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Baseball Player Behavior Recognition System using Multimodal Features with an Augmented Reality Display on a Smart Glass

机译:在智能玻璃上使用具有增强现实显示功能的多模式功能的棒球运动员行为识别系统

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In this paper, a real-time baseball player behavior recognition system is proposed. By analyzing the sensing signals from the wearable sensors and the skeletons from the depth channel belonging a Kinect camera, the behaviors can be recognized by the proposed system. When a body part is occluded or the depth frames is with motion blur effects in a depth camera, the sensing signals from worn sensors can compensate the recognition capability. In addition, by analyzing the multimodal features obtained from heterogeneous sensors, the recognized results can be displayed on a smart glass with an augmented reality displaying. In this prototype, a player's behavior can be monitored by a coach to assist the advising process in an on-field and off-field baseball playing environment.
机译:本文提出了一种实时的棒球运动员行为识别系统。通过分析来自可穿戴式传感器的感应信号和来自属于Kinect相机的深度通道的骨骼,所提出的系统可以识别这些行为。当在深度相机中遮挡身体部位或深度框具有运动模糊效果时,来自磨损传感器的感测信号可以补偿识别能力。此外,通过分析从异类传感器获得的多峰特征,可以将识别的结果显示在具有增强现实显示的智能玻璃上。在这个原型中,教练员可以监控球员的行为,以协助在场上和场外棒球比赛环境中提供建议。

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