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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Relevance Criteria for Spatial Information Retrieval Using Error-Tolerant Graph Matching
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Relevance Criteria for Spatial Information Retrieval Using Error-Tolerant Graph Matching

机译:使用容错图匹配进行空间信息检索的相关性准则

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摘要

In this paper, we present a graph-based approach for mining geospatial data. The system uses error-tolerant graph matching to find correspondences between the detected image features and the geospatial vector data. Spatial relations between objects are used to find a reliable object-to-object mapping. Graph matching is used as a flexible query mechanism to answer the spatial query. A condition based on the expected graph error has been presented which allows determining the bounds of error tolerance and, in this way, characterizes the relevancy of a query solution. We show that the number of null labels is an important measure to determine relevancy. To be able to correctly interpret the matching results in terms of relevancy, the derived bounds of error tolerance are essential.
机译:在本文中,我们提出了一种基于图的地理空间数据挖掘方法。该系统使用容错图匹配来找到检测到的图像特征与地理空间矢量数据之间的对应关系。对象之间的空间关系用于找到可靠的对象到对象映射。图匹配用作灵活的查询机制来回答空间查询。已经提出了一种基于预期图形错误的条件,该条件允许确定容错范围,并以此方式表征查询解决方案的相关性。我们表明,空标签的数量是确定相关性的重要措施。为了能够根据相关性正确解释匹配结果,导出的容错范围是必不可少的。

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