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散点图和注意力分布中的可视化模型拟合评估。

Visual Model Fit Estimation in Scatterplots and Distribution of Attention.

机构信息

Department of Psychology, FernUniversität in Hagen, Hagen, Germany.

出版信息

Exp Psychol. 2020 Sep;67(5):292-302. doi: 10.1027/1618-3169/a000499.

Abstract

Scatterplots are ubiquitous data graphs and can be used to depict how well data fit to a quantitative theory. We investigated which information is used for such estimates. In Experiment 1 ( = 25), we tested the influence of slope and noise on perceived fit between a linear model and data points. Additionally, eye tracking was used to analyze the deployment of attention. Visual fit estimation might mimic one or the other statistical estimate: If participants were influenced by noise only, this would suggest that their subjective judgment was similar to root mean square error. If slope was relevant, subjective estimation would mimic variance explained. While the influence of noise on estimated fit was stronger, we also found an influence of slope. As most of the fixations fell into the center of the scatterplot, in Experiment 2 ( = 51), we tested whether location of noise affects judgment. Indeed, high noise influenced the judgment of fit more strongly if it was located in the middle of the scatterplot. Visual fit estimates seem to be driven by the center of the scatterplot and to mimic variance explained.

摘要

散点图是无处不在的数据图,可以用来描述数据与定量理论的拟合程度。我们研究了哪些信息用于这些估计。在实验 1(n=25)中,我们测试了斜率和噪声对线性模型和数据点之间感知拟合度的影响。此外,还使用眼动追踪来分析注意力的部署。视觉拟合估计可能模仿一个或另一个统计估计:如果参与者仅受噪声影响,这表明他们的主观判断类似于均方根误差。如果斜率是相关的,那么主观估计将模仿解释方差。虽然噪声对估计拟合度的影响更强,但我们也发现了斜率的影响。由于大多数注视点落在散点图的中心,因此在实验 2(n=51)中,我们测试了噪声的位置是否会影响判断。事实上,如果噪声位于散点图的中间,它会对拟合度的判断产生更大的影响。视觉拟合估计似乎受散点图中心的驱动,并模仿解释方差。

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