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Multiview social behavior analysis in work environments

机译:工作环境中的多视图社交行为分析

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In this paper, we propose an approach that fuses information from a network of visual sensors for the analysis of human social behavior. A discriminative interaction classifier is trained based on the relative head orientation and distance between a pair of people. Specifically, we explore human interaction detection at different levels of feature fusion and decision fusion. While feature fusion mitigates local errors and improves feature accuracy, decision fusion at higher levels significantly reduces the amount of information to be shared among cameras. Experiment results show that our proposed method achieves promising performance on a challenging dataset. By distributing the computation over multiple smart cameras, our approach is not only robust but also scalable.
机译:在本文中,我们提出了一种融合来自视觉传感器网络的信息以分析人类社会行为的方法。根据相对的头部方位和一对人之间的距离训练区分性交互分类器。具体来说,我们探索了在特征融合和决策融合的不同层次上的人机交互检测。虽然特征融合可缓解局部错误并提高特征准确性,但更高级别的决策融合可显着减少摄像机之间共享的信息量。实验结果表明,我们提出的方法在具有挑战性的数据集上实现了有希望的性能。通过将计算分布在多个智能相机上,我们的方法不仅鲁棒,而且可扩展。

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