首页> 外文会议>Field-Programmable Technology, 2004. Proceedings. 2004 IEEE International Conference on >Wavelet spectral dimension reduction of hyperspectral imagery on a reconfigurable computer
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Wavelet spectral dimension reduction of hyperspectral imagery on a reconfigurable computer

机译:可重构计算机上高光谱图像的小波光谱降维

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Hyperspectral imagery, by definition, provides valuable remote sensing observations at hundreds of frequency bands. Conventional image classification (interpretation) methods may not be used without dimension reduction preprocessing. Automatic wavelet reduction has been proven to yield better or comparable classification accuracy, while achieving substantial computational savings. However, the large hyperspectral data volumes remain to present a challenge for traditional processing techniques. Reconfigurable computers (RCs) can leverage the synergism between conventional processors and FPGAs to provide low-level hardware functionality at the same level of programmability as general-purpose computers. We investigate the potential of using RCs for on-board, i.e. aboard airborne/spaceborne carriers, preprocessing of hyperspectral imagery by prototyping for the first time the automatic wavelet dimension reduction algorithm. Our investigation exploits the fine and coarse grain parallelism provided by the RCs and has been experimentally verified on one of the state-of the art reconfigurable platforms, SRC-6E. An order of magnitude speedup over traditional processing techniques has been reported.
机译:根据定义,高光谱影像可在数百个频带上提供有价值的遥感观测。没有降维预处理,就不能使用常规的图像分类(解释)方法。事实证明,自动小波缩减可产生更好或相当的分类精度,同时可节省大量计算量。然而,大的高光谱数据量仍然对传统处理技术提出了挑战。可重配置计算机(RC)可以利用常规处理器和FPGA之间的协同作用,以与通用计算机相同的可编程性水平提供低级硬件功能。我们研究了首次将自动小波降维算法原型化,从而将RC应用于机载(即机载/空运)机,对高光谱图像进行预处理的潜力。我们的研究利用了RC提供的细晶粒和粗晶粒平行度,并已在最先进的可重构平台之一SRC-6E上进行了实验验证。据报道,与传统的处理技术相比,速度提高了一个数量级。

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