GPU-Based Soil Parameter Parallel Inversion for PolSAR Imagery

You Wu, Q. Yin, Fan Zhang
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Abstract

Polarimetric Synthetic Aperture Radar (PolSAR) can obtain ground polarization information by transmitting and receiving polarized waves. The polarization information of the ground soil can be inverted to the moisture and roughness information by the empirical models. With the massive increase of PolSAR data, the demand for efficient processing is gradually growing. In this paper, a GPU based surface parameter parallel inversion method is proposed to solve this issue in quantitative remote sensing. This paper improves computational efficiency by using instruction set optimization, algorithm redundancy optimization, and fast numerical operations. The experimental results show that the method can realize approximately 100 times faster than the original serial version on CPU. If only the calculation part is considered, the method should achieve more than 1000 times acceleration.
基于gpu的PolSAR影像土壤参数平行反演
偏振合成孔径雷达(PolSAR)通过发射和接收极化波来获取地面偏振信息。利用经验模型可以将土壤的极化信息反演为土壤的湿度和粗糙度信息。随着PolSAR数据的大量增加,对高效处理的需求也逐渐增长。本文提出了一种基于GPU的地表参数并行反演方法,以解决定量遥感中的这一问题。本文采用指令集优化、算法冗余优化和快速数值运算来提高计算效率。实验结果表明,该方法在CPU上的实现速度比原始串行版本快约100倍。如果只考虑计算部分,该方法应达到1000倍以上的加速度。
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