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Detection of Urban Areas using Genetic Algorithms and Kohonen Maps on Multispectral images

机译:基于遗传算法和Kohonen映射的多光谱图像市区检测

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>In this article, the detection of urban areas on satellite multispectral Landsat images. The goal is to improve the visual interpretations of images from remote sensing experts who often remain subjective. Interpretations depend deeply on the quality of segmentation which itself depends on the quality of samples. A remote sensing expert must actually prepare these samples. To enhance the segmentation process, this article proposes to use genetic algorithms to evolve the initial population of samples picked manually and get the most optimal samples. These samples will be used to train the Kohonen maps for further classification of a multispectral satellite image. Results are obtained by injecting genetic algorithms in sampling phase and this paper proves the effectiveness of the proposed approach.
机译:>在本文中,通过卫星多光谱Landsat图像检测市区。目标是改善经常保持主观状态的遥感专家对图像的视觉解释。解释在很大程度上取决于分割质量,而分割质量本身又取决于样本的质量。遥感专家必须实际准备这些样品。为了增强分割过程,本文建议使用遗传算法来演化手动选取的样本的初始种群,并获得最佳样本。这些样本将用于训练Kohonen地图,以进一步分类多光谱卫星图像。通过在采样阶段注入遗传算法获得结果,证明了该方法的有效性。

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