Relevance Prediction from Eye-movements Using Semi-interpretable Convolutional Neural Networks

被引:12
|
作者
Bhattacharya, Nilavra [1 ]
Rakshit, Somnath [1 ]
Gwizdka, Jacek [1 ]
Kogut, Paul [2 ]
机构
[1] Univ Texas Austin, Sch Informat, Austin, TX 78712 USA
[2] Lockheed Martin Corp, Rotary & Mission Syst, Bethesda, MD USA
关键词
relevance prediction; eye-tracking; scanpath; image classification; convolutional neural network; TRACKING; DILATION; EEG;
D O I
10.1145/3343413.3377960
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
We propose an image-classification method to predict the perceived-relevance of text documents from eye-movements. An eye-tracking study was conducted where participants read short news articles, and rated them as relevant or irrelevant for answering a trigger question. We encode participants' eye-movement scanpaths as images, and then train a convolutional neural network classifier using these scanpath images. The trained classifier is used to predict participants' perceived-relevance of news articles from the corresponding scanpath images. This method is content-independent, as the classifier does not require knowledge of the screen-content, or the user's information-task. Even with little data, the image classifier can predict perceived-relevance with up to 80% accuracy. When compared to similar eye-tracking studies from the literature, this scanpath image classification method outperforms previously reported metrics by appreciable margins. We also attempt to interpret how the image classifier differentiates between scanpaths on relevant and irrelevant documents.
引用
收藏
页码:223 / 233
页数:11
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