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Spatial and Grayscale Metadata for Similarity Searches of Image Databases

机译:用于图像数据库相似性搜索的空间和灰度元数据

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This paper presents a content-based image retrieval process wherein the user identifies a feature of interest using a region quadtree decomposition of the image, spatial statistics and histograms of the grayscale values of the feature definition are calculated, and the result is compared to a database of these same calculations that have been performed on similar images. The sum of squared differences between the indices calculated for the quads that form the feature of interest and corresponding quads in the database yields a ranked list of matching image tiles. In an analysis of Landsat 7 imagery of North Georgia and an IKONOS panchromatic image of Kalamazoo, Michigan, we found that the retrieval success rate depends on the spatial and spectral characteristics of the feature of interest and the configuration of quads used to define the feature.
机译:本文提出了一种基于内容的图像检索过程,其中用户使用图像的区域四叉树分解来识别感兴趣的特征,计算特征定义的灰度值的空间统计量和直方图,并将结果与​​数据库进行比较对相似图像执行的这些相同计算中的一个。为形成感兴趣特征的四边形计算的索引与数据库中的相应四边形之间的索引之间的平方差之和得出数据库中匹配图像图块的排名列表。在分析北佐治亚州的Landsat 7图像和密歇根州卡拉马祖的IKONOS全色图像时,我们发现检索成功率取决于目标特征的空间和光谱特征以及用于定义特征的四边形的配置。

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