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Motion-based event detection and semantic classification for baseball sport videos

机译:棒球运动视频的基于运动的事件检测和语义分类

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The techniques of event detection and semantic classification of baseball sport videos are investigated. Due to abundant motion information in sport videos, motion vectors are estimated, validated, and used to compute both the motion activity and camera motion parameters of a frame. Considering the domain-specific knowledge of baseball sport, behaviors of motion features in the spatial or temporal domain are analyzed for segmenting the whole baseball video into a lot of play events (defined as the time interval between two pitching shots), from which a key shot is identified for semantic classification. Taking motion features of key shots as the input of a neural network, our proposed system is capable of classifying segmented events into three semantic categories as "non-hitting", "in-field", and "out-field". According to experiments on more than 200 events, we can achieve a classification rate of 91.55%. The proposed technique will be helpful in applications of baseball video summary and retrieval.
机译:研究了棒球运动视频的事件检测和语义分类技术。由于体育视频中的运动信息丰富,因此运动矢量被估计,验证并用于计算帧的运动活动和摄像机运动参数。考虑到棒球运动的特定领域知识,分析了空间或时间域中运动特征的行为,以将整个棒球视频划分为很多比赛事件(定义为两次投球之间的时间间隔),从中确定镜头以进行语义分类。以关键镜头的运动特征作为神经网络的输入,我们提出的系统能够将分段事件分为“不击中”,“场内”和“场外”三个语义类别。根据对200多个事件的实验,我们可以达到91.55%的分类率。所提出的技术将有助于棒球视频摘要和检索的应用。

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