // 3 * (q0 - p0) + hev(p1 - q1) + 4
404*b2055c35SXin Li SignedShift8b_SSE2(&t2); // (3 * (q0 - p0) + hev(p1 - q1) + 3) >> 3
405*b2055c35SXin Li SignedShift8b_SSE2(&t3); // (3 * (q0 - p0) + hev(p1 - q1) + 4) >> 3
406*b2055c35SXin Li *p0 = _mm_adds_epi8(*p0, t2); // p0 += t2
407*b2055c35SXin Li *q0 = _mm_subs_epi8(*q0, t3); // q0 -= t3
408*b2055c35SXin Li FLIP_SIGN_BIT2(*p0, *q0);
409*b2055c35SXin Li
410*b2055c35SXin Li // this is equivalent to signed (a + 1) >> 1 calculation
411*b2055c35SXin Li t2 = _mm_add_epi8(t3, sign_bit);
412*b2055c35SXin Li t3 = _mm_avg_epu8(t2, zero);
413*b2055c35SXin Li t3 = _mm_sub_epi8(t3, k64);
414*b2055c35SXin Li
415*b2055c35SXin Li t3 = _mm_and_si128(not_hev, t3); // if !hev
416*b2055c35SXin Li *q1 = _mm_subs_epi8(*q1, t3); // q1 -= t3
417*b2055c35SXin Li *p1 = _mm_adds_epi8(*p1, t3); // p1 += t3
418*b2055c35SXin Li FLIP_SIGN_BIT2(*p1, *q1);
419*b2055c35SXin Li }
420*b2055c35SXin Li
421*b2055c35SXin Li // Applies filter on 6 pixels (p2, p1, p0, q0, q1 and q2)
DoFilter6_SSE2(__m128i * const p2,__m128i * const p1,__m128i * const p0,__m128i * const q0,__m128i * const q1,__m128i * const q2,const __m128i * const mask,int hev_thresh)422*b2055c35SXin Li static WEBP_INLINE void DoFilter6_SSE2(__m128i* const p2, __m128i* const p1,
423*b2055c35SXin Li __m128i* const p0, __m128i* const q0,
424*b2055c35SXin Li __m128i* const q1, __m128i* const q2,
425*b2055c35SXin Li const __m128i* const mask,
426*b2055c35SXin Li int hev_thresh) {
427*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
428*b2055c35SXin Li const __m128i sign_bit = _mm_set1_epi8((char)0x80);
429*b2055c35SXin Li __m128i a, not_hev;
430*b2055c35SXin Li
431*b2055c35SXin Li // compute hev mask
432*b2055c35SXin Li GetNotHEV_SSE2(p1, p0, q0, q1, hev_thresh, ¬_hev);
433*b2055c35SXin Li
434*b2055c35SXin Li FLIP_SIGN_BIT4(*p1, *p0, *q0, *q1);
435*b2055c35SXin Li FLIP_SIGN_BIT2(*p2, *q2);
436*b2055c35SXin Li GetBaseDelta_SSE2(p1, p0, q0, q1, &a);
437*b2055c35SXin Li
438*b2055c35SXin Li { // do simple filter on pixels with hev
439*b2055c35SXin Li const __m128i m = _mm_andnot_si128(not_hev, *mask);
440*b2055c35SXin Li const __m128i f = _mm_and_si128(a, m);
441*b2055c35SXin Li DoSimpleFilter_SSE2(p0, q0, &f);
442*b2055c35SXin Li }
443*b2055c35SXin Li
444*b2055c35SXin Li { // do strong filter on pixels with not hev
445*b2055c35SXin Li const __m128i k9 = _mm_set1_epi16(0x0900);
446*b2055c35SXin Li const __m128i k63 = _mm_set1_epi16(63);
447*b2055c35SXin Li
448*b2055c35SXin Li const __m128i m = _mm_and_si128(not_hev, *mask);
449*b2055c35SXin Li const __m128i f = _mm_and_si128(a, m);
450*b2055c35SXin Li
451*b2055c35SXin Li const __m128i f_lo = _mm_unpacklo_epi8(zero, f);
452*b2055c35SXin Li const __m128i f_hi = _mm_unpackhi_epi8(zero, f);
453*b2055c35SXin Li
454*b2055c35SXin Li const __m128i f9_lo = _mm_mulhi_epi16(f_lo, k9); // Filter (lo) * 9
455*b2055c35SXin Li const __m128i f9_hi = _mm_mulhi_epi16(f_hi, k9); // Filter (hi) * 9
456*b2055c35SXin Li
457*b2055c35SXin Li const __m128i a2_lo = _mm_add_epi16(f9_lo, k63); // Filter * 9 + 63
458*b2055c35SXin Li const __m128i a2_hi = _mm_add_epi16(f9_hi, k63); // Filter * 9 + 63
459*b2055c35SXin Li
460*b2055c35SXin Li const __m128i a1_lo = _mm_add_epi16(a2_lo, f9_lo); // Filter * 18 + 63
461*b2055c35SXin Li const __m128i a1_hi = _mm_add_epi16(a2_hi, f9_hi); // Filter * 18 + 63
462*b2055c35SXin Li
463*b2055c35SXin Li const __m128i a0_lo = _mm_add_epi16(a1_lo, f9_lo); // Filter * 27 + 63
464*b2055c35SXin Li const __m128i a0_hi = _mm_add_epi16(a1_hi, f9_hi); // Filter * 27 + 63
465*b2055c35SXin Li
466*b2055c35SXin Li Update2Pixels_SSE2(p2, q2, &a2_lo, &a2_hi);
467*b2055c35SXin Li Update2Pixels_SSE2(p1, q1, &a1_lo, &a1_hi);
468*b2055c35SXin Li Update2Pixels_SSE2(p0, q0, &a0_lo, &a0_hi);
469*b2055c35SXin Li }
470*b2055c35SXin Li }
471*b2055c35SXin Li
472*b2055c35SXin Li // reads 8 rows across a vertical edge.
Load8x4_SSE2(const uint8_t * const b,int stride,__m128i * const p,__m128i * const q)473*b2055c35SXin Li static WEBP_INLINE void Load8x4_SSE2(const uint8_t* const b, int stride,
474*b2055c35SXin Li __m128i* const p, __m128i* const q) {
475*b2055c35SXin Li // A0 = 63 62 61 60 23 22 21 20 43 42 41 40 03 02 01 00
476*b2055c35SXin Li // A1 = 73 72 71 70 33 32 31 30 53 52 51 50 13 12 11 10
477*b2055c35SXin Li const __m128i A0 = _mm_set_epi32(
478*b2055c35SXin Li WebPMemToInt32(&b[6 * stride]), WebPMemToInt32(&b[2 * stride]),
479*b2055c35SXin Li WebPMemToInt32(&b[4 * stride]), WebPMemToInt32(&b[0 * stride]));
480*b2055c35SXin Li const __m128i A1 = _mm_set_epi32(
481*b2055c35SXin Li WebPMemToInt32(&b[7 * stride]), WebPMemToInt32(&b[3 * stride]),
482*b2055c35SXin Li WebPMemToInt32(&b[5 * stride]), WebPMemToInt32(&b[1 * stride]));
483*b2055c35SXin Li
484*b2055c35SXin Li // B0 = 53 43 52 42 51 41 50 40 13 03 12 02 11 01 10 00
485*b2055c35SXin Li // B1 = 73 63 72 62 71 61 70 60 33 23 32 22 31 21 30 20
486*b2055c35SXin Li const __m128i B0 = _mm_unpacklo_epi8(A0, A1);
487*b2055c35SXin Li const __m128i B1 = _mm_unpackhi_epi8(A0, A1);
488*b2055c35SXin Li
489*b2055c35SXin Li // C0 = 33 23 13 03 32 22 12 02 31 21 11 01 30 20 10 00
490*b2055c35SXin Li // C1 = 73 63 53 43 72 62 52 42 71 61 51 41 70 60 50 40
491*b2055c35SXin Li const __m128i C0 = _mm_unpacklo_epi16(B0, B1);
492*b2055c35SXin Li const __m128i C1 = _mm_unpackhi_epi16(B0, B1);
493*b2055c35SXin Li
494*b2055c35SXin Li // *p = 71 61 51 41 31 21 11 01 70 60 50 40 30 20 10 00
495*b2055c35SXin Li // *q = 73 63 53 43 33 23 13 03 72 62 52 42 32 22 12 02
496*b2055c35SXin Li *p = _mm_unpacklo_epi32(C0, C1);
497*b2055c35SXin Li *q = _mm_unpackhi_epi32(C0, C1);
498*b2055c35SXin Li }
499*b2055c35SXin Li
Load16x4_SSE2(const uint8_t * const r0,const uint8_t * const r8,int stride,__m128i * const p1,__m128i * const p0,__m128i * const q0,__m128i * const q1)500*b2055c35SXin Li static WEBP_INLINE void Load16x4_SSE2(const uint8_t* const r0,
501*b2055c35SXin Li const uint8_t* const r8,
502*b2055c35SXin Li int stride,
503*b2055c35SXin Li __m128i* const p1, __m128i* const p0,
504*b2055c35SXin Li __m128i* const q0, __m128i* const q1) {
505*b2055c35SXin Li // Assume the pixels around the edge (|) are numbered as follows
506*b2055c35SXin Li // 00 01 | 02 03
507*b2055c35SXin Li // 10 11 | 12 13
508*b2055c35SXin Li // ... | ...
