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An FPGA Architecture and CAD Flow Supporting Dynamically Controlled Power Gating

Assem A. M. Bsoul, Steven J. E. Wilton, Kuen Hung Tsoi, Wayne Luk

Year
2015
Citations
21

Abstract

Leakage power is an important component of the total power consumption in field-programmable gate arrays (FPGAs) built using 90-nm and smaller technology nodes. Power gating was shown to be effective at reducing the leakage power. Previous techniques focus on turning OFF unused FPGA resources at configuration time; the benefit of this approach depends on resource utilization. In this paper, we present an FPGA architecture that enables dynamically controlled power gating, in which FPGA resources can be selectively powered down at run-time. This could lead to significant overall energy savings for applications having modules with long idle times. We also present a CAD flow that can be used to map applications to the proposed architecture. We study the area and power tradeoffs by varying the different FPGA architecture parameters and power gating granularity. The proposed CAD flow is used to map a set of benchmark circuits that have multiple power-gated modules to the proposed architecture. Power savings of up to 83% are achievable for these circuits. Finally, we study a control system of a robot that is used in endoscopy. Using the proposed architecture combined with clock gating results in up to 19% energy savings in this application.

Keywords

Power gatingField-programmable gate arrayClock gatingComputer scienceEmbedded systemLow-power electronicsBenchmark (surveying)Dynamic demandElectronic circuitComputer hardware

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