Multi-modal Mood Reader: Pre-trained Model Empowers Cross-Subject Emotion Recognition
Yihang Dong, Xuhang Chen, Yanyan Shen, Michael Kwok-Po Ng, Tao Qian,, Shuqiang Wang

TL;DR
This paper introduces a pre-trained multimodal model that effectively captures complex EEG dynamics and integrates multiple data modalities to improve cross-subject emotion recognition, demonstrating superior performance and interpretability.
Contribution
The study presents a novel pre-trained multimodal framework with interlinked spatial-temporal attention for EEG-based emotion recognition, addressing limitations of previous methods.
Findings
Outperforms state-of-the-art methods on public datasets
Effectively captures spatial-temporal EEG features
Provides insights into emotion-related brain areas
Abstract
Emotion recognition based on Electroencephalography (EEG) has gained significant attention and diversified development in fields such as neural signal processing and affective computing. However, the unique brain anatomy of individuals leads to non-negligible natural differences in EEG signals across subjects, posing challenges for cross-subject emotion recognition. While recent studies have attempted to address these issues, they still face limitations in practical effectiveness and model framework unity. Current methods often struggle to capture the complex spatial-temporal dynamics of EEG signals and fail to effectively integrate multimodal information, resulting in suboptimal performance and limited generalizability across subjects. To overcome these limitations, we develop a Pre-trained model based Multimodal Mood Reader for cross-subject emotion recognition that utilizes masked…
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Taxonomy
TopicsEmotion and Mood Recognition · Infant Health and Development · Language Development and Disorders
