/src/libjxl/lib/jxl/dec_group.cc
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1 | | // Copyright (c) the JPEG XL Project Authors. All rights reserved. |
2 | | // |
3 | | // Use of this source code is governed by a BSD-style |
4 | | // license that can be found in the LICENSE file. |
5 | | |
6 | | #include "lib/jxl/dec_group.h" |
7 | | |
8 | | #include <jxl/memory_manager.h> |
9 | | |
10 | | #include <algorithm> |
11 | | #include <array> |
12 | | #include <cstddef> |
13 | | #include <cstdint> |
14 | | #include <cstdio> |
15 | | #include <cstdlib> |
16 | | #include <cstring> |
17 | | #include <memory> |
18 | | #include <utility> |
19 | | #include <vector> |
20 | | |
21 | | #include "lib/jxl/base/compiler_specific.h" |
22 | | #include "lib/jxl/chroma_from_luma.h" |
23 | | #include "lib/jxl/coeff_order_fwd.h" |
24 | | #include "lib/jxl/dct_util.h" |
25 | | #include "lib/jxl/dec_ans.h" |
26 | | #include "lib/jxl/frame_dimensions.h" |
27 | | #include "lib/jxl/frame_header.h" |
28 | | #include "lib/jxl/image.h" |
29 | | #include "lib/jxl/image_ops.h" |
30 | | #include "lib/jxl/jpeg/jpeg_data.h" |
31 | | #include "lib/jxl/render_pipeline/render_pipeline.h" |
32 | | #include "lib/jxl/render_pipeline/render_pipeline_stage.h" |
33 | | |
34 | | #undef HWY_TARGET_INCLUDE |
35 | | #define HWY_TARGET_INCLUDE "lib/jxl/dec_group.cc" |
36 | | #include <hwy/foreach_target.h> |
37 | | #include <hwy/highway.h> |
38 | | |
39 | | #include "lib/jxl/ac_context.h" |
40 | | #include "lib/jxl/ac_strategy.h" |
41 | | #include "lib/jxl/base/bits.h" |
42 | | #include "lib/jxl/base/common.h" |
43 | | #include "lib/jxl/base/printf_macros.h" |
44 | | #include "lib/jxl/base/rect.h" |
45 | | #include "lib/jxl/base/status.h" |
46 | | #include "lib/jxl/coeff_order.h" |
47 | | #include "lib/jxl/common.h" // kMaxNumPasses |
48 | | #include "lib/jxl/dec_cache.h" |
49 | | #include "lib/jxl/dec_transforms-inl.h" |
50 | | #include "lib/jxl/dec_xyb.h" |
51 | | #include "lib/jxl/entropy_coder.h" |
52 | | #include "lib/jxl/quant_weights.h" |
53 | | #include "lib/jxl/quantizer-inl.h" |
54 | | #include "lib/jxl/quantizer.h" |
55 | | |
56 | | #ifndef LIB_JXL_DEC_GROUP_CC |
57 | | #define LIB_JXL_DEC_GROUP_CC |
58 | | namespace jxl { |
59 | | |
60 | | struct AuxOut; |
61 | | |
62 | | // Interface for reading groups for DecodeGroupImpl. |
63 | | class GetBlock { |
64 | | public: |
65 | | virtual void StartRow(size_t by) = 0; |
66 | | virtual Status LoadBlock(size_t bx, size_t by, const AcStrategy& acs, |
67 | | size_t size, size_t log2_covered_blocks, |
68 | | ACPtr block[3], ACType ac_type) = 0; |
69 | 45.4k | virtual ~GetBlock() {} |
70 | | }; |
71 | | |
72 | | // Controls whether DecodeGroupImpl renders to pixels or not. |
73 | | enum DrawMode { |
74 | | // Render to pixels. |
75 | | kDraw = 0, |
76 | | // Don't render to pixels. |
77 | | kDontDraw = 1, |
78 | | }; |
79 | | |
80 | | } // namespace jxl |
81 | | #endif // LIB_JXL_DEC_GROUP_CC |
82 | | |
83 | | HWY_BEFORE_NAMESPACE(); |
84 | | namespace jxl { |
85 | | namespace HWY_NAMESPACE { |
86 | | |
87 | | // These templates are not found via ADL. |
88 | | using hwy::HWY_NAMESPACE::AllFalse; |
89 | | using hwy::HWY_NAMESPACE::Gt; |
90 | | using hwy::HWY_NAMESPACE::Le; |
91 | | using hwy::HWY_NAMESPACE::MaskFromVec; |
92 | | using hwy::HWY_NAMESPACE::Or; |
93 | | using hwy::HWY_NAMESPACE::Rebind; |
94 | | using hwy::HWY_NAMESPACE::ShiftRight; |
95 | | |
96 | | using D = HWY_FULL(float); |
97 | | using DU = HWY_FULL(uint32_t); |
98 | | using DI = HWY_FULL(int32_t); |
99 | | using DI16 = Rebind<int16_t, DI>; |
100 | | using DI16_FULL = HWY_CAPPED(int16_t, kDCTBlockSize); |
101 | | constexpr D d; |
102 | | constexpr DI di; |
103 | | constexpr DI16 di16; |
104 | | constexpr DI16_FULL di16_full; |
105 | | |
106 | | // TODO(veluca): consider SIMDfying. |
107 | 0 | void Transpose8x8InPlace(int32_t* JXL_RESTRICT block) { |
108 | 0 | for (size_t x = 0; x < 8; x++) { |
109 | 0 | for (size_t y = x + 1; y < 8; y++) { |
110 | 0 | std::swap(block[y * 8 + x], block[x * 8 + y]); |
111 | 0 | } |
112 | 0 | } |
113 | 0 | } Unexecuted instantiation: jxl::N_SSE4::Transpose8x8InPlace(int*) Unexecuted instantiation: jxl::N_AVX2::Transpose8x8InPlace(int*) Unexecuted instantiation: jxl::N_SSE2::Transpose8x8InPlace(int*) |
114 | | |
115 | | template <ACType ac_type> |
116 | | void DequantLane(Vec<D> scaled_dequant_x, Vec<D> scaled_dequant_y, |
117 | | Vec<D> scaled_dequant_b, |
118 | | const float* JXL_RESTRICT dequant_matrices, size_t size, |
119 | | size_t k, Vec<D> x_cc_mul, Vec<D> b_cc_mul, |
120 | | const float* JXL_RESTRICT biases, ACPtr qblock[3], |
121 | 118M | float* JXL_RESTRICT block) { |
122 | 118M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); |
123 | 118M | const auto y_mul = |
124 | 118M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); |
125 | 118M | const auto b_mul = |
126 | 118M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); |
127 | | |
128 | 118M | Vec<DI> quantized_x_int; |
129 | 118M | Vec<DI> quantized_y_int; |
130 | 118M | Vec<DI> quantized_b_int; |
131 | 118M | if (ac_type == ACType::k16) { |
132 | 110M | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); |
133 | 110M | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); |
134 | 110M | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); |
135 | 110M | } else { |
136 | 8.25M | quantized_x_int = Load(di, qblock[0].ptr32 + k); |
137 | 8.25M | quantized_y_int = Load(di, qblock[1].ptr32 + k); |
138 | 8.25M | quantized_b_int = Load(di, qblock[2].ptr32 + k); |
139 | 8.25M | } |
140 | | |
141 | 118M | const auto dequant_x_cc = |
142 | 118M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); |
143 | 118M | const auto dequant_y = |
144 | 118M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); |
145 | 118M | const auto dequant_b_cc = |
146 | 118M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); |
147 | | |
148 | 118M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); |
149 | 118M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); |
150 | 118M | Store(dequant_x, d, block + k); |
151 | 118M | Store(dequant_y, d, block + size + k); |
152 | 118M | Store(dequant_b, d, block + 2 * size + k); |
153 | 118M | } void jxl::N_SSE4::DequantLane<(jxl::ACType)0>(hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, float const*, unsigned long, unsigned long, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 37.3M | float* JXL_RESTRICT block) { | 122 | 37.3M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 37.3M | const auto y_mul = | 124 | 37.3M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 37.3M | const auto b_mul = | 126 | 37.3M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 37.3M | Vec<DI> quantized_x_int; | 129 | 37.3M | Vec<DI> quantized_y_int; | 130 | 37.3M | Vec<DI> quantized_b_int; | 131 | 37.3M | if (ac_type == ACType::k16) { | 132 | 37.2M | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 37.2M | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 37.2M | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 37.2M | } else { | 136 | 92.4k | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 92.4k | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 92.4k | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 92.4k | } | 140 | | | 141 | 37.3M | const auto dequant_x_cc = | 142 | 37.3M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 37.3M | const auto dequant_y = | 144 | 37.3M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 37.3M | const auto dequant_b_cc = | 146 | 37.3M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 37.3M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 37.3M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 37.3M | Store(dequant_x, d, block + k); | 151 | 37.3M | Store(dequant_y, d, block + size + k); | 152 | 37.3M | Store(dequant_b, d, block + 2 * size + k); | 153 | 37.3M | } |
void jxl::N_SSE4::DequantLane<(jxl::ACType)1>(hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, float const*, unsigned long, unsigned long, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 3.40M | float* JXL_RESTRICT block) { | 122 | 3.40M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 3.40M | const auto y_mul = | 124 | 3.40M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 3.40M | const auto b_mul = | 126 | 3.40M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 3.40M | Vec<DI> quantized_x_int; | 129 | 3.40M | Vec<DI> quantized_y_int; | 130 | 3.40M | Vec<DI> quantized_b_int; | 131 | 3.40M | if (ac_type == ACType::k16) { | 132 | 0 | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 0 | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 0 | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 3.40M | } else { | 136 | 3.40M | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 3.40M | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 3.40M | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 3.40M | } | 140 | | | 141 | 3.40M | const auto dequant_x_cc = | 142 | 3.40M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 3.40M | const auto dequant_y = | 144 | 3.40M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 3.40M | const auto dequant_b_cc = | 146 | 3.40M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 3.40M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 3.40M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 3.40M | Store(dequant_x, d, block + k); | 151 | 3.40M | Store(dequant_y, d, block + size + k); | 152 | 3.40M | Store(dequant_b, d, block + 2 * size + k); | 153 | 3.40M | } |
void jxl::N_AVX2::DequantLane<(jxl::ACType)0>(hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, float const*, unsigned long, unsigned long, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 30.3M | float* JXL_RESTRICT block) { | 122 | 30.3M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 30.3M | const auto y_mul = | 124 | 30.3M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 30.3M | const auto b_mul = | 126 | 30.3M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 30.3M | Vec<DI> quantized_x_int; | 129 | 30.3M | Vec<DI> quantized_y_int; | 130 | 30.3M | Vec<DI> quantized_b_int; | 131 | 30.3M | if (ac_type == ACType::k16) { | 132 | 30.3M | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 30.3M | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 30.3M | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 18.4E | } else { | 136 | 18.4E | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 18.4E | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 18.4E | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 18.4E | } | 140 | | | 141 | 30.3M | const auto dequant_x_cc = | 142 | 30.3M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 30.3M | const auto dequant_y = | 144 | 30.3M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 30.3M | const auto dequant_b_cc = | 146 | 30.3M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 30.3M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 30.3M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 30.3M | Store(dequant_x, d, block + k); | 151 | 30.3M | Store(dequant_y, d, block + size + k); | 152 | 30.3M | Store(dequant_b, d, block + 2 * size + k); | 153 | 30.3M | } |
void jxl::N_AVX2::DequantLane<(jxl::ACType)1>(hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, float const*, unsigned long, unsigned long, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 2.32M | float* JXL_RESTRICT block) { | 122 | 2.32M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 2.32M | const auto y_mul = | 124 | 2.32M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 2.32M | const auto b_mul = | 126 | 2.32M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 2.32M | Vec<DI> quantized_x_int; | 129 | 2.32M | Vec<DI> quantized_y_int; | 130 | 2.32M | Vec<DI> quantized_b_int; | 131 | 2.32M | if (ac_type == ACType::k16) { | 132 | 0 | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 0 | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 0 | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 2.32M | } else { | 136 | 2.32M | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 2.32M | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 2.32M | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 2.32M | } | 140 | | | 141 | 2.32M | const auto dequant_x_cc = | 142 | 2.32M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 2.32M | const auto dequant_y = | 144 | 2.32M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 2.32M | const auto dequant_b_cc = | 146 | 2.32M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 2.32M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 2.32M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 2.32M | Store(dequant_x, d, block + k); | 151 | 2.32M | Store(dequant_y, d, block + size + k); | 152 | 2.32M | Store(dequant_b, d, block + 2 * size + k); | 153 | 2.32M | } |
