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This adds SPIR-V assembly and WGSL tests derived from VK-GL-CTS commit 571256871c2e2f03995373e1e4a02958d8cd8cf5. The following procedure was followed: - Those .amber files in VK-GL-CTS wholly owned by Google were identified - All GLSL and SPIR-V shaders were extracted from the Amber files and converted into SPIR-V binaries - The compact-ids pass of spirv-opt was applied to each binary - Duplicate binaries were removed - spirv-opt -O was used to obtain an optimized version of each remaining binary, with duplicates discarded - Binaries that failed validation using spirv-val with target environment SPIR-V 1.3 were discarded - Those binaries that tint could not successfully convert into WGSL were put aside for further investigation - SPIR-V assembly versions of the remaining binaries are included in this CL - test-runner with -generate-expected and -generate-skip was used to generate expected .spvasm, .msl, .hlsl and .wgsl outputs for these SPIR-V assembly tests - Each successfully-generated .expected.wgsl is included in this CL again, as a WGLSL test - test-runner with -generate-expected and -generate-skip was used again, to generate expected outputs for these WGSL tests Change-Id: Ibe9baf2729cf97e0b633db9a426f53362a5de540 Reviewed-on: https://dawn-review.googlesource.com/c/tint/+/58842 Kokoro: Kokoro <noreply+kokoro@google.com> Commit-Queue: Ben Clayton <bclayton@google.com> Reviewed-by: Ben Clayton <bclayton@google.com>
94 lines
2.0 KiB
WebGPU Shading Language
94 lines
2.0 KiB
WebGPU Shading Language
type Arr = [[stride(16)]] array<i32, 3>;
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[[block]]
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struct buf1 {
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x_GLF_uniform_int_values : Arr;
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};
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type Arr_1 = [[stride(16)]] array<f32, 1>;
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[[block]]
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struct buf0 {
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x_GLF_uniform_float_values : Arr_1;
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};
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[[group(0), binding(1)]] var<uniform> x_8 : buf1;
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var<private> gl_FragCoord : vec4<f32>;
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[[group(0), binding(0)]] var<uniform> x_12 : buf0;
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var<private> x_GLF_color : vec4<f32>;
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fn f1_() -> i32 {
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var i : i32;
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var A : array<i32, 10>;
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var a : i32;
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let x_56 : i32 = x_8.x_GLF_uniform_int_values[2];
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i = x_56;
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loop {
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let x_61 : i32 = i;
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let x_63 : i32 = x_8.x_GLF_uniform_int_values[0];
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if ((x_61 < x_63)) {
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} else {
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break;
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}
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let x_66 : i32 = i;
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let x_68 : i32 = x_8.x_GLF_uniform_int_values[2];
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A[x_66] = x_68;
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continuing {
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let x_70 : i32 = i;
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i = (x_70 + 1);
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}
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}
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a = -1;
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let x_73 : f32 = gl_FragCoord.y;
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let x_75 : f32 = x_12.x_GLF_uniform_float_values[0];
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if ((x_73 >= x_75)) {
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let x_79 : i32 = a;
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let x_80 : i32 = (x_79 + 1);
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a = x_80;
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let x_82 : i32 = x_8.x_GLF_uniform_int_values[1];
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A[x_80] = x_82;
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}
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let x_85 : i32 = x_8.x_GLF_uniform_int_values[2];
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let x_87 : i32 = A[x_85];
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let x_89 : i32 = x_8.x_GLF_uniform_int_values[1];
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if ((x_87 == x_89)) {
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let x_94 : i32 = a;
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let x_95 : i32 = (x_94 + 1);
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a = x_95;
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let x_97 : i32 = A[x_95];
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return x_97;
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} else {
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let x_99 : i32 = x_8.x_GLF_uniform_int_values[1];
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return x_99;
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}
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return 0;
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}
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fn main_1() {
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var i_1 : i32;
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let x_42 : i32 = f1_();
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i_1 = x_42;
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let x_44 : i32 = x_8.x_GLF_uniform_int_values[1];
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let x_46 : i32 = i_1;
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let x_48 : i32 = i_1;
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let x_51 : i32 = x_8.x_GLF_uniform_int_values[1];
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x_GLF_color = vec4<f32>(f32(x_44), f32(x_46), f32(x_48), f32(x_51));
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return;
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}
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struct main_out {
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[[location(0)]]
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x_GLF_color_1 : vec4<f32>;
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};
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[[stage(fragment)]]
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fn main([[builtin(position)]] gl_FragCoord_param : vec4<f32>) -> main_out {
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gl_FragCoord = gl_FragCoord_param;
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main_1();
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return main_out(x_GLF_color);
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}
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