509*b2055c35SXin Li // e0 e1 | e2 e3
510*b2055c35SXin Li // f0 f1 | f2 f3
511*b2055c35SXin Li //
512*b2055c35SXin Li // r0 is pointing to the 0th row (00)
513*b2055c35SXin Li // r8 is pointing to the 8th row (80)
514*b2055c35SXin Li
515*b2055c35SXin Li // Load
516*b2055c35SXin Li // p1 = 71 61 51 41 31 21 11 01 70 60 50 40 30 20 10 00
517*b2055c35SXin Li // q0 = 73 63 53 43 33 23 13 03 72 62 52 42 32 22 12 02
518*b2055c35SXin Li // p0 = f1 e1 d1 c1 b1 a1 91 81 f0 e0 d0 c0 b0 a0 90 80
519*b2055c35SXin Li // q1 = f3 e3 d3 c3 b3 a3 93 83 f2 e2 d2 c2 b2 a2 92 82
520*b2055c35SXin Li Load8x4_SSE2(r0, stride, p1, q0);
521*b2055c35SXin Li Load8x4_SSE2(r8, stride, p0, q1);
522*b2055c35SXin Li
523*b2055c35SXin Li {
524*b2055c35SXin Li // p1 = f0 e0 d0 c0 b0 a0 90 80 70 60 50 40 30 20 10 00
525*b2055c35SXin Li // p0 = f1 e1 d1 c1 b1 a1 91 81 71 61 51 41 31 21 11 01
526*b2055c35SXin Li // q0 = f2 e2 d2 c2 b2 a2 92 82 72 62 52 42 32 22 12 02
527*b2055c35SXin Li // q1 = f3 e3 d3 c3 b3 a3 93 83 73 63 53 43 33 23 13 03
528*b2055c35SXin Li const __m128i t1 = *p1;
529*b2055c35SXin Li const __m128i t2 = *q0;
530*b2055c35SXin Li *p1 = _mm_unpacklo_epi64(t1, *p0);
531*b2055c35SXin Li *p0 = _mm_unpackhi_epi64(t1, *p0);
532*b2055c35SXin Li *q0 = _mm_unpacklo_epi64(t2, *q1);
533*b2055c35SXin Li *q1 = _mm_unpackhi_epi64(t2, *q1);
534*b2055c35SXin Li }
535*b2055c35SXin Li }
536*b2055c35SXin Li
Store4x4_SSE2(__m128i * const x,uint8_t * dst,int stride)537*b2055c35SXin Li static WEBP_INLINE void Store4x4_SSE2(__m128i* const x,
538*b2055c35SXin Li uint8_t* dst, int stride) {
539*b2055c35SXin Li int i;
540*b2055c35SXin Li for (i = 0; i < 4; ++i, dst += stride) {
541*b2055c35SXin Li WebPInt32ToMem(dst, _mm_cvtsi128_si32(*x));
542*b2055c35SXin Li *x = _mm_srli_si128(*x, 4);
543*b2055c35SXin Li }
544*b2055c35SXin Li }
545*b2055c35SXin Li
546*b2055c35SXin Li // Transpose back and store
Store16x4_SSE2(const __m128i * const p1,const __m128i * const p0,const __m128i * const q0,const __m128i * const q1,uint8_t * r0,uint8_t * r8,int stride)547*b2055c35SXin Li static WEBP_INLINE void Store16x4_SSE2(const __m128i* const p1,
548*b2055c35SXin Li const __m128i* const p0,
549*b2055c35SXin Li const __m128i* const q0,
550*b2055c35SXin Li const __m128i* const q1,
551*b2055c35SXin Li uint8_t* r0, uint8_t* r8,
552*b2055c35SXin Li int stride) {
553*b2055c35SXin Li __m128i t1, p1_s, p0_s, q0_s, q1_s;
554*b2055c35SXin Li
555*b2055c35SXin Li // p0 = 71 70 61 60 51 50 41 40 31 30 21 20 11 10 01 00
556*b2055c35SXin Li // p1 = f1 f0 e1 e0 d1 d0 c1 c0 b1 b0 a1 a0 91 90 81 80
557*b2055c35SXin Li t1 = *p0;
558*b2055c35SXin Li p0_s = _mm_unpacklo_epi8(*p1, t1);
559*b2055c35SXin Li p1_s = _mm_unpackhi_epi8(*p1, t1);
560*b2055c35SXin Li
561*b2055c35SXin Li // q0 = 73 72 63 62 53 52 43 42 33 32 23 22 13 12 03 02
562*b2055c35SXin Li // q1 = f3 f2 e3 e2 d3 d2 c3 c2 b3 b2 a3 a2 93 92 83 82
563*b2055c35SXin Li t1 = *q0;
564*b2055c35SXin Li q0_s = _mm_unpacklo_epi8(t1, *q1);
565*b2055c35SXin Li q1_s = _mm_unpackhi_epi8(t1, *q1);
566*b2055c35SXin Li
567*b2055c35SXin Li // p0 = 33 32 31 30 23 22 21 20 13 12 11 10 03 02 01 00
568*b2055c35SXin Li // q0 = 73 72 71 70 63 62 61 60 53 52 51 50 43 42 41 40
569*b2055c35SXin Li t1 = p0_s;
570*b2055c35SXin Li p0_s = _mm_unpacklo_epi16(t1, q0_s);
571*b2055c35SXin Li q0_s = _mm_unpackhi_epi16(t1, q0_s);
572*b2055c35SXin Li
573*b2055c35SXin Li // p1 = b3 b2 b1 b0 a3 a2 a1 a0 93 92 91 90 83 82 81 80
574*b2055c35SXin Li // q1 = f3 f2 f1 f0 e3 e2 e1 e0 d3 d2 d1 d0 c3 c2 c1 c0
575*b2055c35SXin Li t1 = p1_s;
576*b2055c35SXin Li p1_s = _mm_unpacklo_epi16(t1, q1_s);
577*b2055c35SXin Li q1_s = _mm_unpackhi_epi16(t1, q1_s);
578*b2055c35SXin Li
579*b2055c35SXin Li Store4x4_SSE2(&p0_s, r0, stride);
580*b2055c35SXin Li r0 += 4 * stride;
581*b2055c35SXin Li Store4x4_SSE2(&q0_s, r0, stride);
582*b2055c35SXin Li
583*b2055c35SXin Li Store4x4_SSE2(&p1_s, r8, stride);
584*b2055c35SXin Li r8 += 4 * stride;
585*b2055c35SXin Li Store4x4_SSE2(&q1_s, r8, stride);
586*b2055c35SXin Li }
587*b2055c35SXin Li
588*b2055c35SXin Li //------------------------------------------------------------------------------
589*b2055c35SXin Li // Simple In-loop filtering (Paragraph 15.2)
590*b2055c35SXin Li
SimpleVFilter16_SSE2(uint8_t * p,int stride,int thresh)591*b2055c35SXin Li static void SimpleVFilter16_SSE2(uint8_t* p, int stride, int thresh) {
592*b2055c35SXin Li // Load
593*b2055c35SXin Li __m128i p1 = _mm_loadu_si128((__m128i*)&p[-2 * stride]);
594*b2055c35SXin Li __m128i p0 = _mm_loadu_si128((__m128i*)&p[-stride]);
595*b2055c35SXin Li __m128i q0 = _mm_loadu_si128((__m128i*)&p[0]);
596*b2055c35SXin Li __m128i q1 = _mm_loadu_si128((__m128i*)&p[stride]);
597*b2055c35SXin Li
598*b2055c35SXin Li DoFilter2_SSE2(&p1, &p0, &q0, &q1, thresh);
599*b2055c35SXin Li
600*b2055c35SXin Li // Store
601*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[-stride], p0);
602*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[0], q0);
603*b2055c35SXin Li }
604*b2055c35SXin Li
SimpleHFilter16_SSE2(uint8_t * p,int stride,int thresh)605*b2055c35SXin Li static void SimpleHFilter16_SSE2(uint8_t* p, int stride, int thresh) {
606*b2055c35SXin Li __m128i p1, p0, q0, q1;
607*b2055c35SXin Li
608*b2055c35SXin Li p -= 2; // beginning of p1
609*b2055c35SXin Li
610*b2055c35SXin Li Load16x4_SSE2(p, p + 8 * stride, stride, &p1, &p0, &q0, &q1);
611*b2055c35SXin Li DoFilter2_SSE2(&p1, &p0, &q0, &q1, thresh);
612*b2055c35SXin Li Store16x4_SSE2(&p1, &p0, &q0, &q1, p, p + 8 * stride, stride);
613*b2055c35SXin Li }
614*b2055c35SXin Li
