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A Parallel Simulated Annealing Approach to Band Selection for High-Dimensional Remote Sensing Images

机译:高维遥感影像波段选择的并行模拟退火方法

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In this paper a parallel band selection approach, referred to as parallel simulated annealing band selection (PSABS), is presented for high-dimensional remote sensing images. The approach is based on the simulated annealing band selection (SABS) scheme which is originally designed to group highly correlated hyperspectral bands into a smaller subset of modules regardless of the original order in terms of wavelengths. SABS selects sets of correlated hyperspectral bands based on simulated annealing (SA) algorithm and utilizes the inherent separability of different classes to reduce dimensionality. In order to be effective, the proposed PSABS is introduced to improve the computational performance by using parallel computing technique. It allows multiple Markov chains (MMC) to be traced simultaneously and fully utilizes the parallelism of SABS to create a set of SABS modules on each parallel node. Two parallel implementations, namely the message passing interface (MPI) cluster-based library and the open multi-processing (OpenMP) multicore-based application programming interface, are applied to three different MMC techniques: non-interacting MMC, periodic exchange MMC and asynchronous MMC for evaluation. The effectiveness of the proposed PSABS is evaluated by NASA MODIS/ASTER (MASTER) airborne simulator data sets and airborne synthetic aperture radar (SAR) images for land cover classification during the Pacrim II campaign in the experiments. The results demonstrated that the MMC techniques of PSABS can significantly improve the computational performance and provide a more reliable quality of solution compared to the original SABS method.
机译:在本文中,提出了一种用于高维遥感图像的并行频带选择方法,称为并行模拟退火频带选择(PSABS)。该方法基于模拟退火带选择(SABS)方案,该方案最初旨在将高度相关的高光谱带分组为较小的模块子集,而与波长的原始顺序无关。 SABS基于模拟退火(SA)算法选择相关的高光谱波段集,并利用不同类别的固有可分离性来降低维数。为了有效,引入了所提出的PSABS,以通过使用并行计算技术来提高计算性能。它允许同时跟踪多个马尔可夫链(MMC),并充分利用SABS的并行性在每个并行节点上创建一组SABS模块。两种并行实现,即基于消息传递接口(MPI)群集的库和基于开放多处理(OpenMP)基于多核的应用程序编程接口,已应用于三种不同的MMC技术:非交互MMC,定期交换MMC和异步MMC进行评估。拟议的PSABS的有效性是通过NASA MODIS / ASTER(MASTER)机载模拟器数据集和机载合成孔径雷达(SAR)图像进行评估的,以进行Pacrim II运动期间的土地覆盖分类。结果表明,与原始SABS方法相比,PSABS的MMC技术可以显着提高计算性能,并提供更可靠的解决方案质量。

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