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Clustering of Mobile Subscriber's Location Statistics for Travel Demand Zones Diversity

机译:移动用户位置统计的聚类旅行需求区多样性

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Current knowledge on travel demand is necessary to keep a travel demand model up to date. However, the data gathering is a laborious and costly task. One of the approaches to this issues can be the utilisation of mobile data. In this work, we used mobile subscriber's location statistics to define a daily characteristic of mobile events occurrences registered by Base Transceiver Stations (BTS). For types of preprocessed data were tested to create stable clusters of BTS according to registered routines. The obtained results were used to find similar travel demand zones from the Warsaw public transport demand model according to a daily activity of the citizens. The obtained results can be used to update the model or to plan a cohesive strategy of public transport development.
机译:目前关于旅行需求的知识是保持旅行需求模型的必要日期。但是,数据收集是一种费力且昂贵的任务。此问题的方法之一可以是使用移动数据的利用率。在这项工作中,我们使用了移动用户的位置统计,以定义基本收发器站(BTS)登记的移动事件的日常特征。对于预处理数据的类型,测试了根据注册例程创建稳定的BTS簇。根据公民的日常活动,所获得的结果用于查找来自华沙公共交通需求模型的类似旅行需求区。获得的结果可用于更新模型或计划公共交通开发的凝聚力战略。

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