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A Method of Detecting Land Use Change of Remote Sensing Images based on Texture Features and DEM

机译:一种检测基于纹理特征和DEM的遥感图像土地利用变化的方法

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摘要

In this paper, a combination method, between the neural network and textures information, is proposed to remote sensing images classification. The methodology involves an extraction of texture features using the gray level co-occurrence matrix and image classification with BP artificial neural network. The combination of texture features and the digital elevation model (DEM) as classified bands to neural network were used to recognized different classes. This scheme shows high recognition accuracy in the classification of remote sensing images. In the experiments, the proposed method was successfully applied to remote sensing image classification and Land Use Change Detection, in the meanwhile, the effectiveness of the proposed method was verified.
机译:本文提出了一种组合方法,在神经网络和纹理信息之间被提出到遥感图像分类。该方法涉及使用BP人工神经网络的灰度共发生矩阵和图像分类来提取纹理特征。纹理特征和数字高度模型(DEM)的组合用于神经网络的分类频段来识别不同的类别。该方案在遥感图像的分类中显示了高识别准确性。在实验中,所提出的方法已成功应用于遥感图像分类和土地利用变化检测,同时验证了所提出的方法的有效性。

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