SimpleVFilter16i_SSE2(uint8_t * p,int stride,int thresh)615*b2055c35SXin Li static void SimpleVFilter16i_SSE2(uint8_t* p, int stride, int thresh) {
616*b2055c35SXin Li int k;
617*b2055c35SXin Li for (k = 3; k > 0; --k) {
618*b2055c35SXin Li p += 4 * stride;
619*b2055c35SXin Li SimpleVFilter16_SSE2(p, stride, thresh);
620*b2055c35SXin Li }
621*b2055c35SXin Li }
622*b2055c35SXin Li
SimpleHFilter16i_SSE2(uint8_t * p,int stride,int thresh)623*b2055c35SXin Li static void SimpleHFilter16i_SSE2(uint8_t* p, int stride, int thresh) {
624*b2055c35SXin Li int k;
625*b2055c35SXin Li for (k = 3; k > 0; --k) {
626*b2055c35SXin Li p += 4;
627*b2055c35SXin Li SimpleHFilter16_SSE2(p, stride, thresh);
628*b2055c35SXin Li }
629*b2055c35SXin Li }
630*b2055c35SXin Li
631*b2055c35SXin Li //------------------------------------------------------------------------------
632*b2055c35SXin Li // Complex In-loop filtering (Paragraph 15.3)
633*b2055c35SXin Li
634*b2055c35SXin Li #define MAX_DIFF1(p3, p2, p1, p0, m) do { \
635*b2055c35SXin Li (m) = MM_ABS(p1, p0); \
636*b2055c35SXin Li (m) = _mm_max_epu8(m, MM_ABS(p3, p2)); \
637*b2055c35SXin Li (m) = _mm_max_epu8(m, MM_ABS(p2, p1)); \
638*b2055c35SXin Li } while (0)
639*b2055c35SXin Li
640*b2055c35SXin Li #define MAX_DIFF2(p3, p2, p1, p0, m) do { \
641*b2055c35SXin Li (m) = _mm_max_epu8(m, MM_ABS(p1, p0)); \
642*b2055c35SXin Li (m) = _mm_max_epu8(m, MM_ABS(p3, p2)); \
643*b2055c35SXin Li (m) = _mm_max_epu8(m, MM_ABS(p2, p1)); \
644*b2055c35SXin Li } while (0)
645*b2055c35SXin Li
646*b2055c35SXin Li #define LOAD_H_EDGES4(p, stride, e1, e2, e3, e4) do { \
647*b2055c35SXin Li (e1) = _mm_loadu_si128((__m128i*)&(p)[0 * (stride)]); \
648*b2055c35SXin Li (e2) = _mm_loadu_si128((__m128i*)&(p)[1 * (stride)]); \
649*b2055c35SXin Li (e3) = _mm_loadu_si128((__m128i*)&(p)[2 * (stride)]); \
650*b2055c35SXin Li (e4) = _mm_loadu_si128((__m128i*)&(p)[3 * (stride)]); \
651*b2055c35SXin Li } while (0)
652*b2055c35SXin Li
653*b2055c35SXin Li #define LOADUV_H_EDGE(p, u, v, stride) do { \
654*b2055c35SXin Li const __m128i U = _mm_loadl_epi64((__m128i*)&(u)[(stride)]); \
655*b2055c35SXin Li const __m128i V = _mm_loadl_epi64((__m128i*)&(v)[(stride)]); \
656*b2055c35SXin Li (p) = _mm_unpacklo_epi64(U, V); \
657*b2055c35SXin Li } while (0)
658*b2055c35SXin Li
659*b2055c35SXin Li #define LOADUV_H_EDGES4(u, v, stride, e1, e2, e3, e4) do { \
660*b2055c35SXin Li LOADUV_H_EDGE(e1, u, v, 0 * (stride)); \
661*b2055c35SXin Li LOADUV_H_EDGE(e2, u, v, 1 * (stride)); \
662*b2055c35SXin Li LOADUV_H_EDGE(e3, u, v, 2 * (stride)); \
663*b2055c35SXin Li LOADUV_H_EDGE(e4, u, v, 3 * (stride)); \
664*b2055c35SXin Li } while (0)
665*b2055c35SXin Li
666*b2055c35SXin Li #define STOREUV(p, u, v, stride) do { \
667*b2055c35SXin Li _mm_storel_epi64((__m128i*)&(u)[(stride)], p); \
668*b2055c35SXin Li (p) = _mm_srli_si128(p, 8); \
669*b2055c35SXin Li _mm_storel_epi64((__m128i*)&(v)[(stride)], p); \
670*b2055c35SXin Li } while (0)
671*b2055c35SXin Li
ComplexMask_SSE2(const __m128i * const p1,const __m128i * const p0,const __m128i * const q0,const __m128i * const q1,int thresh,int ithresh,__m128i * const mask)672*b2055c35SXin Li static WEBP_INLINE void ComplexMask_SSE2(const __m128i* const p1,
673*b2055c35SXin Li const __m128i* const p0,
674*b2055c35SXin Li const __m128i* const q0,
675*b2055c35SXin Li const __m128i* const q1,
676*b2055c35SXin Li int thresh, int ithresh,
677*b2055c35SXin Li __m128i* const mask) {
678*b2055c35SXin Li const __m128i it = _mm_set1_epi8(ithresh);
679*b2055c35SXin Li const __m128i diff = _mm_subs_epu8(*mask, it);
680*b2055c35SXin Li const __m128i thresh_mask = _mm_cmpeq_epi8(diff, _mm_setzero_si128());
681*b2055c35SXin Li __m128i filter_mask;
682*b2055c35SXin Li NeedsFilter_SSE2(p1, p0, q0, q1, thresh, &filter_mask);
683*b2055c35SXin Li *mask = _mm_and_si128(thresh_mask, filter_mask);
684*b2055c35SXin Li }
685*b2055c35SXin Li
686*b2055c35SXin Li // on macroblock edges
VFilter16_SSE2(uint8_t * p,int stride,int thresh,int ithresh,int hev_thresh)687*b2055c35SXin Li static void VFilter16_SSE2(uint8_t* p, int stride,
688*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
689*b2055c35SXin Li __m128i t1;
690*b2055c35SXin Li __m128i mask;
691*b2055c35SXin Li __m128i p2, p1, p0, q0, q1, q2;
692*b2055c35SXin Li
693*b2055c35SXin Li // Load p3, p2, p1, p0
694*b2055c35SXin Li LOAD_H_EDGES4(p - 4 * stride, stride, t1, p2, p1, p0);
695*b2055c35SXin Li MAX_DIFF1(t1, p2, p1, p0, mask);
696*b2055c35SXin Li
697*b2055c35SXin Li // Load q0, q1, q2, q3
698*b2055c35SXin Li LOAD_H_EDGES4(p, stride, q0, q1, q2, t1);
699*b2055c35SXin Li MAX_DIFF2(t1, q2, q1, q0, mask);
700*b2055c35SXin Li
701*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
702*b2055c35SXin Li DoFilter6_SSE2(&p2, &p1, &p0, &q0, &q1, &q2, &mask, hev_thresh);
703*b2055c35SXin Li
704*b2055c35SXin Li // Store
705*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[-3 * stride], p2);
706*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[-2 * stride], p1);
707*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[-1 * stride], p0);
708*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[+0 * stride], q0);
709*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[+1 * stride], q1);
710*b2055c35SXin Li _mm_storeu_si128((__m128i*)&p[+2 * stride], q2);
711*b2055c35SXin Li }
712*b2055c35SXin Li
HFilter16_SSE2(uint8_t * p,int stride,int thresh,int ithresh,int hev_thresh)713*b2055c35SXin Li static void HFilter16_SSE2(uint8_t* p, int stride,
714*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
715*b2055c35SXin Li __m128i mask;
716*b2055c35SXin Li __m128i p3, p2, p1, p0, q0, q1, q2, q3;
