道路网络轨迹的时空相似性度量

Hongbin Zhao, Qilong Han, Haiwei Pan, Guisheng Yin
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引用次数: 8

摘要

轨迹在分析运动物体的行为中起着重要的作用。许多研究都是在欧几里得空间中而不是在路网空间中检索运动物体的相似轨迹。然而,在实际应用中,大多数运动物体都位于路网空间中。本文研究了路网空间中相似轨迹的性质,提出了一种用于运动物体轨迹建模的时空表示方案。我们的时空表示方案有效地将轨迹从路网空间转换为欧几里得空间。为了测量两个轨迹之间的相似性,我们提出了一种新的POI-distance算法,该算法通过减少轨迹的不重要节点来改进现有的距离算法。理论和实验结果表明,该方法不仅为寻找相似轨迹提供了一种实用的方法,而且为轨迹的聚类提供了一种方法。
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Spatio-temporal Similarity Measure for Trajectories on Road Networks
Trajectories play an important role in analyzing the behavior of moving objects. Many researches have been conducted that retrieved similar trajectories of moving objects in Euclidean space rather than in road network space. However, in real applications, most moving objects are located in road network space. In this paper, we investigate the properties of similar trajectories in road network space and propose a spatio-temporal representation scheme for modeling the trajectories of moving objects. Our spatio-temporal representation scheme effectively converts trajectory from the road network space to the Euclidean space. For measuring similarity between two trajectories, we propose a new POI-distance algorithm which enhances the existing distance algorithm by reducing the insignificant nodes of a trajectory. Theory and experimental results show that this method provide not only a practical method for searching for similar trajectories but also a clustering method for trajectories.
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