void jxl::N_SSE2::DequantLane<(jxl::ACType)0>(hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, float const*, unsigned long, unsigned long, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 43.1M | float* JXL_RESTRICT block) { | 122 | 43.1M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 43.1M | const auto y_mul = | 124 | 43.1M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 43.1M | const auto b_mul = | 126 | 43.1M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 43.1M | Vec<DI> quantized_x_int; | 129 | 43.1M | Vec<DI> quantized_y_int; | 130 | 43.1M | Vec<DI> quantized_b_int; | 131 | 43.1M | if (ac_type == ACType::k16) { | 132 | 42.9M | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 42.9M | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 42.9M | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 42.9M | } else { | 136 | 191k | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 191k | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 191k | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 191k | } | 140 | | | 141 | 43.1M | const auto dequant_x_cc = | 142 | 43.1M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 43.1M | const auto dequant_y = | 144 | 43.1M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 43.1M | const auto dequant_b_cc = | 146 | 43.1M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 43.1M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 43.1M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 43.1M | Store(dequant_x, d, block + k); | 151 | 43.1M | Store(dequant_y, d, block + size + k); | 152 | 43.1M | Store(dequant_b, d, block + 2 * size + k); | 153 | 43.1M | } |
void jxl::N_SSE2::DequantLane<(jxl::ACType)1>(hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, float const*, unsigned long, unsigned long, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, float const*, jxl::ACPtr*, float*) Line | Count | Source | 121 | 2.23M | float* JXL_RESTRICT block) { | 122 | 2.23M | const auto x_mul = Mul(Load(d, dequant_matrices + k), scaled_dequant_x); | 123 | 2.23M | const auto y_mul = | 124 | 2.23M | Mul(Load(d, dequant_matrices + size + k), scaled_dequant_y); | 125 | 2.23M | const auto b_mul = | 126 | 2.23M | Mul(Load(d, dequant_matrices + 2 * size + k), scaled_dequant_b); | 127 | | | 128 | 2.23M | Vec<DI> quantized_x_int; | 129 | 2.23M | Vec<DI> quantized_y_int; | 130 | 2.23M | Vec<DI> quantized_b_int; | 131 | 2.23M | if (ac_type == ACType::k16) { | 132 | 0 | quantized_x_int = PromoteTo(di, Load(di16, qblock[0].ptr16 + k)); | 133 | 0 | quantized_y_int = PromoteTo(di, Load(di16, qblock[1].ptr16 + k)); | 134 | 0 | quantized_b_int = PromoteTo(di, Load(di16, qblock[2].ptr16 + k)); | 135 | 2.23M | } else { | 136 | 2.23M | quantized_x_int = Load(di, qblock[0].ptr32 + k); | 137 | 2.23M | quantized_y_int = Load(di, qblock[1].ptr32 + k); | 138 | 2.23M | quantized_b_int = Load(di, qblock[2].ptr32 + k); | 139 | 2.23M | } | 140 | | | 141 | 2.23M | const auto dequant_x_cc = | 142 | 2.23M | Mul(AdjustQuantBias(di, 0, quantized_x_int, biases), x_mul); | 143 | 2.23M | const auto dequant_y = | 144 | 2.23M | Mul(AdjustQuantBias(di, 1, quantized_y_int, biases), y_mul); | 145 | 2.23M | const auto dequant_b_cc = | 146 | 2.23M | Mul(AdjustQuantBias(di, 2, quantized_b_int, biases), b_mul); | 147 | | | 148 | 2.23M | const auto dequant_x = MulAdd(x_cc_mul, dequant_y, dequant_x_cc); | 149 | 2.23M | const auto dequant_b = MulAdd(b_cc_mul, dequant_y, dequant_b_cc); | 150 | 2.23M | Store(dequant_x, d, block + k); | 151 | 2.23M | Store(dequant_y, d, block + size + k); | 152 | 2.23M | Store(dequant_b, d, block + 2 * size + k); | 153 | 2.23M | } |
|
154 | | |
155 | | template <ACType ac_type> |
156 | | void DequantBlock(float inv_global_scale, int quant, float x_dm_multiplier, |
157 | | float b_dm_multiplier, Vec<D> x_cc_mul, Vec<D> b_cc_mul, |
158 | | AcStrategyType kind, size_t size, const Quantizer& quantizer, |
159 | | size_t covered_blocks, const size_t* sbx, |
160 | | const float* JXL_RESTRICT* JXL_RESTRICT dc_row, |
161 | | size_t dc_stride, const float* JXL_RESTRICT biases, |
162 | | ACPtr qblock[3], float* JXL_RESTRICT block, |
163 | 5.13M | float* JXL_RESTRICT scratch) { |
164 | 5.13M | const auto scaled_dequant_s = inv_global_scale / quant; |
165 | | |
166 | 5.13M | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); |
167 | 5.13M | const auto scaled_dequant_y = Set(d, scaled_dequant_s); |
168 | 5.13M | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); |
169 | | |
170 | 5.13M | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); |
171 | | |
172 | 123M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { |
173 | 118M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, |
174 | 118M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, |
175 | 118M | qblock, block); |
176 | 118M | } |
177 | 20.5M | for (size_t c = 0; c < 3; c++) { |
178 | 15.3M | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, |
179 | 15.3M | block + c * size, scratch); |
180 | 15.3M | } |
181 | 5.13M | } void jxl::N_SSE4::DequantBlock<(jxl::ACType)0>(float, int, float, float, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 1.14M | float* JXL_RESTRICT scratch) { | 164 | 1.14M | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 1.14M | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 1.14M | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 1.14M | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 1.14M | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 38.4M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 37.3M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 37.3M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 37.3M | qblock, block); | 176 | 37.3M | } | 177 | 4.56M | for (size_t c = 0; c < 3; c++) { | 178 | 3.41M | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 3.41M | block + c * size, scratch); | 180 | 3.41M | } | 181 | 1.14M | } |
void jxl::N_SSE4::DequantBlock<(jxl::ACType)1>(float, int, float, float, hwy::N_SSE4::Vec128<float, 4ul>, hwy::N_SSE4::Vec128<float, 4ul>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 199k | float* JXL_RESTRICT scratch) { | 164 | 199k | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 199k | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 199k | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 199k | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 199k | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 3.60M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 3.40M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 3.40M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 3.40M | qblock, block); | 176 | 3.40M | } | 177 | 796k | for (size_t c = 0; c < 3; c++) { | 178 | 597k | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 597k | block + c * size, scratch); | 180 | 597k | } | 181 | 199k | } |
void jxl::N_AVX2::DequantBlock<(jxl::ACType)0>(float, int, float, float, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 2.09M | float* JXL_RESTRICT scratch) { | 164 | 2.09M | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 2.09M | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 2.09M | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 2.09M | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 2.09M | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 32.4M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 30.3M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 30.3M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 30.3M | qblock, block); | 176 | 30.3M | } | 177 | 8.34M | for (size_t c = 0; c < 3; c++) { | 178 | 6.25M | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 6.25M | block + c * size, scratch); | 180 | 6.25M | } | 181 | 2.09M | } |
void jxl::N_AVX2::DequantBlock<(jxl::ACType)1>(float, int, float, float, hwy::N_AVX2::Vec256<float>, hwy::N_AVX2::Vec256<float>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 236k | float* JXL_RESTRICT scratch) { | 164 | 236k | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 236k | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 236k | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 236k | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 236k | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 2.56M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 2.32M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 2.32M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 2.32M | qblock, block); | 176 | 2.32M | } | 177 | 944k | for (size_t c = 0; c < 3; c++) { | 178 | 708k | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 708k | block + c * size, scratch); | 180 | 708k | } | 181 | 236k | } |
void jxl::N_SSE2::DequantBlock<(jxl::ACType)0>(float, int, float, float, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 1.34M | float* JXL_RESTRICT scratch) { | 164 | 1.34M | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 1.34M | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 1.34M | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 1.34M | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 1.34M | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 44.4M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 43.0M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 43.0M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 43.0M | qblock, block); | 176 | 43.0M | } | 177 | 5.35M | for (size_t c = 0; c < 3; c++) { | 178 | 4.00M | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 4.00M | block + c * size, scratch); | 180 | 4.00M | } | 181 | 1.34M | } |
void jxl::N_SSE2::DequantBlock<(jxl::ACType)1>(float, int, float, float, hwy::N_SSE2::Vec128<float, 4ul>, hwy::N_SSE2::Vec128<float, 4ul>, jxl::AcStrategyType, unsigned long, jxl::Quantizer const&, unsigned long, unsigned long const*, float const* restrict*, unsigned long, float const*, jxl::ACPtr*, float*, float*) Line | Count | Source | 163 | 125k | float* JXL_RESTRICT scratch) { | 164 | 125k | const auto scaled_dequant_s = inv_global_scale / quant; | 165 | | | 166 | 125k | const auto scaled_dequant_x = Set(d, scaled_dequant_s * x_dm_multiplier); | 167 | 125k | const auto scaled_dequant_y = Set(d, scaled_dequant_s); | 168 | 125k | const auto scaled_dequant_b = Set(d, scaled_dequant_s * b_dm_multiplier); | 169 | | | 170 | 125k | const float* dequant_matrices = quantizer.DequantMatrix(kind, 0); | 171 | | | 172 | 2.36M | for (size_t k = 0; k < covered_blocks * kDCTBlockSize; k += Lanes(d)) { | 173 | 2.23M | DequantLane<ac_type>(scaled_dequant_x, scaled_dequant_y, scaled_dequant_b, | 174 | 2.23M | dequant_matrices, size, k, x_cc_mul, b_cc_mul, biases, | 175 | 2.23M | qblock, block); | 176 | 2.23M | } | 177 | 501k | for (size_t c = 0; c < 3; c++) { | 178 | 376k | LowestFrequenciesFromDC(kind, dc_row[c] + sbx[c], dc_stride, | 179 | 376k | block + c * size, scratch); | 180 | 376k | } | 181 | 125k | } |
|
182 | | |
183 | | Status DecodeGroupImpl(const FrameHeader& frame_header, |
184 | | GetBlock* JXL_RESTRICT get_block, |
185 | | GroupDecCache* JXL_RESTRICT group_dec_cache, |
186 | | PassesDecoderState* JXL_RESTRICT dec_state, |
187 | | size_t thread, size_t group_idx, |
188 | | RenderPipelineInput& render_pipeline_input, |
189 | 43.4k | jpeg::JPEGData* jpeg_data, DrawMode draw) { |
190 | | // TODO(veluca): investigate cache usage in this function. |
191 | 43.4k | const Rect block_rect = |
192 | 43.4k | dec_state->shared->frame_dim.BlockGroupRect(group_idx); |
193 | 43.4k | const AcStrategyImage& ac_strategy = dec_state->shared->ac_strategy; |
194 | | |
195 | 43.4k | const size_t xsize_blocks = block_rect.xsize(); |
196 | 43.4k | const size_t ysize_blocks = block_rect.ysize(); |
197 | | |
198 | 43.4k | const size_t dc_stride = dec_state->shared->dc->PixelsPerRow(); |
199 | | |
200 | 43.4k | const float inv_global_scale = dec_state->shared->quantizer.InvGlobalScale(); |
201 | | |
202 | 43.4k | const YCbCrChromaSubsampling& cs = frame_header.chroma_subsampling; |
203 | | |
204 | 43.4k | const auto kJpegDctMin = Set(di16_full, -4095); |
205 | 43.4k | const auto kJpegDctMax = Set(di16_full, 4095); |
206 | | |
207 | 43.4k | size_t idct_stride[3]; |
208 | 173k | for (size_t c = 0; c < 3; c++) { |
209 | 130k | idct_stride[c] = render_pipeline_input.GetBuffer(c).first->PixelsPerRow(); |
210 | 130k | } |
211 | | |
212 | 43.4k | HWY_ALIGN int32_t scaled_qtable[64 * 3]; |
213 | | |
214 | 43.4k | ACType ac_type = dec_state->coefficients->Type(); |
215 | 43.4k | auto dequant_block = ac_type == ACType::k16 ? DequantBlock<ACType::k16> |
216 | 43.4k | : DequantBlock<ACType::k32>; |
217 | | // Whether or not coefficients should be stored for future usage, and/or read |
218 | | // from past usage. |
219 | 43.4k | bool accumulate = !dec_state->coefficients->IsEmpty(); |
220 | | // Offset of the current block in the group. |
221 | 43.4k | size_t offset = 0; |
222 | | |
223 | 43.4k | std::array<int, 3> jpeg_c_map; |
224 | 43.4k | bool jpeg_is_gray = false; |
225 | 43.4k | std::array<int, 3> dcoff = {}; |
226 | | |
227 | | // TODO(veluca): all of this should be done only once per image. |
228 | 43.4k | const ColorCorrelation& color_correlation = dec_state->shared->cmap.base(); |
229 | 43.4k | if (jpeg_data) { |
230 | 0 | if (!color_correlation.IsJPEGCompatible()) { |
231 | 0 | return JXL_FAILURE("The CfL map is not JPEG-compatible"); |
232 | 0 | } |
233 | 0 | jpeg_is_gray = (jpeg_data->components.size() == 1); |
234 | 0 | JXL_ENSURE(frame_header.color_transform != ColorTransform::kXYB); |
235 | 0 | jpeg_c_map = JpegOrder(frame_header.color_transform, jpeg_is_gray); |
236 | 0 | const std::vector<QuantEncoding>& qe = |
237 | 0 | dec_state->shared->matrices.encodings(); |
238 | 0 | if (qe.empty() || qe[0].mode != QuantEncoding::Mode::kQuantModeRAW || |
239 | 0 | std::abs(qe[0].qraw.qtable_den - 1.f / (8 * 255)) > 1e-8f) { |
240 | 0 | return JXL_FAILURE( |
241 | 0 | "Quantization table is not a JPEG quantization table."); |
242 | 0 | } |
243 | 0 | JXL_ENSURE(qe[0].qraw.qtable->size() == 3 * 8 * 8); |