717*b2055c35SXin Li
718*b2055c35SXin Li uint8_t* const b = p - 4;
719*b2055c35SXin Li Load16x4_SSE2(b, b + 8 * stride, stride, &p3, &p2, &p1, &p0);
720*b2055c35SXin Li MAX_DIFF1(p3, p2, p1, p0, mask);
721*b2055c35SXin Li
722*b2055c35SXin Li Load16x4_SSE2(p, p + 8 * stride, stride, &q0, &q1, &q2, &q3);
723*b2055c35SXin Li MAX_DIFF2(q3, q2, q1, q0, mask);
724*b2055c35SXin Li
725*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
726*b2055c35SXin Li DoFilter6_SSE2(&p2, &p1, &p0, &q0, &q1, &q2, &mask, hev_thresh);
727*b2055c35SXin Li
728*b2055c35SXin Li Store16x4_SSE2(&p3, &p2, &p1, &p0, b, b + 8 * stride, stride);
729*b2055c35SXin Li Store16x4_SSE2(&q0, &q1, &q2, &q3, p, p + 8 * stride, stride);
730*b2055c35SXin Li }
731*b2055c35SXin Li
732*b2055c35SXin Li // on three inner edges
VFilter16i_SSE2(uint8_t * p,int stride,int thresh,int ithresh,int hev_thresh)733*b2055c35SXin Li static void VFilter16i_SSE2(uint8_t* p, int stride,
734*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
735*b2055c35SXin Li int k;
736*b2055c35SXin Li __m128i p3, p2, p1, p0; // loop invariants
737*b2055c35SXin Li
738*b2055c35SXin Li LOAD_H_EDGES4(p, stride, p3, p2, p1, p0); // prologue
739*b2055c35SXin Li
740*b2055c35SXin Li for (k = 3; k > 0; --k) {
741*b2055c35SXin Li __m128i mask, tmp1, tmp2;
742*b2055c35SXin Li uint8_t* const b = p + 2 * stride; // beginning of p1
743*b2055c35SXin Li p += 4 * stride;
744*b2055c35SXin Li
745*b2055c35SXin Li MAX_DIFF1(p3, p2, p1, p0, mask); // compute partial mask
746*b2055c35SXin Li LOAD_H_EDGES4(p, stride, p3, p2, tmp1, tmp2);
747*b2055c35SXin Li MAX_DIFF2(p3, p2, tmp1, tmp2, mask);
748*b2055c35SXin Li
749*b2055c35SXin Li // p3 and p2 are not just temporary variables here: they will be
750*b2055c35SXin Li // re-used for next span. And q2/q3 will become p1/p0 accordingly.
751*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &p3, &p2, thresh, ithresh, &mask);
752*b2055c35SXin Li DoFilter4_SSE2(&p1, &p0, &p3, &p2, &mask, hev_thresh);
753*b2055c35SXin Li
754*b2055c35SXin Li // Store
755*b2055c35SXin Li _mm_storeu_si128((__m128i*)&b[0 * stride], p1);
756*b2055c35SXin Li _mm_storeu_si128((__m128i*)&b[1 * stride], p0);
757*b2055c35SXin Li _mm_storeu_si128((__m128i*)&b[2 * stride], p3);
758*b2055c35SXin Li _mm_storeu_si128((__m128i*)&b[3 * stride], p2);
759*b2055c35SXin Li
760*b2055c35SXin Li // rotate samples
761*b2055c35SXin Li p1 = tmp1;
762*b2055c35SXin Li p0 = tmp2;
763*b2055c35SXin Li }
764*b2055c35SXin Li }
765*b2055c35SXin Li
HFilter16i_SSE2(uint8_t * p,int stride,int thresh,int ithresh,int hev_thresh)766*b2055c35SXin Li static void HFilter16i_SSE2(uint8_t* p, int stride,
767*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
768*b2055c35SXin Li int k;
769*b2055c35SXin Li __m128i p3, p2, p1, p0; // loop invariants
770*b2055c35SXin Li
771*b2055c35SXin Li Load16x4_SSE2(p, p + 8 * stride, stride, &p3, &p2, &p1, &p0); // prologue
772*b2055c35SXin Li
773*b2055c35SXin Li for (k = 3; k > 0; --k) {
774*b2055c35SXin Li __m128i mask, tmp1, tmp2;
775*b2055c35SXin Li uint8_t* const b = p + 2; // beginning of p1
776*b2055c35SXin Li
777*b2055c35SXin Li p += 4; // beginning of q0 (and next span)
778*b2055c35SXin Li
779*b2055c35SXin Li MAX_DIFF1(p3, p2, p1, p0, mask); // compute partial mask
780*b2055c35SXin Li Load16x4_SSE2(p, p + 8 * stride, stride, &p3, &p2, &tmp1, &tmp2);
781*b2055c35SXin Li MAX_DIFF2(p3, p2, tmp1, tmp2, mask);
782*b2055c35SXin Li
783*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &p3, &p2, thresh, ithresh, &mask);
784*b2055c35SXin Li DoFilter4_SSE2(&p1, &p0, &p3, &p2, &mask, hev_thresh);
785*b2055c35SXin Li
786*b2055c35SXin Li Store16x4_SSE2(&p1, &p0, &p3, &p2, b, b + 8 * stride, stride);
787*b2055c35SXin Li
788*b2055c35SXin Li // rotate samples
789*b2055c35SXin Li p1 = tmp1;
790*b2055c35SXin Li p0 = tmp2;
791*b2055c35SXin Li }
792*b2055c35SXin Li }
793*b2055c35SXin Li
794*b2055c35SXin Li // 8-pixels wide variant, for chroma filtering
VFilter8_SSE2(uint8_t * u,uint8_t * v,int stride,int thresh,int ithresh,int hev_thresh)795*b2055c35SXin Li static void VFilter8_SSE2(uint8_t* u, uint8_t* v, int stride,
796*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
797*b2055c35SXin Li __m128i mask;
798*b2055c35SXin Li __m128i t1, p2, p1, p0, q0, q1, q2;
799*b2055c35SXin Li
800*b2055c35SXin Li // Load p3, p2, p1, p0
801*b2055c35SXin Li LOADUV_H_EDGES4(u - 4 * stride, v - 4 * stride, stride, t1, p2, p1, p0);
802*b2055c35SXin Li MAX_DIFF1(t1, p2, p1, p0, mask);
803*b2055c35SXin Li
804*b2055c35SXin Li // Load q0, q1, q2, q3
805*b2055c35SXin Li LOADUV_H_EDGES4(u, v, stride, q0, q1, q2, t1);
806*b2055c35SXin Li MAX_DIFF2(t1, q2, q1, q0, mask);
807*b2055c35SXin Li
808*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
809*b2055c35SXin Li DoFilter6_SSE2(&p2, &p1, &p0, &q0, &q1, &q2, &mask, hev_thresh);
810*b2055c35SXin Li
811*b2055c35SXin Li // Store
812*b2055c35SXin Li STOREUV(p2, u, v, -3 * stride);
813*b2055c35SXin Li STOREUV(p1, u, v, -2 * stride);
814*b2055c35SXin Li STOREUV(p0, u, v, -1 * stride);
815*b2055c35SXin Li STOREUV(q0, u, v, 0 * stride);
816*b2055c35SXin Li STOREUV(q1, u, v, 1 * stride);
817*b2055c35SXin Li STOREUV(q2, u, v, 2 * stride);
818*b2055c35SXin Li }
819*b2055c35SXin Li
HFilter8_SSE2(uint8_t * u,uint8_t * v,int stride,int thresh,int ithresh,int hev_thresh)820*b2055c35SXin Li static void HFilter8_SSE2(uint8_t* u, uint8_t* v, int stride,
821*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
822*b2055c35SXin Li __m128i mask;
823*b2055c35SXin Li __m128i p3, p2, p1, p0, q0, q1, q2, q3;
824*b2055c35SXin Li
825*b2055c35SXin Li uint8_t* const tu = u - 4;
