Papers › Hybrid Curriculum Learning for Emotion Recognition in Conversation

Hybrid Curriculum Learning for Emotion Recognition in Conversation

22 Dec 2021arXiv:2112.11718archive 2025-07-28

Lin Yang, Yi Shen, Yue Mao, Longjun Cai

Emotion recognition in conversation (ERC) aims to detect the emotion label for each utterance. Motivated by recent studies which have proven that feeding training examples in a meaningful order rather than considering them randomly can boost the performance of models, we propose an ERC-oriented hybrid curriculum learning framework. Our framework consists of two curricula: (1) conversation-level curriculum (CC); and (2) utterance-level curriculum (UC). In CC, we construct a difficulty measurer based on "emotion shift" frequency within a conversation, then the conversations are scheduled in an "easy to hard" schema according to the difficulty score returned by the difficulty measurer. For UC, it is implemented from an emotion-similarity perspective, which progressively strengthens the model's ability in identifying the confusing emotions. With the proposed model-agnostic hybrid curriculum learning strategy, we observe significant performance boosts over a wide range of existing ERC models and we are able to achieve new state-of-the-art results on four public ERC datasets.

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Emotion RecognitionEmotion Recognition in Conversation

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Emotion Recognition in Conversation DailyDialog TODKAT+HCL Micro-F1 59.76 #8 of 22 Archive leaderboard report
Emotion Recognition in Conversation IEMOCAP DAG-ERC+HCL Weighted-F1 68.73 #25 of 59 Archive leaderboard report

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