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Exploring Free Floating Bike Sharing Travel Patterns Using Travel Records and Online Point of Interests

机译:使用旅行记录和在线景点探索免费浮动自行车分享旅行模式

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Recently, free floating bike sharing (FFBS) has become prevalent in China because of its convenience, sustainability, and energy savings. FFBS can be obtained and parked at any available place, unlimited by docking stations. However, traffic chaos caused by unbalanced allocation and disorderly parking has emerged. Accurate FFBS traffic pattern exploration is key to active traffic management. Large-scale travel records and online points of interests (POIs) in Shanghai are collected. Using these data, 3,325 FFBS gathering areas are discovered and six typical categories of land use are extracted by clustering analysis. Latent Dirichlet allocation (LDA) is conducted to discover latent FFBS travel patterns, and typical travel patterns are discussed in temporal and spatial characteristics. Results show huge differences in travel patterns between weekdays and weekends, and arrival times during the day are unevenly distributed. The research results are beneficial for reasonable resource allocation and helpful for accurate FFBS traffic management.
机译:最近,由于其便利性,可持续性和节能,自由浮动自行车分享(FFB)在中国普遍存在中国。可以在任何可用的地方获得和停放FFB,通过对接站无限制。然而,出现了不平衡分配和无序停车的交通混乱。准确的FFBS流量模式探索是主动交通管理的关键。收集上海的大规模旅游记录和在线景点(POI)。使用这些数据,发现了3,325个FFBS收集区域,并通过聚类分析提取六种典型的土地使用。进行潜在的Dirichlet分配(LDA)以发现潜在的FFBS行程模式,并且在时间和空间特征中讨论了典型的旅行模式。结果显示平日和周末之间旅行模式的巨大差异,并且在白天到达时间不均匀。研究结果有利于合理的资源配置,并有助于准确的FFBS交通管理。

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