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Multiscale Object-Based Classification of Satellite Images Merging Multispectral Information with Panchromatic Textural Features

机译:基于MultiScale对象的卫星图像分类,通过平等纹理特征合并多光谱信息

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Once admitted the advantages of object-based classification compared to pixel-based classification; the need of simple and affordable methods to define and characterize objects to be classified, appears. This paper presents a new methodology for the identification and characterization of objects at different scales, through the integration of spectral information provided by the multispectral image, and textural information from the corresponding panchromatic image. In this way, it has defined a set of objects that yields a simplified representation of the information contained in the two source images. These objects can be-characterized by different attributes that allow discriminating between different spectral&textural patterns. This methodology facilitates information processing, from a conceptual and computational point of view. Thus the vectors of attributes defined can be used directly as training pattern input for certain classifiers, as for example artificial neural networks. Growing Cell Structures have been used to classify the merged information.
机译:曾经承认基于对象的分类的优势与基于像素的分类相比;出现简单且实惠的方法,可以出现定义和表征要分类的对象的方法。本文通过集成由多光谱图像提供的频谱信息和来自相应的一般图像的纹理信息的集成来呈现不同尺度的对象的识别和表征的新方法。以这种方式,它已经定义了一组对象,其产生两个源图像中包含的信息的简化表示。这些对象可以以不同的属性为特征,允许在不同的光谱和纹理图案之间区分。该方法从概念和计算的角度来看,有助于信息处理。因此,所定义的属性的载体可以直接用于某些分类器的训练模式输入,例如人工神经网络。越来越多的细胞结构已被用于对合并的信息进行分类。

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