2013•IEICE Electronics ExpressOpen access

An improved timing monitor for deep dynamic voltage scaling system

Weiwei Shan, Haolin Gu, Bo Li, Xiaoqing Wu, Haikun Jin, Yintao Guo, Peng Cao

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Abstract

In the current Dynamic voltage scaling (DVS) integrated circuits, sufficient timing and voltage margins are typically wasted, because it is difficult to anticipate the exact amount by which the voltage or frequency should be scaled. The on-chip timing monitoring method is effective for this problem. In this paper, an improved timing monitor circuit with a fast error comparator is designed to detect and correct timing errors, and then it is used in a DVS system on 65nm CMOS technology for deep DVS. Post-layout simulation results show that the monitor performs well in different process corners with a wide voltage range and wide temperature range. Compared with the non-DVS circuit supplied by a fixed 1.2V voltage, our timing monitor based DVS system can save, on average, 33.4% dynamic power in different corners at the expense of 22.9% increased area.

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What this paper is about

In the current Dynamic voltage scaling (DVS) integrated circuits, sufficient timing and voltage margins are typically wasted, because it is difficult to anticipate the exact amount by which the voltage or frequency should be scaled. The on-chip timing monitoring method is effective for this problem. In this paper, an improved timing monitor circuit with a fast error comparator is designed to detect and correct timing errors, and then it is used in a DVS system on 65nm CMOS technology for deep DVS. Post-layout simulation results show that the monitor performs well in different process corners with a wide voltage range and wide temperature range. Compared with the non-DVS circuit supplied by a fixed 1.2V voltage, our timing monitor based DVS system can save, on average, 33.4% dynamic power in different corners at the expense of 22.9% increased area.

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Available abstract

In the current Dynamic voltage scaling (DVS) integrated circuits, sufficient timing and voltage margins are typically wasted, because it is difficult to anticipate the exact amount by which the voltage or frequency should be scaled. The on-chip timing monitoring method is effective for this problem. In this paper, an improved timing monitor circuit with a fast error comparator is designed to detect and correct timing errors, and then it is used in a DVS system on 65nm CMOS technology for deep DVS. Post-layout simulation results show that the monitor performs well in different process corners with a wide voltage range and wide temperature range. Compared with the non-DVS circuit supplied by a fixed 1.2V voltage, our timing monitor based DVS system can save, on average, 33.4% dynamic power in different corners at the expense of 22.9% increased area.

Key concepts: Comparator, Dynamic voltage scaling, Voltage, CMOS, Process corners, Electronic engineering, Computer science, Chip

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