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Papers/MMGCN: Multimodal Fusion via Deep Graph Convolution Networ...

MMGCN: Multimodal Fusion via Deep Graph Convolution Network for Emotion Recognition in Conversation

Jingwen Hu, Yuchen Liu, Jinming Zhao, Qin Jin

2021-07-14ACL 2021 5Emotion Recognition in ConversationEmotion Recognition
PaperPDFCode(official)

Abstract

Emotion recognition in conversation (ERC) is a crucial component in affective dialogue systems, which helps the system understand users' emotions and generate empathetic responses. However, most works focus on modeling speaker and contextual information primarily on the textual modality or simply leveraging multimodal information through feature concatenation. In order to explore a more effective way of utilizing both multimodal and long-distance contextual information, we propose a new model based on multimodal fused graph convolutional network, MMGCN, in this work. MMGCN can not only make use of multimodal dependencies effectively, but also leverage speaker information to model inter-speaker and intra-speaker dependency. We evaluate our proposed model on two public benchmark datasets, IEMOCAP and MELD, and the results prove the effectiveness of MMGCN, which outperforms other SOTA methods by a significant margin under the multimodal conversation setting.

Results

TaskDatasetMetricValueModel
Emotion RecognitionCMU-MOSEI-SentimentAccuracy45.67MMGCN
Emotion RecognitionCMU-MOSEI-SentimentWeighted F144.11MMGCN
Emotion RecognitionIEMOCAP-4Accuracy79.75MMGCN
Emotion RecognitionIEMOCAP-4Weighted F179.72MMGCN

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