244 | 0 | int* qtable = qe[0].qraw.qtable->data(); |
245 | 0 | for (size_t c = 0; c < 3; c++) { |
246 | 0 | if (frame_header.color_transform == ColorTransform::kNone) { |
247 | 0 | dcoff[c] = 1024 / qtable[64 * c]; |
248 | 0 | } |
249 | 0 | for (size_t i = 0; i < 64; i++) { |
250 | | // Transpose the matrix, as it will be used on the transposed block. |
251 | 0 | int num = qtable[64 + i]; |
252 | 0 | int den = qtable[64 * c + i]; |
253 | 0 | if (num <= 0 || den <= 0 || num >= 65536 || den >= 65536) { |
254 | 0 | return JXL_FAILURE("Invalid JPEG quantization table"); |
255 | 0 | } |
256 | 0 | scaled_qtable[64 * c + (i % 8) * 8 + (i / 8)] = |
257 | 0 | (1 << kCFLFixedPointPrecision) * num / den; |
258 | 0 | } |
259 | 0 | } |
260 | 0 | } |
261 | | |
262 | 43.4k | size_t hshift[3] = {cs.HShift(0), cs.HShift(1), cs.HShift(2)}; |
263 | 43.4k | size_t vshift[3] = {cs.VShift(0), cs.VShift(1), cs.VShift(2)}; |
264 | 43.4k | Rect r[3]; |
265 | 173k | for (size_t i = 0; i < 3; i++) { |
266 | 130k | r[i] = |
267 | 130k | Rect(block_rect.x0() >> hshift[i], block_rect.y0() >> vshift[i], |
268 | 130k | block_rect.xsize() >> hshift[i], block_rect.ysize() >> vshift[i]); |
269 | 130k | if (!r[i].IsInside({0, 0, dec_state->shared->dc->Plane(i).xsize(), |
270 | 130k | dec_state->shared->dc->Plane(i).ysize()})) { |
271 | 0 | return JXL_FAILURE("Frame dimensions are too big for the image."); |
272 | 0 | } |
273 | 130k | } |
274 | | |
275 | 698k | for (size_t by = 0; by < ysize_blocks; ++by) { |
276 | 656k | get_block->StartRow(by); |
277 | 656k | size_t sby[3] = {by >> vshift[0], by >> vshift[1], by >> vshift[2]}; |
278 | | |
279 | 656k | const int32_t* JXL_RESTRICT row_quant = |
280 | 656k | block_rect.ConstRow(dec_state->shared->raw_quant_field, by); |
281 | | |
282 | 656k | const float* JXL_RESTRICT dc_rows[3] = { |
283 | 656k | r[0].ConstPlaneRow(*dec_state->shared->dc, 0, sby[0]), |
284 | 656k | r[1].ConstPlaneRow(*dec_state->shared->dc, 1, sby[1]), |
285 | 656k | r[2].ConstPlaneRow(*dec_state->shared->dc, 2, sby[2]), |
286 | 656k | }; |
287 | | |
288 | 656k | const size_t ty = (block_rect.y0() + by) / kColorTileDimInBlocks; |
289 | 656k | AcStrategyRow acs_row = ac_strategy.ConstRow(block_rect, by); |
290 | | |
291 | 656k | const int8_t* JXL_RESTRICT row_cmap[3] = { |
292 | 656k | dec_state->shared->cmap.ytox_map.ConstRow(ty), |
293 | 656k | nullptr, |
294 | 656k | dec_state->shared->cmap.ytob_map.ConstRow(ty), |
295 | 656k | }; |
296 | | |
297 | 656k | float* JXL_RESTRICT idct_row[3]; |
298 | 656k | int16_t* JXL_RESTRICT jpeg_row[3]; |
299 | 2.62M | for (size_t c = 0; c < 3; c++) { |
300 | 1.96M | const auto& buffer = render_pipeline_input.GetBuffer(c); |
301 | 1.96M | idct_row[c] = buffer.second.Row(buffer.first, sby[c] * kBlockDim); |
302 | 1.96M | if (jpeg_data) { |
303 | 0 | auto& component = jpeg_data->components[jpeg_c_map[c]]; |
304 | 0 | jpeg_row[c] = |
305 | 0 | component.coeffs.data() + |
306 | 0 | (component.width_in_blocks * (r[c].y0() + sby[c]) + r[c].x0()) * |
307 | 0 | kDCTBlockSize; |
308 | 0 | } |
309 | 1.96M | } |
310 | | |
311 | 656k | size_t bx = 0; |
312 | 2.15M | for (size_t tx = 0; tx < DivCeil(xsize_blocks, kColorTileDimInBlocks); |
313 | 1.49M | tx++) { |
314 | 1.49M | size_t abs_tx = tx + block_rect.x0() / kColorTileDimInBlocks; |
315 | 1.49M | auto x_cc_mul = Set(d, color_correlation.YtoXRatio(row_cmap[0][abs_tx])); |
316 | 1.49M | auto b_cc_mul = Set(d, color_correlation.YtoBRatio(row_cmap[2][abs_tx])); |
317 | | // Increment bx by llf_x because those iterations would otherwise |
318 | | // immediately continue (!IsFirstBlock). Reduces mispredictions. |
319 | 6.79M | for (; bx < xsize_blocks && bx < (tx + 1) * kColorTileDimInBlocks;) { |
320 | 5.29M | size_t sbx[3] = {bx >> hshift[0], bx >> hshift[1], bx >> hshift[2]}; |
321 | 5.29M | AcStrategy acs = acs_row[bx]; |
322 | 5.29M | const size_t llf_x = acs.covered_blocks_x(); |
323 | | |
324 | | // Can only happen in the second or lower rows of a varblock. |
325 | 5.29M | if (JXL_UNLIKELY(!acs.IsFirstBlock())) { |
326 | 153k | bx += llf_x; |
327 | 153k | continue; |
328 | 153k | } |
329 | 5.14M | const size_t log2_covered_blocks = acs.log2_covered_blocks(); |
330 | | |
331 | 5.14M | const size_t covered_blocks = 1 << log2_covered_blocks; |
332 | 5.14M | const size_t size = covered_blocks * kDCTBlockSize; |
333 | | |
334 | 5.14M | ACPtr qblock[3]; |
335 | 5.14M | if (accumulate) { |
336 | 29.1k | for (size_t c = 0; c < 3; c++) { |
337 | 21.8k | qblock[c] = dec_state->coefficients->PlaneRow(c, group_idx, offset); |
338 | 21.8k | } |
339 | 5.13M | } else { |
340 | | // No point in reading from bitstream without accumulating and not |
341 | | // drawing. |
342 | 5.13M | JXL_ENSURE(draw == kDraw); |
343 | 5.13M | if (ac_type == ACType::k16) { |
344 | 4.57M | memset(group_dec_cache->dec_group_qblock16, 0, |
345 | 4.57M | size * 3 * sizeof(int16_t)); |
346 | 18.3M | for (size_t c = 0; c < 3; c++) { |
347 | 13.7M | qblock[c].ptr16 = group_dec_cache->dec_group_qblock16 + c * size; |
348 | 13.7M | } |
349 | 4.57M | } else { |
350 | 560k | memset(group_dec_cache->dec_group_qblock, 0, |
351 | 560k | size * 3 * sizeof(int32_t)); |
352 | 2.24M | for (size_t c = 0; c < 3; c++) { |
353 | 1.68M | qblock[c].ptr32 = group_dec_cache->dec_group_qblock + c * size; |
354 | 1.68M | } |
355 | 560k | } |
356 | 5.13M | } |
357 | 5.14M | JXL_RETURN_IF_ERROR(get_block->LoadBlock( |
358 | 5.14M | bx, by, acs, size, log2_covered_blocks, qblock, ac_type)); |
359 | 5.14M | offset += size; |
360 | 5.14M | if (draw == kDontDraw) { |
361 | 5.34k | bx += llf_x; |
362 | 5.34k | continue; |
363 | 5.34k | } |
364 | | |
365 | 5.14M | if (JXL_UNLIKELY(jpeg_data)) { |
366 | 0 | if (acs.Strategy() != AcStrategyType::DCT) { |
367 | 0 | return JXL_FAILURE( |
368 | 0 | "Can only decode to JPEG if only DCT-8 is used."); |
369 | 0 | } |
370 | | |
371 | 0 | HWY_ALIGN int32_t transposed_dct_y[64]; |
372 | 0 | for (size_t c : {1, 0, 2}) { |
373 | | // Propagate only Y for grayscale. |
374 | 0 | if (jpeg_is_gray && c != 1) { |
375 | 0 | continue; |
376 | 0 | } |
377 | 0 | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { |
378 | 0 | continue; |
379 | 0 | } |
380 | 0 | int16_t* JXL_RESTRICT jpeg_pos = |
381 | 0 | jpeg_row[c] + sbx[c] * kDCTBlockSize; |
382 | | // JPEG XL is transposed, JPEG is not. |
383 | 0 | auto* transposed_dct = qblock[c].ptr32; |
384 | 0 | Transpose8x8InPlace(transposed_dct); |
385 | | // No CfL - no need to store the y block converted to integers. |
386 | 0 | if (!cs.Is444() || |
387 | 0 | (row_cmap[0][abs_tx] == 0 && row_cmap[2][abs_tx] == 0)) { |
388 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { |
389 | 0 | const auto ini = Load(di, transposed_dct + i); |
390 | 0 | const auto ini16 = DemoteTo(di16, ini); |
391 | 0 | StoreU(ini16, di16, jpeg_pos + i); |
392 | 0 | } |
393 | 0 | } else if (c == 1) { |
394 | | // Y channel: save for restoring X/B, but nothing else to do. |
395 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { |
396 | 0 | const auto ini = Load(di, transposed_dct + i); |
397 | 0 | Store(ini, di, transposed_dct_y + i); |
398 | 0 | const auto ini16 = DemoteTo(di16, ini); |
399 | 0 | StoreU(ini16, di16, jpeg_pos + i); |
400 | 0 | } |
401 | 0 | } else { |
402 | | // transposed_dct_y contains the y channel block, transposed. |
403 | 0 | const auto scale = |
404 | 0 | Set(di, ColorCorrelation::RatioJPEG(row_cmap[c][abs_tx])); |
405 | 0 | const auto round = Set(di, 1 << (kCFLFixedPointPrecision - 1)); |
406 | 0 | for (int i = 0; i < 64; i += Lanes(d)) { |
407 | 0 | auto in = Load(di, transposed_dct + i); |
408 | 0 | auto in_y = Load(di, transposed_dct_y + i); |
409 | 0 | auto qt = Load(di, scaled_qtable + c * size + i); |
410 | 0 | auto coeff_scale = ShiftRight<kCFLFixedPointPrecision>( |
411 | 0 | Add(Mul(qt, scale), round)); |
412 | 0 | auto cfl_factor = ShiftRight<kCFLFixedPointPrecision>( |
413 | 0 | Add(Mul(in_y, coeff_scale), round)); |
414 | 0 | StoreU(DemoteTo(di16, Add(in, cfl_factor)), di16, jpeg_pos + i); |
415 | 0 | } |
416 | 0 | } |
417 | 0 | jpeg_pos[0] = |
418 | 0 | Clamp1<float>(dc_rows[c][sbx[c]] - dcoff[c], -2047, 2047); |
419 | 0 | auto overflow = MaskFromVec(Set(di16_full, 0)); |
420 | 0 | auto underflow = MaskFromVec(Set(di16_full, 0)); |
421 | 0 | for (int i = 0; i < 64; i += Lanes(di16_full)) { |
422 | 0 | auto in = LoadU(di16_full, jpeg_pos + i); |
423 | 0 | overflow = Or(overflow, Gt(in, kJpegDctMax)); |
424 | 0 | underflow = Or(underflow, Lt(in, kJpegDctMin)); |
425 | 0 | } |
426 | 0 | if (!AllFalse(di16_full, Or(overflow, underflow))) { |
427 | 0 | return JXL_FAILURE("JPEG DCT coefficients out of range"); |
428 | 0 | } |
429 | 0 | } |
430 | 5.14M | } else { |
431 | 5.14M | HWY_ALIGN float* const block = group_dec_cache->dec_group_block; |
432 | | // Dequantize and add predictions. |
433 | 5.14M | dequant_block( |
434 | 5.14M | inv_global_scale, row_quant[bx], dec_state->x_dm_multiplier, |
435 | 5.14M | dec_state->b_dm_multiplier, x_cc_mul, b_cc_mul, acs.Strategy(), |
436 | 5.14M | size, dec_state->shared->quantizer, |
437 | 5.14M | acs.covered_blocks_y() * acs.covered_blocks_x(), sbx, dc_rows, |
438 | 5.14M | dc_stride, |
439 | 5.14M | dec_state->output_encoding_info.opsin_params.quant_biases, qblock, |
440 | 5.14M | block, group_dec_cache->scratch_space); |
441 | | |
442 | 15.3M | for (size_t c : {1, 0, 2}) { |
443 | 15.3M | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { |
444 | 1.18M | continue; |
445 | 1.18M | } |
446 | | // IDCT |
447 | 14.1M | float* JXL_RESTRICT idct_pos = idct_row[c] + sbx[c] * kBlockDim; |
448 | 14.1M | TransformToPixels(acs.Strategy(), block + c * size, idct_pos, |
449 | 14.1M | idct_stride[c], group_dec_cache->scratch_space); |
450 | 14.1M | } |
451 | 5.14M | } |
452 | 5.14M | bx += llf_x; |
453 | 5.14M | } |
454 | 1.49M | } |
455 | 656k | } |
456 | 42.6k | return true; |
457 | 43.4k | } jxl::N_SSE4::DecodeGroupImpl(jxl::FrameHeader const&, jxl::GetBlock*, jxl::GroupDecCache*, jxl::PassesDecoderState*, unsigned long, unsigned long, jxl::RenderPipelineInput&, jxl::jpeg::JPEGData*, jxl::DrawMode) Line | Count | Source | 189 | 8.82k | jpeg::JPEGData* jpeg_data, DrawMode draw) { | 190 | | // TODO(veluca): investigate cache usage in this function. | 191 | 8.82k | const Rect block_rect = | 192 | 8.82k | dec_state->shared->frame_dim.BlockGroupRect(group_idx); | 193 | 8.82k | const AcStrategyImage& ac_strategy = dec_state->shared->ac_strategy; | 194 | | | 195 | 8.82k | const size_t xsize_blocks = block_rect.xsize(); | 196 | 8.82k | const size_t ysize_blocks = block_rect.ysize(); | 197 | | | 198 | 8.82k | const size_t dc_stride = dec_state->shared->dc->PixelsPerRow(); | 199 | | | 200 | 8.82k | const float inv_global_scale = dec_state->shared->quantizer.InvGlobalScale(); | 201 | | | 202 | 8.82k | const YCbCrChromaSubsampling& cs = frame_header.chroma_subsampling; | 203 | | | 204 | 8.82k | const auto kJpegDctMin = Set(di16_full, -4095); | 205 | 8.82k | const auto kJpegDctMax = Set(di16_full, 4095); | 206 | | | 207 | 8.82k | size_t idct_stride[3]; | 208 | 35.3k | for (size_t c = 0; c < 3; c++) { | 209 | 26.4k | idct_stride[c] = render_pipeline_input.GetBuffer(c).first->PixelsPerRow(); | 210 | 26.4k | } | 211 | | | 212 | 8.82k | HWY_ALIGN int32_t scaled_qtable[64 * 3]; | 213 | | | 214 | 8.82k | ACType ac_type = dec_state->coefficients->Type(); | 215 | 8.82k | auto dequant_block = ac_type == ACType::k16 ? DequantBlock<ACType::k16> | 216 | 8.82k | : DequantBlock<ACType::k32>; | 217 | | // Whether or not coefficients should be stored for future usage, and/or read | 218 | | // from past usage. | 219 | 8.82k | bool accumulate = !dec_state->coefficients->IsEmpty(); | 220 | | // Offset of the current block in the group. | 221 | 8.82k | size_t offset = 0; | 222 | | | 223 | 8.82k | std::array<int, 3> jpeg_c_map; | 224 | 8.82k | bool jpeg_is_gray = false; | 225 | 8.82k | std::array<int, 3> dcoff = {}; | 226 | | | 227 | | // TODO(veluca): all of this should be done only once per image. | 228 | 8.82k | const ColorCorrelation& color_correlation = dec_state->shared->cmap.base(); | 229 | 8.82k | if (jpeg_data) { | 230 | 0 | if (!color_correlation.IsJPEGCompatible()) { | 231 | 0 | return JXL_FAILURE("The CfL map is not JPEG-compatible"); | 232 | 0 | } | 233 | 0 | jpeg_is_gray = (jpeg_data->components.size() == 1); | 234 | 0 | JXL_ENSURE(frame_header.color_transform != ColorTransform::kXYB); | 235 | 0 | jpeg_c_map = JpegOrder(frame_header.color_transform, jpeg_is_gray); | 236 | 0 | const std::vector<QuantEncoding>& qe = | 237 | 0 | dec_state->shared->matrices.encodings(); | 238 | 0 | if (qe.empty() || qe[0].mode != QuantEncoding::Mode::kQuantModeRAW || | 239 | 0 | std::abs(qe[0].qraw.qtable_den - 1.f / (8 * 255)) > 1e-8f) { | 240 | 0 | return JXL_FAILURE( | 241 | 0 | "Quantization table is not a JPEG quantization table."); | 242 | 0 | } | 243 | 0 | JXL_ENSURE(qe[0].qraw.qtable->size() == 3 * 8 * 8); | 244 | 0 | int* qtable = qe[0].qraw.qtable->data(); | 245 | 0 | for (size_t c = 0; c < 3; c++) { | 246 | 0 | if (frame_header.color_transform == ColorTransform::kNone) { | 247 | 0 | dcoff[c] = 1024 / qtable[64 * c]; | 248 | 0 | } | 249 | 0 | for (size_t i = 0; i < 64; i++) { | 250 | | // Transpose the matrix, as it will be used on the transposed block. | 251 | 0 | int num = qtable[64 + i]; | 252 | 0 | int den = qtable[64 * c + i]; | 253 | 0 | if (num <= 0 || den <= 0 || num >= 65536 || den >= 65536) { | 254 | 0 | return JXL_FAILURE("Invalid