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Bayesian Network Classification for Aster Data Based on Wavelet Transformation

机译:小波变换的Aster数据贝叶斯网络分类

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In this study, Bayesian networks are considered to be a classifier for the remote sensing image named Aster data, which involves 15 bands. Six bands, which have different spatial resolutions, are selected to be the attributes in Bayesian network classifier. The sample data from Aster image that is fused by wavelet transform is used to train Bayesian network classifier. Before the above-mentioned processing, the attributes from the transformed image should be normalized by some equal width schemes. Then the learning scheme process is used to acquire the structure of Bayesian networks from the training data set. The relationship of the attributes among all the constituents of the imagery data is mined through the Bayesian networks. To evaluate this classifier, a comprehensive study of the performance is investigated based on the training data set and the independent test data sets. The result shows that Bayesian network performs well on remote sensing imagery data.
机译:在这项研究中,贝叶斯网络被认为是名为Aster数据的遥感图像的分类器,涉及15个波段。选择具有不同空间分辨率的六个波段作为贝叶斯网络分类器中的属性。通过小波变换融合的Aster图像样本数据用于训练贝叶斯网络分类器。在进行上述处理之前,应通过一些相等宽度的方案对来自转换后图像的属性进行归一化。然后,学习方案过程用于从训练数据集中获取贝叶斯网络的结构。通过贝叶斯网络挖掘图像数据的所有组成部分之间的属性关系。为了评估该分类器,基于训练数据集和独立的测试数据集对性能进行了全面研究。结果表明,贝叶斯网络在遥感影像数据上表现良好。

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