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基于轨迹片段自动聚类的密集场景运动模式分析
引用本文:王冲?,赵旭,邹毅,刘允才.基于轨迹片段自动聚类的密集场景运动模式分析[J].中国通信学报,2013,10(4):144-154.
作者姓名:王冲?  赵旭  邹毅  刘允才
摘    要:

收稿时间:2013-04-17;

Analyzing Motion Patterns in Crowded Scenes via Automatic Tracklets Clustering
WANG Chongjing,ZHAO Xu,ZOU Yi,LIU Yuncai.Analyzing Motion Patterns in Crowded Scenes via Automatic Tracklets Clustering[J].China communications magazine,2013,10(4):144-154.
Authors:WANG Chongjing  ZHAO Xu  ZOU Yi  LIU Yuncai
Affiliation:Department of Automation, Shanghai Jiao Tong University, Shanghai 200240, China
Key Laboratory of System Control and Information Processing, Ministry of Education of China, Shanghai 200240, China
Abstract:Crowded scene analysis is currently a hot and challenging topic in computer vision field. The ability to analyze motion patterns from videos is a difficult, but critical part of this problem. In this paper, we propose a novel approach for the analysis of motion patterns by clustering the tracklets using an unsuper-vised hierarchical clustering algorithm, where the similarity between tracklets is measured by the Longest Common Subsequences. The tracklets are obtained by tracking dense points under three effective rules, therefore enabling it to capture the motion patterns in crowded scenes. The analysis of motion patterns is implemented in a completely unsupervised way, and the tracklets are clustered automatically through hierarchical clustering algorithm based on a graphic model. To validate the performance of our approach, we conducted experimental evaluations on two datasets. The results reveal the precise distributions of mo-tion patterns in current crowded videos and demonstrate the effectiveness of our approach.
Keywords:crowded scene analysis  motion pattern  tracklet  automatic clustering
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