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Region-Based Retrieval of Remote Sensing Images Using an Unsupervised Graph-Theoretic Approach

机译:基于无监督图论方法的遥感影像基于区域的检索

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This letter introduces a novel unsupervised graph-theoretic approach in the framework of region-based retrieval of remote sensing (RS) images. The proposed approach is characterized by two main steps: 1) modeling each image by a graph, which provides region-based image representation combining both local information and related spatial organization, and 2) retrieving the images in the archive that are most similar to the query image by evaluating graph-based similarities. In the first step, each image is initially segmented into distinct regions and then modeled by an attributed relational graph, where nodes and edges represent region characteristics and their spatial relationships, respectively. In the second step, a novel inexact graph matching strategy, which jointly exploits a subgraph isomorphism algorithm and a spectral graph embedding technique, is applied to match corresponding graphs and to retrieve images in the order of graph similarity. Experiments carried out on an archive of aerial images point out that the proposed approach significantly improves the retrieval performance compared to the state-of-the-art unsupervised RS image retrieval methods.
机译:这封信在基于区域的遥感(RS)图像检索框架中介绍了一种新颖的无监督图论方法。所提出的方法的特征在于两个主要步骤:1)通过图形对每个图像进行建模,以提供结合了本地信息和相关空间组织的基于区域的图像表示,以及2)检索档案库中与图像最相似的图像通过评估基于图的相似度来查询图像。第一步,首先将每个图像分割成不同的区域,然后通过属性关系图进行建模,其中节点和边缘分别代表区域特征及其空间关系。第二步,结合子图同构算法和光谱图嵌入技术,提出了一种新颖的不精确图匹配策略,用于匹配对应图并按图相似度检索图像。在航空影像档案上进行的实验表明,与最新的无监督RS影像检索方法相比,该方法显着提高了检索性能。

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