STT-tensorflow/tensorflow/lite/kernels/arg_min_max_test.cc
Karim Nosir 2a96849f47 Update source files with used includes.
PiperOrigin-RevId: 316589177
Change-Id: I0aba0ed1cf9ff478e7890fa53a7749bf844bd26d
2020-06-15 18:42:14 -07:00

264 lines
9.0 KiB
C++

/* Copyright 2018 The TensorFlow Authors. All Rights Reserved.
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
==============================================================================*/
#include <stdint.h>
#include <initializer_list>
#include <tuple>
#include <vector>
#include <gtest/gtest.h>
#include "flatbuffers/flatbuffers.h" // from @flatbuffers
#include "tensorflow/lite/kernels/test_util.h"
#include "tensorflow/lite/schema/schema_generated.h"
namespace tflite {
namespace {
using ::testing::ElementsAreArray;
class ArgBaseOpModel : public SingleOpModel {
public:
ArgBaseOpModel(TensorType input_type, int axis_value, TensorType axis_type,
bool constant_axis, TensorType output_type)
: axis_value_(axis_value),
axis_type_(axis_type),
constant_axis_(constant_axis) {
input_ = AddInput(input_type);
if (constant_axis) {
if (axis_type == TensorType_INT64) {
axis_ =
AddConstInput(axis_type, {static_cast<int64_t>(axis_value)}, {1});
} else {
axis_ = AddConstInput(axis_type, {axis_value}, {1});
}
} else {
axis_ = AddInput(axis_type);
}
output_ = AddOutput(output_type);
}
int input() const { return input_; }
int axis() const { return axis_; }
std::vector<int32_t> GetInt32Output() const {
return ExtractVector<int32_t>(output_);
}
std::vector<int64_t> GetInt64Output() const {
return ExtractVector<int64_t>(output_);
}
std::vector<int> GetOutputShape() { return GetTensorShape(output_); }
protected:
void PopulateAxisIfNeeded() {
if (constant_axis_) return;
if (axis_type_ == TensorType_INT32) {
PopulateTensor<int32_t>(axis(), {axis_value_});
} else {
PopulateTensor<int64_t>(axis(), {axis_value_});
}
}
const int axis_value_;
const TensorType axis_type_;
const bool constant_axis_;
int input_;
int axis_;
int output_;
};
class ArgMaxOpModel : public ArgBaseOpModel {
public:
ArgMaxOpModel(std::initializer_list<int> input_shape, TensorType input_type,
int axis_value, TensorType axis_type, bool constant_axis,
TensorType output_type)
: ArgBaseOpModel(input_type, axis_value, axis_type, constant_axis,
output_type) {
ArgBaseOpModel::SetBuiltinOp(
BuiltinOperator_ARG_MAX, BuiltinOptions_ArgMaxOptions,
CreateArgMaxOptions(ArgBaseOpModel::builder_, output_type).Union());
ArgBaseOpModel::BuildInterpreter({input_shape, {1}});
PopulateAxisIfNeeded();
}
};
class ArgMinOpModel : public ArgBaseOpModel {
public:
ArgMinOpModel(std::initializer_list<int> input_shape, TensorType input_type,
int axis_value, TensorType axis_type, bool constant_axis,
TensorType output_type)
: ArgBaseOpModel(input_type, axis_value, axis_type, constant_axis,
output_type) {
ArgBaseOpModel::SetBuiltinOp(
BuiltinOperator_ARG_MIN, BuiltinOptions_ArgMinOptions,
CreateArgMinOptions(ArgBaseOpModel::builder_, output_type).Union());
ArgBaseOpModel::BuildInterpreter({input_shape, {1}});
PopulateAxisIfNeeded();
}
};
// Declare ArgMinMaxOpTest as a parameterized test, where the parameter is a
// tuple with:
// - boolean indicating whether to use a constant axis or not.
// - axis type (TensorType_INT32 or TensorType_INT64)
// - output type (TensorType_INT32 or TensorType_INT64)
class ArgMinMaxOpTest : public ::testing::TestWithParam<
std::tuple<bool, TensorType, TensorType>> {
public:
bool ConstantAxis() const { return std::get<0>(GetParam()); }
TensorType AxisType() const { return std::get<1>(GetParam()); }
TensorType OutputType() const { return std::get<2>(GetParam()); }
void ValidateOutput(const ArgBaseOpModel& model,
const std::vector<int>& expected_output) {
if (OutputType() == TensorType_INT32) {
EXPECT_THAT(model.GetInt32Output(), ElementsAreArray(expected_output));
} else {
EXPECT_THAT(model.GetInt64Output(), ElementsAreArray(expected_output));
}
}
};
INSTANTIATE_TEST_SUITE_P(
ArgMinMaxOpTest, ArgMinMaxOpTest,
::testing::Combine(::testing::Bool(),
::testing::Values(TensorType_INT32, TensorType_INT64),
::testing::Values(TensorType_INT32, TensorType_INT64)));
TEST_P(ArgMinMaxOpTest, GetMaxArgFloat) {
ArgMaxOpModel model({1, 1, 1, 4}, TensorType_FLOAT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<float>(model.input(), {0.1, 0.9, 0.7, 0.3});
model.Invoke();
ValidateOutput(model, {1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgUInt8) {
ArgMaxOpModel model({1, 1, 1, 4}, TensorType_UINT8, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<uint8_t>(model.input(), {1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgInt8) {
ArgMaxOpModel model({1, 1, 1, 4}, TensorType_INT8, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int8_t>(model.input(), {-1, -9, 7, 3});
model.Invoke();
ValidateOutput(model, {2});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgInt) {
ArgMaxOpModel model({1, 1, 1, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgMulDimensions) {
ArgMaxOpModel model({1, 1, 2, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {3, 1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 2}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgNegativeAxis) {
ArgMaxOpModel model({1, 1, 2, 4}, TensorType_INT32, -2, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {0, 1, 0, 0});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 4}));
}
TEST_P(ArgMinMaxOpTest, GetMaxArgOutput64) {
ArgMaxOpModel model({1, 1, 2, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {10, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {0, 1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 2}));
}
TEST_P(ArgMinMaxOpTest, GetMinArgFloat) {
ArgMinOpModel model({1, 1, 1, 4}, TensorType_FLOAT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<float>(model.input(), {0.1, 0.9, 0.7, 0.3});
model.Invoke();
ValidateOutput(model, {0});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMinArgInt) {
ArgMinOpModel model({1, 1, 1, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {0});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 1}));
}
TEST_P(ArgMinMaxOpTest, GetMinArgMulDimensions) {
ArgMinOpModel model({1, 1, 2, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {0, 0});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 2}));
}
TEST_P(ArgMinMaxOpTest, GetMinArgNegativeAxis) {
ArgMinOpModel model({1, 1, 2, 4}, TensorType_INT32, -2, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {1, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {0, 0, 0, 1});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 4}));
}
TEST_P(ArgMinMaxOpTest, GetMinArgOutput64) {
ArgMinOpModel model({1, 1, 2, 4}, TensorType_INT32, 3, AxisType(),
ConstantAxis(), OutputType());
model.PopulateTensor<int>(model.input(), {10, 2, 7, 8, 1, 9, 7, 3});
model.Invoke();
ValidateOutput(model, {1, 0});
EXPECT_THAT(model.GetOutputShape(), ElementsAreArray({1, 1, 2}));
}
} // namespace
} // namespace tflite