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3 months ago

COSMIC: COmmonSense knowledge for eMotion Identification in Conversations

Deepanway Ghosal Navonil Majumder Alexander Gelbukh Rada Mihalcea Soujanya Poria

COSMIC: COmmonSense knowledge for eMotion Identification in Conversations

Abstract

In this paper, we address the task of utterance level emotion recognition in conversations using commonsense knowledge. We propose COSMIC, a new framework that incorporates different elements of commonsense such as mental states, events, and causal relations, and build upon them to learn interactions between interlocutors participating in a conversation. Current state-of-the-art methods often encounter difficulties in context propagation, emotion shift detection, and differentiating between related emotion classes. By learning distinct commonsense representations, COSMIC addresses these challenges and achieves new state-of-the-art results for emotion recognition on four different benchmark conversational datasets. Our code is available at https://github.com/declare-lab/conv-emotion.

Code Repositories

declare-lab/conv-emotion
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
emotion-recognition-in-conversation-onCOSMIC
Weighted-F1: 65.30
emotion-recognition-in-conversation-on-3COSMIC
Macro F1: 51.05
Micro-F1: 58.48
emotion-recognition-in-conversation-on-4COSMIC
Weighted-F1: 38.11
emotion-recognition-in-conversation-on-meldCOSMIC
Weighted-F1: 65.21

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