Test vector generation based on correlation model for ratio-I/sub DDQ/

Xiaoyun Sun, L. Kinney, B. Vinnakota
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引用次数: 2

Abstract

For ratio-Iddq testing, the test performance is significantly affected by the correlation between two currents of different input patterns as process parameters vary. In this paper we first study the reason for strong correlation between Iddq currents for different test vectors, then build a model to estimate the correlation. Based on this model, we propose three test vector selection methods to improve the fault detection ability of ratio-Iddq testing by selecting test vector pairs with the highest correlation. Hspice simulation showed that the fault detection ability can be improved by as much as an order of magnitude. We also describe a test vector partitioning technique to increase the correlation between Iddq currents of different test vectors.
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基于比值i /sub DDQ/相关模型的测试向量生成
对于ratio-Iddq测试,随着工艺参数的变化,两种不同输入模式电流之间的相关性对测试性能有显著影响。本文首先研究了不同测试向量的Iddq电流之间存在强相关性的原因,然后建立了一个模型来估计相关性。在此模型的基础上,我们提出了三种测试向量选择方法,通过选择相关性最高的测试向量对来提高ratio-Iddq测试的故障检测能力。Hspice仿真结果表明,该方法可将故障检测能力提高一个数量级。我们还描述了一种测试向量划分技术,以增加不同测试向量的Iddq电流之间的相关性。
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Fault pattern oriented defect diagnosis for memories A built-in self-repair scheme for semiconductor memories with 2-d redundancy Cost-effective approach for reducing soft error failure rate in logic circuits A new maximal diagnosis algorithm for bus-structured systems Test vector generation based on correlation model for ratio-I/sub DDQ/
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