Recognition of Action in Broadcast Basketball Videos on the Basis of Global and Local Pairwise Representation

Masaki Takahashi, M. Naemura, Mahito Fujii, J. Little
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引用次数: 5

Abstract

A new feature-representation method for recognizing actions in broadcast videos, which focuses on the relationship between human actions and camera motions, is proposed. With this method, key point trajectories are extracted as motion features in spatio-temporal sub-regions called "spatio-temporal multiscale bags" (STMBs). Global representations and local representations from one sub-region in the STMBs are then combined to create a "glocal pair wise representation" (GPR). The GPR considers the co-occurrence of camera motions and human actions. Finally, two-stage SVM classifiers are trained with STMB-based GPRs, and specified human actions in video sequences are identified. It was experimentally confirmed that the proposed method can robustly detect specific human actions in broadcast basketball videos.
基于全局和局部成对表示的转播篮球视频动作识别
提出了一种新的基于特征表示的视频动作识别方法,该方法关注人的动作与摄像机运动之间的关系。该方法将关键点轨迹提取为时空子区域的运动特征,称为“时空多尺度袋”(spatial -temporal multiscale bags, stmb)。然后将来自stmb中一个子区域的全局表示和本地表示结合起来创建“全局局部对表示”(GPR)。GPR考虑了相机运动和人类行为的共现性。最后,利用基于stmb的GPRs训练两阶段SVM分类器,识别视频序列中特定的人类动作。实验证明,该方法能够鲁棒地检测出篮球视频中特定的人体动作。
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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