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To Aggregate or Not to aggregate: Selective Match Kernels for Image Search

机译:汇总或不汇总:图像搜索的选择性匹配核

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This paper considers a family of metrics to compare images based on their local descriptors. It encompasses the VLAD descriptor and matching techniques such as Hamming Embedding. Making the bridge between these approaches leads us to propose a match kernel that takes the best of existing techniques by combining an aggregation procedure with a selective match kernel. Finally, the representation underpinning this kernel is approximated, providing a large scale image search both precise and scalable, as shown by our experiments on several benchmarks.
机译:本文考虑了一系列指标,用于根据图像的本地描述符对其进行比较。它包含VLAD描述符和匹配技术,例如汉明嵌入。在这些方法之间架起一座桥梁,使我们提出了一个匹配内核,该内核通过将聚合过程与选择性匹配内核相结合来充分利用现有技术。最后,该内核的基本表示法是近似的,可以提供精确且可扩展的大规模图像搜索,如我们在多个基准测试中所显示的。

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