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一种基于局部信息的聚类密度度量 被引量:1
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作者 单世民 张宪超 于智航 《大连海事大学学报》 CAS CSCD 北大核心 2008年第3期102-106,共5页
为有效处理密度不均匀聚类问题,以数据集蕴涵的局部信息为出发点,提出一种数据点密度度量———松散度,用以揭示数据点与其相邻数据点的相对紧密程度及类属关系,从而解决密度不均匀聚类问题.依据松散度的性质实现了一种基于松散度的聚... 为有效处理密度不均匀聚类问题,以数据集蕴涵的局部信息为出发点,提出一种数据点密度度量———松散度,用以揭示数据点与其相邻数据点的相对紧密程度及类属关系,从而解决密度不均匀聚类问题.依据松散度的性质实现了一种基于松散度的聚类方法,以验证松散度度量的有效性.实验结果表明,使用松散度来度量数据点的聚类密度信息可以有效处理密度不均匀聚类问题. 展开更多
关键词 密度 不均匀聚类 局部信息 松散度
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Characterizing heterogeneity in vehicular traffic speed using two-step cluster analysis 被引量:3
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作者 潘义勇 孙璐 《Journal of Southeast University(English Edition)》 EI CAS 2012年第4期480-484,共5页
In order to analyze the heterogeneity in vehicular traffic speed, a new method that integrates cluster analysis and probability distribution function fitting is presented. First, for identifying the optimal number of ... In order to analyze the heterogeneity in vehicular traffic speed, a new method that integrates cluster analysis and probability distribution function fitting is presented. First, for identifying the optimal number of clusters, the two-step cluster method is applied to analyze actual speed data, which suggests that dividing speed data into two clusters can best reflect the intrinsic patterns of traffic flows. Such information is then taken as guidance in probability distribution function fitting. The normal, skew-normal and skew-t distribution functions are used to fit the probability distribution of each cluster respectively, which suggests that the skew-t distribution has the highest fitting accuracy; the second is skew-normal distribution; the worst is normal distribution. Model analysis results demonstrate that the proposed mixture model has a better fitting and generalization capability than the conventional single model. In addition, the new method is more flexible in terms of data fitting and can provide a more accurate model of speed distribution. 展开更多
关键词 speed distribution HETEROGENEITY mixture model cluster analysis
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