A classification method between novice and experienced drivers using eye tracking data and Gaussian process classifier

Zujie Zhang, Takatomi Kubo, Jin Watanabe, T. Shibata, K. Ikeda, T. Bando, K. Hitomi, Masumi Egawa
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引用次数: 6

Abstract

We propose a classification method based on a binary Gaussian process classifier to classify novice and experienced drivers using eye gaze that can reflect drivers' attention and skill. Gaze behavior during lane changing task were collected from both novice drivers and experienced drivers by using an eye tracking system and a driving simulator in this study. We applied the Gaussian process classifier to the two-dimensional coordination data of the gaze behavior, and compared the performance of Gaussian process classifier with those of Gaussian mixture models that had the different number of components. Our proposed method showed the superiority in classification performance to the methods based on the Gaussian mixture models.
基于眼动追踪数据和高斯过程分类器的新手和老司机分类方法
本文提出了一种基于二元高斯过程分类器的分类方法,利用反映驾驶员注意力和技能的目光对新手和有经验的驾驶员进行分类。本研究采用眼动追踪系统和驾驶模拟器对新驾驶员和老驾驶员在变道任务中的注视行为进行了研究。将高斯过程分类器应用于注视行为的二维协调数据,并将高斯过程分类器的性能与具有不同分量数的高斯混合模型的性能进行比较。该方法在分类性能上优于基于高斯混合模型的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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