826*b2055c35SXin Li uint8_t* const tv = v - 4;
827*b2055c35SXin Li Load16x4_SSE2(tu, tv, stride, &p3, &p2, &p1, &p0);
828*b2055c35SXin Li MAX_DIFF1(p3, p2, p1, p0, mask);
829*b2055c35SXin Li
830*b2055c35SXin Li Load16x4_SSE2(u, v, stride, &q0, &q1, &q2, &q3);
831*b2055c35SXin Li MAX_DIFF2(q3, q2, q1, q0, mask);
832*b2055c35SXin Li
833*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
834*b2055c35SXin Li DoFilter6_SSE2(&p2, &p1, &p0, &q0, &q1, &q2, &mask, hev_thresh);
835*b2055c35SXin Li
836*b2055c35SXin Li Store16x4_SSE2(&p3, &p2, &p1, &p0, tu, tv, stride);
837*b2055c35SXin Li Store16x4_SSE2(&q0, &q1, &q2, &q3, u, v, stride);
838*b2055c35SXin Li }
839*b2055c35SXin Li
VFilter8i_SSE2(uint8_t * u,uint8_t * v,int stride,int thresh,int ithresh,int hev_thresh)840*b2055c35SXin Li static void VFilter8i_SSE2(uint8_t* u, uint8_t* v, int stride,
841*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
842*b2055c35SXin Li __m128i mask;
843*b2055c35SXin Li __m128i t1, t2, p1, p0, q0, q1;
844*b2055c35SXin Li
845*b2055c35SXin Li // Load p3, p2, p1, p0
846*b2055c35SXin Li LOADUV_H_EDGES4(u, v, stride, t2, t1, p1, p0);
847*b2055c35SXin Li MAX_DIFF1(t2, t1, p1, p0, mask);
848*b2055c35SXin Li
849*b2055c35SXin Li u += 4 * stride;
850*b2055c35SXin Li v += 4 * stride;
851*b2055c35SXin Li
852*b2055c35SXin Li // Load q0, q1, q2, q3
853*b2055c35SXin Li LOADUV_H_EDGES4(u, v, stride, q0, q1, t1, t2);
854*b2055c35SXin Li MAX_DIFF2(t2, t1, q1, q0, mask);
855*b2055c35SXin Li
856*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
857*b2055c35SXin Li DoFilter4_SSE2(&p1, &p0, &q0, &q1, &mask, hev_thresh);
858*b2055c35SXin Li
859*b2055c35SXin Li // Store
860*b2055c35SXin Li STOREUV(p1, u, v, -2 * stride);
861*b2055c35SXin Li STOREUV(p0, u, v, -1 * stride);
862*b2055c35SXin Li STOREUV(q0, u, v, 0 * stride);
863*b2055c35SXin Li STOREUV(q1, u, v, 1 * stride);
864*b2055c35SXin Li }
865*b2055c35SXin Li
HFilter8i_SSE2(uint8_t * u,uint8_t * v,int stride,int thresh,int ithresh,int hev_thresh)866*b2055c35SXin Li static void HFilter8i_SSE2(uint8_t* u, uint8_t* v, int stride,
867*b2055c35SXin Li int thresh, int ithresh, int hev_thresh) {
868*b2055c35SXin Li __m128i mask;
869*b2055c35SXin Li __m128i t1, t2, p1, p0, q0, q1;
870*b2055c35SXin Li Load16x4_SSE2(u, v, stride, &t2, &t1, &p1, &p0); // p3, p2, p1, p0
871*b2055c35SXin Li MAX_DIFF1(t2, t1, p1, p0, mask);
872*b2055c35SXin Li
873*b2055c35SXin Li u += 4; // beginning of q0
874*b2055c35SXin Li v += 4;
875*b2055c35SXin Li Load16x4_SSE2(u, v, stride, &q0, &q1, &t1, &t2); // q0, q1, q2, q3
876*b2055c35SXin Li MAX_DIFF2(t2, t1, q1, q0, mask);
877*b2055c35SXin Li
878*b2055c35SXin Li ComplexMask_SSE2(&p1, &p0, &q0, &q1, thresh, ithresh, &mask);
879*b2055c35SXin Li DoFilter4_SSE2(&p1, &p0, &q0, &q1, &mask, hev_thresh);
880*b2055c35SXin Li
881*b2055c35SXin Li u -= 2; // beginning of p1
882*b2055c35SXin Li v -= 2;
883*b2055c35SXin Li Store16x4_SSE2(&p1, &p0, &q0, &q1, u, v, stride);
884*b2055c35SXin Li }
885*b2055c35SXin Li
886*b2055c35SXin Li //------------------------------------------------------------------------------
887*b2055c35SXin Li // 4x4 predictions
888*b2055c35SXin Li
889*b2055c35SXin Li #define DST(x, y) dst[(x) + (y) * BPS]
890*b2055c35SXin Li #define AVG3(a, b, c) (((a) + 2 * (b) + (c) + 2) >> 2)
891*b2055c35SXin Li
892*b2055c35SXin Li // We use the following 8b-arithmetic tricks:
893*b2055c35SXin Li // (a + 2 * b + c + 2) >> 2 = (AC + b + 1) >> 1
894*b2055c35SXin Li // where: AC = (a + c) >> 1 = [(a + c + 1) >> 1] - [(a^c) & 1]
895*b2055c35SXin Li // and:
896*b2055c35SXin Li // (a + 2 * b + c + 2) >> 2 = (AB + BC + 1) >> 1 - (ab|bc)&lsb
897*b2055c35SXin Li // where: AC = (a + b + 1) >> 1, BC = (b + c + 1) >> 1
898*b2055c35SXin Li // and ab = a ^ b, bc = b ^ c, lsb = (AC^BC)&1
899*b2055c35SXin Li
VE4_SSE2(uint8_t * dst)900*b2055c35SXin Li static void VE4_SSE2(uint8_t* dst) { // vertical
901*b2055c35SXin Li const __m128i one = _mm_set1_epi8(1);
902*b2055c35SXin Li const __m128i ABCDEFGH = _mm_loadl_epi64((__m128i*)(dst - BPS - 1));
903*b2055c35SXin Li const __m128i BCDEFGH0 = _mm_srli_si128(ABCDEFGH, 1);
904*b2055c35SXin Li const __m128i CDEFGH00 = _mm_srli_si128(ABCDEFGH, 2);
905*b2055c35SXin Li const __m128i a = _mm_avg_epu8(ABCDEFGH, CDEFGH00);
906*b2055c35SXin Li const __m128i lsb = _mm_and_si128(_mm_xor_si128(ABCDEFGH, CDEFGH00), one);
907*b2055c35SXin Li const __m128i b = _mm_subs_epu8(a, lsb);
908*b2055c35SXin Li const __m128i avg = _mm_avg_epu8(b, BCDEFGH0);
909*b2055c35SXin Li const int vals = _mm_cvtsi128_si32(avg);
910*b2055c35SXin Li int i;
911*b2055c35SXin Li for (i = 0; i < 4; ++i) {
912*b2055c35SXin Li WebPInt32ToMem(dst + i * BPS, vals);
913*b2055c35SXin Li }
914*b2055c35SXin Li }
915*b2055c35SXin Li
LD4_SSE2(uint8_t * dst)916*b2055c35SXin Li static void LD4_SSE2(uint8_t* dst) { // Down-Left
917*b2055c35SXin Li const __m128i one = _mm_set1_epi8(1);
918*b2055c35SXin Li const __m128i ABCDEFGH = _mm_loadl_epi64((__m128i*)(dst - BPS));
919*b2055c35SXin Li const __m128i BCDEFGH0 = _mm_srli_si128(ABCDEFGH, 1);
920*b2055c35SXin Li const __m128i CDEFGH00 = _mm_srli_si128(ABCDEFGH, 2);
921*b2055c35SXin Li const __m128i CDEFGHH0 = _mm_insert_epi16(CDEFGH00, dst[-BPS + 7], 3);
922*b2055c35SXin Li const __m128i avg1 = _mm_avg_epu8(ABCDEFGH, CDEFGHH0);
923*b2055c35SXin Li const __m128i lsb = _mm_and_si128(_mm_xor_si128(ABCDEFGH, CDEFGHH0), one);
924*b2055c35SXin Li const __m128i avg2 = _mm_subs_epu8(avg1, lsb);
925*b2055c35SXin Li const __m128i abcdefg = _mm_avg_epu8(avg2, BCDEFGH0);
926*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32( abcdefg ));