JPEG quantization table"); | 255 | 0 | } | 256 | 0 | scaled_qtable[64 * c + (i % 8) * 8 + (i / 8)] = | 257 | 0 | (1 << kCFLFixedPointPrecision) * num / den; | 258 | 0 | } | 259 | 0 | } | 260 | 0 | } | 261 | | | 262 | 8.82k | size_t hshift[3] = {cs.HShift(0), cs.HShift(1), cs.HShift(2)}; | 263 | 8.82k | size_t vshift[3] = {cs.VShift(0), cs.VShift(1), cs.VShift(2)}; | 264 | 8.82k | Rect r[3]; | 265 | 35.2k | for (size_t i = 0; i < 3; i++) { | 266 | 26.4k | r[i] = | 267 | 26.4k | Rect(block_rect.x0() >> hshift[i], block_rect.y0() >> vshift[i], | 268 | 26.4k | block_rect.xsize() >> hshift[i], block_rect.ysize() >> vshift[i]); | 269 | 26.4k | if (!r[i].IsInside({0, 0, dec_state->shared->dc->Plane(i).xsize(), | 270 | 26.4k | dec_state->shared->dc->Plane(i).ysize()})) { | 271 | 0 | return JXL_FAILURE("Frame dimensions are too big for the image."); | 272 | 0 | } | 273 | 26.4k | } | 274 | | | 275 | 180k | for (size_t by = 0; by < ysize_blocks; ++by) { | 276 | 172k | get_block->StartRow(by); | 277 | 172k | size_t sby[3] = {by >> vshift[0], by >> vshift[1], by >> vshift[2]}; | 278 | | | 279 | 172k | const int32_t* JXL_RESTRICT row_quant = | 280 | 172k | block_rect.ConstRow(dec_state->shared->raw_quant_field, by); | 281 | | | 282 | 172k | const float* JXL_RESTRICT dc_rows[3] = { | 283 | 172k | r[0].ConstPlaneRow(*dec_state->shared->dc, 0, sby[0]), | 284 | 172k | r[1].ConstPlaneRow(*dec_state->shared->dc, 1, sby[1]), | 285 | 172k | r[2].ConstPlaneRow(*dec_state->shared->dc, 2, sby[2]), | 286 | 172k | }; | 287 | | | 288 | 172k | const size_t ty = (block_rect.y0() + by) / kColorTileDimInBlocks; | 289 | 172k | AcStrategyRow acs_row = ac_strategy.ConstRow(block_rect, by); | 290 | | | 291 | 172k | const int8_t* JXL_RESTRICT row_cmap[3] = { | 292 | 172k | dec_state->shared->cmap.ytox_map.ConstRow(ty), | 293 | 172k | nullptr, | 294 | 172k | dec_state->shared->cmap.ytob_map.ConstRow(ty), | 295 | 172k | }; | 296 | | | 297 | 172k | float* JXL_RESTRICT idct_row[3]; | 298 | 172k | int16_t* JXL_RESTRICT jpeg_row[3]; | 299 | 688k | for (size_t c = 0; c < 3; c++) { | 300 | 516k | const auto& buffer = render_pipeline_input.GetBuffer(c); | 301 | 516k | idct_row[c] = buffer.second.Row(buffer.first, sby[c] * kBlockDim); | 302 | 516k | if (jpeg_data) { | 303 | 0 | auto& component = jpeg_data->components[jpeg_c_map[c]]; | 304 | 0 | jpeg_row[c] = | 305 | 0 | component.coeffs.data() + | 306 | 0 | (component.width_in_blocks * (r[c].y0() + sby[c]) + r[c].x0()) * | 307 | 0 | kDCTBlockSize; | 308 | 0 | } | 309 | 516k | } | 310 | | | 311 | 172k | size_t bx = 0; | 312 | 576k | for (size_t tx = 0; tx < DivCeil(xsize_blocks, kColorTileDimInBlocks); | 313 | 404k | tx++) { | 314 | 404k | size_t abs_tx = tx + block_rect.x0() / kColorTileDimInBlocks; | 315 | 404k | auto x_cc_mul = Set(d, color_correlation.YtoXRatio(row_cmap[0][abs_tx])); | 316 | 404k | auto b_cc_mul = Set(d, color_correlation.YtoBRatio(row_cmap[2][abs_tx])); | 317 | | // Increment bx by llf_x because those iterations would otherwise | 318 | | // immediately continue (!IsFirstBlock). Reduces mispredictions. | 319 | 1.78M | for (; bx < xsize_blocks && bx < (tx + 1) * kColorTileDimInBlocks;) { | 320 | 1.38M | size_t sbx[3] = {bx >> hshift[0], bx >> hshift[1], bx >> hshift[2]}; | 321 | 1.38M | AcStrategy acs = acs_row[bx]; | 322 | 1.38M | const size_t llf_x = acs.covered_blocks_x(); | 323 | | | 324 | | // Can only happen in the second or lower rows of a varblock. | 325 | 1.38M | if (JXL_UNLIKELY(!acs.IsFirstBlock())) { | 326 | 38.1k | bx += llf_x; | 327 | 38.1k | continue; | 328 | 38.1k | } | 329 | 1.34M | const size_t log2_covered_blocks = acs.log2_covered_blocks(); | 330 | | | 331 | 1.34M | const size_t covered_blocks = 1 << log2_covered_blocks; | 332 | 1.34M | const size_t size = covered_blocks * kDCTBlockSize; | 333 | | | 334 | 1.34M | ACPtr qblock[3]; | 335 | 1.34M | if (accumulate) { | 336 | 752 | for (size_t c = 0; c < 3; c++) { | 337 | 564 | qblock[c] = dec_state->coefficients->PlaneRow(c, group_idx, offset); | 338 | 564 | } | 339 | 1.34M | } else { | 340 | | // No point in reading from bitstream without accumulating and not | 341 | | // drawing. | 342 | 1.34M | JXL_ENSURE(draw == kDraw); | 343 | 1.34M | if (ac_type == ACType::k16) { | 344 | 1.14M | memset(group_dec_cache->dec_group_qblock16, 0, | 345 | 1.14M | size * 3 * sizeof(int16_t)); | 346 | 4.58M | for (size_t c = 0; c < 3; c++) { | 347 | 3.43M | qblock[c].ptr16 = group_dec_cache->dec_group_qblock16 + c * size; | 348 | 3.43M | } | 349 | 1.14M | } else { | 350 | 199k | memset(group_dec_cache->dec_group_qblock, 0, | 351 | 199k | size * 3 * sizeof(int32_t)); | 352 | 797k | for (size_t c = 0; c < 3; c++) { | 353 | 598k | qblock[c].ptr32 = group_dec_cache->dec_group_qblock + c * size; | 354 | 598k | } | 355 | 199k | } | 356 | 1.34M | } | 357 | 1.34M | JXL_RETURN_IF_ERROR(get_block->LoadBlock( | 358 | 1.34M | bx, by, acs, size, log2_covered_blocks, qblock, ac_type)); | 359 | 1.34M | offset += size; | 360 | 1.34M | if (draw == kDontDraw) { | 361 | 86 | bx += llf_x; | 362 | 86 | continue; | 363 | 86 | } | 364 | | | 365 | 1.34M | if (JXL_UNLIKELY(jpeg_data)) { | 366 | 0 | if (acs.Strategy() != AcStrategyType::DCT) { | 367 | 0 | return JXL_FAILURE( | 368 | 0 | "Can only decode to JPEG if only DCT-8 is used."); | 369 | 0 | } | 370 | | | 371 | 0 | HWY_ALIGN int32_t transposed_dct_y[64]; | 372 | 0 | for (size_t c : {1, 0, 2}) { | 373 | | // Propagate only Y for grayscale. | 374 | 0 | if (jpeg_is_gray && c != 1) { | 375 | 0 | continue; | 376 | 0 | } | 377 | 0 | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 378 | 0 | continue; | 379 | 0 | } | 380 | 0 | int16_t* JXL_RESTRICT jpeg_pos = | 381 | 0 | jpeg_row[c] + sbx[c] * kDCTBlockSize; | 382 | | // JPEG XL is transposed, JPEG is not. | 383 | 0 | auto* transposed_dct = qblock[c].ptr32; | 384 | 0 | Transpose8x8InPlace(transposed_dct); | 385 | | // No CfL - no need to store the y block converted to integers. | 386 | 0 | if (!cs.Is444() || | 387 | 0 | (row_cmap[0][abs_tx] == 0 && row_cmap[2][abs_tx] == 0)) { | 388 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 389 | 0 | const auto ini = Load(di, transposed_dct + i); | 390 | 0 | const auto ini16 = DemoteTo(di16, ini); | 391 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 392 | 0 | } | 393 | 0 | } else if (c == 1) { | 394 | | // Y channel: save for restoring X/B, but nothing else to do. | 395 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 396 | 0 | const auto ini = Load(di, transposed_dct + i); | 397 | 0 | Store(ini, di, transposed_dct_y + i); | 398 | 0 | const auto ini16 = DemoteTo(di16, ini); | 399 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 400 | 0 | } | 401 | 0 | } else { | 402 | | // transposed_dct_y contains the y channel block, transposed. | 403 | 0 | const auto scale = | 404 | 0 | Set(di, ColorCorrelation::RatioJPEG(row_cmap[c][abs_tx])); | 405 | 0 | const auto round = Set(di, 1 << (kCFLFixedPointPrecision - 1)); | 406 | 0 | for (int i = 0; i < 64; i += Lanes(d)) { | 407 | 0 | auto in = Load(di, transposed_dct + i); | 408 | 0 | auto in_y = Load(di, transposed_dct_y + i); | 409 | 0 | auto qt = Load(di, scaled_qtable + c * size + i); | 410 | 0 | auto coeff_scale = ShiftRight<kCFLFixedPointPrecision>( | 411 | 0 | Add(Mul(qt, scale), round)); | 412 | 0 | auto cfl_factor = ShiftRight<kCFLFixedPointPrecision>( | 413 | 0 | Add(Mul(in_y, coeff_scale), round)); | 414 | 0 | StoreU(DemoteTo(di16, Add(in, cfl_factor)), di16, jpeg_pos + i); | 415 | 0 | } | 416 | 0 | } | 417 | 0 | jpeg_pos[0] = | 418 | 0 | Clamp1<float>(dc_rows[c][sbx[c]] - dcoff[c], -2047, 2047); | 419 | 0 | auto overflow = MaskFromVec(Set(di16_full, 0)); | 420 | 0 | auto underflow = MaskFromVec(Set(di16_full, 0)); | 421 | 0 | for (int i = 0; i < 64; i += Lanes(di16_full)) { | 422 | 0 | auto in = LoadU(di16_full, jpeg_pos + i); | 423 | 0 | overflow = Or(overflow, Gt(in, kJpegDctMax)); | 424 | 0 | underflow = Or(underflow, Lt(in, kJpegDctMin)); | 425 | 0 | } | 426 | 0 | if (!AllFalse(di16_full, Or(overflow, underflow))) { | 427 | 0 | return JXL_FAILURE("JPEG DCT coefficients out of range"); | 428 | 0 | } | 429 | 0 | } | 430 | 1.34M | } else { | 431 | 1.34M | HWY_ALIGN float* const block = group_dec_cache->dec_group_block; | 432 | | // Dequantize and add predictions. | 433 | 1.34M | dequant_block( | 434 | 1.34M | inv_global_scale, row_quant[bx], dec_state->x_dm_multiplier, | 435 | 1.34M | dec_state->b_dm_multiplier, x_cc_mul, b_cc_mul, acs.Strategy(), | 436 | 1.34M | size, dec_state->shared->quantizer, | 437 | 1.34M | acs.covered_blocks_y() * acs.covered_blocks_x(), sbx, dc_rows, | 438 | 1.34M | dc_stride, | 439 | 1.34M | dec_state->output_encoding_info.opsin_params.quant_biases, qblock, | 440 | 1.34M | block, group_dec_cache->scratch_space); | 441 | | | 442 | 4.00M | for (size_t c : {1, 0, 2}) { | 443 | 4.00M | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 444 | 313k | continue; | 445 | 313k | } | 446 | | // IDCT | 447 | 3.69M | float* JXL_RESTRICT idct_pos = idct_row[c] + sbx[c] * kBlockDim; | 448 | 3.69M | TransformToPixels(acs.Strategy(), block + c * size, idct_pos, | 449 | 3.69M | idct_stride[c], group_dec_cache->scratch_space); | 450 | 3.69M | } | 451 | 1.34M | } | 452 | 1.34M | bx += llf_x; | 453 | 1.34M | } | 454 | 404k | } | 455 | 172k | } | 456 | 8.64k | return true; | 457 | 8.82k | } |
jxl::N_AVX2::DecodeGroupImpl(jxl::FrameHeader const&, jxl::GetBlock*, jxl::GroupDecCache*, jxl::PassesDecoderState*, unsigned long, unsigned long, jxl::RenderPipelineInput&, jxl::jpeg::JPEGData*, jxl::DrawMode) Line | Count | Source | 189 | 25.4k | jpeg::JPEGData* jpeg_data, DrawMode draw) { | 190 | | // TODO(veluca): investigate cache usage in this function. | 191 | 25.4k | const Rect block_rect = | 192 | 25.4k | dec_state->shared->frame_dim.BlockGroupRect(group_idx); | 193 | 25.4k | const AcStrategyImage& ac_strategy = dec_state->shared->ac_strategy; | 194 | | | 195 | 25.4k | const size_t xsize_blocks = block_rect.xsize(); | 196 | 25.4k | const size_t ysize_blocks = block_rect.ysize(); | 197 | | | 198 | 25.4k | const size_t dc_stride = dec_state->shared->dc->PixelsPerRow(); | 199 | | | 200 | 25.4k | const float inv_global_scale = dec_state->shared->quantizer.InvGlobalScale(); | 201 | | | 202 | 25.4k | const YCbCrChromaSubsampling& cs = frame_header.chroma_subsampling; | 203 | | | 204 | 25.4k | const auto kJpegDctMin = Set(di16_full, -4095); | 205 | 25.4k | const auto kJpegDctMax = Set(di16_full, 4095); | 206 | | | 207 | 25.4k | size_t idct_stride[3]; | 208 | 101k | for (size_t c = 0; c < 3; c++) { | 209 | 76.1k | idct_stride[c] = render_pipeline_input.GetBuffer(c).first->PixelsPerRow(); | 210 | 76.1k | } | 211 | | | 212 | 25.4k | HWY_ALIGN int32_t scaled_qtable[64 * 3]; | 213 | | | 214 | 25.4k | ACType ac_type = dec_state->coefficients->Type(); | 215 | 25.4k | auto dequant_block = ac_type == ACType::k16 ? DequantBlock<ACType::k16> | 216 | 25.4k | : DequantBlock<ACType::k32>; | 217 | | // Whether or not coefficients should be stored for future usage, and/or read | 218 | | // from past usage. | 219 | 25.4k | bool accumulate = !dec_state->coefficients->IsEmpty(); | 220 | | // Offset of the current block in the group. | 221 | 25.4k | size_t offset = 0; | 222 | | | 223 | 25.4k | std::array<int, 3> jpeg_c_map; | 224 | 25.4k | bool jpeg_is_gray = false; | 225 | 25.4k | std::array<int, 3> dcoff = {}; | 226 | | | 227 | | // TODO(veluca): all of this should be done only once per image. | 228 | 25.4k | const ColorCorrelation& color_correlation = dec_state->shared->cmap.base(); | 229 | 25.4k | if (jpeg_data) { | 230 | 0 | if (!color_correlation.IsJPEGCompatible()) { | 231 | 0 | return JXL_FAILURE("The CfL map is not JPEG-compatible"); | 232 | 0 | } | 233 | 0 | jpeg_is_gray = (jpeg_data->components.size() == 1); | 234 | 0 | JXL_ENSURE(frame_header.color_transform != ColorTransform::kXYB); | 235 | 0 | jpeg_c_map = JpegOrder(frame_header.color_transform, jpeg_is_gray); | 236 | 0 | const std::vector<QuantEncoding>& qe = | 237 | 0 | dec_state->shared->matrices.encodings(); | 238 | 0 | if (qe.empty() || qe[0].mode != QuantEncoding::Mode::kQuantModeRAW || | 239 | 0 | std::abs(qe[0].qraw.qtable_den - 1.f / (8 * 255)) > 1e-8f) { | 240 | 0 | return JXL_FAILURE( | 241 | 0 | "Quantization table is not a JPEG quantization table."); | 242 | 0 | } | 243 | 0 | JXL_ENSURE(qe[0].qraw.qtable->size() == 3 * 8 * 8); | 244 | 0 | int* qtable = qe[0].qraw.qtable->data(); | 245 | 0 | for (size_t c = 0; c < 3; c++) { | 246 | 0 | if (frame_header.color_transform == ColorTransform::kNone) { | 247 | 0 | dcoff[c] = 1024 / qtable[64 * c]; | 248 | 0 | } | 249 | 0 | for (size_t i = 0; i < 64; i++) { | 250 | | // Transpose the matrix, as it will be used on the transposed block. | 251 | 0 | int num = qtable[64 + i]; | 252 | 0 | int den = qtable[64 * c + i]; | 253 | 0 | if (num <= 0 || den <= 0 || num >= 65536 || den >= 65536) { | 254 | 0 | return JXL_FAILURE("Invalid JPEG quantization table"); | 255 | 0 | } | 256 | 0 | scaled_qtable[64 * c + (i % 8) * 8 + (i / 8)] = | 257 | 0 | (1 << kCFLFixedPointPrecision) * num / den; | 258 | 0 | } | 259 | 0 | } | 260 | 0 | } | 261 | | | 262 | 25.4k | size_t hshift[3] = {cs.HShift(0), cs.HShift(1), cs.HShift(2)}; | 263 | 25.4k | size_t vshift[3] = {cs.VShift(0), cs.VShift(1), cs.VShift(2)}; | 264 | 25.4k | Rect r[3]; | 265 | 101k | for (size_t i = 0; i < 3; i++) { | 266 | 76.1k | r[i] = | 267 | 76.1k | Rect(block_rect.x0() >> hshift[i], block_rect.y0() >> vshift[i], | 