Automatic difference measure between movies using dissimilarity measure fusion and rank correlation coefficients

Nicolas Voiron, A. Benoît, P. Lambert
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引用次数: 3

Abstract

When considering multimedia database growth, one current challenging issue is to design accurate navigation tools. End user basic needs, such as exploration, similarity search and favorite suggestions, lead to investigate how to find semantically resembling media. One way is to build numerous continuous dissimilarity measures from low-level image features. In parallel, an other way is to build discrete dissimilarities from textual information which may be available with video sequences. However, how such different measures should be selected as relevant and be fused? To this aim, the purpose of this paper is to compare all those various dissimilarities and to propose a suitable ranking fusion method for several dissimilarities. Subjective tests with human observers on the CITIA animation movie database have been carried out to validate the model.
基于不同度量融合和等级相关系数的电影间差异自动度量
在考虑多媒体数据库的增长时,当前一个具有挑战性的问题是设计精确的导航工具。终端用户的基本需求,如探索、相似搜索和喜欢的建议,促使他们研究如何找到语义上相似的媒体。一种方法是从底层图像特征中构建大量连续的不相似度量。与此同时,另一种方法是从视频序列中可用的文本信息中构建离散的不相似性。然而,这些不同的措施应该如何选择相关和融合?为此,本文的目的是对所有这些不同的差异进行比较,并提出一种适合于不同差异的排序融合方法。在CITIA动画电影数据库上进行了人类观察者的主观测试来验证模型。
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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