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Adaptive thematic object extraction from remote sensing image based on spectral matching

机译:基于光谱匹配的遥感影像自适应主题目标提取

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摘要

Thematic object extraction is of great significance to remote sensing applications. Its procedure is always complicated while the result is not so precise, especially for object with various subtypes. An adaptive extraction method based on spectral matching, considering both spectral and spatial information, is proposed to extract thematic object completely and accurately from remote sensing image. This method considers the essential spectral representation of thematic object through endmember selection, and then achieves complete extraction via “whole–local” scale spectral matching. Experiments on ETM+ images to extract water and bare land are employed, and the results demonstrate the effectiveness and universality of this method through comparison with maximum likelihood classification and support vector machine (SVM) classification.
机译:主题对象提取对遥感应用具有重要意义。它的过程总是很复杂,而结果却不是那么精确,尤其是对于具有各种子类型的对象。提出了一种基于光谱匹配的自适应提取方法,同时考虑了光谱和空间信息,可以从遥感图像中完全准确地提取出主题对象。该方法通过端成员选择来考虑主题对象的基本光谱表示,然后通过“全局部”比例光谱匹配实现完全提取。利用ETM +图像提取水和裸地的实验,通过与最大似然分类和支持向量机(SVM)分类的比较,证明了该方法的有效性和通用性。

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