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A probabilistic, discriminative and distributed system for the recognition of human actions from multiple views

机译:一种概率,判别和分布式系统,用于从多个视图中识别人类行为

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摘要

This paper presents a distributed system for the recognition of human actions using views of the scene grabbed by different cameras. 2D frame descriptors are extracted for each available view to capture the variability in human motion. These descriptors are projected into a lower dimensional space and fed into a probabilistic classifier to output a posterior distribution of the action performed according to the descriptor computed at each camera. Classifier fusion algorithms are then used to merge the posterior distributions into a single distribution. The generated single posterior distribution is fed into a sequence classifier to make the final decision on the performed activity. The system can instantiate different algorithms for the different tasks, as the interfaces between modules are clearly defined. Results on the classification of the actions in the IXMAS dataset are reported. The accuracy of the proposed system is similar to state-of-the-art 3D methods, even though it uses only well-known 2D pattern recognition techniques and does not need to project the data into a 3D space or require camera calibration parameters.
机译:本文提出了一种分布式系统,该系统使用不同摄像机抓取的场景视图来识别人类动作。为每个可用视图提取2D帧描述符,以捕获人体运动的变化性。这些描述符被投影到较低维度的空间中,并被馈送到概率分类器中,以输出根据在每个摄像机处计算出的描述符执行的动作的后验分布。然后使用分类器融合算法将后验分布合并为单个分布。生成的单个后验分布被馈送到序列分类器中,以对执行的活动做出最终决定。由于可以清楚地定义模块之间的接口,因此系统可以为不同的任务实例化不同的算法。报告了IXMAS数据集中的动作分类结果。提出的系统的准确性类似于最新的3D方法,即使它仅使用众所周知的2D模式识别技术,也不需要将数据投影到3D空间或需要相机校准参数。

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