Deep Domain Adaptation: A Sim2Real Neural Approach for Improving Eye-Tracking Systems

Author:

Nguyen Viet Dung1ORCID,Bailey Reynold1ORCID,Diaz Gabriel J.1ORCID,Ma Chengyi1ORCID,Fix Alexander2ORCID,Ororbia Alexander1ORCID

Affiliation:

1. Rochester Institute of Technology, Rochester, New York, USA

2. Meta Reality Labs, Redmond, Washington, USA

Abstract

Eye image segmentation is a critical step in eye tracking that has great influence over the final gaze estimate. Segmentation models trained using supervised machine learning can excel at this task, their effectiveness is determined by the degree of overlap between the narrow distributions of image properties defined by the target dataset and highly specific training datasets, of which there are few. Attempts to broaden the distribution of existing eye image datasets through the inclusion of synthetic eye images have found that a model trained on synthetic images will often fail to generalize back to real-world eye images. In remedy, we use dimensionality-reduction techniques to measure the overlap between the target eye images and synthetic training data, and to prune the training dataset in a manner that maximizes distribution overlap. We demonstrate that our methods result in robust, improved performance when tackling the discrepancy between simulation and real-world data samples.

Funder

National Science Foundation

Publisher

Association for Computing Machinery (ACM)

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