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A Novel Low Area Overhead Body Bias FPGA Architecture for Low Power Applications

机译:适用于低功耗应用的新型低面积架空本体偏置FPGA架构

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As technology scales, leakage power shares a dominant part in the total power dissipation of the chip and reaches up to 50% or even higher at elevated temperatures in 45 nm technology. Leakage power dissipation is especially problematic for FPGAs due to their reconfigurable nature and large number of inactive resources. Body biasing is an efficient technique to reduce leakage current which has been widely adopted in 45 nm technology low power architectures.FPGAs with coarse grained body bias control only incurred about 10% of the area overhead while increasing the granularity to the finest level dramatically increases the area overhead over 100%. However, the coarse grained body bias control FPGA may not result in satisfactory leakage power reduction since all the paths passing a resource must have enough slacks. To overcome the assignment limitation, we propose a novel FPGA architecture which uses body biasing technique and clock skew scheduling at a coarse grained architecture level. Clock skew scheduling technique only incurs 3.35% of additional area overhead in order to distribute slack to the resource instead of increasing the minimum body-bias granularity. Further, we propose a body bias assignment algorithm to leverage the proposed architecture. Experimental results demonstrate that the proposed architecture achieved an average leakage reduction of about 76% as compared to 61% of coarse grained architecture.
机译:随着技术的发展,泄漏功率在芯片的总功耗中占主导地位,在45 nm技术中,在升高的温度下,泄漏功率高达50%甚至更高。由于FPGA具有可重配置的特性和大量的非活动资源,因此泄漏功耗对于FPGA尤其成问题。体偏置是一种有效的减少泄漏电流的技术,已被广泛用于45 nm技术低功耗架构中。具有粗粒度体偏置控制的FPGA仅占用约10%的面积开销,而将粒度提高到最佳水平则极大地增加了功耗。区域开销超过100%。然而,由于通过资源的所有路径必须具有足够的松弛度,因此粗粒体偏置控制FPGA可能无法降低泄漏功率。为了克服分配限制,我们提出了一种新颖的FPGA架构,该架构在粗粒度架构级别使用了本体偏置技术和时钟偏斜调度。时钟偏斜调度技术仅产生3.35%的额外区域开销,以便将空闲时间分配给资源,而不是增加最小的body-bias粒度。此外,我们提出了一种车身偏置分配算法,以利用所提出的架构。实验结果表明,与61%的粗颗粒结构相比,所提出的结构平均减少了约76%的泄漏。

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