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鼠标运动反映了在线实验中的个性特征和任务专注度。

Mouse movements reflect personality traits and task attentiveness in online experiments.

机构信息

Environmental Neuroscience Lab, Department of Psychology, The University of Chicago, Chicago, Illinois, USA.

Mansueto Institute for Urban Innovation, The University of Chicago, Chicago, Illinois, USA.

出版信息

J Pers. 2023 Apr;91(2):413-425. doi: 10.1111/jopy.12736. Epub 2022 Jun 6.

Abstract

OBJECTIVE

In this rapidly digitizing world, it is becoming ever more important to understand people's online behaviors in both scientific and consumer research settings. The current work tests the feasibility of inferring personality traits from mouse movement patterns as a cost-effective means of measuring individual characteristics.

METHOD

Mouse movement features (i.e., pauses, fixations, speed, and clicks) were collected while participants (N = 791) completed an online image choice task. We compare the results of standard univariate and three forms of multivariate partial least squares (PLS) analyses predicting Big Five traits from mouse movements. We also examine whether mouse movements can predict a proposed measure of task attentiveness (atypical responding), and how these might be related to personality traits.

RESULTS

Each of the PLS analyses showed significant associations between a linear combination of personality traits (high Conscientiousness, Agreeableness, Openness, and low Neuroticism) and several mouse movements associated with slower, more deliberate responding (less unnecessary clicks and more fixations). Additionally, several click-related mouse features were associated with atypical responding on the task.

CONCLUSIONS

As the image choice task itself is not intended to assess personality in any way, our results validate the feasibility of using mouse movements to infer internal traits across experimental contexts.

摘要

目的

在这个快速数字化的世界中,了解人们在科学和消费者研究环境中的在线行为变得越来越重要。本研究旨在测试从鼠标运动模式推断人格特质的可行性,以此作为一种经济有效的测量个体特征的方法。

方法

在 791 名参与者完成在线图像选择任务的过程中,收集鼠标运动特征(即停顿、注视、速度和点击)。我们比较了标准单变量和三种多元偏最小二乘法(PLS)分析从鼠标运动预测大五人格特质的结果。我们还研究了鼠标运动是否可以预测一项提议的任务注意力(异常反应)的测量指标,以及这些指标与人格特质的关系。

结果

PLS 分析中的每一种分析都显示出人格特质的线性组合(高尽责性、宜人性、开放性和低神经质)与几个与较慢、更慎重反应相关的鼠标运动之间存在显著关联(点击次数减少,注视次数增加)。此外,几个与点击相关的鼠标特征与任务中的异常反应有关。

结论

由于图像选择任务本身并不是以任何方式评估人格,因此我们的结果验证了在实验环境中使用鼠标运动推断内部特质的可行性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f9a/10084322/cc14ffd45d70/JOPY-91-413-g001.jpg

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