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Maximizing systolic array efficiency to accelerate the PairHMM Forward Algorithm

机译:最大化脉动阵列效率以加速PairHMM转发算法

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In the analysis of next-generation DNA sequencing data, Hidden Markov Models (HMMs) are used to perform variant calling between DNA sequences and a reference genome. The PairHMM model is solved by the Forward Algorithm, for which the performance and power efficiency can be increased tremendously using systolic arrays (SAs) in FPGAs. We model the performance characteristics of such SAs, and propose a novel architecture that allows the computational units to continuously perform useful work on the input data. The implementation achieves up to 90% of the theoretical throughput for a real dataset. The implementation of the proposed architecture achieves more than 2.5× throughput over the state-of-the-art on a similar contemporary platform.
机译:在分析下一代DNA测序数据时,隐马尔可夫模型(HMM)用于执行DNA序列与参考基因组之间的变异调用。 PairHMM模型由正向算法解决,通过使用FPGA中的脉动阵列(SA)可以大大提高性能和功率效率。我们对此类SA的性能特征进行建模,并提出一种新颖的体系结构,该体系结构允许计算单元对输入数据连续执行有用的工作。对于实际数据集,该实现可达到理论吞吐量的90%。与类似的现代平台上的最新技术相比,提出的体系结构的实现可实现2.5倍以上的吞吐量。

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