Video Summarization via Cluster-Based Object Tracking and Type-Based Synopsis

Yuxi Li, Weiyao Lin, Tao Wang, Qi Yong Guo, Ruijia Yang, Shugong Xu · 2020

In this paper, we construct a trajectory-based system for the synopsis of surveillance video stream. The proposed approach first applies a cluster-based tracking method to extract foreground object from input videos, then extracts the abnormal object and classifies them into different motion patterns. Finally a type-based synopsis scheme is proposed to properly gather the moving object of different pattern types into limited time endurance. As a consequence, this system would be helpful for accurate and fast surveillance videos analysis.

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