268 | 76.1k | block_rect.xsize() >> hshift[i], block_rect.ysize() >> vshift[i]); | 269 | 76.1k | if (!r[i].IsInside({0, 0, dec_state->shared->dc->Plane(i).xsize(), | 270 | 76.1k | dec_state->shared->dc->Plane(i).ysize()})) { | 271 | 0 | return JXL_FAILURE("Frame dimensions are too big for the image."); | 272 | 0 | } | 273 | 76.1k | } | 274 | | | 275 | 322k | for (size_t by = 0; by < ysize_blocks; ++by) { | 276 | 297k | get_block->StartRow(by); | 277 | 297k | size_t sby[3] = {by >> vshift[0], by >> vshift[1], by >> vshift[2]}; | 278 | | | 279 | 297k | const int32_t* JXL_RESTRICT row_quant = | 280 | 297k | block_rect.ConstRow(dec_state->shared->raw_quant_field, by); | 281 | | | 282 | 297k | const float* JXL_RESTRICT dc_rows[3] = { | 283 | 297k | r[0].ConstPlaneRow(*dec_state->shared->dc, 0, sby[0]), | 284 | 297k | r[1].ConstPlaneRow(*dec_state->shared->dc, 1, sby[1]), | 285 | 297k | r[2].ConstPlaneRow(*dec_state->shared->dc, 2, sby[2]), | 286 | 297k | }; | 287 | | | 288 | 297k | const size_t ty = (block_rect.y0() + by) / kColorTileDimInBlocks; | 289 | 297k | AcStrategyRow acs_row = ac_strategy.ConstRow(block_rect, by); | 290 | | | 291 | 297k | const int8_t* JXL_RESTRICT row_cmap[3] = { | 292 | 297k | dec_state->shared->cmap.ytox_map.ConstRow(ty), | 293 | 297k | nullptr, | 294 | 297k | dec_state->shared->cmap.ytob_map.ConstRow(ty), | 295 | 297k | }; | 296 | | | 297 | 297k | float* JXL_RESTRICT idct_row[3]; | 298 | 297k | int16_t* JXL_RESTRICT jpeg_row[3]; | 299 | 1.19M | for (size_t c = 0; c < 3; c++) { | 300 | 892k | const auto& buffer = render_pipeline_input.GetBuffer(c); | 301 | 892k | idct_row[c] = buffer.second.Row(buffer.first, sby[c] * kBlockDim); | 302 | 892k | if (jpeg_data) { | 303 | 0 | auto& component = jpeg_data->components[jpeg_c_map[c]]; | 304 | 0 | jpeg_row[c] = | 305 | 0 | component.coeffs.data() + | 306 | 0 | (component.width_in_blocks * (r[c].y0() + sby[c]) + r[c].x0()) * | 307 | 0 | kDCTBlockSize; | 308 | 0 | } | 309 | 892k | } | 310 | | | 311 | 297k | size_t bx = 0; | 312 | 948k | for (size_t tx = 0; tx < DivCeil(xsize_blocks, kColorTileDimInBlocks); | 313 | 651k | tx++) { | 314 | 651k | size_t abs_tx = tx + block_rect.x0() / kColorTileDimInBlocks; | 315 | 651k | auto x_cc_mul = Set(d, color_correlation.YtoXRatio(row_cmap[0][abs_tx])); | 316 | 651k | auto b_cc_mul = Set(d, color_correlation.YtoBRatio(row_cmap[2][abs_tx])); | 317 | | // Increment bx by llf_x because those iterations would otherwise | 318 | | // immediately continue (!IsFirstBlock). Reduces mispredictions. | 319 | 3.05M | for (; bx < xsize_blocks && bx < (tx + 1) * kColorTileDimInBlocks;) { | 320 | 2.40M | size_t sbx[3] = {bx >> hshift[0], bx >> hshift[1], bx >> hshift[2]}; | 321 | 2.40M | AcStrategy acs = acs_row[bx]; | 322 | 2.40M | const size_t llf_x = acs.covered_blocks_x(); | 323 | | | 324 | | // Can only happen in the second or lower rows of a varblock. | 325 | 2.40M | if (JXL_UNLIKELY(!acs.IsFirstBlock())) { | 326 | 74.5k | bx += llf_x; | 327 | 74.5k | continue; | 328 | 74.5k | } | 329 | 2.33M | const size_t log2_covered_blocks = acs.log2_covered_blocks(); | 330 | | | 331 | 2.33M | const size_t covered_blocks = 1 << log2_covered_blocks; | 332 | 2.33M | const size_t size = covered_blocks * kDCTBlockSize; | 333 | | | 334 | 2.33M | ACPtr qblock[3]; | 335 | 2.33M | if (accumulate) { | 336 | 27.6k | for (size_t c = 0; c < 3; c++) { | 337 | 20.7k | qblock[c] = dec_state->coefficients->PlaneRow(c, group_idx, offset); | 338 | 20.7k | } | 339 | 2.32M | } else { | 340 | | // No point in reading from bitstream without accumulating and not | 341 | | // drawing. | 342 | 2.32M | JXL_ENSURE(draw == kDraw); | 343 | 2.32M | if (ac_type == ACType::k16) { | 344 | 2.09M | memset(group_dec_cache->dec_group_qblock16, 0, | 345 | 2.09M | size * 3 * sizeof(int16_t)); | 346 | 8.36M | for (size_t c = 0; c < 3; c++) { | 347 | 6.27M | qblock[c].ptr16 = group_dec_cache->dec_group_qblock16 + c * size; | 348 | 6.27M | } | 349 | 2.09M | } else { | 350 | 235k | memset(group_dec_cache->dec_group_qblock, 0, | 351 | 235k | size * 3 * sizeof(int32_t)); | 352 | 941k | for (size_t c = 0; c < 3; c++) { | 353 | 705k | qblock[c].ptr32 = group_dec_cache->dec_group_qblock + c * size; | 354 | 705k | } | 355 | 235k | } | 356 | 2.32M | } | 357 | 2.33M | JXL_RETURN_IF_ERROR(get_block->LoadBlock( | 358 | 2.33M | bx, by, acs, size, log2_covered_blocks, qblock, ac_type)); | 359 | 2.33M | offset += size; | 360 | 2.33M | if (draw == kDontDraw) { | 361 | 5.11k | bx += llf_x; | 362 | 5.11k | continue; | 363 | 5.11k | } | 364 | | | 365 | 2.32M | if (JXL_UNLIKELY(jpeg_data)) { | 366 | 0 | if (acs.Strategy() != AcStrategyType::DCT) { | 367 | 0 | return JXL_FAILURE( | 368 | 0 | "Can only decode to JPEG if only DCT-8 is used."); | 369 | 0 | } | 370 | | | 371 | 0 | HWY_ALIGN int32_t transposed_dct_y[64]; | 372 | 0 | for (size_t c : {1, 0, 2}) { | 373 | | // Propagate only Y for grayscale. | 374 | 0 | if (jpeg_is_gray && c != 1) { | 375 | 0 | continue; | 376 | 0 | } | 377 | 0 | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 378 | 0 | continue; | 379 | 0 | } | 380 | 0 | int16_t* JXL_RESTRICT jpeg_pos = | 381 | 0 | jpeg_row[c] + sbx[c] * kDCTBlockSize; | 382 | | // JPEG XL is transposed, JPEG is not. | 383 | 0 | auto* transposed_dct = qblock[c].ptr32; | 384 | 0 | Transpose8x8InPlace(transposed_dct); | 385 | | // No CfL - no need to store the y block converted to integers. | 386 | 0 | if (!cs.Is444() || | 387 | 0 | (row_cmap[0][abs_tx] == 0 && row_cmap[2][abs_tx] == 0)) { | 388 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 389 | 0 | const auto ini = Load(di, transposed_dct + i); | 390 | 0 | const auto ini16 = DemoteTo(di16, ini); | 391 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 392 | 0 | } | 393 | 0 | } else if (c == 1) { | 394 | | // Y channel: save for restoring X/B, but nothing else to do. | 395 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 396 | 0 | const auto ini = Load(di, transposed_dct + i); | 397 | 0 | Store(ini, di, transposed_dct_y + i); | 398 | 0 | const auto ini16 = DemoteTo(di16, ini); | 399 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 400 | 0 | } | 401 | 0 | } else { | 402 | | // transposed_dct_y contains the y channel block, transposed. | 403 | 0 | const auto scale = | 404 | 0 | Set(di, ColorCorrelation::RatioJPEG(row_cmap[c][abs_tx])); | 405 | 0 | const auto round = Set(di, 1 << (kCFLFixedPointPrecision - 1)); | 406 | 0 | for (int i = 0; i < 64; i += Lanes(d)) { | 407 | 0 | auto in = Load(di, transposed_dct + i); | 408 | 0 | auto in_y = Load(di, transposed_dct_y + i); | 409 | 0 | auto qt = Load(di, scaled_qtable + c * size + i); | 410 | 0 | auto coeff_scale = ShiftRight<kCFLFixedPointPrecision>( | 411 | 0 | Add(Mul(qt, scale), round)); | 412 | 0 | auto cfl_factor = ShiftRight<kCFLFixedPointPrecision>( | 413 | 0 | Add(Mul(in_y, coeff_scale), round)); | 414 | 0 | StoreU(DemoteTo(di16, Add(in, cfl_factor)), di16, jpeg_pos + i); | 415 | 0 | } | 416 | 0 | } | 417 | 0 | jpeg_pos[0] = | 418 | 0 | Clamp1<float>(dc_rows[c][sbx[c]] - dcoff[c], -2047, 2047); | 419 | 0 | auto overflow = MaskFromVec(Set(di16_full, 0)); | 420 | 0 | auto underflow = MaskFromVec(Set(di16_full, 0)); | 421 | 0 | for (int i = 0; i < 64; i += Lanes(di16_full)) { | 422 | 0 | auto in = LoadU(di16_full, jpeg_pos + i); | 423 | 0 | overflow = Or(overflow, Gt(in, kJpegDctMax)); | 424 | 0 | underflow = Or(underflow, Lt(in, kJpegDctMin)); | 425 | 0 | } | 426 | 0 | if (!AllFalse(di16_full, Or(overflow, underflow))) { | 427 | 0 | return JXL_FAILURE("JPEG DCT coefficients out of range"); | 428 | 0 | } | 429 | 0 | } | 430 | 2.32M | } else { | 431 | 2.32M | HWY_ALIGN float* const block = group_dec_cache->dec_group_block; | 432 | | // Dequantize and add predictions. | 433 | 2.32M | dequant_block( | 434 | 2.32M | inv_global_scale, row_quant[bx], dec_state->x_dm_multiplier, | 435 | 2.32M | dec_state->b_dm_multiplier, x_cc_mul, b_cc_mul, acs.Strategy(), | 436 | 2.32M | size, dec_state->shared->quantizer, | 437 | 2.32M | acs.covered_blocks_y() * acs.covered_blocks_x(), sbx, dc_rows, | 438 | 2.32M | dc_stride, | 439 | 2.32M | dec_state->output_encoding_info.opsin_params.quant_biases, qblock, | 440 | 2.32M | block, group_dec_cache->scratch_space); | 441 | | | 442 | 6.96M | for (size_t c : {1, 0, 2}) { | 443 | 6.96M | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 444 | 604k | continue; | 445 | 604k | } | 446 | | // IDCT | 447 | 6.36M | float* JXL_RESTRICT idct_pos = idct_row[c] + sbx[c] * kBlockDim; | 448 | 6.36M | TransformToPixels(acs.Strategy(), block + c * size, idct_pos, | 449 | 6.36M | idct_stride[c], group_dec_cache->scratch_space); | 450 | 6.36M | } | 451 | 2.32M | } | 452 | 2.32M | bx += llf_x; | 453 | 2.32M | } | 454 | 651k | } | 455 | 297k | } | 456 | 24.9k | return true; | 457 | 25.4k | } |
jxl::N_SSE2::DecodeGroupImpl(jxl::FrameHeader const&, jxl::GetBlock*, jxl::GroupDecCache*, jxl::PassesDecoderState*, unsigned long, unsigned long, jxl::RenderPipelineInput&, jxl::jpeg::JPEGData*, jxl::DrawMode) Line | Count | Source | 189 | 9.17k | jpeg::JPEGData* jpeg_data, DrawMode draw) { | 190 | | // TODO(veluca): investigate cache usage in this function. | 191 | 9.17k | const Rect block_rect = | 192 | 9.17k | dec_state->shared->frame_dim.BlockGroupRect(group_idx); | 193 | 9.17k | const AcStrategyImage& ac_strategy = dec_state->shared->ac_strategy; | 194 | | | 195 | 9.17k | const size_t xsize_blocks = block_rect.xsize(); | 196 | 9.17k | const size_t ysize_blocks = block_rect.ysize(); | 197 | | | 198 | 9.17k | const size_t dc_stride = dec_state->shared->dc->PixelsPerRow(); | 199 | | | 200 | 9.17k | const float inv_global_scale = dec_state->shared->quantizer.InvGlobalScale(); | 201 | | | 202 | 9.17k | const YCbCrChromaSubsampling& cs = frame_header.chroma_subsampling; | 203 | | | 204 | 9.17k | const auto kJpegDctMin = Set(di16_full, -4095); | 205 | 9.17k | const auto kJpegDctMax = Set(di16_full, 4095); | 206 | | | 207 | 9.17k | size_t idct_stride[3]; | 208 | 36.6k | for (size_t c = 0; c < 3; c++) { | 209 | 27.5k | idct_stride[c] = render_pipeline_input.GetBuffer(c).first->PixelsPerRow(); | 210 | 27.5k | } | 211 | | | 212 | 9.17k | HWY_ALIGN int32_t scaled_qtable[64 * 3]; | 213 | | | 214 | 9.17k | ACType ac_type = dec_state->coefficients->Type(); | 215 | 9.17k | auto dequant_block = ac_type == ACType::k16 ? DequantBlock<ACType::k16> | 216 | 9.17k | : DequantBlock<ACType::k32>; | 217 | | // Whether or not coefficients should be stored for future usage, and/or read | 218 | | // from past usage. | 219 | 9.17k | bool accumulate = !dec_state->coefficients->IsEmpty(); | 220 | | // Offset of the current block in the group. | 221 | 9.17k | size_t offset = 0; | 222 | | | 223 | 9.17k | std::array<int, 3> jpeg_c_map; | 224 | 9.17k | bool jpeg_is_gray = false; | 225 | 9.17k | std::array<int, 3> dcoff = {}; | 226 | | | 227 | | // TODO(veluca): all of this should be done only once per image. | 228 | 9.17k | const ColorCorrelation& color_correlation = dec_state->shared->cmap.base(); | 229 | 9.17k | if (jpeg_data) { | 230 | 0 | if (!color_correlation.IsJPEGCompatible()) { | 231 | 0 | return JXL_FAILURE("The CfL map is not JPEG-compatible"); | 232 | 0 | } | 233 | 0 | jpeg_is_gray = (jpeg_data->components.size() == 1); | 234 | 0 | JXL_ENSURE(frame_header.color_transform != ColorTransform::kXYB); | 235 | 0 | jpeg_c_map = JpegOrder(frame_header.color_transform, jpeg_is_gray); | 236 | 0 | const std::vector<QuantEncoding>& qe = | 237 | 0 | dec_state->shared->matrices.encodings(); | 238 | 0 | if (qe.empty() || qe[0].mode != QuantEncoding::Mode::kQuantModeRAW || | 239 | 0 | std::abs(qe[0].qraw.qtable_den - 1.f / (8 * 255)) > 1e-8f) { | 240 | 0 | return JXL_FAILURE( | 241 | 0 | "Quantization table is not a JPEG quantization table."); | 242 | 0 | } | 243 | 0 | JXL_ENSURE(qe[0].qraw.qtable->size() == 3 * 8 * 8); | 244 | 0 | int* qtable = qe[0].qraw.qtable->data(); | 245 | 0 | for (size_t c = 0; c < 3; c++) { | 246 | 0 | if (frame_header.color_transform == ColorTransform::kNone) { | 247 | 0 | dcoff[c] = 1024 / qtable[64 * c]; | 248 | 0 | } | 249 | 0 | for (size_t i = 0; i < 64; i++) { | 250 | | // Transpose the matrix, as it will be used on the transposed block. | 251 | 0 | int num = qtable[64 + i]; | 252 | 0 | int den = qtable[64 * c + i]; | 253 | 0 | if (num <= 0 || den <= 0 || num >= 65536 || den >= 65536) { | 254 | 0 | return JXL_FAILURE("Invalid JPEG quantization table"); | 255 | 0 | } | 256 | 0 | scaled_qtable[64 * c + (i % 8) * 8 + (i / 8)] = | 257 | 0 | (1 << kCFLFixedPointPrecision) * num / den; | 258 | 0 | } | 259 | 0 | } | 260 | 0 | } | 261 | | | 262 | 9.17k | size_t hshift[3] = {cs.HShift(0), cs.HShift(1), cs.HShift(2)}; | 263 | 9.17k | size_t vshift[3] = {cs.VShift(0), cs.VShift(1), cs.VShift(2)}; | 264 | 9.17k | Rect r[3]; | 265 | 36.6k | for (size_t i = 0; i < 3; i++) { | 266 | 27.4k | r[i] = | 267 | 27.4k | Rect(block_rect.x0() >> hshift[i], block_rect.y0() >> vshift[i], | 268 | 27.4k | block_rect.xsize() >> hshift[i], block_rect.ysize() >> vshift[i]); | 269 | 27.4k | if (!r[i].IsInside({0, 0, dec_state->shared->dc->Plane(i).xsize(), | 270 | 27.4k | dec_state->shared->dc->Plane(i).ysize()})) { | 271 | 0 | return JXL_FAILURE("Frame dimensions are too big for the image."); | 272 | 0 | } | 273 | 27.4k | } | 274 | | | 275 | 195k | for (size_t by = 0; by < ysize_blocks; ++by) { | 276 | 186k | get_block->StartRow(by); | 277 | 186k | size_t sby[3] = {by >> vshift[0], by >> vshift[1], by >> vshift[2]}; | 278 | | | 279 | 186k | const int32_t* JXL_RESTRICT row_quant = | 280 | 186k | block_rect.ConstRow(dec_state->shared->raw_quant_field, by); | 281 | | | 282 | 186k | const float* JXL_RESTRICT dc_rows[3] = { | 283 | 186k | r[0].ConstPlaneRow(*dec_state->shared->dc, 0, sby[0]), | 284 | 186k | r[1].ConstPlaneRow(*dec_state->shared->dc, 1, sby[1]), | 285 | 186k | r[2].ConstPlaneRow(*dec_state->shared->dc, 2, sby[2]), | 286 | 186k | }; | 287 | | | 288 | 186k | const size_t ty = (block_rect.y0() + by) / kColorTileDimInBlocks; | 289 | 186k | AcStrategyRow acs_row = ac_strategy.ConstRow(block_rect, by); | 290 | | | 291 | 186k | const int8_t* JXL_RESTRICT row_cmap[3] = { | 292 | 186k | dec_state->shared->cmap.ytox_map.ConstRow(ty), | 293 | 186k | nullptr, | 294 | 186k | dec_state->shared->cmap.ytob_map.ConstRow(ty), | 295 | 186k | }; | 296 | | | 297 | 186k | float* JXL_RESTRICT idct_row[3]; | 298 | 186k | int16_t* JXL_RESTRICT jpeg_row[3]; | 299 | 743k | for (size_t c = 0; c < 3; c++) { | 300 | 557k | const auto& buffer = render_pipeline_input.GetBuffer(c); | 301 | 557k | idct_row[c] = buffer.second.Row(buffer.first, sby[c] * kBlockDim); | 302 | 557k | if (jpeg_data) { | 303 | 0 | auto& component = jpeg_data->components[jpeg_c_map[c]]; | 304 | 0 | jpeg_row[c] = | 305 | 0 | component.coeffs.data() + | 306 | 0 | (component.width_in_blocks * (r[c].y0() + sby[c]) + r[c].x0()) * | 307 | 0 | kDCTBlockSize; | 308 | 0 | } | 309 | 557k | } | 310 | | | 311 | 186k | size_t bx = 0; | 312 | 629k | for (size_t tx = 0; tx < DivCeil(xsize_blocks, kColorTileDimInBlocks); | 313 | 443k | tx++) { | 314 | 443k | size_t abs_tx = tx + block_rect.x0() / kColorTileDimInBlocks; | 315 | 443k | auto x_cc_mul = Set(d, color_correlation.YtoXRatio(row_cmap[0][abs_tx])); | 316 | 443k | auto b_cc_mul = Set(d, color_correlation.YtoBRatio(row_cmap[2][abs_tx])); | 317 | | // Increment bx by llf_x because those iterations would otherwise | 318 | | // immediately continue (!IsFirstBlock). Reduces mispredictions. | 319 | 1.95M | for (; bx < xsize_blocks && bx < (tx + 1) * kColorTileDimInBlocks;) { | 320 | 1.50M | size_t sbx[3] = {bx >> hshift[0], bx >> hshift[1], bx >> hshift[2]}; | 321 | 1.50M | AcStrategy acs = acs_row[bx]; | 322 | 1.50M | const size_t llf_x = acs.covered_blocks_x(); | 323 | | | 324 | | // Can only happen in the second or lower rows of a varblock. | 325 | 1.50M | if (JXL_UNLIKELY(!acs.IsFirstBlock())) { | 326 | 40.3k | bx += llf_x; | 327 | 40.3k | continue; | 328 | 40.3k | } | 329 | 1.46M | const size_t log2_covered_blocks = acs.log2_covered_blocks(); | 330 | | | 331 | 1.46M | const size_t covered_blocks = 1 << log2_covered_blocks; | 332 | 1.46M | const size_t size = covered_blocks * kDCTBlockSize; | 333 | | | 334 | 1.46M | ACPtr qblock[3]; | 335 | 1.46M | if (accumulate) { | 336 | 796 | for (size_t c = 0; c < 3; c++) { | 337 | 597 | qblock[c] = dec_state->coefficients->PlaneRow(c, group_idx, offset); | 338 | 597 | } | 339 | 1.46M | } else { | 340 | | // No point in reading from bitstream without accumulating and not | 341 | | // drawing. | 342 | 1.46M | JXL_ENSURE(draw == kDraw); | 343 | 1.46M | if (ac_type == ACType::k16) { | 344 | 1.34M | memset(group_dec_cache->dec_group_qblock16, 0, | 345 | 1.34M | size * 3 * sizeof(int16_t)); | 346 | 5.37M | for (size_t c = 0; c < 3; c++) { | 347 | 4.03M | qblock[c].ptr16 = group_dec_cache->dec_group_qblock16 + c * size; | 348 | 4.03M | } | 349 | 1.34M | } else { | 350 | 125k | memset(group_dec_cache->dec_group_qblock, 0, | 351 | 125k | size * 3 * sizeof(int32_t)); | 352 | 502k | for (size_t c = 0; c < 3; c++) { | 353 | 376k | qblock[c].ptr32 = group_dec_cache->dec_group_qblock + c * size; | 354 | 376k | } | 355 | 125k | } | 356 | 1.46M | } | 357 | 1.46M | JXL_RETURN_IF_ERROR(get_block->LoadBlock( | 358 | 1.46M | bx, by, acs, size, log2_covered_blocks, qblock, ac_type)); | 359 | 1.46M | offset += size; | 360 | 1.46M | if (draw == kDontDraw) { | 361 | 143 | bx += llf_x; | 362 | 143 | continue; | 363 | 143 | } | 364 | | | 365 | 1.46M | if (JXL_UNLIKELY(jpeg_data)) { | 366 | 0 | if (acs.Strategy() != AcStrategyType::DCT) { | 367 | 0 | return JXL_FAILURE( | 368 | 0 | "Can only decode to JPEG if only DCT-8 is used."); | 369 | 0 | } | 370 | | | 371 | 0 | HWY_ALIGN int32_t transposed_dct_y[64]; | 372 | 0 | for (size_t c : {1, 0, 2}) { | 373 | | // Propagate only Y for grayscale. | 374 | 0 | if (jpeg_is_gray && c != 1) { | 375 | 0 | continue; | 376 | 0 | } | 377 | 0 | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 378 | 0 | continue; | 379 | 0 | } | 380 | 0 | int16_t* JXL_RESTRICT jpeg_pos = | 381 | 0 | jpeg_row[c] + sbx[c] * kDCTBlockSize; | 382 | | // JPEG XL is transposed, JPEG is not. | 383 | 0 | auto* transposed_dct = qblock[c].ptr32; | 384 | 0 | Transpose8x8InPlace(transposed_dct); | 385 | | // No CfL - no need to store the y block converted to integers. | 386 | 0 | if (!cs.Is444() || | 387 | 0 | (row_cmap[0][abs_tx] == 0 && row_cmap[2][abs_tx] == 0)) { | 388 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 389 | 0 | const auto ini = Load(di, transposed_dct + i); | 390 | 0 | const auto ini16 = DemoteTo(di16, ini); | 391 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 392 | 0 | } | 393 | 0 | } else if (c == 1) { | 394 | | // Y channel: save for restoring X/B, but nothing else to do. | 395 | 0 | for (size_t i = 0; i < 64; i += Lanes(d)) { | 396 | 0 | const auto ini = Load(di, transposed_dct + i); | 397 | 0 | Store(ini, di, transposed_dct_y + i); | 398 | 0 | const auto ini16 = DemoteTo(di16, ini); | 399 | 0 | StoreU(ini16, di16, jpeg_pos + i); | 400 | 0 | } | 401 | 0 | } else { | 402 | | // transposed_dct_y contains the y channel block, transposed. | 403 | 0 | const auto scale = | 404 | 0 | Set(di, ColorCorrelation::RatioJPEG(row_cmap[c][abs_tx])); | 405 | 0 | const auto round = Set(di, 1 << (kCFLFixedPointPrecision - 1)); | 406 | 0 | for (int i = 0; i < 64; i += Lanes(d)) { | 407 | 0 | auto in = Load(di, transposed_dct + i); | 408 | 0 | auto in_y = Load(di, transposed_dct_y + i); | 409 | 0 | auto qt = Load(di, scaled_qtable + c * size + i); | 410 | 0 | auto coeff_scale = ShiftRight<kCFLFixedPointPrecision>( | 411 | 0 | Add(Mul(qt, scale), round)); | 412 | 0 | auto cfl_factor = ShiftRight<kCFLFixedPointPrecision>( | 413 | 0 | Add(Mul(in_y, coeff_scale), round)); | 414 | 0 | StoreU(DemoteTo(di16, Add(in, cfl_factor)), di16, jpeg_pos + i); | 415 | 0 | } | 416 | 0 | } | 417 | 0 | jpeg_pos[0] = | 418 | 0 | Clamp1<float>(dc_rows[c][sbx[c]] - dcoff[c], -2047, 2047); | 419 | 0 | auto overflow = MaskFromVec(Set(di16_full, 0)); | 420 | 0 | auto underflow = MaskFromVec(Set(di16_full, 0)); | 421 | 0 | for (int i = 0; i < 64; i += Lanes(di16_full)) { | 422 | 0 | auto in = LoadU(di16_full, jpeg_pos + i); | 423 | 0 | overflow = Or(overflow, Gt(in, kJpegDctMax)); | 424 | 0 | underflow = Or(underflow, Lt(in, kJpegDctMin)); | 425 | 0 | } | 426 | 0 | if (!AllFalse(di16_full, Or(overflow, underflow))) { | 427 | 0 | return JXL_FAILURE("JPEG DCT coefficients out of range"); | 428 | 0 | } | 429 | 0 | } | 430 | 1.46M | } else { | 431 | 1.46M | HWY_ALIGN float* const block = group_dec_cache->dec_group_block; | 432 | | // Dequantize and add predictions. | 433 | 1.46M | dequant_block( | 434 | 1.46M | inv_global_scale, row_quant[bx], dec_state->x_dm_multiplier, | 435 | 1.46M | dec_state->b_dm_multiplier, x_cc_mul, b_cc_mul, acs.Strategy(), | 436 | 1.46M | size, dec_state->shared->quantizer, | 437 | 1.46M | acs.covered_blocks_y() * acs.covered_blocks_x(), sbx, dc_rows, | 438 | 1.46M | dc_stride, | 439 | 1.46M | dec_state->output_encoding_info.opsin_params.quant_biases, qblock, | 440 | 1.46M | block, group_dec_cache->scratch_space); | 441 | | | 442 | 4.37M | for (size_t c : {1, 0, 2}) { | 443 | 4.37M | if ((sbx[c] << hshift[c] != bx) || (sby[c] << vshift[c] != by)) { | 444 | 264k | continue; | 445 | 264k | } | 446 | | // IDCT | 447 | 4.11M | float* JXL_RESTRICT idct_pos = idct_row[c] + sbx[c] * kBlockDim; | 448 | 4.11M | TransformToPixels(acs.Strategy(), block + c * size, idct_pos, | 449 | 4.11M | idct_stride[c], group_dec_cache->scratch_space); | 450 | 4.11M | } | 451 | 1.46M | } | 452 | 1.46M | bx += llf_x; | 453 | 1.46M | } | 454 | 443k | } | 455 | 186k | } | 456 | 9.02k | return true; | 457 | 9.17k | } |
|
458 | | |
459 | | // NOLINTNEXTLINE(google-readability-namespace-comments) |
460 | | } // namespace HWY_NAMESPACE |
461 | | } // namespace jxl |
462 | | HWY_AFTER_NAMESPACE(); |
463 | | |
464 | | #if HWY_ONCE |
465 | | namespace jxl { |
466 | | namespace { |
467 | | // Decode quantized AC coefficients of DCT blocks. |
468 | | // LLF components in the output block will not be modified. |
469 | | template <ACType ac_type, bool uses_lz77> |
470 | | Status DecodeACVarBlock(size_t ctx_offset, size_t log2_covered_blocks, |
471 | | int32_t* JXL_RESTRICT row_nzeros, |
472 | | const int32_t* JXL_RESTRICT row_nzeros_top, |
473 | | size_t nzeros_stride, size_t c, size_t bx, size_t by, |
474 | | size_t lbx, AcStrategy acs, |
475 | | const coeff_order_t* JXL_RESTRICT coeff_order, |
476 | | BitReader* JXL_RESTRICT br, |
477 | | ANSSymbolReader* JXL_RESTRICT decoder, |
478 | | const std::vector<uint8_t>& context_map, |
479 | | const uint8_t* qdc_row, const int32_t* qf_row, |
480 | | const BlockCtxMap& block_ctx_map, ACPtr block, |
481 | 14.2M | size_t shift = 0) { |
482 | | // Equal to number of LLF coefficients. |
483 | 14.2M | const size_t covered_blocks = 1 << log2_covered_blocks; |
484 | 14.2M | const size_t size = covered_blocks * kDCTBlockSize; |
485 | 14.2M | int32_t predicted_nzeros = |
486 | 14.2M | PredictFromTopAndLeft(row_nzeros_top, row_nzeros, bx, 32); |
487 | | |
488 | 14.2M | size_t ord = kStrategyOrder[acs.RawStrategy()]; |
489 | 14.2M | const coeff_order_t* JXL_RESTRICT order = |
490 | 14.2M | &coeff_order[CoeffOrderOffset(ord, c)]; |
491 | | |
492 | 14.2M | size_t block_ctx = block_ctx_map.Context(qdc_row[lbx], qf_row[bx], ord, c); |
493 | 14.2M | const int32_t nzero_ctx = |
494 | 14.2M | block_ctx_map.NonZeroContext(predicted_nzeros, block_ctx) + ctx_offset; |
495 | | |
496 | 14.2M | size_t nzeros = |
497 | 14.2M | decoder->ReadHybridUintInlined<uses_lz77>(nzero_ctx, br, context_map); |
498 | 14.2M | if (nzeros > size - covered_blocks) { |
499 | 302 | return JXL_FAILURE("Invalid AC: nzeros %" PRIuS " too large for %" PRIuS |
500 | 302 | " 8x8 blocks", |
501 | 302 | nzeros, covered_blocks); |
502 | 302 | } |
503 | 28.8M | for (size_t y = 0; y < acs.covered_blocks_y(); y++) { |
504 | 42.6M | for (size_t x = 0; x < acs.covered_blocks_x(); x++) { |
505 | 27.9M | row_nzeros[bx + x + y * nzeros_stride] = |
506 | 27.9M | (nzeros + covered_blocks - 1) >> log2_covered_blocks; |
507 | 27.9M | } |
508 | 14.6M | } |
509 | | |
510 | 14.2M | const size_t histo_offset = |
511 | 14.2M | ctx_offset + block_ctx_map.ZeroDensityContextsOffset(block_ctx); |
512 | | |
513 | 14.2M | size_t prev = (nzeros > size / 16 ? 0 : 1); |
514 | 30.3M | for (size_t k = covered_blocks; k < size && nzeros != 0; ++k) { |
515 | 16.1M | const size_t ctx = |
516 | 16.1M | histo_offset + ZeroDensityContext(nzeros, k, covered_blocks, |
517 | 16.1M | log2_covered_blocks, prev); |
518 | 16.1M | const size_t u_coeff = |
519 | 16.1M | decoder->ReadHybridUintInlined<uses_lz77>(ctx, br, context_map); |
520 | | // Hand-rolled version of UnpackSigned, shifting before the conversion to |
521 | | // signed integer to avoid undefined behavior of shifting negative numbers. |
522 | 16.1M | const size_t magnitude = u_coeff >> 1; |
523 | 16.1M | const size_t neg_sign = (~u_coeff) & 1; |
524 | 16.1M | const ptrdiff_t coeff = |
525 | 16.1M | static_cast<ptrdiff_t>((magnitude ^ (neg_sign - 1)) << shift); |
526 | 16.1M | if (ac_type == ACType::k16) { |
527 | 7.48M | block.ptr16[order[k]] += coeff; |
528 | 8.64M | } else { |
529 | 8.64M | block.ptr32[order[k]] += coeff; |
530 | 8.64M | } |
531 | 16.1M | prev = static_cast<size_t>(u_coeff != 0); |
532 | 16.1M | nzeros -= prev; |
533 | 16.1M | } |
534 | 14.2M | if (JXL_UNLIKELY(nzeros != 0)) { |
535 | 505 | return JXL_FAILURE("Invalid AC: nzeros at end of block is %" PRIuS |
536 | 505 | ", should be 0. Block (%" PRIuS ", %" PRIuS |
537 | 505 | "), channel %" PRIuS, |
538 | 505 | nzeros, bx, by, c); |
539 | 505 | } |
540 | | |
541 | 14.2M | return true; |
