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Optimization and performance evaluation of graphic processing units for voice processing

机译:用于语音处理的图形处理单元的优化和性能评估

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摘要

With the advancement in the device technology and parallel architecture, field-programmable gate arrays (FPGAs) can well perform the speech processing operation. FPGAs have very impressive results, despite their low operating frequency, by completely extracting the parallelism. Nevertheless, recent central processing unit and graphic processing unit (GPU) have also an inherent feature for high performance. In fact, recent GPUs enable dramatic increases in computing performance by harnessing great number of cores. In this context, we seek to analyze the performance of the linear prediction coding algorithm implementation on two different platforms: one based on the GPU NVIDIA GeForce GTX 480 and another on the FPGA Spartan-6. Subsequently, we try to apply several optimization strategies on those platforms. The experimental results highlight the relative robustness or weakness of both these platforms. The tests prove that, for several samples, GPU manages speedups of up to 4x compared to the FPGA and around 48x compared to a sequential execution.
机译:随着设备技术和并行体系结构的进步,现场可编程门阵列(FPGA)可以很好地执行语音处理操作。尽管FPGA的工作频率很低,但它通过完全提取并行性而取得了令人印象深刻的结果。尽管如此,最近的中央处理单元和图形处理单元(GPU)也具有固有的高性能特性。实际上,最近的GPU通过利用大量的内核来显着提高计算性能。在这种情况下,我们试图分析线性预测编码算法在两种不同平台上的性能:一种基于GPU NVIDIA GeForce GTX 480,另一种基于FPGA Spartan-6。随后,我们尝试在这些平台上应用几种优化策略。实验结果突出了这两个平台的相对健壮性或弱点。测试证明,对于多个示例,GPU的加速比是FPGA的4倍,而顺序执行则是48倍。

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