基于统计分析的眼球注视识别。案例研究

Giacomo Veneri, P. Piu, P. Federighi, F. Rosini, A. Federico, A. Rufa
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引用次数: 15

摘要

眼球运动是人类与环境互动的最简单、最重复的运动。常见的日常活动,如看电视或看书,都涉及到这种自然活动,它包括将我们的目光从一个区域迅速转移到另一个区域。在视觉探索过程中,识别眼球运动的主要组成部分,如注视和扫视,是分析从基础神经科学和视觉科学到虚拟现实交互和机器人等各种背景下眼球运动的目标。然而,许多检测注视的算法存在许多问题。本文提出了一种新的基于方差分析和f检验的注视点识别算法。提出了新算法,并与常用的基于色散的注视算法进行了比较。为了证明我们的方法的性能,我们在一组健康受试者中测试了该算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Eye fixations identification based on statistical analysis - Case study
Eye movement is the most simple and repetitive movement that enable humans to interact with the environment. The common daily activities, such as watching television or reading a book, involve this natural activity which consists of rapidly shifting our gaze from one region to another. The identification of the main components of eye movement during visual exploration such as fixations and saccades, is the objective of the analysis of eye movements in various contexts ranging from basic neuro sciences and visual sciences to virtual reality interactions and robotics. However, many of the algorithms that detect fixations present a number of problems. In this article, we present a new fixation identification algorithm based on the analysis of variance and F-test. We present the new algorithm and we compare it with the common fixations algorithm based on dispersion. To demonstrate the performance of our approach we tested the algorithm in a group of healthy subjects.
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