R^3: Reverse, Retrieve, and Rank for Sarcasm Generation with Commonsense Knowledge
Tuhin Chakrabarty, Debanjan Ghosh, Smaranda Muresan, Nanyun Peng
摘要
We propose an unsupervised approach for sarcasm generation based on a non-sarcastic input sentence. Our method employs a retrieve-andedit framework to instantiate two major characteristics of sarcasm: reversal of valence and semantic incongruity with the context, which could include shared commonsense or world knowledge between the speaker and the listener. While prior works on sarcasm generation predominantly focus on context incongruity, we show that combining valence reversal and semantic incongruity based on commonsense knowledge generates sarcastic messages of higher quality based on several criteria. Human evaluation shows that our system generates sarcasm better than human judges 34% of the time, and better than a reinforced hybrid baseline 90% of the time. * The research was conducted when the author was at USC/ISI.
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引用它的顶会 Paper13
- (Comet-) Atomic 2020: On Symbolic and Neural Commonsense Knowledge GraphsJena D. Hwang, Chandra Bhagavatula, Ronan Le Bras, Jeff Da 等AAAI 2021 · 被引用 458 次
- Dynamic Neuro-Symbolic Knowledge Graph Construction for Zero-shot Commonsense Question AnsweringAntoine Bosselut, Ronan Le Bras, Yejin ChoiAAAI 2021 · 被引用 135 次
- When did you become so smart, oh wise one?! Sarcasm Explanation in Multi-modal Multi-party DialoguesShivani Kumar, Atharva Kulkarni, Md. Shad Akhtar, Tanmoy ChakrabortyACL 2022 · 被引用 54 次
- Generating similes effortlessly like a Pro: A Style Transfer Approach for Simile GenerationTuhin Chakrabarty, Smaranda Muresan, Nanyun PengEMNLP 2020 · 被引用 46 次
- Paragraph-level Commonsense Transformers with Recurrent MemorySaadia Gabriel, Chandra Bhagavatula, Vered Shwartz, Ronan Le Bras 等AAAI 2021 · 被引用 43 次
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