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Aerial image classification using structural texture similarity

机译:使用结构纹理相似性的空中图像分类

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There is an increasing need for algorithms for automatic analysis of remote sensing images and in this paper we address the problem of semantic classification of aerial images. For the task at hand we propose and evaluate local structural texture descriptor and similarity measure. Nearest neighbor classifier based on the proposed descriptor and similarity measure, as well as image-to-class similarity, improves classification rates over the state-of-the-art on two datasets of aerial images. We evaluate the design choices and show that rich subband statistics, perceptually-based structural texture similarity measure and image-to-class similarity all contribute to the good performance of our classifier.
机译:越来越需要自动分析遥感图像的算法,并且在本文中,我们解决了航空图像的语义分类问题。对于手头的任务,我们提出并评估了局部结构纹理描述符和相似度措施。基于所提出的描述符和相似性度量的最近邻分类,以及图像到类相似性,在空中图像的两个数据集上提高了最先进的分类速率。我们评估设计选择并显示丰富的子带统计,基于感知的结构纹理相似度和图像到级相似度都有助于我们的分类器的良好性能。

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