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TrajSummary: Summarizing Trips of Individuals

机译:TrajSummary:总结个人旅行

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City-scale mobility data of people is recorded by multiple location sensing applications. User trajectory summarization is one of the important applications that provides the movement pattern summary of users, which can be used in applications such as city transportation planning, hyper-targeted advertising. We propose TrajSummary: a system for summarizing and quantifying mobility patterns of an individual. We evaluate three novel approaches to cluster user trips - THRESH, L-AWARE and MODE-EST. We show that our techniques provide significantly superior user summary clusters than generic trajectory clustering mechanisms such as SWARM and TRA-CLUS. Our approach is faster; we perform 5x faster than techniques using Dynamic Time Warping based approaches.
机译:人们通过多个位置感测应用程序来记录城市规模的人员出行数据。用户轨迹摘要是提供用户运动模式摘要的重要应用程序之一,可用于诸如城市交通规划,超目标广告之类的应用程序。我们提出TrajSummary:一个用于汇总和量化个人移动模式的系统。我们评估了三种新颖的集群用户出行方法-THRESH,L-AWARE和MODE-EST。我们证明,与诸如SWARM和TRA-CLUS之类的一般轨迹聚类机制相比,我们的技术可提供明显更好的用户摘要聚类。我们的方法更快。与使用基于动态时间规整的方法的技术相比,我们的执行速度快了5倍。

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