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Affective computing with eye-tracking data in the study of the visual perception of architectural spaces

机译:利用眼动数据进行情感计算,研究建筑空间的视觉感受

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In the presented study the usefulness of eye-tracking data for classification of architectural spaces as stressful or relaxing was examined. The eye movements and pupillary response data were collected using the eye-tracker from 202 adult volunteers in the laboratory experiment in a well-controlled environment. Twenty features were extracted from the eye-tracking data and after the selection process the features were used in automated binary classification with a variety of machine learning classifiers including neural networks. The results of the classification using eye-tracking data features yielded 68% accuracy score, which can be considered satisfactory. Moreover, statistical analysis showed statistically significant differences in eye activity patterns between visualisations labelled as stressful or relaxing.
机译:在本研究中,研究了眼动追踪数据对于将建筑空间分类为压力或放松的有用性。在良好控制的环境中,在实验室实验中使用眼动仪收集了202位成年志愿者的眼动和瞳孔反应数据。从眼睛跟踪数据中提取了二十个特征,并且在选择过程之后,将这些特征用于具有多种机器学习分类器(包括神经网络)的自动二进制分类中。使用眼动数据特征进行分类的结果产生了68%的准确性得分,可以认为是令人满意的。此外,统计分析显示在视觉活动之间,被标记为压力或放松的视觉活动在统计学上有显着差异。

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