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Segmentation of remote-sensing images by incremental neural network

机译:增量神经网络分割遥感影像

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摘要

In this study, a novel incremental neural network (INeN) is proposed for the segmentation of remote-sensing images. The data set consists of seven images acquired by the Landsat-5 TM sensor. Two feature extraction methods are comparatively examined for the segmentation of the remote-sensing images. In the first method, features are formed by the intensity of one pixel of each channel. In the second method, intensities at one neighborhood of the pixel are used to form the feature vectors. In this study, the INeN and the Kohonen network are employed for the segmentation of the remote-sensing images. The INeN is proposed to determine the number of classes automatically.
机译:在这项研究中,提出了一种新颖的增量神经网络(INeN)用于遥感图像的分割。数据集由Landsat-5 TM传感器采集的七幅图像组成。比较了两种特征提取方法对遥感图像的分割。在第一种方法中,特征是由每个通道的一个像素的强度形成的。在第二种方法中,像素一个邻域的强度用于形成特征向量。在这项研究中,INeN和Kohonen网络被用于遥感图像的分割。建议使用INeN来自动确定类的数量。

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