GPU-Accelerated Estimation and Targeted Reduction of Peak IR-Drop during Scan Chain Shifting∗

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Abstract

High power dissipation during scan test often causes undue yield loss, especially for low-power circuits. One major reason is that the resulting IR-drop in shift mode may corrupt test data. A common approach to solving this problem is partial-shift, in which multiple scan chains are formed and only one group of scan chains is shifted at a time. However, existing partial-shift based methods suffer from two major problems: (1) their IR-drop estimation is not accurate enough or computationally too expensive to be done for each shift cycle; (2) partial-shift is hence applied to all shift cycles, resulting in long test time. This paper addresses these two problems with a novel IR-drop-aware scan shift method, featuring: (1) Cycle-based IR-Drop Estimation (CIDE) supported by a GPU-accelerated dynamic power simulator to quickly find potential shift cycles with excessive peak IR-drop; (2) a scan shift scheduling method that generates a scan chain grouping targeted for each considered shift cycle to reduce the impact on test time. Experiments on ITC’99 benchmark circuits show that: (1) the CIDE is computationally feasible; (2) the proposed scan shift schedule can achieve a global peak IR-drop reduction of up to 47%. Its scheduling efficiency is 58.4% higher than that of an existing typical method on average, which means our method has less test time.

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Shi, S., Holst, S., & Wen, X. (2023). GPU-Accelerated Estimation and Targeted Reduction of Peak IR-Drop during Scan Chain Shifting∗. In IEICE Transactions on Information and Systems (Vol. E106.D, pp. 1694–1704). Institute of Electronics Information Communication Engineers. https://doi.org/10.1587/transinf.2023EDP7011

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