为什么游击队员会感到被憎恨?敌意元感知的静态和动态关系截然不同。

IF 2.2 Q2 MULTIDISCIPLINARY SCIENCES
PNAS nexus Pub Date : 2024-10-15 eCollection Date: 2024-10-01 DOI:10.1093/pnasnexus/pgae324
Jeffrey Lees, Mina Cikara, James N Druckman
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引用次数: 0

摘要

党派成员对另一方持有不准确的看法。是什么导致了这些不准确的看法?我们将重点放在党派敌意元感知(即党派认为对立党派有多讨厌他们)上来解决这个问题。我们认为,预测因素可以静态地与元感知相关(例如,在某个特定时间点,在社交媒体上发布更多政治信息的党派人士与发布较少信息的党派人士相比,他们的元感知是否存在差异?利用 2020 年美国总统大选的面板数据,我们发现变量与元感知之间存在明显的静态和动态关系。值得注意的是,在个体之间,在线发帖与元认知没有(静态)关系,而在个体内部,那些随着时间推移(动态)增加发帖量的人变得更加准确。这些结果清楚地表明,关于元感知及其预测因素(包括社交媒体活动)的过于笼统的说法必然是错误的。元感知与其他因素的关系往往取决于特定时间的具体情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Why partisans feel hated: Distinct static and dynamic relationships with animosity meta-perceptions.

Partisans hold inaccurate perceptions of the other side. What drives these inaccuracies? We address this question with a focus on partisan animosity meta-perceptions (i.e. how much a partisan believes opposing partisans hate them). We argue that predictors can relate to meta-perceptions statically (e.g. at a specific point in time, do partisans who post more about politics on social media differ in their meta-perceptions relative to partisans who post less?) or dynamically (e.g. does a partisan who increases their social media political posting between two defined time points change their meta-perceptions accordingly?). Using panel data from the 2020 US presidential election, we find variables display distinct static and dynamic relationships with meta-perceptions. Notably, between individuals, posting online exhibits no (static) relationship with meta-perceptions, while within individuals, those who increased their postings over time (dynamically) became more accurate. The results make clear that overly general statements about meta-perceptions and their predictors, including social media activity, are bound to be wrong. How meta-perceptions relate to other factors often depends on contextual circumstances at a given time.

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来源期刊
CiteScore
1.80
自引率
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