xref: /aosp_15_r20/external/webp/src/dsp/cost_sse2.c (revision b2055c353e87c8814eb2b6b1b11112a1562253bd)
1*b2055c35SXin Li // Copyright 2015 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 cost functions
11*b2055c35SXin Li //
12*b2055c35SXin Li // Author: Skal ([email protected])
13*b2055c35SXin Li 
14*b2055c35SXin Li #include "src/dsp/dsp.h"
15*b2055c35SXin Li 
16*b2055c35SXin Li #if defined(WEBP_USE_SSE2)
17*b2055c35SXin Li #include <emmintrin.h>
18*b2055c35SXin Li 
19*b2055c35SXin Li #include "src/enc/cost_enc.h"
20*b2055c35SXin Li #include "src/enc/vp8i_enc.h"
21*b2055c35SXin Li #include "src/utils/utils.h"
22*b2055c35SXin Li 
23*b2055c35SXin Li //------------------------------------------------------------------------------
24*b2055c35SXin Li 
SetResidualCoeffs_SSE2(const int16_t * const coeffs,VP8Residual * const res)25*b2055c35SXin Li static void SetResidualCoeffs_SSE2(const int16_t* const coeffs,
26*b2055c35SXin Li                                    VP8Residual* const res) {
27*b2055c35SXin Li   const __m128i c0 = _mm_loadu_si128((const __m128i*)(coeffs + 0));
28*b2055c35SXin Li   const __m128i c1 = _mm_loadu_si128((const __m128i*)(coeffs + 8));
29*b2055c35SXin Li   // Use SSE2 to compare 16 values with a single instruction.
30*b2055c35SXin Li   const __m128i zero = _mm_setzero_si128();
31*b2055c35SXin Li   const __m128i m0 = _mm_packs_epi16(c0, c1);
32*b2055c35SXin Li   const __m128i m1 = _mm_cmpeq_epi8(m0, zero);
33*b2055c35SXin Li   // Get the comparison results as a bitmask into 16bits. Negate the mask to get
34*b2055c35SXin Li   // the position of entries that are not equal to zero. We don't need to mask
35*b2055c35SXin Li   // out least significant bits according to res->first, since coeffs[0] is 0
36*b2055c35SXin Li   // if res->first > 0.
37*b2055c35SXin Li   const uint32_t mask = 0x0000ffffu ^ (uint32_t)_mm_movemask_epi8(m1);
38*b2055c35SXin Li   // The position of the most significant non-zero bit indicates the position of
39*b2055c35SXin Li   // the last non-zero value.
40*b2055c35SXin Li   assert(res->first == 0 || coeffs[0] == 0);
41*b2055c35SXin Li   res->last = mask ? BitsLog2Floor(mask) : -1;
42*b2055c35SXin Li   res->coeffs = coeffs;
43*b2055c35SXin Li }
44*b2055c35SXin Li 
GetResidualCost_SSE2(int ctx0,const VP8Residual * const res)45*b2055c35SXin Li static int GetResidualCost_SSE2(int ctx0, const VP8Residual* const res) {
46*b2055c35SXin Li   uint8_t levels[16], ctxs[16];
47*b2055c35SXin Li   uint16_t abs_levels[16];
48*b2055c35SXin Li   int n = res->first;
49*b2055c35SXin Li   // should be prob[VP8EncBands[n]], but it's equivalent for n=0 or 1
50*b2055c35SXin Li   const int p0 = res->prob[n][ctx0][0];
51*b2055c35SXin Li   CostArrayPtr const costs = res->costs;
52*b2055c35SXin Li   const uint16_t* t = costs[n][ctx0];
53*b2055c35SXin Li   // bit_cost(1, p0) is already incorporated in t[] tables, but only if ctx != 0
54*b2055c35SXin Li   // (as required by the syntax). For ctx0 == 0, we need to add it here or it'll
55*b2055c35SXin Li   // be missing during the loop.
56*b2055c35SXin Li   int cost = (ctx0 == 0) ? VP8BitCost(1, p0) : 0;
57*b2055c35SXin Li 
58*b2055c35SXin Li   if (res->last < 0) {
59*b2055c35SXin Li     return VP8BitCost(0, p0);
60*b2055c35SXin Li   }
61*b2055c35SXin Li 
62*b2055c35SXin Li   {   // precompute clamped levels and contexts, packed to 8b.
