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The Impact of Social Information on Visual Judgments

机译:社会信息对视觉判断的影响

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Social visualization systems have emerged to support collective intelligence-driven analysis of a growing influx of open data. As with many other online systems, social signals (e.g., forums, polls) are commonly integrated to drive use. Unfortunately, the same social features that can provide rapid, high-accuracy analysis are coupled with the pitfalls of any social system. Through an experiment involving over 300 subjects, we address how social information signals (social proof) affect quantitative judgments in the context of graphical perception. We identify how unbiased social signals lead to fewer errors over non-social settings and conversely, how biased signals lead to more errors. We further reflect on how systematic bias nullifies certain collective intelligence benefits, and we provide evidence of the formation of information cascades. We describe how these findings can be applied to collaborative visualization systems to produce more accurate individual interpretations in social contexts.
机译:社交可视化系统已经出现,可以支持对不断增长的开放数据涌入进行集体情报驱动的分析。与许多其他在线系统一样,社交信号(例如论坛,民意测验)通常被集成以促进使用。不幸的是,可以提供快速,高精度分析的相同社交功能,加上任何社交系统的陷阱。通过涉及300多个主题的实验,我们研究了社会信息信号(社会证明)如何在图形感知的背景下影响定量判断。我们确定了无偏见的社会信号如何导致比非社会背景更少的错误,相反,有偏见的信号如何导致更多的错误。我们进一步思考系统的偏见如何使某些集体情报收益无效,并且我们提供了信息级联形成的证据。我们描述了如何将这些发现应用于协作可视化系统,以在社交环境中产生更准确的个人解释。

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