542 | 14.2M | } dec_group.cc:jxl::Status jxl::(anonymous namespace)::DecodeACVarBlock<(jxl::ACType)0, true>(unsigned long, unsigned long, int*, int const*, unsigned long, unsigned long, unsigned long, unsigned long, unsigned long, jxl::AcStrategy, unsigned int const*, jxl::BitReader*, jxl::ANSSymbolReader*, std::__1::vector<unsigned char, std::__1::allocator<unsigned char> > const&, unsigned char const*, int const*, jxl::BlockCtxMap const&, jxl::ACPtr, unsigned long) Line | Count | Source | 481 | 10.8M | size_t shift = 0) { | 482 | | // Equal to number of LLF coefficients. | 483 | 10.8M | const size_t covered_blocks = 1 << log2_covered_blocks; | 484 | 10.8M | const size_t size = covered_blocks * kDCTBlockSize; | 485 | 10.8M | int32_t predicted_nzeros = | 486 | 10.8M | PredictFromTopAndLeft(row_nzeros_top, row_nzeros, bx, 32); | 487 | | | 488 | 10.8M | size_t ord = kStrategyOrder[acs.RawStrategy()]; | 489 | 10.8M | const coeff_order_t* JXL_RESTRICT order = | 490 | 10.8M | &coeff_order[CoeffOrderOffset(ord, c)]; | 491 | | | 492 | 10.8M | size_t block_ctx = block_ctx_map.Context(qdc_row[lbx], qf_row[bx], ord, c); | 493 | 10.8M | const int32_t nzero_ctx = | 494 | 10.8M | block_ctx_map.NonZeroContext(predicted_nzeros, block_ctx) + ctx_offset; | 495 | | | 496 | 10.8M | size_t nzeros = | 497 | 10.8M | decoder->ReadHybridUintInlined<uses_lz77>(nzero_ctx, br, context_map); | 498 | 10.8M | if (nzeros > size - covered_blocks) { | 499 | 42 | return JXL_FAILURE("Invalid AC: nzeros %" PRIuS " too large for %" PRIuS | 500 | 42 | " 8x8 blocks", | 501 | 42 | nzeros, covered_blocks); | 502 | 42 | } | 503 | 21.9M | for (size_t y = 0; y < acs.covered_blocks_y(); y++) { | 504 | 34.5M | for (size_t x = 0; x < acs.covered_blocks_x(); x++) { | 505 | 23.4M | row_nzeros[bx + x + y * nzeros_stride] = | 506 | 23.4M | (nzeros + covered_blocks - 1) >> log2_covered_blocks; | 507 | 23.4M | } | 508 | 11.0M | } | 509 | | | 510 | 10.8M | const size_t histo_offset = | 511 | 10.8M | ctx_offset + block_ctx_map.ZeroDensityContextsOffset(block_ctx); | 512 | | | 513 | 10.8M | size_t prev = (nzeros > size / 16 ? 0 : 1); | 514 | 11.8M | for (size_t k = covered_blocks; k < size && nzeros != 0; ++k) { | 515 | 998k | const size_t ctx = | 516 | 998k | histo_offset + ZeroDensityContext(nzeros, k, covered_blocks, | 517 | 998k | log2_covered_blocks, prev); | 518 | 998k | const size_t u_coeff = | 519 | 998k | decoder->ReadHybridUintInlined<uses_lz77>(ctx, br, context_map); | 520 | | // Hand-rolled version of UnpackSigned, shifting before the conversion to | 521 | | // signed integer to avoid undefined behavior of shifting negative numbers. | 522 | 998k | const size_t magnitude = u_coeff >> 1; | 523 | 998k | const size_t neg_sign = (~u_coeff) & 1; | 524 | 998k | const ptrdiff_t coeff = | 525 | 998k | static_cast<ptrdiff_t>((magnitude ^ (neg_sign - 1)) << shift); | 526 | 998k | if (ac_type == ACType::k16) { | 527 | 998k | block.ptr16[order[k]] += coeff; | 528 | 998k | } else { | 529 | 317 | block.ptr32[order[k]] += coeff; | 530 | 317 | } | 531 | 998k | prev = static_cast<size_t>(u_coeff != 0); | 532 | 998k | nzeros -= prev; | 533 | 998k | } | 534 | 10.8M | if (JXL_UNLIKELY(nzeros != 0)) { | 535 | 70 | return JXL_FAILURE("Invalid AC: nzeros at end of block is %" PRIuS | 536 | 70 | ", should be 0. Block (%" PRIuS ", %" PRIuS | 537 | 70 | "), channel %" PRIuS, | 538 | 70 | nzeros, bx, by, c); | 539 | 70 | } | 540 | | | 541 | 10.8M | return true; | 542 | 10.8M | } |
dec_group.cc:jxl::Status jxl::(anonymous namespace)::DecodeACVarBlock<(jxl::ACType)1, true>(unsigned long, unsigned long, int*, int const*, unsigned long, unsigned long, unsigned long, unsigned long, unsigned long, jxl::AcStrategy, unsigned int const*, jxl::BitReader*, jxl::ANSSymbolReader*, std::__1::vector<unsigned char, std::__1::allocator<unsigned char> > const&, unsigned char const*, int const*, jxl::BlockCtxMap const&, jxl::ACPtr, unsigned long) Line | Count | Source | 481 | 89.0k | size_t shift = 0) { | 482 | | // Equal to number of LLF coefficients. | 483 | 89.0k | const size_t covered_blocks = 1 << log2_covered_blocks; | 484 | 89.0k | const size_t size = covered_blocks * kDCTBlockSize; | 485 | 89.0k | int32_t predicted_nzeros = | 486 | 89.0k | PredictFromTopAndLeft(row_nzeros_top, row_nzeros, bx, 32); | 487 | | | 488 | 89.0k | size_t ord = kStrategyOrder[acs.RawStrategy()]; | 489 | 89.0k | const coeff_order_t* JXL_RESTRICT order = | 490 | 89.0k | &coeff_order[CoeffOrderOffset(ord, c)]; | 491 | | | 492 | 89.0k | size_t block_ctx = block_ctx_map.Context(qdc_row[lbx], qf_row[bx], ord, c); | 493 | 89.0k | const int32_t nzero_ctx = | 494 | 89.0k | block_ctx_map.NonZeroContext(predicted_nzeros, block_ctx) + ctx_offset; | 495 | | | 496 | 89.0k | size_t nzeros = | 497 | 89.0k | decoder->ReadHybridUintInlined<uses_lz77>(nzero_ctx, br, context_map); | 498 | 89.0k | if (nzeros > size - covered_blocks) { | 499 | 92 | return JXL_FAILURE("Invalid AC: nzeros %" PRIuS " too large for %" PRIuS | 500 | 92 | " 8x8 blocks", | 501 | 92 | nzeros, covered_blocks); | 502 | 92 | } | 503 | 183k | for (size_t y = 0; y < acs.covered_blocks_y(); y++) { | 504 | 220k | for (size_t x = 0; x < acs.covered_blocks_x(); x++) { | 505 | 126k | row_nzeros[bx + x + y * nzeros_stride] = | 506 | 126k | (nzeros + covered_blocks - 1) >> log2_covered_blocks; | 507 | 126k | } | 508 | 94.1k | } | 509 | | | 510 | 89.0k | const size_t histo_offset = | 511 | 89.0k | ctx_offset + block_ctx_map.ZeroDensityContextsOffset(block_ctx); | 512 | | | 513 | 89.0k | size_t prev = (nzeros > size / 16 ? 0 : 1); | 514 | 784k | for (size_t k = covered_blocks; k < size && nzeros != 0; ++k) { | 515 | 695k | const size_t ctx = | 516 | 695k | histo_offset + ZeroDensityContext(nzeros, k, covered_blocks, | 517 | 695k | log2_covered_blocks, prev); | 518 | 695k | const size_t u_coeff = | 519 | 695k | decoder->ReadHybridUintInlined<uses_lz77>(ctx, br, context_map); | 520 | | // Hand-rolled version of UnpackSigned, shifting before the conversion to | 521 | | // signed integer to avoid undefined behavior of shifting negative numbers. | 522 | 695k | const size_t magnitude = u_coeff >> 1; | 523 | 695k | const size_t neg_sign = (~u_coeff) & 1; | 524 | 695k | const ptrdiff_t coeff = | 525 | 695k | static_cast<ptrdiff_t>((magnitude ^ (neg_sign - 1)) << shift); | 526 | 695k | if (ac_type == ACType::k16) { | 527 | 0 | block.ptr16[order[k]] += coeff; | 528 | 695k | } else { | 529 | 695k | block.ptr32[order[k]] += coeff; | 530 | 695k | } | 531 | 695k | prev = static_cast<size_t>(u_coeff != 0); | 532 | 695k | nzeros -= prev; | 533 | 695k | } | 534 | 89.0k | if (JXL_UNLIKELY(nzeros != 0)) { | 535 | 50 | return JXL_FAILURE("Invalid AC: nzeros at end of block is %" PRIuS | 536 | 50 | ", should be 0. Block (%" PRIuS ", %" PRIuS | 537 | 50 | "), channel %" PRIuS, | 538 | 50 | nzeros, bx, by, c); | 539 | 50 | } | 540 | | | 541 | 88.9k | return true; | 542 | 89.0k | } |
dec_group.cc:jxl::Status jxl::(anonymous namespace)::DecodeACVarBlock<(jxl::ACType)0, false>(unsigned long, unsigned long, int*, int const*, unsigned long, unsigned long, unsigned long, unsigned long, unsigned long, jxl::AcStrategy, unsigned int const*, jxl::BitReader*, jxl::ANSSymbolReader*, std::__1::vector<unsigned char, std::__1::allocator<unsigned char> > const&, unsigned char const*, int const*, jxl::BlockCtxMap const&, jxl::ACPtr, unsigned long) Line | Count | Source | 481 | 2.25M | size_t shift = 0) { | 482 | | // Equal to number of LLF coefficients. | 483 | 2.25M | const size_t covered_blocks = 1 << log2_covered_blocks; | 484 | 2.25M | const size_t size = covered_blocks * kDCTBlockSize; | 485 | 2.25M | int32_t predicted_nzeros = | 486 | 2.25M | PredictFromTopAndLeft(row_nzeros_top, row_nzeros, bx, 32); | 487 | | | 488 | 2.25M | size_t ord = kStrategyOrder[acs.RawStrategy()]; | 489 | 2.25M | const coeff_order_t* JXL_RESTRICT order = | 490 | 2.25M | &coeff_order[CoeffOrderOffset(ord, c)]; | 491 | | | 492 | 2.25M | size_t block_ctx = block_ctx_map.Context(qdc_row[lbx], qf_row[bx], ord, c); | 493 | 2.25M | const int32_t nzero_ctx = | 494 | 2.25M | block_ctx_map.NonZeroContext(predicted_nzeros, block_ctx) + ctx_offset; | 495 | | | 496 | 2.25M | size_t nzeros = | 497 | 2.25M | decoder->ReadHybridUintInlined<uses_lz77>(nzero_ctx, br, context_map); | 498 | 2.25M | if (nzeros > size - covered_blocks) { | 499 | 57 | return JXL_FAILURE("Invalid AC: nzeros %" PRIuS " too large for %" PRIuS | 500 | 57 | " 8x8 blocks", | 501 | 57 | nzeros, covered_blocks); | 502 | 57 | } | 503 | 4.69M | for (size_t y = 0; y < acs.covered_blocks_y(); y++) { | 504 | 5.61M | for (size_t x = 0; x < acs.covered_blocks_x(); x++) { | 505 | 3.17M | row_nzeros[bx + x + y * nzeros_stride] = | 506 | 3.17M | (nzeros + covered_blocks - 1) >> log2_covered_blocks; | 507 | 3.17M | } | 508 | 2.43M | } | 509 | | | 510 | 2.25M | const size_t histo_offset = | 511 | 2.25M | ctx_offset + block_ctx_map.ZeroDensityContextsOffset(block_ctx); | 512 | | | 513 | 2.25M | size_t prev = (nzeros > size / 16 ? 0 : 1); | 514 | 8.74M | for (size_t k = covered_blocks; k < size && nzeros != 0; ++k) { | 515 | 6.49M | const size_t ctx = | 516 | 6.49M | histo_offset + ZeroDensityContext(nzeros, k, covered_blocks, | 517 | 6.49M | log2_covered_blocks, prev); | 518 | 6.49M | const size_t u_coeff = | 519 | 6.49M | decoder->ReadHybridUintInlined<uses_lz77>(ctx, br, context_map); | 520 | | // Hand-rolled version of UnpackSigned, shifting before the conversion to | 521 | | // signed integer to avoid undefined behavior of shifting negative numbers. | 522 | 6.49M | const size_t magnitude = u_coeff >> 1; | 523 | 6.49M | const size_t neg_sign = (~u_coeff) & 1; | 524 | 6.49M | const ptrdiff_t coeff = | 525 | 6.49M | static_cast<ptrdiff_t>((magnitude ^ (neg_sign - 1)) << shift); | 526 | 6.49M | if (ac_type == ACType::k16) { | 527 | 6.48M | block.ptr16[order[k]] += coeff; | 528 | 6.48M | } else { | 529 | 217 | block.ptr32[order[k]] += coeff; | 530 | 217 | } | 531 | 6.49M | prev = static_cast<size_t>(u_coeff != 0); | 532 | 6.49M | nzeros -= prev; | 533 | 6.49M | } | 534 | 2.25M | if (JXL_UNLIKELY(nzeros != 0)) { | 535 | 340 | return JXL_FAILURE("Invalid AC: nzeros at end of block is %" PRIuS | 536 | 340 | ", should be 0. Block (%" PRIuS ", %" PRIuS | 537 | 340 | "), channel %" PRIuS, | 538 | 340 | nzeros, bx, by, c); | 539 | 340 | } | 540 | | | 541 | 2.25M | return true; | 542 | 2.25M | } |
dec_group.cc:jxl::Status jxl::(anonymous namespace)::DecodeACVarBlock<(jxl::ACType)1, false>(unsigned long, unsigned long, int*, int const*, unsigned long, unsigned long, unsigned long, unsigned long, unsigned long, jxl::AcStrategy, unsigned int const*, jxl::BitReader*, jxl::ANSSymbolReader*, std::__1::vector<unsigned char, std::__1::allocator<unsigned char> > const&, unsigned char const*, int const*, jxl::BlockCtxMap const&, jxl::ACPtr, unsigned long) Line | Count | Source | 481 | 1.00M | size_t shift = 0) { | 482 | | // Equal to number of LLF coefficients. | 483 | 1.00M | const size_t covered_blocks = 1 << log2_covered_blocks; | 484 | 1.00M | const size_t size = covered_blocks * kDCTBlockSize; | 485 | 1.00M | int32_t predicted_nzeros = | 486 | 1.00M | PredictFromTopAndLeft(row_nzeros_top, row_nzeros, bx, 32); | 487 | | | 488 | 1.00M | size_t ord = kStrategyOrder[acs.RawStrategy()]; | 489 | 1.00M | const coeff_order_t* JXL_RESTRICT order = | 490 | 1.00M | &coeff_order[CoeffOrderOffset(ord, c)]; | 491 | | | 492 | 1.00M | size_t block_ctx = block_ctx_map.Context(qdc_row[lbx], qf_row[bx], ord, c); | 493 | 1.00M | const int32_t nzero_ctx = | 494 | 1.00M | block_ctx_map.NonZeroContext(predicted_nzeros, block_ctx) + ctx_offset; | 495 | | | 496 | 1.00M | size_t nzeros = | 497 | 1.00M | decoder->ReadHybridUintInlined<uses_lz77>(nzero_ctx, br, context_map); | 498 | 1.00M | if (nzeros > size - covered_blocks) { | 499 | 111 | return JXL_FAILURE("Invalid AC: nzeros %" PRIuS " too large for %" PRIuS | 500 | 111 | " 8x8 blocks", | 501 | 111 | nzeros, covered_blocks); | 502 | 111 | } | 503 | 2.09M | for (size_t y = 0; y < acs.covered_blocks_y(); y++) { | 504 | 2.31M | for (size_t x = 0; x < acs.covered_blocks_x(); x++) { | 505 | 1.22M | row_nzeros[bx + x + y * nzeros_stride] = | 506 | 1.22M | (nzeros + covered_blocks - 1) >> log2_covered_blocks; | 507 | 1.22M | } | 508 | 1.08M | } | 509 | | | 510 | 1.00M | const size_t histo_offset = | 511 | 1.00M | ctx_offset + block_ctx_map.ZeroDensityContextsOffset(block_ctx); | 512 | | | 513 | 1.00M | size_t prev = (nzeros > size / 16 ? 0 : 1); | 514 | 8.95M | for (size_t k = covered_blocks; k < size && nzeros != 0; ++k) { | 515 | 7.94M | const size_t ctx = | 516 | 7.94M | histo_offset + ZeroDensityContext(nzeros, k, covered_blocks, | 517 | 7.94M | log2_covered_blocks, prev); | 518 | 7.94M | const size_t u_coeff = | 519 | 7.94M | decoder->ReadHybridUintInlined<uses_lz77>(ctx, br, context_map); | 520 | | // Hand-rolled version of UnpackSigned, shifting before the conversion to | 521 | | // signed integer to avoid undefined behavior of shifting negative numbers. | 522 | 7.94M | const size_t magnitude = u_coeff >> 1; | 523 | 7.94M | const size_t neg_sign = (~u_coeff) & 1; | 524 | 7.94M | const ptrdiff_t coeff = | 525 | 7.94M | static_cast<ptrdiff_t>((magnitude ^ (neg_sign - 1)) << shift); | 526 | 7.94M | if (ac_type == ACType::k16) { | 527 | 0 | block.ptr16[order[k]] += coeff; | 528 | 7.94M | } else { | 529 | 7.94M | block.ptr32[order[k]] += coeff; | 530 | 7.94M | } | 531 | 7.94M | prev = static_cast<size_t>(u_coeff != 0); | 532 | 7.94M | nzeros -= prev; | 533 | 7.94M | } | 534 | 1.00M | if (JXL_UNLIKELY(nzeros != 0)) { | 535 | 45 | return JXL_FAILURE("Invalid AC: nzeros at end of block is %" PRIuS | 536 | 45 | ", should be 0. Block (%" PRIuS ", %" PRIuS | 537 | 45 | "), channel %" PRIuS, | 538 | 45 | nzeros, bx, by, c); | 539 | 45 | } | 540 | | | 541 | 1.00M | return true; | 542 | 1.00M | } |
|
543 | | |
544 | | // Structs used by DecodeGroupImpl to get a quantized block. |
545 | | // GetBlockFromBitstream uses ANS decoding (and thus keeps track of row |
546 | | // pointers in row_nzeros), GetBlockFromEncoder simply reads the coefficient |
547 | | // image provided by the encoder. |
548 | | |
549 | | struct GetBlockFromBitstream : public GetBlock { |
550 | 654k | void StartRow(size_t by) override { |
551 | 654k | qf_row = rect.ConstRow(*qf, by); |
552 | 2.61M | for (size_t c = 0; c < 3; c++) { |
553 | 1.96M | size_t sby = by >> vshift[c]; |
554 | 1.96M | quant_dc_row = quant_dc->ConstRow(rect.y0() + by) + rect.x0(); |
555 | 3.92M | for (size_t i = 0; i < num_passes; i++) { |
