483 lines
20 KiB
C++
483 lines
20 KiB
C++
// Copyright 2022 Google LLC
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//
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// This source code is licensed under the BSD-style license found in the
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// LICENSE file in the root directory of this source tree.
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#include <algorithm>
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#include <array>
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#include <cstddef>
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#include <cstdint>
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#include <limits>
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#include <memory>
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#include <numeric>
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#include <random>
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#include <xnnpack.h>
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#include <xnnpack/node-type.h>
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#include <xnnpack/operator.h>
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#include <xnnpack/subgraph.h>
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#include <gtest/gtest.h>
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template <typename T> class EvenSplit2Test : public ::testing::Test {
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protected:
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EvenSplit2Test()
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{
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random_device = std::unique_ptr<std::random_device>(new std::random_device());
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rng = std::mt19937((*random_device)());
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shape_dist = std::uniform_int_distribution<size_t>(1, XNN_MAX_TENSOR_DIMS);
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dim_dist = std::uniform_int_distribution<size_t>(1, 9);
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f32dist = std::uniform_real_distribution<float>();
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i8dist =
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std::uniform_int_distribution<int32_t>(std::numeric_limits<int8_t>::min(), std::numeric_limits<int8_t>::max());
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u8dist =
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std::uniform_int_distribution<int32_t>(std::numeric_limits<uint8_t>::min(), std::numeric_limits<uint8_t>::max());
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scale_dist = std::uniform_real_distribution<float>(0.1f, 5.0f);
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output1_dims = RandomShape();
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axis = RandomAxis(output1_dims);
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output2_dims = output1_dims;
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input_dims = output1_dims;
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input_dims[axis] = output1_dims[axis] + output2_dims[axis];
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input = std::vector<T>(NumElements(input_dims));
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operator_output1 = std::vector<T>(NumElements(output1_dims));
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operator_output2 = std::vector<T>(NumElements(output2_dims));
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subgraph_output1 = std::vector<T>(NumElements(output1_dims));
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subgraph_output2 = std::vector<T>(NumElements(output2_dims));
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signed_zero_point = i8dist(rng);
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unsigned_zero_point = u8dist(rng);
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scale = scale_dist(rng);
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batch_size = 1;
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input_stride = 1;
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for (size_t i = 0; i < axis; i++) {
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batch_size *= input_dims[i];
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}
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for (size_t i = axis; i < input_dims.size(); i++) {
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input_stride *= input_dims[i];
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}
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channels = input_stride / 2;
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}
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std::vector<size_t> RandomShape()
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{
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std::vector<size_t> dims(shape_dist(rng));
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std::generate(dims.begin(), dims.end(), [&] { return dim_dist(rng); });
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return dims;
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}
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size_t RandomAxis(const std::vector<size_t>& dims)
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{
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return std::uniform_int_distribution<size_t>(0, dims.size() - 1)(rng);
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}
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size_t NumElements(const std::vector<size_t>& dims)
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{
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return std::accumulate(dims.begin(), dims.end(), size_t(1), std::multiplies<size_t>());
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}
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std::unique_ptr<std::random_device> random_device;
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std::mt19937 rng;
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std::uniform_int_distribution<size_t> shape_dist;
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std::uniform_int_distribution<size_t> dim_dist;
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std::uniform_real_distribution<float> f32dist;
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std::uniform_int_distribution<int32_t> i8dist;
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std::uniform_int_distribution<int32_t> u8dist;
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std::uniform_real_distribution<float> scale_dist;
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uint32_t output1_id;
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uint32_t output2_id;
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uint32_t input_id;
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std::vector<size_t> output1_dims;
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std::vector<size_t> output2_dims;
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std::vector<size_t> input_dims;
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size_t axis;
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size_t batch_size;
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size_t channels;
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size_t input_stride;
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int32_t signed_zero_point;
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int32_t unsigned_zero_point;
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float scale;
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std::vector<T> operator_output1;
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std::vector<T> operator_output2;
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std::vector<T> subgraph_output1;
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std::vector<T> subgraph_output2;
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std::vector<T> input;
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};
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using EvenSplit2TestQS8 = EvenSplit2Test<int8_t>;
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using EvenSplit2TestQU8 = EvenSplit2Test<uint8_t>;
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using EvenSplit2TestF32 = EvenSplit2Test<float>;
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TEST_F(EvenSplit2TestQS8, define)
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{
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ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
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xnn_subgraph_t subgraph = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
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std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
