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Unsupervised video categorization based on multivariate information bottleneck method

机译:基于多元信息瓶颈方法的无监督视频分类

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摘要

The integration of multiple features is important for action categorization and object recognition in videos, because single feature based representation hardly captures imaging variations and individual attributes. In this paper, a novel formulation named Multivariate video Information Bottleneck (MvIB) is defined. It is an extensional type of multivariate information bottleneck and can discover categories from a collection of unlabeled videos automatically. Differing from the original multivariate information bottleneck, the novel approach extracts the video categories from multiple features simultaneously, such as local static and dynamic feature, each type of feature is treated as a relevant variable. Specifically, by preserving the relevant information with respect to these feature variables maximally, the MvIB method is able to integrate various aspects of semantic information into the final video partitioning results, and thus captures the complementary information resided in multiple feature variables. Extensive experimental results on five challenging video data sets show that the proposed approach can consistently and significantly outperform other state-of-the-art unsupervised learning methods. (C) 2015 Elsevier B.V. All rights reserved.
机译:多个功能的集成对于视频中的动作分类和对象识别非常重要,因为基于单个功能的表示几乎无法捕获成像变化和单个属性。在本文中,定义了一种称为多元视频信息瓶颈(MvIB)的新颖公式。它是多元信息瓶颈的一种扩展类型,可以自动从未标记视频的集合中发现类别。与原始的多元信息瓶颈不同,该新方法可同时从多个功能(例如本地静态和动态功能)中提取视频类别,每种类型的功能均视为相关变量。具体而言,通过最大程度地保留与这些特征变量有关的相关信息,MvIB方法能够将语义信息的各个方面集成到最终的视频分区结果中,从而捕获驻留在多个特征变量中的互补信息。在五个具有挑战性的视频数据集上的大量实验结果表明,所提出的方法可以始终如一地显着优于其他最新的无监督学习方法。 (C)2015 Elsevier B.V.保留所有权利。

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