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Method for recognizing multi-dimensional anomalous urban traffic event based on ternary gaussian mixture model

机译:基于三元高斯混合模型的多维城市交通异常事件识别方法

摘要

A method for recognizing multi-dimensional anomalous urban traffic events based on a ternary Gaussian mixture model includes: reading a data sample of urban road traffic events; randomly dividing the data sample into a first subsample and a second subsample; performing modeling based on the first subsample by using the ternary Gaussian mixture model to obtain a second ternary Gaussian mixture model to calculate a distribution probability p of any sample point; clustering the second subsample, recognizing an outlier in the second subsample, and labeling the outlier and a normal point to obtain a labeled subsample; calculating the labeled subsample to obtain the distribution probability p corresponding to each sample point in the labeled subsample; when a new traffic event occurs, obtaining features of three dimensions of the new traffic event, calculating a distribution probability p by using the second model, and recognizing the new traffic event as anomalous if p
机译:一种基于三元高斯混合模型的多维异常城市交通事件识别方法,包括:读取城市道路交通事件的数据样本;将数据样本随机划分为第一子样本和第二子样本;使用所述三元高斯混合模型基于所述第一子样本进行建模,以获得第二三元高斯混合模型,以计算任意样本点的分布概率p;对所述第二子样本进行聚类,识别所述第二子样本中的离群点,并标记所述离群点和法线点以获得标记的子样本;计算所述标记子样本以获得对应于所述标记子样本中的每个样本点的分布概率p;当新的交通事件发生时,获取新交通事件的三维特征,使用第二个模型计算分布概率p,如果p

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