Natural pursuit calibration: using motion trajectories for unobtrusive calibration of mobile eye trackers

Michaela Murauer, Michael Haslgrübler, A. Ferscha
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引用次数: 8

Abstract

Although, gaze-based interaction has been investigated since the 1980s and remains a promising concept to support universal interaction within distributed IoT environments, main challenges like the Midas touch problem [6] or calibration are still frequent topics of research. In this work we present Natural Pursuit Calibration, a comfortable, unobtrusive technique enabling ongoing attention detection and eye tracker calibration in a real-world context. The user is able to perform calibration, without a digital user interface, artificial annotation of the environment and without assistance, by simply following any arbitrary moving target. Due to the characteristics of the calibration process it can be executed simultaneously to any primary task, without active user participation, resulting in a frequently updated calibration model.
自然追踪校准:使用运动轨迹对移动眼动仪进行不显眼的校准
尽管自20世纪80年代以来,基于凝视的交互已经被研究,并且仍然是一个有前途的概念,以支持分布式物联网环境中的通用交互,但主要挑战,如点金法问题[6]或校准仍然是研究的频繁主题。在这项工作中,我们提出了自然追求校准,这是一种舒适,不显眼的技术,可以在现实世界中进行注意力检测和眼动仪校准。用户能够执行校准,没有数字用户界面,人工注释的环境,没有帮助,只需跟随任何任意移动目标。由于校准过程的特点,它可以同时执行任何主要任务,没有积极的用户参与,导致一个频繁更新的校准模型。
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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