2009Unpublished venueRequires access

A Low Overhead On-Chip Path Delay Measurement Circuit

Songwei Pei, Huawei Li, Xiaowei Li

Open publisher page 22 citations

Abstract

In this paper, we present a novel on-chip path delay measurement circuit for efficiently detecting and debugging of delay faults in the fabricated integrated circuits. Several delay stages are employed in the proposed circuit, whose delay ranges are increased by a factor of two gradually from the last to the first delay stage. Thus, the proposed method can achieve a large delay measurement range with a small quantity of delay stages. Experimental results show that a significant reduction in both delay measurement time and area overhead can be obtained compared to the previous Vernier Delay Line based delay measurement schemes. In addition, by conducting delay compensation, the proposed method can achieve both improved delay measurement resolution and measurement accuracy.

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What this paper is about

In this paper, we present a novel on-chip path delay measurement circuit for efficiently detecting and debugging of delay faults in the fabricated integrated circuits. Several delay stages are employed in the proposed circuit, whose delay ranges are increased by a factor of two gradually from the last to the first delay stage. Thus, the proposed method can achieve a large delay measurement range with a small quantity of delay stages. Experimental results show that a significant reduction in both delay measurement time and area overhead can be obtained compared to the previous Vernier Delay Line based delay measurement schemes. In addition, by conducting delay compensation, the proposed method can achieve both improved delay measurement resolution and measurement accuracy.

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OpenAlex reports 22 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

In this paper, we present a novel on-chip path delay measurement circuit for efficiently detecting and debugging of delay faults in the fabricated integrated circuits. Several delay stages are employed in the proposed circuit, whose delay ranges are increased by a factor of two gradually from the last to the first delay stage. Thus, the proposed method can achieve a large delay measurement range with a small quantity of delay stages. Experimental results show that a significant reduction in both delay measurement time and area overhead can be obtained compared to the previous Vernier Delay Line based delay measurement schemes. In addition, by conducting delay compensation, the proposed method can achieve both improved delay measurement resolution and measurement accuracy.

Key concepts: Delay calculation, Vernier scale, Computer science, Elmore delay, Propagation delay, Compensation (psychology), Electronic engineering, Overhead (engineering)

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