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Ranking consistency for image matching and object retrieval

机译:图像匹配和对象检索的排名一致性

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摘要

The goal of object retrieval is to rank a set of images by the similarity of their contents to those of a query image. However, it is difficult to measure image content similarity due to visual changes caused by varying viewpoint and environment. In this paper, we propose a simple, efficient method to more effectively measure content similarity from image measurements. Our method is based on the ranking information available from existing retrieval systems. We observe that images within the set which, when used as queries, yield similar ranking lists are likely to be relevant to each other and vice versa. In our method, ranking consistency is used as a verification method to efficiently refine an existing ranking list, in much the same fashion that spatial verification is employed. The efficiency of our method is achieved by a list-wise min-Hash scheme, which allows rapid calculation of an approximate similarity ranking. Experimental results demonstrate the effectiveness of the proposed framework and its applications.
机译:对象检索的目的是通过一组图像的内容与查询图像的相似性来对其排序。然而,由于视点和环境的变化引起的视觉变化,难以测量图像内容的相似性。在本文中,我们提出了一种简单有效的方法,可以更有效地从图像测量中测量内容相似度。我们的方法基于可从现有检索系统获得的排名信息。我们观察到该图像集中的图像在用作查询时会产生相似的排名列表,这很可能彼此相关,反之亦然。在我们的方法中,排名一致性被用作一种验证方法,可以有效地优化现有的排名列表,其方式与采用空间验证的方式大致相同。我们的方法的效率是通过基于列表的min-Hash方案实现的,该方案允许快速计算近似相似性等级。实验结果证明了所提出框架及其应用的有效性。

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