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AGR: Age Group fairness Reward for Bias Mitigation in LLMs

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arxiv 2409.04340 v1 pith:4ZJG6SVN submitted 2024-09-06 cs.LG cs.AIcs.CL

classification cs.LGcs.AIcs.CL
keywords biasdatasetsacrossfairnessgroupsllmsrewardanonymous
verification ladder T0 review T1 audit T2 compute T3 formal
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LLMs can exhibit age biases, resulting in unequal treatment of individuals across age groups. While much research has addressed racial and gender biases, age bias remains little explored. The scarcity of instruction-tuning and preference datasets for age bias hampers its detection and measurement, and existing fine-tuning methods seldom address age-related fairness. In this paper, we construct age bias preference datasets and instruction-tuning datasets for RLHF. We introduce ARG, an age fairness reward to reduce differences in the response quality of LLMs across different age groups. Extensive experiments demonstrate that this reward significantly improves response accuracy and reduces performance disparities across age groups. Our source code and datasets are available at the anonymous \href{https://anonymous.4open.science/r/FairRLHF-D445/readme.md}{link}.

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  1. Planted in Pretraining, Swayed by Finetuning: A Case Study on the Origins of Cognitive Biases in LLMs

    cs.CL 2025-07 conditional novelty 7.0 of 10

    Cognitive biases in LLMs are largely set during pretraining, while finetuning data and seed randomness only modulate them.

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