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A probabilistic analysis method for functional qualification under Mutation Analysis

机译:变异分析下功能鉴定的概率分析方法

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Mutation Analysis (MA) is a fault-based simulation technique that is used to measure the quality of testbenches in error (mutant) detection. Although MA effectively reports the living mutants to designers, it suffers from the high simulation cost. This paper presents a probabilistic MA preprocessing technique, Error Propagation Analysis (EPA), to speed up the MA process. EPA can statically estimate the probability of the error propagation with respect to each mutant for guiding the observation-point insertion. The inserted observation-points will reveal a mutant's status earlier during the simulation such that some useless testcases can be discarded later. We use the mutant model from an industrial EDA tool, Certitude, to conduct our experiments on the OpenCores' RT-level designs. The experimental results show that the EPA approach can save about 14% CPU time while obtaining the same mutant status report as the traditional MA approach.
机译:变异分析(MA)是一种基于故障的仿真技术,用于测量错误(变异)检测中测试平台的质量。尽管MA有效地向设计人员报告了活体突变体,但它遭受了高昂的仿真成本。本文提出了一种概率性MA预处理技术,即错误传播分析(EPA),以加快MA的处理过程。 EPA可以针对每个突变体静态估计错误传播的可能性,以指导观察点插入。插入的观察点将在仿真过程中更早地揭示突变体的状态,以便稍后可以丢弃一些无用的测试用例。我们使用来自工业EDA工具Certitude的突变模型对OpenCores的RT级设计进行实验。实验结果表明,EPA方法可以节省大约14%的CPU时间,同时获得与传统MA方法相同的突变状态报告。

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