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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Incremental behavior modeling and suspicious activity detection
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Incremental behavior modeling and suspicious activity detection

机译:增量行为建模和可疑活动检测

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摘要

We propose and evaluate an efficient method for automatic identification of suspicious behavior in video surveillance data that incrementally learns scene-specific statistical models of human behavior without requiring storage of large databases of training data. The approach begins by building an initial set of models explaining the behaviors occurring in a small bootstrap dataset. The bootstrap procedure partitions the bootstrap set into clusters then assigns new observation sequences to clusters based on the statistical tests of HMM log likelihood scores. Cluster-specific likelihood thresholds are learned rather than set arbitrarily. After bootstrapping, each new sequence is used to incrementally update the sufficient statistics of the HMM it is assigned to. In an evaluation on a real-world testbed video surveillance dataset, we find that within 1 week of observation, the incremental method's false alarm rate drops below that of a batch method on the same data. The incremental method obtains a false alarm rate of 2.2% at a 91% hit rate. The method is thus a practical and effective solution to the problem of inducing scene-specific statistical models useful for bringing suspicious behavior to the attention of human security personnel.
机译:我们提出并评估了一种自动识别视频监控数据中可疑行为的有效方法,该方法可逐步学习特定场景的人类行为统计模型,而无需存储大型训练数据数据库。该方法从建立一组初始模型开始,这些模型解释了在较小的引导数据集中发生的行为。引导程序将引导集划分为多个群集,然后基于HMM对数似然评分的统计检验将新的观察序列分配给群集。特定于群集的似然性阈值是学习的,而不是任意设置的。自举后,每个新序列都用于递增地更新分配给它的HMM的足够统计信息。在对真实测试台视频监视数据集的评估中,我们发现在观察的1周内,增量方法的误报率下降到了同一数据上批量方法的误报率。增量方法以91%的命中率获得2.2%的误报率。因此,该方法是一种实用且有效的解决方案,用于解决特定场景的统计模型的问题,该模型可用于使可疑行为引起人类安全人员的注意。

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