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Research Article | Open Access | Just Accepted

Expression Recognition based on Emotion-Wheel-Guided Label Distribution Learning

Jingyang Zhou1,2Jinyao Liu3Jin Wang1,2( )

1 School of Computer Science and Engineering, Southeast University, Nanjing 210096, China

2 Key Laboratory of New Generation Artificial Intelligence Technology and Its In-terdisciplinary Applications (Southeast University), Ministry of Education, China

3 Chien-Shiung Wu College, Southeast University, Nanjing 210096, China

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Abstract

Facial expression recognition (FER) is a crit-ical component in many fields, such as human-computer interaction and affective computing. However, existing FER methods face several key challenges such as label ambiguity, mixed emotional expressions, and class imbalance. To ad-dress these issues, we propose a novel framework based on Label Distribution Learning (LDL) that captures the complex and compound nature of real-world emotions. Our approach introduces MixFeature, a feature-level augmentation strategy that synthesizes new samples with label distribution by mix-ing single-label ones. Such process is guided by the Robert Plutchik’s Emotion Wheel to ensure semantic consistency in the generated label distribution. By modeling emotions as label distribution, our method provides a more nuanced repre-sentation of blended emotional states. Extensive experiments on widely used datasets demonstrate that our framework sig-nificantly outperforms existing single-label and LDL methods in recognition accuracy and robustness, particularly in han-dling ambiguous and mixed emotions and addressing class imbalance.

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Tsinghua Science and Technology

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Cite this article:
Zhou J, Liu J, Wang J. Expression Recognition based on Emotion-Wheel-Guided Label Distribution Learning. Tsinghua Science and Technology, 2026, https://doi.org/10.26599/TST.2026.90100028

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Received: 23 April 2025
Revised: 28 August 2025
Accepted: 06 February 2026
Available online: 03 March 2026

© The author(s) 2026.

The articles published in this open access journal are distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/).