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Large Means Left: Political Bias in Large Language Models Increases with Their Number of Parameters

Exler, David ORCID iD icon 1; Schutera, Mark; Reischl, Markus ORCID iD icon 1; Rettenberger, Luca ORCID iD icon 1
1 Institut für Automation und angewandte Informatik (IAI), Karlsruher Institut für Technologie (KIT)

Abstract:

With the increasing prevalence of artificial intelligence, careful evaluation of inherent biases needs to be conducted to form the basis for alleviating the effects these predispositions can have on users. Large language models (LLMs) are predominantly used by many as a primary source of information for various topics. LLMs frequently make factual errors, fabricate data (hallucinations), or present biases, exposing users to misinformation and influencing opinions. Educating users on their risks is key to responsible use, as bias, unlike hallucinations, cannot be caught through data verification. We quantify the political bias of popular LLMs in the context of the recent vote of the German Bundestag using the score produced by the Wahl-O-Mat. This metric measures the alignment between an individual's political views and the positions of German political parties. We compare the models' alignment scores to identify factors influencing their political preferences. Doing so, we discover a bias toward left-leaning parties, most dominant in larger LLMs. Also, we find that the language we use to communicate with the models affects their political views. ... mehr


Volltext §
DOI: 10.5445/IR/1000181581
Veröffentlicht am 08.05.2025
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Automation und angewandte Informatik (IAI)
Publikationstyp Forschungsbericht/Preprint
Publikationsdatum 08.05.2025
Sprache Englisch
Identifikator KITopen-ID: 1000181581
HGF-Programm 43.31.02 (POF IV, LK 01) Devices and Applications
Verlag arxiv
Umfang 12 S.
Schlagwörter Computation and Language, Large Language Models, Deep Learning, Machine Learning
Nachgewiesen in arXiv
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