Visualization of Eye-Tracking Patterns in Autism Spectrum Disorder: Method and Dataset

Romuald Carette, Mahmoud Elbattah, Gilles Dequen, Jean-Luc Guérin, Federica Cilia
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引用次数: 18

Abstract

Autism spectrum disorder (ASD) is a lifelong condition generally characterized by social and communication impairments. One of the characteristic hallmarks of ASD is the difficulty of making or maintaining eye contact. In this respect, the eye-tracking technology has come into prominence to support the study and analysis of autism. This paper develops a methodology to visualize the eye-tracking patterns of ASD-diagnosed individuals with particular focus on children at early stages of development. The key idea is to transform the dynamics of eye motion into a visual representation, and hence diagnosis-related tasks could be approached using image-based techniques. The visualizations produced are made publicly available in an image dataset to be used by other studies aiming to experiment the potentials of eye-tracking within the ASD context. It is believed that the dataset can allow for developing further useful applications or discovering interesting insights using Machine Learning or data mining techniques
自闭症谱系障碍眼动追踪模式的可视化:方法和数据集
自闭症谱系障碍(ASD)是一种以社交和沟通障碍为特征的终身疾病。ASD的特征之一是难以进行或保持眼神交流。在这方面,眼动追踪技术在支持自闭症的研究和分析方面已经崭露头角。本文开发了一种方法来可视化asd诊断个体的眼动追踪模式,特别关注早期发展阶段的儿童。关键思想是将眼球运动的动态转化为视觉表现,因此与诊断相关的任务可以使用基于图像的技术来处理。所产生的可视化图像将在图像数据集中公开,供其他旨在实验ASD背景下眼球追踪潜力的研究使用。人们相信,数据集可以允许开发进一步有用的应用程序,或使用机器学习或数据挖掘技术发现有趣的见解
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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