Incivility and Rigidity: Evaluating the Risks of Fine-Tuning LLMs for Political Argumentation
November 25, 2024 ยท Declared Dead ยท + Add venue
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Authors
Svetlana Churina, Kokil Jaidka
arXiv ID
2411.16813
Category
cs.CL: Computation & Language
Cross-listed
cs.AI
Citations
0
Last Checked
6 months ago
Abstract
Incivility on platforms such as Twitter (now X) and Reddit complicates the development of AI systems that can support productive, rhetorically sound political argumentation. We present experiments with \textit{GPT-3.5 Turbo} fine-tuned on two contrasting datasets of political discourse: high-incivility Twitter replies to U.S. Congress and low-incivility posts from Reddit's \textit{r/ChangeMyView}. Our evaluation examines how data composition and prompting strategies affect the rhetorical framing and deliberative quality of model-generated arguments. Results show that Reddit-finetuned models generate safer but rhetorically rigid arguments, while cross-platform fine-tuning amplifies adversarial tone and toxicity. Prompt-based steering reduces overt toxicity (e.g., personal attacks) but cannot fully offset the influence of noisy training data. We introduce a rhetorical evaluation rubric - covering justification, reciprocity, alignment, and authority - and provide implementation guidelines for authoring, moderation, and deliberation-support systems.
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