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Low power field programmable gate array implementation of fast digital signal processing algorithms: characterisation and manipulation of data locality

机译:低功耗现场可编程门阵列快速数字信号处理算法的实现:数据局部性的表征和处理

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摘要

Dynamic power consumption is very dependent on interconnect, so clever mapping of digital signal processing algorithms to parallelised realisations with data locality is vital. This is a particular problem for fast algorithm implementations where typically, designers will have sacrificed circuit structure for efficiency in software implementation. This study outlines an approach for reducing the dynamic power consumption of a class of fast algorithms by minimising the index space separation; this allows the generation of field programmable gate array (FPGA) implementations with reduced power consumption. It is shown how a 50% reduction in relative index space separation results in a measured power gain of 36 and 37% over a Cooley-Tukey Fast Fourier Transform (FFT)-based solution for both actual power measurements for a Xilinx Virtex-II FPGA implementation and circuit measurements for a Xilinx Virtex-5 implementation. The authors show the generality of the approach by applying it to a number of other fast algorithms namely the discrete cosine, the discrete Hartley and the Walsh-Hadamard transforms.
机译:动态功耗非常依赖于互连,因此,将数字信号处理算法巧妙地映射到具有数据局部性的并行实现至关重要。对于快速算法实现而言,这是一个特殊的问题,在这种情况下,设计人员通常会牺牲电路结构来提高软件实现的效率。这项研究概述了一种通过最小化索引空间间隔来减少一类快速算法的动态功耗的方法。这允许以降低的功耗生成现场可编程门阵列(FPGA)实现。结果表明,相对于基于Cooley-Tukey快速傅立叶变换(FFT)的解决方案,相对于索引空间间隔的50%减少,如何实现Xilinx Virtex-II FPGA的两种实际功率测量,分别实现了36%和37%的测量功率增益Xilinx Virtex-5实现的硬件实现和电路测量。作者通过将其应用于许多其他快速算法(即离散余弦,离散Hartley和Walsh-Hadamard变换)来展示该方法的一般性。

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