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Video Indexing/Retrieving Based On Video Object Abstraction and Temporal Modeling

机译:基于视频对象抽象和时间建模的视频索引/检索

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In this paper, we present a novel scheme for object-based video indexing and retrieval based on video abstraction and semantic event modeling. The proposed algorithm consists of three major steps; Video Object (VO) extraction, object-based video abstraction and statistical modeling of semantic features. A video object abstraction algorithm based on clustering analysis is described for reducing data redundancy and providing reliable feature data for next stage of the algorithm. Semantic feature modeling scheme is also proposed, which is based on temporal variation of low-level features in object area between adjacent frames of video sequence. Each semantic feature is represented by a Hidden Markov Model (HMM) which characterizes the temporal nature of VO with various combinations of object features. We also include experimental results to demonstrate the effective performance of the proposed approach.
机译:本文基于视频抽象和语义事件建模,我们提出了一种基于对象的视频索引和检索的新颖方案。所提出的算法包括三个主要步骤;视频对象(VO)提取,基于对象的视频抽象和语义特征的统计建模。描述了一种基于聚类分析的视频对象抽象算法,用于降低数据冗余并为下一阶段提供可靠的特征数据。还提出了语义特征建模方案,其基于相邻视频序列的相邻帧之间的对象区域中的低级特征的时间变化。每个语义特征由隐藏的马尔可夫模型(HMM)表示,其特征在于具有各种对象特征的各种组合的VO的时间性。我们还包括实验结果,以证明所提出的方法的有效性能。

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