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Hyperspectral images classification by spectral-spatial processing

机译:通过光谱空间处理对高光谱图像进行分类

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A spectral-spatial hyperspectral image classification is proposed in this paper. The proposed method has two main contributions. 1- It removes the useless spatial information such as noise and distortions by applying the proposed smoothing filter. 2- It adds useful spatial information such as shape and size of objects presented in scene image by applying morphological filters. Moreover, the proposed method copes with the small sample size problem by partitioning the hyperspectral image into several subsets of adjacent bands. Experimental results show that the proposed method is able to obtain higher classification accuracy compared to some state-of-the-art spectral-spatial classification methods.
机译:本文提出了一种光谱空间高光谱图像分类方法。所提出的方法有两个主要贡献。 1-通过应用建议的平滑滤波器,删除了无用的空间信息,例如噪声和失真。 2-通过应用形态过滤器,添加了有用的空间信息,例如场景图像中呈现的对象的形状和大小。此外,所提出的方法通过将高光谱图像划分为相邻频带的几个子集来解决小样本量的问题。实验结果表明,与某些最新的光谱空间分类方法相比,该方法能够获得更高的分类精度。

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