Density-based probabilistic clustering of uncertain moving objects

Huajie Xu, Xiaoming Hu, Bing Yang, Juan Xu
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Abstract

In the environment with objects moving randomly, the positions of moving objects can be modeled as a range of possible values, associated with a probability density function. Data mining of such positions of uncertain moving objects attracts more and more research interest recently. The definitions of probabilistic core object and probabilistic density-reachability are presented and a density-based probabilistic clustering algorithm for uncertain moving objects is proposed, based on DBSCAN algorithm and probabilistic index on uncertain moving objects. Simulation results show that the proposed algorithm outperforms other density-based clustering algorithm for uncertain moving objects in accuracy and update rate needed for clustering.
不确定运动物体的基于密度的概率聚类
在物体随机移动的环境中,运动物体的位置可以建模为一个可能值的范围,并与概率密度函数相关联。不确定运动目标位置的数据挖掘近年来引起了越来越多的研究兴趣。给出了概率核心目标和概率密度可达性的定义,并基于DBSCAN算法和不确定运动目标的概率索引,提出了一种基于密度的不确定运动目标概率聚类算法。仿真结果表明,对于不确定运动目标,该算法在聚类精度和更新速度上都优于其他基于密度的聚类算法。
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