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A Hybrid Space Compactor for Adaptive X-Handling

机译:用于自适应X处理的混合空间压缩器

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The test for small delay faults is of major importance for predicting potential early life failures or wearout problems. Typically, a faster-than-at-speed test (FAST) with several different frequencies is used to detect also hidden small delays, which can only be propagated over short paths. But then the outputs at the end of long paths may no longer reach their stable values at the nominal observation time and must be considered as unknown (X-values). Thus, test response compaction for FAST must be extremely flexible to cope with high X-rates, which also vary with the test frequencies. Stochastic compaction introduced by Mitra et al. is controlled by weighted pseudo-random signals allowing for easy adaptation to varying conditions. As demonstrated in previous work, the pseudo-random control can be optimized for high fault efficiency or X-reduction, but a given target in fault efficiency cannot be guaranteed. To close this gap, a hybrid space compactor is introduced in this paper. It is based on the observation that many faults are lost in the compaction of relatively few critical test patterns. For these critical patterns a deterministic compaction phase is added to the test, where the existing compactor structure is re-used, but controlled by specifically determined control vectors.
机译:小延迟故障测试对于预测潜在的早期寿命故障或磨损问题至关重要。通常,使用具有几种不同频率的超速测试(FAST)来检测隐藏的小延迟,这些小延迟只能在短路径上传播。但是,长路径末尾的输出在标称观察时间可能不再达到其稳定值,因此必须视为未知值(X值)。因此,FAST的测试响应压缩必须非常灵活,以应对高X速率,该X速率也会随测试频率而变化。 Mitra等人介绍的随机压实。由加权伪随机信号控制,可轻松适应变化的条件。如先前的工作所示,可以优化伪随机控制以提高故障效率或减少X值,但是不能保证给定的故障效率目标。为了缩小这一差距,本文介绍了一种混合式空间压实机。基于这样的观察,相对较少的关键测试模式的压缩会损失许多错误。对于这些关键模式,确定性的压实阶段被添加到测试中,在该阶段重新使用现有的压实器结构,但受特定确定的控制向量控制。

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