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Camera viewpoint change detection for interaction analysis in TV shows

机译:摄像机视点变化检测,用于电视节目中的交互分析

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In this paper, we propose a novel approach to detect abrupt camera viewpoint changes in edited video materials (movies, TV shows), to improve human activity recognition. The motivation for this work lies in the difficulty of correctly identifying actions in case of camera motion and viewpoint changes, because of the abrupt variations in the appearance model of the scene, which significantly deteriorate the continuity of the spatio-temporal features under investigation. To this aim, we compute the motion interchange pattern (MIP) for each pixel in a video, from which a feature descriptor is constructed for the entire frame. The change in camera viewpoint is achieved through the one-class SVM. We apply our detector on the TV human interaction dataset (TVHI). The experimental results show that our approach can distinguish the abrupt changes with a high accuracy, allowing for an improvement also in the activity recognition performance.
机译:在本文中,我们提出了一种新颖的方法来检测编辑的视频材料(电影,电视节目)中摄像机视点的突然变化,以提高对人类活动的识别能力。进行这项工作的动机在于,由于场景外观模型的突然变化,在相机运动和视点变化的情况下,很难正确识别动作,这大大恶化了所研究的时空特征的连续性。为此,我们为视频中的每个像素计算了运动交换模式(MIP),从中为整个帧构造了一个特征描述符。摄像机视点的更改是通过一类SVM实现的。我们将检测器应用于电视人机交互数据集(TVHI)。实验结果表明,我们的方法可以高精度地识别突然的变化,从而也可以改善活动识别性能。

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