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input_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, input_dims.size(), input_dims.data(), nullptr, 0,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
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ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
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output1_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, output1_dims.size(), output1_dims.data(), nullptr, 1,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
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ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
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output2_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, output2_dims.size(), output2_dims.data(), nullptr, 2,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
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ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
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ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
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ASSERT_EQ(subgraph->num_nodes, 1);
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const struct xnn_node* node = &subgraph->nodes[0];
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ASSERT_EQ(node->type, xnn_node_type_even_split2);
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ASSERT_EQ(node->compute_type, xnn_compute_type_qs8);
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ASSERT_EQ(node->params.even_split.axis, axis);
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ASSERT_EQ(node->num_inputs, 1);
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ASSERT_EQ(node->inputs[0], input_id);
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ASSERT_EQ(node->num_outputs, 2);
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ASSERT_EQ(node->outputs[0], output1_id);
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ASSERT_EQ(node->outputs[1], output2_id);
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ASSERT_EQ(node->flags, 0);
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}
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TEST_F(EvenSplit2TestQU8, define)
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{
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ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
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xnn_subgraph_t subgraph = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
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std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
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input_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, input_dims.size(), input_dims.data(), nullptr, 0,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
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ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
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output1_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, output1_dims.size(), output1_dims.data(), nullptr, 1,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
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ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
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output2_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, output2_dims.size(), output2_dims.data(), nullptr, 2,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
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ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
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ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
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ASSERT_EQ(subgraph->num_nodes, 1);
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const struct xnn_node* node = &subgraph->nodes[0];
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ASSERT_EQ(node->type, xnn_node_type_even_split2);
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ASSERT_EQ(node->compute_type, xnn_compute_type_qu8);
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ASSERT_EQ(node->params.even_split.axis, axis);
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ASSERT_EQ(node->num_inputs, 1);
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ASSERT_EQ(node->inputs[0], input_id);
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ASSERT_EQ(node->num_outputs, 2);
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ASSERT_EQ(node->outputs[0], output1_id);
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ASSERT_EQ(node->outputs[1], output2_id);
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ASSERT_EQ(node->flags, 0);
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}
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TEST_F(EvenSplit2TestF32, define)
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{
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ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
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xnn_subgraph_t subgraph = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
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std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
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input_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success, xnn_define_tensor_value(
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subgraph, xnn_datatype_fp32, input_dims.size(), input_dims.data(), nullptr, 0,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
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ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
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output1_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success, xnn_define_tensor_value(
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subgraph, xnn_datatype_fp32, output1_dims.size(), output1_dims.data(), nullptr, 1,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
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ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
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output2_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success, xnn_define_tensor_value(
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subgraph, xnn_datatype_fp32, output2_dims.size(), output2_dims.data(), nullptr, 2,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
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ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
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ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
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ASSERT_EQ(subgraph->num_nodes, 1);
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const struct xnn_node* node = &subgraph->nodes[0];
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ASSERT_EQ(node->type, xnn_node_type_even_split2);
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ASSERT_EQ(node->compute_type, xnn_compute_type_fp32);
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ASSERT_EQ(node->params.even_split.axis, axis);
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ASSERT_EQ(node->num_inputs, 1);
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ASSERT_EQ(node->inputs[0], input_id);
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ASSERT_EQ(node->num_outputs, 2);
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ASSERT_EQ(node->outputs[0], output1_id);
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ASSERT_EQ(node->outputs[1], output2_id);
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ASSERT_EQ(node->flags, 0);
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}
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TEST_F(EvenSplit2TestQS8, matches_operator_api)
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{
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std::generate(input.begin(), input.end(), [&]() { return i8dist(rng); });
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std::fill(operator_output1.begin(), operator_output1.end(), INT8_C(0xA5));
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std::fill(operator_output2.begin(), operator_output2.end(), INT8_C(0xA5));
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std::fill(subgraph_output1.begin(), subgraph_output1.end(), INT8_C(0xA5));
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std::fill(subgraph_output2.begin(), subgraph_output2.end(), INT8_C(0xA5));
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ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
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xnn_operator_t op1 = nullptr;
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xnn_operator_t op2 = nullptr;
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// Call operator API.
