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Efficient imagery exploitation employing wavelet-based feature indices

机译:利用基于小波的特征索引进行有效的图像开发

摘要

A wavelet-based band difference-sum ratio method reduces the computation cost of classification and feature extraction (identification) tasks. A Generalized Difference Feature Index (GDFI), computed using wavelets such as Daubechies wavelets, is employed in a method to automatically generate a large sequence of generalized band ratio images. In select embodiments of the present invention, judicious data mining of the large set of GDFI bands produces a small subset of GDFI bands suitable to identify specific Terrain Category/Classification (TERCAT) features. Other wavelets, such as Vaidyanathan, Coiflet, Beylkin, and Symmlet and the like may be employed in select embodiments. The classification and feature extraction (identification) performance of the band ratio method of the present invention is comparable to that obtained with the same or similar data sets using much more sophisticated methods such as discriminants, neural net classification, endmember Gibbs-based partitioning, and genetic algorithms.
机译:基于小波的带差和比率方法减少了分类和特征提取(识别)任务的计算成本。使用小波(例如Daubechies小波)计算的广义差异特征索引(GDFI)用于自动生成大序列的广义带比图像的方法。在本发明的选择实施例中,对大组GDFI频带的明智数据挖掘产生了适合识别特定地形类别/分类(TERCAT)特征的GDFI频带的小子集。在选择的实施例中可以采用其他小波,例如Vaidyanathan,Coiflet,Beylkin和Symmlet等。本发明的带比率方法的分类和特征提取(识别)性能可与使用更为复杂的方法(例如判别,神经网络分类,基于端基吉布斯的划分和遗传算法。

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