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How Iranian Instagram Users Act for Parliament Election Campaign? A Study Based on Followee Network

机译:伊朗Instagram用户如何争取议会选举活动?基于遵循网络的研究

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Social media place where people communicate and share their ideas provide rich information for social network analysis. There are various analyses such as information diffusion modeling and community detection which are used to analyze data of social networks. In this paper, we investigate some novel aspects of hashtag diffusion among Iranian communities in Instagram in the period of the last legislative election in Iran. After data preparation, we analyze the validation of three different assumptions. First, we study the effects of follower-followee relations in the spread of the campaign hashtags. Based on the timestamps of the posts, we invoke NetRate method to estimate information diffusion rates over edges of follower-followee network. Then, by application of Louvain method as a community detection algorithm, we investigate the relation of community membership and contagion transmission rate. Finally, we study observed topical preferences in network communities. Results show the flow of information from followees to followers with a significant rate of diffusion over the whole network. However, being part of a specific community does not contribute to be exposed to a cascade faster than others. While the communities were defined based on modularity maximization and no information related to hashtags involved, a topical preference also is observed within the communities' hashtags which had the same orientation as observed in two major political parties of Iran.
机译:社会化媒体的地方,人们交流和分享他们的想法提供社会网络分析的丰富信息。有各种分析,如信息扩散模型和用于分析社交网络的数据社区发现。在本文中,我们研究了包括hashtag扩散在过去的立法会选举在伊朗期间,伊朗的Instagram社区的一些新的方面。数据准备后,我们分析了三种不同的假设进行验证。首先,我们研究了运动主题标签的蔓延跟随,关注者关系的影响。基于职位,我们调用NetRate方法来评估信息扩散速度比从动关注者网络边缘的时间戳。然后,通过鲁汶方法作为社区检测算法的应用中,我们调查的社区成员和蔓延传输速率的关系。最后,我们研究了网络社区观察局部偏好。结果显示的信息,从追随者到追随者扩散到整个网络显著速度流动。然而,特定的社会是部分不利于暴露于级联比别人快。虽然社区是基于模块化的最大化,并没有涉及到参与主题标签信息定义,局部偏好也被社区主题标记为伊朗的两大政党观察到有相同的方向内观察到。

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