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DFT architecture with power-distribution-network consideration for delay-based power gating test

机译:具有功率分配网络考虑的DFT架构,用于基于延迟的功率门控测试

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摘要

This paper shows that existing delay-based testing techniques for power gating exhibit both fault coverage and yield loss due to deviations at the charging delay introduced by the distributed nature of the power-distribution-networks (PDNs). To restore this test quality loss, which could reach up to 67.7% of false passes and 25% of false fails due to stuck-open faults, we propose a design-for-testability (DFT) logic that accounts for a distributed PDN. The proposed logic is optimized by an algorithm that also handles uncertainty due to process variations and offers trade-off flexibility between test-application-time and area cost. A calibration process is proposed to bridge model-to-hardware discrepancies and increase test quality when considering systematic variations. Through SPICE simulations, we show complete recovery of the test quality lost due to PDNs. The proposed method is robust sustaining 80.3% to 98.6% of the achieved test quality under high random and systematic process variations. To the best of our knowledge, this paper presents the first analysis of the PDN impact on test quality and offers a unified test solution for both ring and grid power gating styles.
机译:本文表明,由于功率分配网络(PDN)的分布式特性导致的充电延迟偏差,现有的基于延迟的功率门控测试技术既显示故障覆盖率,又显示产量损失。为了恢复这种测试质量损失,由于卡塞开路故障,可能会导致高达67.7%的错误通过和25%的错误失败,我们提出了一种可测试性设计(DFT)逻辑,该逻辑考虑了分布式PDN。所提出的逻辑通过一种算法进行了优化,该算法还可以处理由于工艺变化而引起的不确定性,并在测试应用时间和面积成本之间提供折衷的灵活性。当考虑系统差异时,提出了一种校准过程来弥合模型与硬件的差异并提高测试质量。通过SPICE仿真,我们显示出由于PDN而导致的测试质量的完全恢复。所提出的方法在高随机性和系统性过程变化的情况下具有很强的鲁棒性,可维持80.3%至98.6%的测试质量。据我们所知,本文介绍了对PDN对测试质量的影响的首次分析,并为环网和电网电源门控样式提供了统一的测试解决方案。

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