63*b2055c35SXin Li     const __m128i zero = _mm_setzero_si128();
64*b2055c35SXin Li     const __m128i kCst2 = _mm_set1_epi8(2);
65*b2055c35SXin Li     const __m128i kCst67 = _mm_set1_epi8(MAX_VARIABLE_LEVEL);
66*b2055c35SXin Li     const __m128i c0 = _mm_loadu_si128((const __m128i*)&res->coeffs[0]);
67*b2055c35SXin Li     const __m128i c1 = _mm_loadu_si128((const __m128i*)&res->coeffs[8]);
68*b2055c35SXin Li     const __m128i D0 = _mm_sub_epi16(zero, c0);
69*b2055c35SXin Li     const __m128i D1 = _mm_sub_epi16(zero, c1);
70*b2055c35SXin Li     const __m128i E0 = _mm_max_epi16(c0, D0);   // abs(v), 16b
71*b2055c35SXin Li     const __m128i E1 = _mm_max_epi16(c1, D1);
72*b2055c35SXin Li     const __m128i F = _mm_packs_epi16(E0, E1);
73*b2055c35SXin Li     const __m128i G = _mm_min_epu8(F, kCst2);    // context = 0,1,2
74*b2055c35SXin Li     const __m128i H = _mm_min_epu8(F, kCst67);   // clamp_level in [0..67]
75*b2055c35SXin Li 
76*b2055c35SXin Li     _mm_storeu_si128((__m128i*)&ctxs[0], G);
77*b2055c35SXin Li     _mm_storeu_si128((__m128i*)&levels[0], H);
78*b2055c35SXin Li 
79*b2055c35SXin Li     _mm_storeu_si128((__m128i*)&abs_levels[0], E0);
80*b2055c35SXin Li     _mm_storeu_si128((__m128i*)&abs_levels[8], E1);
81*b2055c35SXin Li   }
82*b2055c35SXin Li   for (; n < res->last; ++n) {
83*b2055c35SXin Li     const int ctx = ctxs[n];
84*b2055c35SXin Li     const int level = levels[n];
85*b2055c35SXin Li     const int flevel = abs_levels[n];   // full level
86*b2055c35SXin Li     cost += VP8LevelFixedCosts[flevel] + t[level];  // simplified VP8LevelCost()
87*b2055c35SXin Li     t = costs[n + 1][ctx];
88*b2055c35SXin Li   }
89*b2055c35SXin Li   // Last coefficient is always non-zero
90*b2055c35SXin Li   {
91*b2055c35SXin Li     const int level = levels[n];
92*b2055c35SXin Li     const int flevel = abs_levels[n];
93*b2055c35SXin Li     assert(flevel != 0);
94*b2055c35SXin Li     cost += VP8LevelFixedCosts[flevel] + t[level];
95*b2055c35SXin Li     if (n < 15) {
96*b2055c35SXin Li       const int b = VP8EncBands[n + 1];
97*b2055c35SXin Li       const int ctx = ctxs[n];
98*b2055c35SXin Li       const int last_p0 = res->prob[b][ctx][0];
99*b2055c35SXin Li       cost += VP8BitCost(0, last_p0);
100*b2055c35SXin Li     }
101*b2055c35SXin Li   }
102*b2055c35SXin Li   return cost;
103*b2055c35SXin Li }
104*b2055c35SXin Li 
105*b2055c35SXin Li //------------------------------------------------------------------------------
106*b2055c35SXin Li // Entry point
107*b2055c35SXin Li 
108*b2055c35SXin Li extern void VP8EncDspCostInitSSE2(void);
109*b2055c35SXin Li 
VP8EncDspCostInitSSE2(void)110*b2055c35SXin Li WEBP_TSAN_IGNORE_FUNCTION void VP8EncDspCostInitSSE2(void) {
111*b2055c35SXin Li   VP8SetResidualCoeffs = SetResidualCoeffs_SSE2;
112*b2055c35SXin Li   VP8GetResidualCost = GetResidualCost_SSE2;
113*b2055c35SXin Li }
114*b2055c35SXin Li 
115*b2055c35SXin Li #else  // !WEBP_USE_SSE2
116*b2055c35SXin Li 
117*b2055c35SXin Li WEBP_DSP_INIT_STUB(VP8EncDspCostInitSSE2)
118*b2055c35SXin Li 
119*b2055c35SXin Li #endif  // WEBP_USE_SSE2
120