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A fast compression-based similarity measure with applications to content-based image retrieval

机译:基于压缩的快速相似性度量及其在基于内容的图像检索中的应用

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摘要

Compression-based similarity measures are effectively employed in applications on diverse data types with a basically parameter-free approach. Nevertheless, there are problems in applying these techniques to medium-to-large datasets which have been seldom addressed. This paper proposes a similarity measure based on compression with dictionaries, the Fast Compression Distance (FCD), which reduces the complexity of these methods, without degradations in performance. On its basis a content-based color image retrieval system is defined, which can be compared to state-of-the-art methods based on invariant color features. Through the FCD a better understanding of compression-based techniques is achieved, by performing experiments on datasets which are larger than the ones analyzed so far in literature.
机译:基于压缩的相似性度量通过基本无参数的方法有效地用于各种数据类型的应用程序中。但是,将这些技术应用于中大型数据集却很少解决。本文提出了一种基于字典压缩的相似性度量,即快速压缩距离(FCD),它可以降低这些方法的复杂性,而不会降低性能。在此基础上,定义了基于内容的彩色图像检索系统,可以将其与基于不变颜色特征的最新方法进行比较。通过FCD,可以通过对数据集进行实验来更好地理解基于压缩的技术,而该数据集要比迄今为止文献中所分析的更大。

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