Fixation Identification in Centroid versus Start-Point Modes Using Eye-Tracking Data

Author:

Falkmer Torbjörn1,Dahlman Joakim2,Dukic Tania3,Bjällmark Anna4,Larsson Matilda4

Affiliation:

1. Rehabilitation Medicine, Department of Neuroscience and Locomotion IKE, Faculty of Health Sciences, Linköping University, School of Health Sciences, Jönköping University

2. Rehabilitation Medicine, Department of Neuroscience and Locomotion IKE, Faculty of Health Sciences, Linköping University

3. Swedish National Road and Transport, Research Institute VTI, Gothenburg

4. Rehabilitation Medicine, Department of Neuroscience and Locomotion IKE, Faculty of Health Sciences, Linköping University KTH, School for Technique and Health, Stockholm

Abstract

Fixation-identification algorithms, needed for analyses of eye movements, may typically be separated into three categories, viz. (i) velocity-based algorithms, (ii) area-based algorithms, and (iii) dispersion-based algorithms. Dispersion-based algorithms are commonly used but this application introduces some difficulties, one being optimization. Basically, there are two modes to reach this goal of optimization, viz., the start-point mode and the centroid mode. The aim of the present study was to compare and evaluate these two dispersion-based algorithms. Manual inspections were made of 1,400 fixations in each mode. Odds ratios showed that by using the centroid mode for fixation detection, a valid fixation is 2.86 times more likely to be identified than by using the start-point mode. Moreover, the algorithm based on centroid mode dispersion showed a good interpretation speed, accuracy, robustness, and ease of implementation, as well as adequate parameter settings.

Publisher

SAGE Publications

Subject

Sensory Systems,Experimental and Cognitive Psychology

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