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Smith-Waterman Acceleration in Multi-GPUs: A Performance per Watt Analysis

机译:多GPU中的Smith-Waterman加速:每瓦性能分析

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We present a performance per watt analysis of CUDAlign 4.0, a parallel strategy to obtain the optimal alignment of huge DNA sequences in multi-GPU platforms using the exact Smith-Waterman method. Speed-up factors and energy consumption are monitored on different stages of the algorithm with the goal of identifying advantageous scenarios to maximize acceleration and minimize power consumption. Experimental results using CUDA on a set of GeForce GTX 980 GPUs illustrate their capabilities as high-performance and low-power devices, with a energy cost to be more attractive when increasing the number of GPUs. Overall, our results demonstrate a good correlation between the performance attained and the extra energy required, even in scenarios where multi-GPUs do not show great scalability.
机译:我们介绍了CUDAlign 4.0的每瓦性能分析,这是一种使用精确Smith-Waterman方法在多GPU平台中获得巨大DNA序列的最佳比对的并行策略。在算法的不同阶段监视加速因子和能量消耗,以识别有利的情况以最大程度地提高加速度和最小化功率消耗。在一组GeForce GTX 980 GPU上使用CUDA的实验结果说明了它们作为高性能和低功耗设备的功能,并且在增加GPU数量时的能源成本更具吸引力。总体而言,我们的结果表明,即使在多GPU的扩展性不佳的情况下,所获得的性能与所需的额外能量之间也具有良好的相关性。

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