基于注视的交互中的机器学习:眼动事件检测研究综述

Annis Nuraini, Suatmi Murnani, I. Ardiyanto, S. Wibirama
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引用次数: 3

摘要

自发的基于注视的输入提供了更快、更直观的人机交互,因为人们会自然地看着他们想要的目的地。开发一个基于自发注视的应用程序面临许多挑战,其中之一是检测眼球运动事件。大多数事件检测方法都是基于速度或弥散阈值。不幸的是,这些方法依赖于手动设置阈值参数。尽管之前的尝试回顾了自发的基于凝视的交互中使用的各种技术,但没有一篇调查论文考虑到用于事件检测的各种机器学习技术。在这里,我们简要概述了基于自发注视的交互应用程序和一些用于眼动事件检测的机器学习方法。首先,我们通过回顾一些应用实例,探讨了自发的基于注视的交互作用的主要发展。接下来,我们介绍了一些基于阈值和基于机器学习的最新事件检测技术。最后,我们讨论了基于自发注视的相互作用的未来研究。我们的简短调查报告可能会被有兴趣开发基于眼动追踪的非校准交互式应用程序的入门级研究人员使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning in Gaze-Based Interaction: A Survey of Eye Movements Events Detection
Spontaneous gaze-based input offers faster and more intuitive human-computer interaction as people naturally look at their desired destination. Developing a spontaneous gaze-based application faces many challenges, one of them is detecting events of eye movements. Most events detection methods are based on velocity or dispersion threshold. Unfortunately, these approaches depend on manual setting of threshold parameters. Despite previous attempts to review various techniques used in spontaneous gaze-based interaction, there is no survey paper that takes into account various machine learning techniques used for events detection. Here we present a brief overview of spontaneous gaze-based interactive applications and some machine learning approaches used for eye movement events detection. First, we explored major development of spontaneous gaze-based interaction by reviewing some examples of its applications. Next, we presented some state-of-the-art of threshold-based and machine learning-based events detection techniques. Finally, we discussed future research on spontaneous gaze-based interaction. Our brief survey paper maybe used by entry level researchers interested in developing uncalibrated interactive applications based on eye tracking.
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