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Preliminary analytical method for unsupervised remote sensing image classification based on visual perception and a force field

机译:基于视觉感知和力场的无监督遥感图像分类的初步分析方法

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The analysis of remote sensing (RS) images, which is often accomplished using unsupervised image classification techniques, requires an effective method to determine an appropriate number of classification clusters. This paper proposes a preliminary analytical method to evaluate the input parameters for unsupervised RS image classification. Our approach involves first analysing the colour spaces of RS images based on the human visual perception theory. This enables the initial number of clusters and their corresponding centres to be automatically established based on the interaction of different forces in our supposed force field. The proposed approach can automatically determine the appropriate initial number of clusters and their corresponding centres for unsupervised image classification. A comparison of the experimental results with those of existing methods showed that the proposed method can considerably facilitate unsupervised image classification for acquiring accurate results efficiently and effectively without any prior knowledge.
机译:遥感(RS)图像的分析通常使用无监督的图像分类技术完成,需要有效的方法来确定适当数量的分类簇。本文提出了一种初步的分析方法来评估无监督RS图像分类的输入参数。我们的方法涉及首先根据人类视觉感知理论分析RS图像的颜色空间。这使得能够基于我们假设的力场中不同力的相互作用自动建立簇的初始数量和相应的中心。所提出的方法可以自动确定无监督图像分类的适当初始簇数及其相应的中心。实验结果与现有方法的实验结果的比较表明,该方法可以大大促进无监督的图像分类,以便有效,有效地有效地获得准确的结果,而无需任何先验知识。

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