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Exploring Persona-dependent LLM Alignment for the Moral Machine Experiment

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arxiv 2504.10886 v1 pith:OMDO55RL submitted 2025-04-15 cs.CY cs.AIcs.CL

classification cs.CYcs.AIcs.CL
keywords decisionsmoralmodelsalignmentapplicationscriticaldeployingexperiment
verification ladder T0 review T1 audit T2 compute T3 formal
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Deploying large language models (LLMs) with agency in real-world applications raises critical questions about how these models will behave. In particular, how will their decisions align with humans when faced with moral dilemmas? This study examines the alignment between LLM-driven decisions and human judgment in various contexts of the moral machine experiment, including personas reflecting different sociodemographics. We find that the moral decisions of LLMs vary substantially by persona, showing greater shifts in moral decisions for critical tasks than humans. Our data also indicate an interesting partisan sorting phenomenon, where political persona predominates the direction and degree of LLM decisions. We discuss the ethical implications and risks associated with deploying these models in applications that involve moral decisions.

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  1. Localizing Persona Representations in LLMs

    cs.CL 2025-05 conditional novelty 6.0 of 10

    Persona information is most separable in the final third of LLM layers, and in Llama3's last layer ethical personas share 17.6% of salient activations while political personas have 2.1% to 5.5% unique activations.

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