927*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 1)));
928*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 2)));
929*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 3)));
930*b2055c35SXin Li }
931*b2055c35SXin Li
VR4_SSE2(uint8_t * dst)932*b2055c35SXin Li static void VR4_SSE2(uint8_t* dst) { // Vertical-Right
933*b2055c35SXin Li const __m128i one = _mm_set1_epi8(1);
934*b2055c35SXin Li const int I = dst[-1 + 0 * BPS];
935*b2055c35SXin Li const int J = dst[-1 + 1 * BPS];
936*b2055c35SXin Li const int K = dst[-1 + 2 * BPS];
937*b2055c35SXin Li const int X = dst[-1 - BPS];
938*b2055c35SXin Li const __m128i XABCD = _mm_loadl_epi64((__m128i*)(dst - BPS - 1));
939*b2055c35SXin Li const __m128i ABCD0 = _mm_srli_si128(XABCD, 1);
940*b2055c35SXin Li const __m128i abcd = _mm_avg_epu8(XABCD, ABCD0);
941*b2055c35SXin Li const __m128i _XABCD = _mm_slli_si128(XABCD, 1);
942*b2055c35SXin Li const __m128i IXABCD = _mm_insert_epi16(_XABCD, (short)(I | (X << 8)), 0);
943*b2055c35SXin Li const __m128i avg1 = _mm_avg_epu8(IXABCD, ABCD0);
944*b2055c35SXin Li const __m128i lsb = _mm_and_si128(_mm_xor_si128(IXABCD, ABCD0), one);
945*b2055c35SXin Li const __m128i avg2 = _mm_subs_epu8(avg1, lsb);
946*b2055c35SXin Li const __m128i efgh = _mm_avg_epu8(avg2, XABCD);
947*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32( abcd ));
948*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32( efgh ));
949*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(_mm_slli_si128(abcd, 1)));
950*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32(_mm_slli_si128(efgh, 1)));
951*b2055c35SXin Li
952*b2055c35SXin Li // these two are hard to implement in SSE2, so we keep the C-version:
953*b2055c35SXin Li DST(0, 2) = AVG3(J, I, X);
954*b2055c35SXin Li DST(0, 3) = AVG3(K, J, I);
955*b2055c35SXin Li }
956*b2055c35SXin Li
VL4_SSE2(uint8_t * dst)957*b2055c35SXin Li static void VL4_SSE2(uint8_t* dst) { // Vertical-Left
958*b2055c35SXin Li const __m128i one = _mm_set1_epi8(1);
959*b2055c35SXin Li const __m128i ABCDEFGH = _mm_loadl_epi64((__m128i*)(dst - BPS));
960*b2055c35SXin Li const __m128i BCDEFGH_ = _mm_srli_si128(ABCDEFGH, 1);
961*b2055c35SXin Li const __m128i CDEFGH__ = _mm_srli_si128(ABCDEFGH, 2);
962*b2055c35SXin Li const __m128i avg1 = _mm_avg_epu8(ABCDEFGH, BCDEFGH_);
963*b2055c35SXin Li const __m128i avg2 = _mm_avg_epu8(CDEFGH__, BCDEFGH_);
964*b2055c35SXin Li const __m128i avg3 = _mm_avg_epu8(avg1, avg2);
965*b2055c35SXin Li const __m128i lsb1 = _mm_and_si128(_mm_xor_si128(avg1, avg2), one);
966*b2055c35SXin Li const __m128i ab = _mm_xor_si128(ABCDEFGH, BCDEFGH_);
967*b2055c35SXin Li const __m128i bc = _mm_xor_si128(CDEFGH__, BCDEFGH_);
968*b2055c35SXin Li const __m128i abbc = _mm_or_si128(ab, bc);
969*b2055c35SXin Li const __m128i lsb2 = _mm_and_si128(abbc, lsb1);
970*b2055c35SXin Li const __m128i avg4 = _mm_subs_epu8(avg3, lsb2);
971*b2055c35SXin Li const uint32_t extra_out =
972*b2055c35SXin Li (uint32_t)_mm_cvtsi128_si32(_mm_srli_si128(avg4, 4));
973*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32( avg1 ));
974*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32( avg4 ));
975*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(avg1, 1)));
976*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(avg4, 1)));
977*b2055c35SXin Li
978*b2055c35SXin Li // these two are hard to get and irregular
979*b2055c35SXin Li DST(3, 2) = (extra_out >> 0) & 0xff;
980*b2055c35SXin Li DST(3, 3) = (extra_out >> 8) & 0xff;
981*b2055c35SXin Li }
982*b2055c35SXin Li
RD4_SSE2(uint8_t * dst)983*b2055c35SXin Li static void RD4_SSE2(uint8_t* dst) { // Down-right
984*b2055c35SXin Li const __m128i one = _mm_set1_epi8(1);
985*b2055c35SXin Li const __m128i XABCD = _mm_loadl_epi64((__m128i*)(dst - BPS - 1));
986*b2055c35SXin Li const __m128i ____XABCD = _mm_slli_si128(XABCD, 4);
987*b2055c35SXin Li const uint32_t I = dst[-1 + 0 * BPS];
988*b2055c35SXin Li const uint32_t J = dst[-1 + 1 * BPS];
989*b2055c35SXin Li const uint32_t K = dst[-1 + 2 * BPS];
990*b2055c35SXin Li const uint32_t L = dst[-1 + 3 * BPS];
991*b2055c35SXin Li const __m128i LKJI_____ =
992*b2055c35SXin Li _mm_cvtsi32_si128((int)(L | (K << 8) | (J << 16) | (I << 24)));
993*b2055c35SXin Li const __m128i LKJIXABCD = _mm_or_si128(LKJI_____, ____XABCD);
994*b2055c35SXin Li const __m128i KJIXABCD_ = _mm_srli_si128(LKJIXABCD, 1);
995*b2055c35SXin Li const __m128i JIXABCD__ = _mm_srli_si128(LKJIXABCD, 2);
996*b2055c35SXin Li const __m128i avg1 = _mm_avg_epu8(JIXABCD__, LKJIXABCD);
997*b2055c35SXin Li const __m128i lsb = _mm_and_si128(_mm_xor_si128(JIXABCD__, LKJIXABCD), one);
998*b2055c35SXin Li const __m128i avg2 = _mm_subs_epu8(avg1, lsb);
999*b2055c35SXin Li const __m128i abcdefg = _mm_avg_epu8(avg2, KJIXABCD_);
1000*b2055c35SXin Li WebPInt32ToMem(dst + 3 * BPS, _mm_cvtsi128_si32( abcdefg ));
1001*b2055c35SXin Li WebPInt32ToMem(dst + 2 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 1)));
1002*b2055c35SXin Li WebPInt32ToMem(dst + 1 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 2)));
1003*b2055c35SXin Li WebPInt32ToMem(dst + 0 * BPS, _mm_cvtsi128_si32(_mm_srli_si128(abcdefg, 3)));
1004*b2055c35SXin Li }
1005*b2055c35SXin Li
1006*b2055c35SXin Li #undef DST
1007*b2055c35SXin Li #undef AVG3
1008*b2055c35SXin Li
1009*b2055c35SXin Li //------------------------------------------------------------------------------
1010*b2055c35SXin Li // Luma 16x16
1011*b2055c35SXin Li
TrueMotion_SSE2(uint8_t * dst,int size)1012*b2055c35SXin Li static WEBP_INLINE void TrueMotion_SSE2(uint8_t* dst, int size) {
1013*b2055c35SXin Li const uint8_t* top = dst - BPS;
