Metaphor Generation with Conceptual Mappings
Kevin Stowe, Tuhin Chakrabarty, Nanyun Peng, Smaranda Muresan, Iryna Gurevych
Abstract
Generating metaphors is a difficult task as it requires understanding nuanced relationships between abstract concepts. In this paper, we aim to generate a metaphoric sentence given a literal expression by replacing relevant verbs. Guided by conceptual metaphor theory, we propose to control the generation process by encoding conceptual mappings between cognitive domains to generate meaningful metaphoric expressions. To achieve this, we develop two methods: 1) using FrameNetbased embeddings to learn mappings between domains and applying them at the lexical level (CM-Lex), and 2) deriving source/target pairs to train a controlled seq-to-seq generation model (CM-BART). We assess our methods through automatic and human evaluation for basic metaphoricity and conceptual metaphor presence. We show that the unsupervised CM-Lex model is competitive with recent deep learning metaphor generation systems, and CM-BART outperforms all other models both in automatic and human evaluations. 1
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Cited by top-tier papers10
- IMPLI: Investigating NLI Models' Performance on Figurative LanguageKevin Stowe, Prasetya Ajie Utama, Iryna GurevychACL 2022 · 52 citations
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- Towards Automated Error Discovery: A Study in Conversational AIDominic Petrak, Thy Thy Tran, Iryna GurevychEMNLP 2025
Builds on2
- BART: Denoising Sequence-to-Sequence Pre-training for Natural Language Generation, Translation, and ComprehensionMike Lewis, Yinhan Liu, Naman Goyal, Marjan Ghazvininejad et al.ACL 2020 · 1,224 citations
- Generating similes effortlessly like a Pro: A Style Transfer Approach for Simile GenerationTuhin Chakrabarty, Smaranda Muresan, Nanyun PengEMNLP 2020 · 46 citations
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