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Journal Article

Citation

Miller HL, Zurutuza IR, Fears NE, Polat SO, Nielsen RD. Proc. Eye Track. Res. Appl. Symp. 2021; 2021: 3450341.3458881.

Copyright

(Copyright © 2021, Association for Computing Machinery)

DOI

10.1145/3450341.3458881

PMID

34263270

Abstract

Mobile eye-tracking and motion-capture techniques yield rich, precisely quantifiable data that can inform our understanding of the relationship between visual and motor processes during task performance. However, these systems are rarely used in combination, in part because of the significant time and human resources required for post-processing and analysis. Recent advances in computer vision have opened the door for more efficient processing and analysis solutions. We developed a post-processing pipeline to integrate mobile eye-tracking and full-body motion-capture data. These systems were used simultaneously to measure visuomotor integration in an immersive virtual environment. Our approach enables calculation of a 3D gaze vector that can be mapped to the participant's body position and objects in the virtual environment using a uniform coordinate system. This approach is generalizable to other configurations, and enables more efficient analysis of eye, head, and body movements together during visuomotor tasks administered in controlled, repeatable environments.


Keywords: Social Transition


Language: en

Keywords

machine learning; computer vision; kinematic; mobile eye tracking; motion capture; object detection; oculomotor; visuomotor integration

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