Locality sensitive hashing for content based image retrieval: A comparative experimental study

Sanaa Chafik, I. Daoudi, Hamid El Ouardi, M. el yacoubi, B. Dorizzi
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引用次数: 7

Abstract

This paper presents a comparative experimental study of the multidimensional indexing methods based on the approximation approach. We are particularly interested in the LSH family, which provides efficient index structures and solves the dimensionality curse problem. The goal is to understand the performance gain and the behavior of this family of methods on large-scale databases. E2LSH is compared to the KRA+-Blocks and the sequential scan methods. Two criteria are used in evaluating the E2LSH performances, namely average precision and CPU time using a database of one million image descriptors.
基于内容的图像检索的局部敏感哈希:一个比较实验研究
本文对基于近似方法的多维索引方法进行了对比实验研究。我们对LSH家族特别感兴趣,它提供了高效的索引结构并解决了维数诅咒问题。我们的目标是了解这类方法在大型数据库上的性能增益和行为。将E2LSH与KRA+-Blocks和顺序扫描方法进行了比较。在评估E2LSH性能时使用了两个标准,即使用包含100万个图像描述符的数据库的平均精度和CPU时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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