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Multicamera audio-visual analysis of dance figures using segmented body model

机译:使用分段人体模型对舞蹈人物进行多摄像机视听分析

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We present a multi-camera system for audio-visual analysis of dance figures. The multi-view video of a dancing actor is acquired using 8 synchronized cameras. The motion capture technique of the proposed system is based on 3D tracking of the markers attached to the person's body in the scene. The resulting set of 3D points is then used to extract the body motion features as 3D displacement vectors whereas MFC coefficients serve as the audio features. In the multi-modal analysis phase, we perform Hidden Markov Model (HMM) based unsupervised temporal segmentation of the audio and body motion features such as legs and arms, separately, to determine the recurrent elementary audio and body motion patterns in the first stage. Then in the second stage, we investigate the correlation of body motion patterns with audio patterns that can be used towards estimation and synthesis of realistic audio-driven body animation.
机译:我们提出了一个多摄像机系统,用于对舞蹈人物进行视听分析。舞蹈演员的多视点视频是使用8个同步摄像机获取的。所提出的系统的运动捕捉技术基于场景中附着在人体上的标记的3D跟踪。然后,将所得的3D点集用于提取人体运动特征作为3D位移矢量,而MFC系数用作音频特征。在多模式分析阶段,我们分别执行基于隐马尔可夫模型(HMM)的音频和身体运动特征(如腿和手臂)的无监督时间分割,以确定第一阶段的循环基本音频和身体运动模式。然后在第二阶段,我们研究人体运动模式与音频模式的相关性,这些相关性可用于估计和合成逼真的音频驱动的人体动画。

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