1014*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
1015*b2055c35SXin Li int y;
1016*b2055c35SXin Li if (size == 4) {
1017*b2055c35SXin Li const __m128i top_values = _mm_cvtsi32_si128(WebPMemToInt32(top));
1018*b2055c35SXin Li const __m128i top_base = _mm_unpacklo_epi8(top_values, zero);
1019*b2055c35SXin Li for (y = 0; y < 4; ++y, dst += BPS) {
1020*b2055c35SXin Li const int val = dst[-1] - top[-1];
1021*b2055c35SXin Li const __m128i base = _mm_set1_epi16(val);
1022*b2055c35SXin Li const __m128i out = _mm_packus_epi16(_mm_add_epi16(base, top_base), zero);
1023*b2055c35SXin Li WebPInt32ToMem(dst, _mm_cvtsi128_si32(out));
1024*b2055c35SXin Li }
1025*b2055c35SXin Li } else if (size == 8) {
1026*b2055c35SXin Li const __m128i top_values = _mm_loadl_epi64((const __m128i*)top);
1027*b2055c35SXin Li const __m128i top_base = _mm_unpacklo_epi8(top_values, zero);
1028*b2055c35SXin Li for (y = 0; y < 8; ++y, dst += BPS) {
1029*b2055c35SXin Li const int val = dst[-1] - top[-1];
1030*b2055c35SXin Li const __m128i base = _mm_set1_epi16(val);
1031*b2055c35SXin Li const __m128i out = _mm_packus_epi16(_mm_add_epi16(base, top_base), zero);
1032*b2055c35SXin Li _mm_storel_epi64((__m128i*)dst, out);
1033*b2055c35SXin Li }
1034*b2055c35SXin Li } else {
1035*b2055c35SXin Li const __m128i top_values = _mm_loadu_si128((const __m128i*)top);
1036*b2055c35SXin Li const __m128i top_base_0 = _mm_unpacklo_epi8(top_values, zero);
1037*b2055c35SXin Li const __m128i top_base_1 = _mm_unpackhi_epi8(top_values, zero);
1038*b2055c35SXin Li for (y = 0; y < 16; ++y, dst += BPS) {
1039*b2055c35SXin Li const int val = dst[-1] - top[-1];
1040*b2055c35SXin Li const __m128i base = _mm_set1_epi16(val);
1041*b2055c35SXin Li const __m128i out_0 = _mm_add_epi16(base, top_base_0);
1042*b2055c35SXin Li const __m128i out_1 = _mm_add_epi16(base, top_base_1);
1043*b2055c35SXin Li const __m128i out = _mm_packus_epi16(out_0, out_1);
1044*b2055c35SXin Li _mm_storeu_si128((__m128i*)dst, out);
1045*b2055c35SXin Li }
1046*b2055c35SXin Li }
1047*b2055c35SXin Li }
1048*b2055c35SXin Li
TM4_SSE2(uint8_t * dst)1049*b2055c35SXin Li static void TM4_SSE2(uint8_t* dst) { TrueMotion_SSE2(dst, 4); }
TM8uv_SSE2(uint8_t * dst)1050*b2055c35SXin Li static void TM8uv_SSE2(uint8_t* dst) { TrueMotion_SSE2(dst, 8); }
TM16_SSE2(uint8_t * dst)1051*b2055c35SXin Li static void TM16_SSE2(uint8_t* dst) { TrueMotion_SSE2(dst, 16); }
1052*b2055c35SXin Li
VE16_SSE2(uint8_t * dst)1053*b2055c35SXin Li static void VE16_SSE2(uint8_t* dst) {
1054*b2055c35SXin Li const __m128i top = _mm_loadu_si128((const __m128i*)(dst - BPS));
1055*b2055c35SXin Li int j;
1056*b2055c35SXin Li for (j = 0; j < 16; ++j) {
1057*b2055c35SXin Li _mm_storeu_si128((__m128i*)(dst + j * BPS), top);
1058*b2055c35SXin Li }
1059*b2055c35SXin Li }
1060*b2055c35SXin Li
HE16_SSE2(uint8_t * dst)1061*b2055c35SXin Li static void HE16_SSE2(uint8_t* dst) { // horizontal
1062*b2055c35SXin Li int j;
1063*b2055c35SXin Li for (j = 16; j > 0; --j) {
1064*b2055c35SXin Li const __m128i values = _mm_set1_epi8((char)dst[-1]);
1065*b2055c35SXin Li _mm_storeu_si128((__m128i*)dst, values);
1066*b2055c35SXin Li dst += BPS;
1067*b2055c35SXin Li }
1068*b2055c35SXin Li }
1069*b2055c35SXin Li
Put16_SSE2(uint8_t v,uint8_t * dst)1070*b2055c35SXin Li static WEBP_INLINE void Put16_SSE2(uint8_t v, uint8_t* dst) {
1071*b2055c35SXin Li int j;
1072*b2055c35SXin Li const __m128i values = _mm_set1_epi8((char)v);
1073*b2055c35SXin Li for (j = 0; j < 16; ++j) {
1074*b2055c35SXin Li _mm_storeu_si128((__m128i*)(dst + j * BPS), values);
1075*b2055c35SXin Li }
1076*b2055c35SXin Li }
1077*b2055c35SXin Li
DC16_SSE2(uint8_t * dst)1078*b2055c35SXin Li static void DC16_SSE2(uint8_t* dst) { // DC
1079*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
1080*b2055c35SXin Li const __m128i top = _mm_loadu_si128((const __m128i*)(dst - BPS));
1081*b2055c35SXin Li const __m128i sad8x2 = _mm_sad_epu8(top, zero);
1082*b2055c35SXin Li // sum the two sads: sad8x2[0:1] + sad8x2[8:9]
1083*b2055c35SXin Li const __m128i sum = _mm_add_epi16(sad8x2, _mm_shuffle_epi32(sad8x2, 2));
1084*b2055c35SXin Li int left = 0;
1085*b2055c35SXin Li int j;
1086*b2055c35SXin Li for (j = 0; j < 16; ++j) {
1087*b2055c35SXin Li left += dst[-1 + j * BPS];
1088*b2055c35SXin Li }
1089*b2055c35SXin Li {
1090*b2055c35SXin Li const int DC = _mm_cvtsi128_si32(sum) + left + 16;
1091*b2055c35SXin Li Put16_SSE2(DC >> 5, dst);
1092*b2055c35SXin Li }
1093*b2055c35SXin Li }
1094*b2055c35SXin Li
DC16NoTop_SSE2(uint8_t * dst)1095*b2055c35SXin Li static void DC16NoTop_SSE2(uint8_t* dst) { // DC with top samples unavailable
1096*b2055c35SXin Li int DC = 8;
1097*b2055c35SXin Li int j;
1098*b2055c35SXin Li for (j = 0; j < 16; ++j) {
1099*b2055c35SXin Li DC += dst[-1 + j * BPS];
1100*b2055c35SXin Li }
1101*b2055c35SXin Li Put16_SSE2(DC >> 4, dst);
1102*b2055c35SXin Li }
1103*b2055c35SXin Li
DC16NoLeft_SSE2(uint8_t * dst)1104*b2055c35SXin Li static void DC16NoLeft_SSE2(uint8_t* dst) { // DC with left samples unavailable
1105*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
1106*b2055c35SXin Li const __m128i top = _mm_loadu_si128((const __m128i*)(dst - BPS));
1107*b2055c35SXin Li const __m128i sad8x2 = _mm_sad_epu8(top, zero);
1108*b2055c35SXin Li // sum the two sads: sad8x2[0:1] + sad8x2[8:9]
1109*b2055c35SXin Li const __m128i sum = _mm_add_epi16(sad8x2, _mm_shuffle_epi32(sad8x2, 2));
1110*b2055c35SXin Li const int DC = _mm_cvtsi128_si32(sum) + 8;
1111*b2055c35SXin Li Put16_SSE2(DC >> 4, dst);
1112*b2055c35SXin Li }
1113*b2055c35SXin Li
