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Accelerating persistent scatterer pixel selection for InSAR processing

机译:加快InSAR处理的持久散射体像素选择

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Interferometric Synthetic Aperture Radar (InSAR) is a remote sensing technology used for estimating displacement of the earth's surface. Phase unwrapping is the most important step in InSAR processing and relies on successful selection of points that appear stable across a set of satellite images taken over time. This paper presents a new algorithm for selecting these points, a problem known as persistent scatterer selection. The algorithm computes the temporal coherence on the wrapped phase derivative by subtracting phases of a pixel and one of its nearby neighbours. It does not require model assumptions, yet preserves accuracy. Motivated by the abundance of parallelism the algorithm exposes, we have implemented it for GPUs. Evaluation using real-world data shows that the GPU implementation not only offers widely superior performance but also scales linearly with GPU count and workload size. We compare the GPU implementation against a parallel CPU implementation: A consumer grade GPU offers an 18× speedup over a 16-core Ivy Bridge Xeon System, while four GPUs offer 65× speedup. Roofline analysis shows that, on a single GPU, our implementation achieves 83% of the peak FLOP-rate of the dual-CPU system. Additionally, the GPU-based solution consumes 29× less energy than the CPU-only solution.
机译:干涉式合成孔径雷达(InSAR)是一种遥感技术,用于估计地球表面的位移。相位展开是InSAR处理中最重要的一步,它依赖于成功选择在一段时间内在一组卫星图像上看起来稳定的点。本文提出了一种选择这些点的新算法,称为持久散射体选择问题。该算法通过减去像素及其附近邻居之一的相位来计算包裹相位导数的时间相干性。它不需要模型假设,但可以保持准确性。出于算法公开的大量并行性的推动,我们已经为GPU实现了它。使用实际数据进行的评估表明,GPU实施不仅提供广泛的优越性能,而且可以随GPU数量和工作负载大小线性扩展。我们将GPU实施与并行CPU实施进行了比较:消费级GPU的速度比16核Ivy Bridge Xeon系统高18倍,而四个GPU的速度却高65倍。 Roofline分析表明,在单个GPU上,我们的实现实现了双CPU系统峰值FLOP速率的83%。此外,基于GPU的解决方案比仅CPU的解决方案能耗低29倍。

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