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A Data Science Expert Social Network: From Personal Follower List to Social Network Structure

机译:数据科学专家社交网络:从个人关注者列表到社交网络结构

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The researchers combined two lists of 28 favorite “data science experts to follow on Twitter” to seed a Twitter network and analyze whether the recommended experts were indeed amongst the most influential “data science experts” on Twitter. They analyzed the resulting Twitter network to find the most important nodes in terms of popularity, quality of connections, types of roles played, such as bridges, and node ability to quickly spread information. They found that only some of the recommended experts appeared most influential given the network analysis. They also found that the experts on the list landed mainly in two sub-groups. Starting with a writer's favorite list of experts may be helpful in seeding a more comprehensive list.
机译:研究人员将28名最喜欢的“数据科学专家”放在Twitter上的两个列表结合起来,建立了Twitter网络,并分析了推荐的专家是否确实是Twitter上最有影响力的“数据科学专家”之一。他们分析了由此产生的Twitter网络,从流行度,连接质量,所扮演角色的类型(例如桥梁)和节点快速传播信息的能力等方面,找到了最重要的节点。他们发现,从网络分析来看,只有一些推荐的专家显示出最有影响力。他们还发现,名单上的专家主要来自两个小组。从作家最喜欢的专家列表开始可能有助于播种更全面的列表。

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