ai.onnx.Neg / build /webgpu /test.json
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{
"op": "ai.onnx.Neg",
"cases": [
{
"name": "vector",
"inputs": {
"x": { "dtype": "float32", "shape": [32], "data": { "kind": "fillFloat32", "sinStep": 0.1, "cosStep": 0.2 } }
},
"outputs": { "y": { "dtype": "float32", "shape": [32], "tolerance": 0.000001 } }
},
{
"name": "rank0_scalar",
"inputs": { "x": { "dtype": "float32", "shape": [], "data": { "kind": "values", "values": [-3.5] } } },
"outputs": { "y": { "dtype": "float32", "shape": [], "tolerance": 0.000001 } }
},
{
"name": "int32_exact_above_float24",
"inputs": {
"x": {
"dtype": "int32",
"shape": [4],
"data": { "kind": "values", "values": [16777217, -16777217, 123456789, -123456789] }
}
},
"outputs": { "y": { "dtype": "int32", "shape": [4] } }
},
{
"name": "float_special_values",
"inputs": {
"x": {
"dtype": "float32",
"shape": [5],
"data": { "kind": "values", "values": ["-Infinity", 0.0, 0.0, "Infinity", "NaN"] }
}
},
"outputs": { "y": { "dtype": "float32", "shape": [5], "tolerance": 0, "allowNaN": true } }
},
{
"name": "f16_values",
"inputs": {
"x": { "dtype": "float16", "shape": [5], "data": { "kind": "values", "values": [-10.0, -1.5, 0.0, 2.0, 8.0] } }
},
"outputs": { "y": { "dtype": "float16", "shape": [5], "tolerance": 0 } }
},
{
"name": "ort_float_2x2",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_float"
},
"inputs": {
"x": { "dtype": "float32", "shape": [2, 2], "data": { "kind": "values", "values": [1.0, -2.0, 0.0, -10.0] } }
},
"outputs": { "y": { "dtype": "float32", "shape": [2, 2], "tolerance": 0 } }
},
{
"name": "ort_int8_values",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_int8"
},
"inputs": { "x": { "dtype": "int8", "shape": [4], "data": { "kind": "values", "values": [1, -2, 0, -10] } } },
"outputs": { "y": { "dtype": "int8", "shape": [4], "tolerance": 0 } }
},
{
"name": "ort_int8_min_value_overflow_edge",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_int8",
"notes": "Extends ORT's int8 Neg coverage with INT8_MIN, whose mathematical negation is not representable in int8 storage."
},
"inputs": { "x": { "dtype": "int8", "shape": [4], "data": { "kind": "values", "values": [-128, -127, -1, 0] } } },
"outputs": { "y": { "dtype": "int8", "shape": [4], "tolerance": 0 } }
},
{
"name": "ort_int32_values",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_int32"
},
"inputs": { "x": { "dtype": "int32", "shape": [4], "data": { "kind": "values", "values": [1, -2, 0, -10] } } },
"outputs": { "y": { "dtype": "int32", "shape": [4], "tolerance": 0 } }
},
{
"name": "ort_int16_values_gpu_gap",
"skipGpu": {
"category": "todo",
"reason": "The widened-i32 Neg route is not yet declared and needs an explicit signed 16-bit narrowing step before it can cover the full int16 domain."
},
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_int16",
"notes": "ORT has signed-integer Neg coverage; this fixture uses the actual ONNX int16 dtype, which is not currently in the WebGPU Neg manifest."
},
"inputs": { "x": { "dtype": "int16", "shape": [4], "data": { "kind": "values", "values": [1, -2, 0, -10] } } },
"outputs": { "y": { "dtype": "int16", "shape": [4], "tolerance": 0 } }
},
{
"name": "ort_int16_min_value_overflow_edge_gpu_gap",
"skipGpu": {
"category": "todo",
"reason": "The current widened-i32 Neg kernel produces 32768 for -(-32768) instead of restoring the required wrapped int16 result; add explicit narrowing before enabling int16."
},
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_int16",
"notes": "Extends ORT's signed int16 Neg coverage with INT16_MIN, whose mathematical negation is not representable in int16 storage."
},
"inputs": {
"x": { "dtype": "int16", "shape": [4], "data": { "kind": "values", "values": [-32768, -32767, -1, 0] } }
},
"outputs": { "y": { "dtype": "int16", "shape": [4], "tolerance": 0 } }
},
{
"name": "f32_subnormal_sign_flip_vec4",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_float",
"notes": "Finite signed subnormal float32 inputs are valid; Neg should flip their sign without flushing their magnitude to zero."