DC16NoTopLeft_SSE2(uint8_t * dst)1114*b2055c35SXin Li static void DC16NoTopLeft_SSE2(uint8_t* dst) { // DC with no top & left samples
1115*b2055c35SXin Li Put16_SSE2(0x80, dst);
1116*b2055c35SXin Li }
1117*b2055c35SXin Li
1118*b2055c35SXin Li //------------------------------------------------------------------------------
1119*b2055c35SXin Li // Chroma
1120*b2055c35SXin Li
VE8uv_SSE2(uint8_t * dst)1121*b2055c35SXin Li static void VE8uv_SSE2(uint8_t* dst) { // vertical
1122*b2055c35SXin Li int j;
1123*b2055c35SXin Li const __m128i top = _mm_loadl_epi64((const __m128i*)(dst - BPS));
1124*b2055c35SXin Li for (j = 0; j < 8; ++j) {
1125*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + j * BPS), top);
1126*b2055c35SXin Li }
1127*b2055c35SXin Li }
1128*b2055c35SXin Li
1129*b2055c35SXin Li // helper for chroma-DC predictions
Put8x8uv_SSE2(uint8_t v,uint8_t * dst)1130*b2055c35SXin Li static WEBP_INLINE void Put8x8uv_SSE2(uint8_t v, uint8_t* dst) {
1131*b2055c35SXin Li int j;
1132*b2055c35SXin Li const __m128i values = _mm_set1_epi8((char)v);
1133*b2055c35SXin Li for (j = 0; j < 8; ++j) {
1134*b2055c35SXin Li _mm_storel_epi64((__m128i*)(dst + j * BPS), values);
1135*b2055c35SXin Li }
1136*b2055c35SXin Li }
1137*b2055c35SXin Li
DC8uv_SSE2(uint8_t * dst)1138*b2055c35SXin Li static void DC8uv_SSE2(uint8_t* dst) { // DC
1139*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
1140*b2055c35SXin Li const __m128i top = _mm_loadl_epi64((const __m128i*)(dst - BPS));
1141*b2055c35SXin Li const __m128i sum = _mm_sad_epu8(top, zero);
1142*b2055c35SXin Li int left = 0;
1143*b2055c35SXin Li int j;
1144*b2055c35SXin Li for (j = 0; j < 8; ++j) {
1145*b2055c35SXin Li left += dst[-1 + j * BPS];
1146*b2055c35SXin Li }
1147*b2055c35SXin Li {
1148*b2055c35SXin Li const int DC = _mm_cvtsi128_si32(sum) + left + 8;
1149*b2055c35SXin Li Put8x8uv_SSE2(DC >> 4, dst);
1150*b2055c35SXin Li }
1151*b2055c35SXin Li }
1152*b2055c35SXin Li
DC8uvNoLeft_SSE2(uint8_t * dst)1153*b2055c35SXin Li static void DC8uvNoLeft_SSE2(uint8_t* dst) { // DC with no left samples
1154*b2055c35SXin Li const __m128i zero = _mm_setzero_si128();
1155*b2055c35SXin Li const __m128i top = _mm_loadl_epi64((const __m128i*)(dst - BPS));
1156*b2055c35SXin Li const __m128i sum = _mm_sad_epu8(top, zero);
1157*b2055c35SXin Li const int DC = _mm_cvtsi128_si32(sum) + 4;
1158*b2055c35SXin Li Put8x8uv_SSE2(DC >> 3, dst);
1159*b2055c35SXin Li }
1160*b2055c35SXin Li
DC8uvNoTop_SSE2(uint8_t * dst)1161*b2055c35SXin Li static void DC8uvNoTop_SSE2(uint8_t* dst) { // DC with no top samples
1162*b2055c35SXin Li int dc0 = 4;
1163*b2055c35SXin Li int i;
1164*b2055c35SXin Li for (i = 0; i < 8; ++i) {
1165*b2055c35SXin Li dc0 += dst[-1 + i * BPS];
1166*b2055c35SXin Li }
1167*b2055c35SXin Li Put8x8uv_SSE2(dc0 >> 3, dst);
1168*b2055c35SXin Li }
1169*b2055c35SXin Li
DC8uvNoTopLeft_SSE2(uint8_t * dst)1170*b2055c35SXin Li static void DC8uvNoTopLeft_SSE2(uint8_t* dst) { // DC with nothing
1171*b2055c35SXin Li Put8x8uv_SSE2(0x80, dst);
1172*b2055c35SXin Li }
1173*b2055c35SXin Li
1174*b2055c35SXin Li //------------------------------------------------------------------------------
1175*b2055c35SXin Li // Entry point
1176*b2055c35SXin Li
1177*b2055c35SXin Li extern void VP8DspInitSSE2(void);
1178*b2055c35SXin Li
VP8DspInitSSE2(void)1179*b2055c35SXin Li WEBP_TSAN_IGNORE_FUNCTION void VP8DspInitSSE2(void) {
1180*b2055c35SXin Li VP8Transform = Transform_SSE2;
1181*b2055c35SXin Li #if (USE_TRANSFORM_AC3 == 1)
1182*b2055c35SXin Li VP8TransformAC3 = TransformAC3_SSE2;
1183*b2055c35SXin Li #endif
1184*b2055c35SXin Li
1185*b2055c35SXin Li VP8VFilter16 = VFilter16_SSE2;
1186*b2055c35SXin Li VP8HFilter16 = HFilter16_SSE2;
1187*b2055c35SXin Li VP8VFilter8 = VFilter8_SSE2;
1188*b2055c35SXin Li VP8HFilter8 = HFilter8_SSE2;
1189*b2055c35SXin Li VP8VFilter16i = VFilter16i_SSE2;
1190*b2055c35SXin Li VP8HFilter16i = HFilter16i_SSE2;
1191*b2055c35SXin Li VP8VFilter8i = VFilter8i_SSE2;
1192*b2055c35SXin Li VP8HFilter8i = HFilter8i_SSE2;
1193*b2055c35SXin Li
1194*b2055c35SXin Li VP8SimpleVFilter16 = SimpleVFilter16_SSE2;
1195*b2055c35SXin Li VP8SimpleHFilter16 = SimpleHFilter16_SSE2;
1196*b2055c35SXin Li VP8SimpleVFilter16i = SimpleVFilter16i_SSE2;
1197*b2055c35SXin Li VP8SimpleHFilter16i = SimpleHFilter16i_SSE2;
1198*b2055c35SXin Li
1199*b2055c35SXin Li VP8PredLuma4[1] = TM4_SSE2;
1200*b2055c35SXin Li VP8PredLuma4[2] = VE4_SSE2;
1201*b2055c35SXin Li VP8PredLuma4[4] = RD4_SSE2;
1202*b2055c35SXin Li VP8PredLuma4[5] = VR4_SSE2;
1203*b2055c35SXin Li VP8PredLuma4[6] = LD4_SSE2;
1204*b2055c35SXin Li VP8PredLuma4[7] = VL4_SSE2;
1205*b2055c35SXin Li
1206*b2055c35SXin Li VP8PredLuma16[0] = DC16_SSE2;
1207*b2055c35SXin Li VP8PredLuma16[1] = TM16_SSE2;
1208*b2055c35SXin Li VP8PredLuma16[2] = VE16_SSE2;
1209*b2055c35SXin Li VP8PredLuma16[3] = HE16_SSE2;
1210*b2055c35SXin Li VP8PredLuma16[4] = DC16NoTop_SSE2;
1211*b2055c35SXin Li VP8PredLuma16[5] = DC16NoLeft_SSE2;
1212*b2055c35SXin Li VP8PredLuma16[6] = DC16NoTopLeft_SSE2;
1213*b2055c35SXin Li
1214*b2055c35SXin Li VP8PredChroma8[0] = DC8uv_SSE2;
1215*b2055c35SXin Li VP8PredChroma8[1] = TM8uv_SSE2;
1216*b2055c35SXin Li VP8PredChroma8[2] = VE8uv_SSE2;
1217*b2055c35SXin Li VP8PredChroma8[4] = DC8uvNoTop_SSE2;
1218*b2055c35SXin Li VP8PredChroma8[5] = DC8uvNoLeft_SSE2;
1219*b2055c35SXin Li VP8PredChroma8[6] = DC8uvNoTopLeft_SSE2;
1220*b2055c35SXin Li }
1221*b2055c35SXin Li
1222*b2055c35SXin Li #else // !WEBP_USE_SSE2
1223*b2055c35SXin Li
1224*b2055c35SXin Li WEBP_DSP_INIT_STUB(VP8DspInitSSE2)
1225*b2055c35SXin Li
1226*b2055c35SXin Li #endif // WEBP_USE_SSE2
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