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60 lines
2.5 KiB
C++
60 lines
2.5 KiB
C++
//
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// Copyright © 2017 Arm Ltd. All rights reserved.
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// SPDX-License-Identifier: MIT
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//
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#include "../InferenceTest.hpp"
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#include "../ImagePreprocessor.hpp"
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#include "armnnOnnxParser/IOnnxParser.hpp"
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int main(int argc, char* argv[])
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{
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int retVal = EXIT_FAILURE;
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try
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{
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// Coverity fix: The following code may throw an exception of type std::length_error.
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std::vector<ImageSet> imageSet =
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{
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{"Dog.jpg", 208},
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{"Cat.jpg", 281},
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{"shark.jpg", 2},
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};
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armnn::TensorShape inputTensorShape({ 1, 3, 224, 224 });
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using DataType = float;
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using DatabaseType = ImagePreprocessor<float>;
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using ParserType = armnnOnnxParser::IOnnxParser;
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using ModelType = InferenceModel<ParserType, DataType>;
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// Coverity fix: ClassifierInferenceTestMain() may throw uncaught exceptions.
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retVal = armnn::test::ClassifierInferenceTestMain<DatabaseType, ParserType>(
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argc, argv,
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"mobilenetv2-1.0.onnx", // model name
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true, // model is binary
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"data", "mobilenetv20_output_flatten0_reshape0", // input and output tensor names
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{ 0, 1, 2 }, // test images to test with as above
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[&imageSet](const char* dataDir, const ModelType&) {
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// This creates create a 1, 3, 224, 224 normalized input with mean and stddev to pass to Armnn
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return DatabaseType(
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dataDir,
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224,
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224,
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imageSet,
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255.0, // scale
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{{0.485f, 0.456f, 0.406f}}, // mean
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{{0.229f, 0.224f, 0.225f}}, // stddev
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DatabaseType::DataFormat::NCHW); // format
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},
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&inputTensorShape);
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}
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catch (const std::exception& e)
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{
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// Coverity fix: BOOST_LOG_TRIVIAL (typically used to report errors) may throw an
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// exception of type std::length_error.
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// Using stderr instead in this context as there is no point in nesting try-catch blocks here.
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std::cerr << "WARNING: OnnxMobileNet-Armnn: An error has occurred when running "
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"the classifier inference tests: " << e.what() << std::endl;
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}
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return retVal;
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}
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