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Estimating the Dynamics of Individual Opinions in Online Communities

机译:估算在线社区中个人观点的动态

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How do opinions change as a result of public interactions and exchange of ideas? How does the proliferation of online media influence these dynamics? While theoretical research provides several hypotheses, empirical analysis of opinion dynamics in online communities is lagging. We develop a unique method for quantifying users' opinions in a social news website and estimate the decision rules that regulate website visit, story posting, voting, and opinion change. We find evidence for significant and nonlinear opinion change as a result of exposure to near-opinions. We also find evidence of learning as people adjust their activity based on the feedback they receive online and strategic reciprocal voting. Incorporating these decision rules in a simulation model we show the propensity of this online community to converge to the majority opinion, and discuss the underlying mechanisms and implications.
机译:由于公众互动和思想交换,意见如何变化? 在线媒体的激增如何影响这些动态? 虽然理论研究提供了几个假设,但在线社区中对观点动态的实证分析是滞后的。 我们开发了一项独特的方法,可以在社交新闻网站中量化用户意见,并估计规范网站访问,故事,投票和意见变化的决策规则。 由于暴露于近乎意见,我们发现了显着和非线性意见变化的证据。 当人们根据他们收到在线和战略互惠投票的反馈时,我们还发现学习证据。 在仿真模型中纳入这些决策规则,我们展示了该在线社区的倾向,以汇聚到大多数意见,并讨论潜在机制和影响。

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