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Using Metamorphic Testing to Evaluate DNN Coverage Criteria

机译:使用变质测试来评估DNN覆盖标准

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Generating test cases and further evaluating their “quality” are two critical topics in the area of Deep Neural Networks (DNNs). In this domain, different studies (e.g., [1], [2]) have reported that metamorphic testing (MT) serves as an effective test case generation method, where an initial set of source test cases is augmented with identified metamorphic relations (MRs) to produce the corresponding set of follow-up test cases. As a result, the fault detection effectiveness (and, hence, the “quality”) of the resulting test suite T, containing these source and follow-up test cases, will most likely be increased.
机译:生成测试用例和进一步评估其“质量”是深度神经网络(DNN)区域的两个关键主题。在该域中,不同的研究(例如,[1],[2])据报道,变质测试(MT)用作有效的测试用例生成方法,其中初始的源测试情况被增加了识别的变质关系(MRS )制作相应的后续测试用例。结果,最有可能增加含有这些源和后续测试用例的所得测试套件T的故障检测效果(以及因此,“质量”)。

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