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Hybrid classification using combination of optimized spectral angle mapping algorithm and interpolation method on multispectral and hyper spectral image

机译:优化光谱角映射算法与插值方法相结合的多光谱和高光谱图像混合分类

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摘要

A growing number of studies in recent years has focused on improvement of performance of classification algorithm on hyper-spectral image; this provides a scientific basis for efficient object detection. This paper tries to improve the performance of spectral angle mapping algorithm to classify the hyper-spectral image. The proposed method uses combination of spectral angle mapping algorithm and interpolation method with supervised clustering techniques for efficient object detection and region finding. Spectral angle mapping algorithm is used for finding pure pixel, thereby reducing the probability of false object detection due to geometric errors. The experimental results show that, proposed hybrid technique reduces the probability of false object detection with inbuilt radiometric error enhancement capability for hyper-spectral image.
机译:近年来,越来越多的研究集中在提高高光谱图像分类算法的性能上。这为有效的物体检测提供了科学依据。本文试图提高光谱角度映射算法对高光谱图像分类的性能。该方法结合了光谱角度映射算法和插值方法以及监督聚类技术,可以有效地进行目标检测和区域发现。光谱角度映射算法用于查找纯像素,从而降低了由于几何误差而导致的虚假对象检测的可能性。实验结果表明,所提出的混合技术通过内置的高光谱图像辐射误差增强功能,降低了错误物体检测的可能性。

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