},
"inputs": {
"x": {
"dtype": "float32",
"shape": [4],
"data": { "kind": "values", "values": [-1e-40, 1e-40, -2e-40, 2e-40] }
}
},
"outputs": { "y": { "dtype": "float32", "shape": [4], "tolerance": 0 } }
},
{
"name": "f32_subnormal_sign_flip_scalar",
"provenance": {
"source": "onnxruntime/test/providers/cpu/math/element_wise_ops_test.cc",
"test": "MathOpTest.Neg_float",
"notes": "Scalar-path companion for signed subnormal Neg sign flipping."
},
"inputs": {
"x": { "dtype": "float32", "shape": [3], "data": { "kind": "values", "values": [-1e-40, 0.0, 1e-40] } }
},
"outputs": { "y": { "dtype": "float32", "shape": [3], "tolerance": 0 } }
},
{
"name": "onnx_backend_example",
"provenance": {
"source": "cmake/external/onnx/onnx/backend/test/data/node/test_neg_example",
"test": "test_neg_example"
},
"inputs": { "x": { "dtype": "float32", "shape": [2], "data": { "kind": "values", "values": [-4.0, 2.0] } } },
"outputs": { "y": { "dtype": "float32", "shape": [2], "tolerance": 0 } }
},
{
"name": "onnx_backend_neg",
"provenance": { "source": "cmake/external/onnx/onnx/backend/test/data/node/test_neg" },
"inputs": {
"x": {
"dtype": "float32",
"shape": [3, 4, 5],
"data": {
"kind": "values",
"values": [1.764052391052246, 0.40015721321105957, 0.978738009929657, 2.2408931255340576, 1.8675580024719238, -0.9772778749465942, 0.9500884413719177, -0.15135720372200012, -0.10321885347366333, 0.4105985164642334, 0.14404356479644775, 1.4542734622955322, 0.7610377073287964, 0.12167501449584961, 0.44386324286460876, 0.3336743414402008, 1.4940791130065918, -0.2051582634449005, 0.3130677044391632, -0.8540957570075989, -2.5529897212982178, 0.653618574142456, 0.8644362092018127, -0.7421650290489197, 2.269754648208618, -1.4543657302856445, 0.04575851559638977, -0.18718385696411133, 1.5327792167663574, 1.4693588018417358, 0.154947429895401, 0.37816253304481506, -0.8877857327461243, -1.980796456336975, -0.34791216254234314, 0.15634897351264954, 1.2302906513214111, 1.202379822731018, -0.38732680678367615, -0.302302747964859, -1.0485529899597168, -1.420017957687378, -1.7062702178955078, 1.950775384902954, -0.5096521973609924, -0.4380742907524109, -1.2527953386306763, 0.7774903774261475, -1.6138978004455566, -0.21274028718471527, -0.8954665660858154, 0.38690251111984253, -0.5108051300048828, -1.18063223361969, -0.02818222902715206, 0.4283318817615509, 0.06651721894741058, 0.30247190594673157, -0.6343221068382263, -0.3627411723136902]
}
}
},
"outputs": { "y": { "dtype": "float32", "shape": [3, 4, 5], "tolerance": 0 } }
},
{
"name": "onnx_backend_neg_example",
"provenance": { "source": "cmake/external/onnx/onnx/backend/test/data/node/test_neg_example" },
"inputs": { "x": { "dtype": "float32", "shape": [2], "data": { "kind": "values", "values": [-4.0, 2.0] } } },
"outputs": { "y": { "dtype": "float32", "shape": [2], "tolerance": 0.00001 } }
},
{
"name": "vec4_f16_lanes",
"inputs": {
"x": {
"dtype": "float16",
"shape": [16],
"data": {
"kind": "values",
"values": [-6.0, -4.0, -3.0, -2.0, -1.5, -1.0, -0.5, -0.25, 0.0, 0.25, 0.5, 1.0, 1.5, 2.0, 4.0, 6.0]
}
}
},
"outputs": { "y": { "dtype": "float16", "shape": [16], "tolerance": 0 } }
},
{
"name": "empty_input_zero_dim",
"inputs": { "x": { "dtype": "float32", "shape": [0], "data": { "kind": "values", "values": [] } } },
"outputs": { "y": { "dtype": "float32", "shape": [0], "tolerance": 0 } }
},
{
"name": "int32_min_overflow_wrap",
"inputs": {
"x": {
"dtype": "int32",
"shape": [4],
"data": { "kind": "values", "values": [-2147483648, -2147483647, -1, 0] }
}
},
"outputs": {
"y": {
"dtype": "int32",
"shape": [4],
"tolerance": 0,
"data": { "kind": "values", "values": [-2147483648, 2147483647, 1, 0] }
}
}
}
]
}