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ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x8(channels, input_stride, channels, /*flags=*/0, &op1));
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std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op1(op1, xnn_delete_operator);
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ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x8(channels, input_stride, channels, /*flags=*/0, &op2));
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std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op2(op2, xnn_delete_operator);
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ASSERT_EQ(
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xnn_status_success,
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xnn_setup_copy_nc_x8(op1, batch_size, input.data(), operator_output1.data(), nullptr /* thread pool */));
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ASSERT_EQ(
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xnn_status_success,
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xnn_setup_copy_nc_x8(
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op2, batch_size, (uint8_t*) input.data() + op1->channels, operator_output2.data(), nullptr /* thread pool */));
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ASSERT_EQ(xnn_status_success, xnn_run_operator(op1, nullptr /* thread pool */));
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ASSERT_EQ(xnn_status_success, xnn_run_operator(op2, nullptr /* thread pool */));
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// Call subgraph API.
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xnn_subgraph_t subgraph = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
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std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
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input_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, input_dims.size(), input_dims.data(), nullptr, 0,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
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ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
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output1_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, output1_dims.size(), output1_dims.data(), nullptr, 1,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
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ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
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output2_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_qint8, signed_zero_point, scale, output2_dims.size(), output2_dims.data(), nullptr, 2,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
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ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
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ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
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xnn_runtime_t runtime = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_runtime_v3(subgraph, nullptr, nullptr, /*flags=*/0, &runtime));
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ASSERT_NE(nullptr, runtime);
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std::unique_ptr<xnn_runtime, decltype(&xnn_delete_runtime)> auto_runtime(runtime, xnn_delete_runtime);
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std::array<xnn_external_value, 3> external = {
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xnn_external_value{input_id, input.data()},
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xnn_external_value{output1_id, subgraph_output1.data()},
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xnn_external_value{output2_id, subgraph_output2.data()},
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};
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ASSERT_EQ(xnn_status_success, xnn_setup_runtime(runtime, external.size(), external.data()));
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ASSERT_EQ(xnn_status_success, xnn_invoke_runtime(runtime));
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ASSERT_EQ(subgraph_output1, operator_output1);
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ASSERT_EQ(subgraph_output2, operator_output2);
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}
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TEST_F(EvenSplit2TestQU8, matches_operator_api)
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{
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std::generate(input.begin(), input.end(), [&]() { return u8dist(rng); });
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std::fill(operator_output1.begin(), operator_output1.end(), UINT8_C(0xA5));
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std::fill(operator_output2.begin(), operator_output2.end(), UINT8_C(0xA5));
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std::fill(subgraph_output1.begin(), subgraph_output1.end(), UINT8_C(0xA5));
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std::fill(subgraph_output2.begin(), subgraph_output2.end(), UINT8_C(0xA5));
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ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
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xnn_operator_t op1 = nullptr;
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xnn_operator_t op2 = nullptr;
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// Call operator API.