556 | 1.96M | row_nzeros[i][c] = group_dec_cache->num_nzeroes[i].PlaneRow(c, sby); |
557 | 1.96M | row_nzeros_top[i][c] = |
558 | 1.96M | sby == 0 |
559 | 1.96M | ? nullptr |
560 | 1.96M | : group_dec_cache->num_nzeroes[i].ConstPlaneRow(c, sby - 1); |
561 | 1.96M | } |
562 | 1.96M | } |
563 | 654k | } |
564 | | |
565 | | Status LoadBlock(size_t bx, size_t by, const AcStrategy& acs, size_t size, |
566 | | size_t log2_covered_blocks, ACPtr block[3], |
567 | 5.15M | ACType ac_type) override { |
568 | 5.15M | ; |
569 | 15.3M | for (size_t c : {1, 0, 2}) { |
570 | 15.3M | size_t sbx = bx >> hshift[c]; |
571 | 15.3M | size_t sby = by >> vshift[c]; |
572 | 15.3M | if (JXL_UNLIKELY((sbx << hshift[c] != bx) || (sby << vshift[c] != by))) { |
573 | 1.18M | continue; |
574 | 1.18M | } |
575 | | |
576 | 28.4M | for (size_t pass = 0; JXL_UNLIKELY(pass < num_passes); pass++) { |
577 | 14.2M | auto decode_ac_varblock = |
578 | 14.2M | decoders[pass].UsesLZ77() |
579 | 14.2M | ? (ac_type == ACType::k16 ? DecodeACVarBlock<ACType::k16, 1> |
580 | 10.9M | : DecodeACVarBlock<ACType::k32, 1>) |
581 | 14.2M | : (ac_type == ACType::k16 ? DecodeACVarBlock<ACType::k16, 0> |
582 | 3.26M | : DecodeACVarBlock<ACType::k32, 0>); |
583 | 14.2M | JXL_RETURN_IF_ERROR(decode_ac_varblock( |
584 | 14.2M | ctx_offset[pass], log2_covered_blocks, row_nzeros[pass][c], |
585 | 14.2M | row_nzeros_top[pass][c], nzeros_stride, c, sbx, sby, bx, acs, |
586 | 14.2M | &coeff_orders[pass * coeff_order_size], readers[pass], |
587 | 14.2M | &decoders[pass], context_map[pass], quant_dc_row, qf_row, |
588 | 14.2M | *block_ctx_map, block[c], shift_for_pass[pass])); |
589 | 14.2M | } |
590 | 14.1M | } |
591 | 5.15M | return true; |
592 | 5.15M | } |
593 | | |
594 | | Status Init(const FrameHeader& frame_header, |
595 | | BitReader* JXL_RESTRICT* JXL_RESTRICT readers_, |
596 | | size_t num_passes_, size_t group_idx, size_t histo_selector_bits, |
597 | | const Rect& rect_, GroupDecCache* JXL_RESTRICT group_dec_cache_, |
598 | 42.4k | PassesDecoderState* dec_state, size_t first_pass) { |
599 | 169k | for (size_t i = 0; i < 3; i++) { |
600 | 127k | hshift[i] = frame_header.chroma_subsampling.HShift(i); |
601 | 127k | vshift[i] = frame_header.chroma_subsampling.VShift(i); |
602 | 127k | } |
603 | 42.4k | coeff_order_size = dec_state->shared->coeff_order_size; |
604 | 42.4k | coeff_orders = |
605 | 42.4k | dec_state->shared->coeff_orders.data() + first_pass * coeff_order_size; |
606 | 42.4k | context_map = dec_state->context_map.data() + first_pass; |
607 | 42.4k | readers = readers_; |
608 | 42.4k | num_passes = num_passes_; |
609 | 42.4k | shift_for_pass = frame_header.passes.shift + first_pass; |
610 | 42.4k | group_dec_cache = group_dec_cache_; |
611 | 42.4k | rect = rect_; |
612 | 42.4k | block_ctx_map = &dec_state->shared->block_ctx_map; |
613 | 42.4k | qf = &dec_state->shared->raw_quant_field; |
614 | 42.4k | quant_dc = &dec_state->shared->quant_dc; |
615 | | |
616 | 84.9k | for (size_t pass = 0; pass < num_passes; pass++) { |
617 | | // Select which histogram set to use among those of the current pass. |
618 | 42.5k | size_t cur_histogram = 0; |
619 | 42.5k | if (histo_selector_bits != 0) { |
620 | 24.1k | cur_histogram = readers[pass]->ReadBits(histo_selector_bits); |
621 | 24.1k | } |
622 | 42.5k | if (cur_histogram >= dec_state->shared->num_histograms) { |
623 | 24 | return JXL_FAILURE("Invalid histogram selector"); |
624 | 24 | } |
625 | 42.5k | ctx_offset[pass] = cur_histogram * block_ctx_map->NumACContexts(); |
626 | | |
627 | 42.5k | JXL_ASSIGN_OR_RETURN( |
628 | 42.5k | decoders[pass], |
629 | 42.5k | ANSSymbolReader::Create(&dec_state->code[pass + first_pass], |
630 | 42.5k | readers[pass])); |
631 | 42.5k | } |
632 | 42.4k | nzeros_stride = group_dec_cache->num_nzeroes[0].PixelsPerRow(); |
633 | 84.9k | for (size_t i = 0; i < num_passes; i++) { |
634 | 42.5k | JXL_ENSURE( |
635 | 42.5k | nzeros_stride == |
636 | 42.5k | static_cast<size_t>(group_dec_cache->num_nzeroes[i].PixelsPerRow())); |
637 | 42.5k | } |
638 | 42.4k | return true; |
639 | 42.4k | } |
640 | | |
641 | | const uint32_t* shift_for_pass = nullptr; // not owned |
642 | | const coeff_order_t* JXL_RESTRICT coeff_orders; |
643 | | size_t coeff_order_size; |
644 | | const std::vector<uint8_t>* JXL_RESTRICT context_map; |
645 | | ANSSymbolReader decoders[kMaxNumPasses]; |
646 | | BitReader* JXL_RESTRICT* JXL_RESTRICT readers; |
647 | | size_t num_passes; |
648 | | size_t ctx_offset[kMaxNumPasses]; |
649 | | size_t nzeros_stride; |
650 | | int32_t* JXL_RESTRICT row_nzeros[kMaxNumPasses][3]; |
651 | | const int32_t* JXL_RESTRICT row_nzeros_top[kMaxNumPasses][3]; |
652 | | GroupDecCache* JXL_RESTRICT group_dec_cache; |
653 | | const BlockCtxMap* block_ctx_map; |
654 | | const ImageI* qf; |
655 | | const ImageB* quant_dc; |
656 | | const int32_t* qf_row; |
657 | | const uint8_t* quant_dc_row; |
658 | | Rect rect; |
659 | | size_t hshift[3], vshift[3]; |
660 | | }; |
661 | | |
662 | | struct GetBlockFromEncoder : public GetBlock { |
663 | 996 | void StartRow(size_t by) override {} |
664 | | |
665 | | Status LoadBlock(size_t bx, size_t by, const AcStrategy& acs, size_t size, |
666 | | size_t log2_covered_blocks, ACPtr block[3], |
667 | 996 | ACType ac_type) override { |
668 | 996 | JXL_ENSURE(ac_type == ACType::k32); |
669 | 3.98k | for (size_t c = 0; c < 3; c++) { |
670 | | // for each pass |
671 | 5.97k | for (size_t i = 0; i < quantized_ac->size(); i++) { |
672 | 194k | for (size_t k = 0; k < size; k++) { |
673 | | // TODO(veluca): SIMD. |
674 | 191k | block[c].ptr32[k] += |
675 | 191k | rows[i][c][offset + k] * (1 << shift_for_pass[i]); |
676 | 191k | } |
677 | 2.98k | } |
678 | 2.98k | } |
679 | 996 | offset += size; |
680 | 996 | return true; |
681 | 996 | } |
682 | | |
683 | | static StatusOr<GetBlockFromEncoder> Create( |
684 | | const std::vector<std::unique_ptr<ACImage>>& ac, size_t group_idx, |
685 | 996 | const uint32_t* shift_for_pass) { |
686 | 996 | GetBlockFromEncoder result(ac, group_idx, shift_for_pass); |
687 | | // TODO(veluca): not supported with chroma subsampling. |
688 | 1.99k | for (size_t i = 0; i < ac.size(); i++) { |
689 | 996 | JXL_ENSURE(ac[i]->Type() == ACType::k32); |
690 | 3.98k | for (size_t c = 0; c < 3; c++) { |
691 | 2.98k | result.rows[i][c] = ac[i]->PlaneRow(c, group_idx, 0).ptr32; |
692 | 2.98k | } |
693 | 996 | } |
694 | 996 | return result; |
695 | 996 | } |
696 | | |
697 | | const std::vector<std::unique_ptr<ACImage>>* JXL_RESTRICT quantized_ac; |
698 | | size_t offset = 0; |
699 | | const int32_t* JXL_RESTRICT rows[kMaxNumPasses][3]; |
700 | | const uint32_t* shift_for_pass = nullptr; // not owned |
701 | | |
702 | | private: |
703 | | GetBlockFromEncoder(const std::vector<std::unique_ptr<ACImage>>& ac, |
704 | | size_t group_idx, const uint32_t* shift_for_pass) |
705 | 996 | : quantized_ac(&ac), shift_for_pass(shift_for_pass) {} |
706 | | }; |
707 | | |
708 | | HWY_EXPORT(DecodeGroupImpl); |
709 | | |
710 | | } // namespace |
711 | | |
712 | | Status DecodeGroup(const FrameHeader& frame_header, |
713 | | BitReader* JXL_RESTRICT* JXL_RESTRICT readers, |
714 | | size_t num_passes, size_t group_idx, |
715 | | PassesDecoderState* JXL_RESTRICT dec_state, |
716 | | GroupDecCache* JXL_RESTRICT group_dec_cache, size_t thread, |
717 | | RenderPipelineInput& render_pipeline_input, |
718 | | jpeg::JPEGData* JXL_RESTRICT jpeg_data, size_t first_pass, |
719 | 42.4k | bool force_draw, bool dc_only, bool* should_run_pipeline) { |
720 | 42.4k | JxlMemoryManager* memory_manager = dec_state->memory_manager(); |
721 | 42.4k | DrawMode draw = |
722 | 42.4k | (num_passes + first_pass == frame_header.passes.num_passes) || force_draw |
723 | 42.4k | ? kDraw |
724 | 42.4k | : kDontDraw; |
725 | | |
726 | 42.4k | if (should_run_pipeline) { |
727 | 42.4k | *should_run_pipeline = draw != kDontDraw; |
728 | 42.4k | } |
729 | | |
730 | 42.4k | if (draw == kDraw && num_passes == 0 && first_pass == 0) { |
731 | 1 | JXL_RETURN_IF_ERROR(group_dec_cache->InitDCBufferOnce(memory_manager)); |
732 | 1 | const YCbCrChromaSubsampling& cs = frame_header.chroma_subsampling; |
733 | 3 | for (size_t c : {0, 1, 2}) { |
734 | 3 | size_t hs = cs.HShift(c); |
735 | 3 | size_t vs = cs.VShift(c); |
736 | | // We reuse filter_input_storage here as it is not currently in use. |
737 | 3 | const Rect src_rect_precs = |
738 | 3 | dec_state->shared->frame_dim.BlockGroupRect(group_idx); |
739 | 3 | const Rect src_rect = |
740 | 3 | Rect(src_rect_precs.x0() >> hs, src_rect_precs.y0() >> vs, |
741 | 3 | src_rect_precs.xsize() >> hs, src_rect_precs.ysize() >> vs); |
742 | 3 | const Rect copy_rect(kRenderPipelineXOffset, 2, src_rect.xsize(), |
743 | 3 | src_rect.ysize()); |
744 | 3 | JXL_RETURN_IF_ERROR( |
745 | 3 | CopyImageToWithPadding(src_rect, dec_state->shared->dc->Plane(c), 2, |
746 | 3 | copy_rect, &group_dec_cache->dc_buffer)); |
747 | | // Mirrorpad. Interleaving left and right padding ensures that padding |
748 | | // works out correctly even for images with DC size of 1. |
749 | 24 | for (size_t y = 0; y < src_rect.ysize() + 4; y++) { |
750 | 21 | size_t xend = kRenderPipelineXOffset + |
751 | 21 | (dec_state->shared->dc->Plane(c).xsize() >> hs) - |
752 | 21 | src_rect.x0(); |
753 | 63 | for (size_t ix = 0; ix < 2; ix++) { |
754 | 42 | if (src_rect.x0() == 0) { |
755 | 42 | group_dec_cache->dc_buffer.Row(y)[kRenderPipelineXOffset - ix - 1] = |
756 | 42 | group_dec_cache->dc_buffer.Row(y)[kRenderPipelineXOffset + ix]; |
757 | 42 | } |
758 | 42 | if (src_rect.x0() + src_rect.xsize() + 2 >= |
759 | 42 | (dec_state->shared->dc->xsize() >> hs)) { |
760 | 42 | group_dec_cache->dc_buffer.Row(y)[xend + ix] = |
761 | 42 | group_dec_cache->dc_buffer.Row(y)[xend - ix - 1]; |
762 | 42 | } |
763 | 42 | } |
764 | 21 | } |
765 | 3 | const auto& buffer = render_pipeline_input.GetBuffer(c); |
766 | 3 | Rect dst_rect = buffer.second; |
767 | 3 | ImageF* upsampling_dst = buffer.first; |
768 | 3 | JXL_ENSURE(dst_rect.IsInside(*upsampling_dst)); |
769 | | |
770 | 3 | RenderPipelineStage::RowInfo input_rows(1, std::vector<float*>(5)); |
771 | 3 | RenderPipelineStage::RowInfo output_rows(1, std::vector<float*>(8)); |
772 | 12 | for (size_t y = src_rect.y0(); y < src_rect.y0() + src_rect.ysize(); |
773 | 9 | y++) { |
774 | 54 | for (ptrdiff_t iy = 0; iy < 5; iy++) { |
775 | 45 | input_rows[0][iy] = group_dec_cache->dc_buffer.Row( |
776 | 45 | Mirror(static_cast<ptrdiff_t>(y) + iy - 2, |
777 | 45 | dec_state->shared->dc->Plane(c).ysize() >> vs) + |
778 | 45 | 2 - src_rect.y0()); |
779 | 45 | } |
780 | 81 | for (size_t iy = 0; iy < 8; iy++) { |
781 | 72 | output_rows[0][iy] = |
782 | 72 | dst_rect.Row(upsampling_dst, ((y - src_rect.y0()) << 3) + iy) - |
783 | 72 | kRenderPipelineXOffset; |
784 | 72 | } |
785 | | // Arguments set to 0/nullptr are not used. |
786 | 9 | JXL_RETURN_IF_ERROR(dec_state->upsampler8x->ProcessRow( |
787 | 9 | input_rows, output_rows, /*xextra_left=*/0, /*xextra_right=*/0, |
788 | 9 | src_rect.xsize(), 0, 0, thread)); |
789 | 9 | } |
790 | 3 | } |
791 | 1 | return true; |
792 | 1 | } |
793 | | |
794 | 42.4k | size_t histo_selector_bits = 0; |
795 | 42.4k | if (dc_only) { |
796 | 0 | JXL_ENSURE(num_passes == 0); |
797 | 42.4k | } else { |
798 | 42.4k | JXL_ENSURE(dec_state->shared->num_histograms > 0); |
799 | 42.4k | histo_selector_bits = CeilLog2Nonzero(dec_state->shared->num_histograms); |
800 | 42.4k | } |
801 | | |
802 | 42.4k | auto get_block = jxl::make_unique<GetBlockFromBitstream>(); |
803 | 42.4k | JXL_RETURN_IF_ERROR(get_block->Init( |
804 | 42.4k | frame_header, readers, num_passes, group_idx, histo_selector_bits, |
805 | 42.4k | dec_state->shared->frame_dim.BlockGroupRect(group_idx), group_dec_cache, |
806 | 42.4k | dec_state, first_pass)); |
807 | | |
808 | 42.4k | JXL_RETURN_IF_ERROR(HWY_DYNAMIC_DISPATCH(DecodeGroupImpl)( |
809 | 42.4k | frame_header, get_block.get(), group_dec_cache, dec_state, thread, |
810 | 42.4k | group_idx, render_pipeline_input, jpeg_data, draw)); |
811 | | |
812 | 83.3k | for (size_t pass = 0; pass < num_passes; pass++) { |
813 | 41.7k | if (!get_block->decoders[pass].CheckANSFinalState()) { |
814 | 0 | return JXL_FAILURE("ANS checksum failure."); |
815 | 0 | } |
816 | 41.7k | } |
817 | 41.6k | return true; |
818 | 41.6k | } |
819 | | |
820 | | Status DecodeGroupForRoundtrip(const FrameHeader& frame_header, |
821 | | const std::vector<std::unique_ptr<ACImage>>& ac, |
822 | | size_t group_idx, |
823 | | PassesDecoderState* JXL_RESTRICT dec_state, |
824 | | GroupDecCache* JXL_RESTRICT group_dec_cache, |
825 | | size_t thread, |
826 | | RenderPipelineInput& render_pipeline_input, |
827 | | jpeg::JPEGData* JXL_RESTRICT jpeg_data, |
828 | 996 | AuxOut* aux_out) { |
829 | 996 | JxlMemoryManager* memory_manager = dec_state->memory_manager(); |
830 | 996 | JXL_ASSIGN_OR_RETURN( |
831 | 996 | GetBlockFromEncoder get_block, |
832 | 996 | GetBlockFromEncoder::Create(ac, group_idx, frame_header.passes.shift)); |
833 | 996 | JXL_RETURN_IF_ERROR(group_dec_cache->InitOnce( |
834 | 996 | memory_manager, |
835 | 996 | /*num_passes=*/0, |
836 | 996 | /*used_acs=*/(1u << AcStrategy::kNumValidStrategies) - 1)); |
837 | | |
838 | 996 | return HWY_DYNAMIC_DISPATCH(DecodeGroupImpl)( |
839 | 996 | frame_header, &get_block, group_dec_cache, dec_state, thread, group_idx, |
840 | 996 | render_pipeline_input, jpeg_data, kDraw); |
841 | 996 | } |
842 | | |
843 | | } // namespace jxl |
844 | | #endif // HWY_ONCE |