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Llama meets EU: Investigating the European Political Spectrum through the Lens of LLMs

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arxiv 2403.13592 v2 pith:WVLHQKEK submitted 2024-03-20 cs.CL

classification cs.CL
keywords politicalllamachatcontexteuropeanknowledgellmsmodels
verification ladder T0 review T1 audit T2 compute T3 formal
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Instruction-finetuned Large Language Models inherit clear political leanings that have been shown to influence downstream task performance. We expand this line of research beyond the two-party system in the US and audit Llama Chat in the context of EU politics in various settings to analyze the model's political knowledge and its ability to reason in context. We adapt, i.e., further fine-tune, Llama Chat on speeches of individual euro-parties from debates in the European Parliament to reevaluate its political leaning based on the EUandI questionnaire. Llama Chat shows considerable knowledge of national parties' positions and is capable of reasoning in context. The adapted, party-specific, models are substantially re-aligned towards respective positions which we see as a starting point for using chat-based LLMs as data-driven conversational engines to assist research in political science.

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  1. People Are Not Just Their Countries. Disentangling Social Determinants of LLM Value Alignment Across Europe

    cs.AI 2026-08 conditional novelty 6.0 of 10

    Across 10 LLMs and the European Social Survey, AI alignment favors wealthier, more educated, less religious, and more politically interested groups, with country of residence explaining as much variance as all sociode...

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