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ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x8(channels, input_stride, channels, /*flags=*/0, &op1));
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std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op1(op1, xnn_delete_operator);
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ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x8(channels, input_stride, channels, /*flags=*/0, &op2));
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std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op2(op2, xnn_delete_operator);
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ASSERT_EQ(
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xnn_status_success,
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xnn_setup_copy_nc_x8(op1, batch_size, input.data(), operator_output1.data(), nullptr /* thread pool */));
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ASSERT_EQ(
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xnn_status_success,
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xnn_setup_copy_nc_x8(
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op2, batch_size, (uint8_t*) input.data() + op1->channels, operator_output2.data(), nullptr /* thread pool */));
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ASSERT_EQ(xnn_status_success, xnn_run_operator(op1, nullptr /* thread pool */));
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ASSERT_EQ(xnn_status_success, xnn_run_operator(op2, nullptr /* thread pool */));
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// Call subgraph API.
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xnn_subgraph_t subgraph = nullptr;
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ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
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std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
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input_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, input_dims.size(), input_dims.data(), nullptr, 0,
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/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
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ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
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output1_id = XNN_INVALID_NODE_ID;
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ASSERT_EQ(
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xnn_status_success,
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xnn_define_quantized_tensor_value(
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subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, output1_dims.size(), output1_dims.data(), nullptr, 1,
|
|
/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
|
|
ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
|
|
|
|
output2_id = XNN_INVALID_NODE_ID;
|
|
ASSERT_EQ(
|
|
xnn_status_success,
|
|
xnn_define_quantized_tensor_value(
|
|
subgraph, xnn_datatype_quint8, unsigned_zero_point, scale, output2_dims.size(), output2_dims.data(), nullptr, 2,
|
|
/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
|
|
ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
|
|
|
|
ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
|
|
|
|
xnn_runtime_t runtime = nullptr;
|
|
ASSERT_EQ(xnn_status_success, xnn_create_runtime_v3(subgraph, nullptr, nullptr, /*flags=*/0, &runtime));
|
|
ASSERT_NE(nullptr, runtime);
|
|
std::unique_ptr<xnn_runtime, decltype(&xnn_delete_runtime)> auto_runtime(runtime, xnn_delete_runtime);
|
|
std::array<xnn_external_value, 3> external = {
|
|
xnn_external_value{input_id, input.data()},
|
|
xnn_external_value{output1_id, subgraph_output1.data()},
|
|
xnn_external_value{output2_id, subgraph_output2.data()},
|
|
};
|
|
ASSERT_EQ(xnn_status_success, xnn_setup_runtime(runtime, external.size(), external.data()));
|
|
ASSERT_EQ(xnn_status_success, xnn_invoke_runtime(runtime));
|
|
|
|
ASSERT_EQ(subgraph_output1, operator_output1);
|
|
ASSERT_EQ(subgraph_output2, operator_output2);
|
|
}
|
|
|
|
TEST_F(EvenSplit2TestF32, matches_operator_api)
|
|
{
|
|
std::generate(input.begin(), input.end(), [&]() { return f32dist(rng); });
|
|
std::fill(operator_output1.begin(), operator_output1.end(), std::nanf(""));
|
|
std::fill(operator_output2.begin(), operator_output2.end(), std::nanf(""));
|
|
std::fill(subgraph_output1.begin(), subgraph_output1.end(), std::nanf(""));
|
|
std::fill(subgraph_output2.begin(), subgraph_output2.end(), std::nanf(""));
|
|
|
|
ASSERT_EQ(xnn_status_success, xnn_initialize(/*allocator=*/nullptr));
|
|
|
|
xnn_operator_t op1 = nullptr;
|
|
xnn_operator_t op2 = nullptr;
|
|
|
|
// Call operator API.
