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GPU-based Parallel Implementation of SAR Imaging

机译:基于GPU的SAR成像并行实现

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Synthetic Aperture Radar (SAR) is an all-weather remote sensing technology and occupies a great position in disaster observation and geological mapping. The main challenge for SAR processing is the huge volume of raw data, which demands tremendous computation. This limits the utilization of SAR, especially for real-time applications. On the other hand, recent developments in Graphics Processing Unit (GPU) technology, which obtain general processing capability, high parallel computation performance, and ultra wide memory bandwidth, offer a novel method for computationally intensive applications. This work proposes a parallel implementation of SAR imaging on GPU via Compute Unified Device Architecture (CUDA), and provides a potential solution for SAR real-time processing. The results show that the proposed method obtained a speedup of 31.72, compared to a CPU platform.
机译:合成孔径雷达(SAR)是一种全天候的遥感技术,在灾害观察和地质测绘中占有重要地位。 SAR处理的主要挑战是大量原始数据,这需要大量计算。这限制了SAR的利用率,特别是对于实时应用。另一方面,获得通用处理能力,高并行计算性能和超宽存储带宽的图形处理单元(GPU)技术的最新发展为计算密集型应用程序提供了一种新颖的方法。这项工作提出了通过Compute Unified Device Architecture(CUDA)在GPU上并行执行SAR成像的方法,并为SAR实时处理提供了潜在的解决方案。结果表明,与CPU平台相比,该方法的加速比为31.72。

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