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Empirical Analysis of the Dependence of Test Power, Delay, Energy and Fault Coverage on the Architecture of LFSR-Based TPGs

机译:基于LFSR的TPG的架构依赖性,延迟,能量和故障覆盖依赖性的实证分析

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Power dissipation, energy consumption of CUT and also number of required test vectors for obtaining predetermined fault coverage are the most important criteria used for evaluating the quality of a test pattern generator (TPG). In this paper, we analyze LFSR's flexibility in improving these evaluation criteria for TPG. Usually, we are interested in considering these different criteria simultaneously, while looking for the best configuration. For this purpose, we use genetic algorithm as our optimization algorithm and define some new optimization functions and analyze the capability of LFSR to reduce power, energy and test delay under these functions. From our experimental results on ISCAS'89 and ITC'99, we show that power dissipation of CUT is approximately independent of different optimization functions, and so energy consumption only depends on the number of test vectors. On the other hand, test delay depends on the optimization function, which enforces us to include delay term in the function to avoid test vector increment. Finally, by analyzing energy efficiency values and behavior of energy consumption in terms of fault coverage, under different optimization functions, we show that delay is a suitable optimization function for LFSRs with respect to the number of test vectors, power dissipation, energy consumption and energy efficiency.
机译:功耗,切割的能量消耗以及用于获得预定故障覆盖的所需测试向量的数量是用于评估测试模式发生器(TPG)的质量的最重要标准。在本文中,我们分析了LFSR在改进TPG的评估标准方面的灵活性。通常,我们有兴趣同时考虑这些不同的标准,同时寻找最佳配置。为此目的,我们使用遗传算法作为优化算法,并定义一些新的优化功能,并分析LFSR的能力,以降低这些功能下的功率,能量和测试延迟。从我们的ISCAS'89和ITC'99上的实验结果,我们表明切割的功耗大致独立于不同的优化功能,因此能量消耗仅取决于测试向量的数量。另一方面,测试延迟取决于优化函数,它强制执行函数中的延迟项以避免测试矢量增量。最后,通过在故障覆盖范围内分析能量消耗的能量效率和行为,在不同的优化功能下,我们表明延迟是LFSRS关于测试向量,功耗,能量消耗和能量的适当优化功能效率。

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