Counterspeeches up my sleeve! Intent Distribution Learning and Persistent Fusion for Intent-Conditioned Counterspeech Generation
Rishabh Gupta, Shaily Desai, Manvi Goel, Anil Bandhakavi, Tanmoy Chakraborty, Md. Shad Akhtar
Abstract
Counterspeech has been demonstrated to be an efficacious approach for combating hate speech. While various conventional and controlled approaches have been studied in recent years to generate counterspeech, a counterspeech with a certain intent may not be sufficient in every scenario. Due to the complex and multifaceted nature of hate speech, utilizing multiple forms of counter-narratives with varying intents may be advantageous in different circumstances. In this paper, we explore intent-conditioned counterspeech generation. At first, we develop IntentCONAN, a diversified intent-specific counterspeech dataset with 6831 counterspeeches conditioned on five intents, i.e., informative, denouncing, question, positive, and humour. Subsequently, we propose QUARC, a two-stage framework for intent-conditioned counterspeech generation. QUARC leverages vector-quantized representations learned for each intent category along with PerFuMe, a novel fusion module to incorporate intent-specific information into the model. Our evaluation demonstrates that QUARC outperforms several baselines by an average of 10% across evaluation metrics. An extensive human evaluation supplements our hypothesis of better and more appropriate responses than comparative systems. Warning: This work contains offensive and hateful text that some might find upsetting. It does not represent the views of the authors.
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Cited by top-tier papers8
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- F²RL: Factuality and Faithfulness Reinforcement Learning Framework for Claim-Guided Evidence-Supported Counterspeech GenerationHaiyang Wang, Yuchen Pan, Xin Song, Xuechen Zhao et al.EMNLP 2024 · 1 citation
- Echoes of Norms: Investigating Counterspeech Bots' Influence on Bystanders in Online CommunitiesMengyao Wang, Shuai Ma, Nuo Li, Peng Zhang et al.CHI 2026 · 1 citation
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- A Controllable Model of Grounded Response GenerationZeqiu Wu, Michel Galley, Chris Brockett, Yizhe Zhang et al.AAAI 2021 · 89 citations
- Generating Counter Narratives against Online Hate Speech: Data and StrategiesSerra Sinem Tekiroglu, Yi-Ling Chung, Marco GueriniACL 2020 · 13 citations
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