Papers › LSSED: a large-scale dataset and benchmark for speech emotion recognition

LSSED: a large-scale dataset and benchmark for speech emotion recognition

30 Jan 2021arXiv:2102.01754archive 2025-07-28

Weiquan Fan, Xiangmin Xu, Xiaofen Xing, Weidong Chen, DongYan Huang

Speech emotion recognition is a vital contributor to the next generation of human-computer interaction (HCI). However, current existing small-scale databases have limited the development of related research. In this paper, we present LSSED, a challenging large-scale english speech emotion dataset, which has data collected from 820 subjects to simulate real-world distribution. In addition, we release some pre-trained models based on LSSED, which can not only promote the development of speech emotion recognition, but can also be transferred to related downstream tasks such as mental health analysis where data is extremely difficult to collect. Finally, our experiments show the necessity of large-scale datasets and the effectiveness of pre-trained models. The dateset will be released on https://github.com/tobefans/LSSED.

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Emotion RecognitionSpeech Emotion Recognition

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LSSED

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Speech Emotion Recognition LSSED PyResNet Unweighted Accuracy (UA) 0.429 #1 of 1 Archive leaderboard report

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