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A Socio-Geographic Perspective on Human Activities in Social Media

机译:社会媒体中人类活动的社会地理学视角

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Location-based social media make it possible to understand social and geographic aspects of human activities. However, previous studies have mostly examined these two aspects separately without looking at how they are linked. The study aims to connect two aspects by investigating whether there is any correlation between social connections and users' check-in locations from a socio-geographic perspective. We constructed three types of networks: a people-people network, a location-location network, and a city-city network from former location-based social media Brightkite and Gowalla in the U.S., based on users' check-in locations and their friendships. We adopted some complexity science methods such as power-law detection and head/tail breaks classification method for analysis and visualization. Head/tail breaks recursively partitions data into a few large things in the head and many small things in the tail. By analyzing check-in locations, we found that users' check-in patterns are heterogeneous at both the individual and collective levels. We also discovered that users' first or most frequent check-in locations can be the representatives of users' spatial information. The constructed networks based on these locations are very heterogeneous, as indicated by the high ht-index. Most importantly, the node degree of the networks correlates highly with the population at locations (mostly with R-2 being 0.7) or cities (above 0.9). This correlation indicates that the geographic distributions of the social media users relate highly to their online social connections.
机译:基于位置的社交媒体可以了解人类活动的社会和地理方面。但是,以前的研究大多在不考虑它们之间如何联系的情况下分别检查了这两个方面。该研究旨在通过从社会地理角度调查社交联系与用户的签到位置之间是否存在任何关联,从而将两个方面联系起来。我们根据用户的签到位置和他们的友谊,从美国以前的基于位置的社交媒体Brightkite和Gowalla中构建了三种类型的网络:人民网络,位置-位置网络和城市-城市网络。 。我们采用了一些复杂的科学方法,例如幂律检测和头/尾巴中断分类方法进行分析和可视化。头部/尾部中断以递归方式将数据分为头部中的一些大物件和尾部中的许多小物件。通过分析签到位置,我们发现用户的签到模式在个人和集体级别都是异构的。我们还发现,用户的第一个或最频繁签到位置可以代表用户的空间信息。如高ht指数所示,基于这些位置构建的网络非常不同。最重要的是,网络的节点度与位置(主要是R-2为0.7)或城市(高于0.9)的人口高度相关。这种相关性表明社交媒体用户的地理分布与他们的在线社交联系高度相关。

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  • 来源
    《Geographical analysis 》 |2017年第3期| 328-342| 共15页
  • 作者单位

    Univ Gavle, Fac Engn & Sustainable Dev, SE-80176 Gavle, Sweden;

    Univ Gavle, Fac Engn & Sustainable Dev, SE-80176 Gavle, Sweden;

    Univ Gavle, Fac Engn & Sustainable Dev, SE-80176 Gavle, Sweden;

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