|
|
ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x32(channels, input_stride, channels, /*flags=*/0, &op1));
|
|
std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op1(op1, xnn_delete_operator);
|
|
ASSERT_EQ(xnn_status_success, xnn_create_copy_nc_x32(channels, input_stride, channels, /*flags=*/0, &op2));
|
|
std::unique_ptr<xnn_operator, decltype(&xnn_delete_operator)> auto_op2(op2, xnn_delete_operator);
|
|
|
|
ASSERT_EQ(
|
|
xnn_status_success,
|
|
xnn_setup_copy_nc_x32(op1, batch_size, input.data(), operator_output1.data(), nullptr /* thread pool */));
|
|
ASSERT_EQ(
|
|
xnn_status_success,
|
|
xnn_setup_copy_nc_x32(
|
|
op2, batch_size, (uint32_t*) input.data() + op1->channels, operator_output2.data(), nullptr /* thread pool */));
|
|
|
|
ASSERT_EQ(xnn_status_success, xnn_run_operator(op1, nullptr /* thread pool */));
|
|
ASSERT_EQ(xnn_status_success, xnn_run_operator(op2, nullptr /* thread pool */));
|
|
|
|
// Call subgraph API.
|
|
xnn_subgraph_t subgraph = nullptr;
|
|
ASSERT_EQ(xnn_status_success, xnn_create_subgraph(/*external_value_ids=*/3, /*flags=*/0, &subgraph));
|
|
std::unique_ptr<xnn_subgraph, decltype(&xnn_delete_subgraph)> auto_subgraph(subgraph, xnn_delete_subgraph);
|
|
|
|
input_id = XNN_INVALID_NODE_ID;
|
|
ASSERT_EQ(
|
|
xnn_status_success, xnn_define_tensor_value(
|
|
subgraph, xnn_datatype_fp32, input_dims.size(), input_dims.data(), nullptr, 0,
|
|
/*flags=*/XNN_VALUE_FLAG_EXTERNAL_INPUT, &input_id));
|
|
ASSERT_NE(input_id, XNN_INVALID_NODE_ID);
|
|
|
|
output1_id = XNN_INVALID_NODE_ID;
|
|
ASSERT_EQ(
|
|
xnn_status_success, xnn_define_tensor_value(
|
|
subgraph, xnn_datatype_fp32, output1_dims.size(), output1_dims.data(), nullptr, 1,
|
|
/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output1_id));
|
|
ASSERT_NE(output1_id, XNN_INVALID_NODE_ID);
|
|
|
|
output2_id = XNN_INVALID_NODE_ID;
|
|
ASSERT_EQ(
|
|
xnn_status_success, xnn_define_tensor_value(
|
|
subgraph, xnn_datatype_fp32, output2_dims.size(), output2_dims.data(), nullptr, 2,
|
|
/*flags=*/XNN_VALUE_FLAG_EXTERNAL_OUTPUT, &output2_id));
|
|
ASSERT_NE(output2_id, XNN_INVALID_NODE_ID);
|
|
|
|
ASSERT_EQ(xnn_status_success, xnn_define_even_split2(subgraph, axis, input_id, output1_id, output2_id, /*flags=*/0));
|
|
|
|
xnn_runtime_t runtime = nullptr;
|
|
ASSERT_EQ(xnn_status_success, xnn_create_runtime_v3(subgraph, nullptr, nullptr, /*flags=*/0, &runtime));
|
|
ASSERT_NE(nullptr, runtime);
|
|
std::unique_ptr<xnn_runtime, decltype(&xnn_delete_runtime)> auto_runtime(runtime, xnn_delete_runtime);
|
|
std::array<xnn_external_value, 3> external = {
|
|
xnn_external_value{input_id, input.data()},
|
|
xnn_external_value{output1_id, subgraph_output1.data()},
|
|
xnn_external_value{output2_id, subgraph_output2.data()},
|
|
};
|
|
ASSERT_EQ(xnn_status_success, xnn_setup_runtime(runtime, external.size(), external.data()));
|
|
ASSERT_EQ(xnn_status_success, xnn_invoke_runtime(runtime));
|
|
|
|
ASSERT_EQ(subgraph_output1, operator_output1);
|
|
ASSERT_EQ(subgraph_output2, operator_output2);
|
|
}
|