使用Von Mises分布的混合检测异常行为

S. Calderara, R. Cucchiara, A. Prati
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引用次数: 55

摘要

本文提出使用混合的Von Mises分布来检测移动人群的异常行为。利用基于分布间Bhattacharyya距离的k- medioids聚类算法,从无监督训练集生成混合物。将提取的介质用作多模态混合物中的模态,其权重为特定介质的先验。给定混合模型,通过考虑组成混合模型的各个方向是独立的,从而在模型上验证新的轨迹。本文报道了由多个部分重叠的摄像机组成的真实场景的实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of abnormal behaviors using a mixture of Von Mises distributions
This paper proposes the use of a mixture of Von Mises distributions to detect abnormal behaviors of moving people. The mixture is created from an unsupervised training set by exploiting k-medoids clustering algorithm based on Bhattacharyya distance between distributions. The extracted medoids are used as modes in the multi-modal mixture whose weights are the priors of the specific medoid. Given the mixture model a new trajectory is verified on the model by considering each direction composing it as independent. Experiments over a real scenario composed of multiple, partially-overlapped cameras are reported.
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