xTrace: A Facial Expressive Behaviour Analysis Tool for Continuous Affect Recognition
Mani Kumar Tellamekala, Shashank Jaiswal, Thomas Smith, Timur Alamev, Gary McKeown, Anthony Brown, Michel Valstar

TL;DR
xTrace is a new facial expressive behaviour analysis tool that predicts continuous valence and arousal from in-the-wild videos, trained on a large dataset and outperforming existing methods in accuracy and robustness.
Contribution
The paper introduces xTrace, a robust, explainable, and efficient tool for continuous affect recognition trained on the largest facial affect video dataset.
Findings
xTrace achieves 0.86 mean CCC on in-the-wild data.
xTrace outperforms existing tools by approximately 7.1%.
The model is trained on ~450k videos covering most emotion zones.
Abstract
Recognising expressive behaviours in face videos is a long-standing challenge in Affective Computing. Despite significant advancements in recent years, it still remains a challenge to build a robust and reliable system for naturalistic and in-the-wild facial expressive behaviour analysis in real time. This paper addresses two key challenges in building such a system: (1). The paucity of large-scale labelled facial affect video datasets with extensive coverage of the 2D emotion space, and (2). The difficulty of extracting facial video features that are discriminative, interpretable, robust, and computationally efficient. Toward addressing these challenges, this work introduces xTrace, a robust tool for facial expressive behaviour analysis and predicting continuous values of dimensional emotions, namely valence and arousal, from in-the-wild face videos. To address challenge (1), the…
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Taxonomy
TopicsEmotion and Mood Recognition · Sentiment Analysis and Opinion Mining · Mental Health via Writing
MethodsSparse Evolutionary Training
