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Mitigating Political Bias in Language Models Through Reinforced Calibration

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arxiv 2104.14795 v1 pith:Z4ZLG7JG submitted 2021-04-30 cs.CL cs.AI

classification cs.CLcs.AI
keywords biaspoliticaldataframeworkgenerationlanguagemetricsmitigating
verification ladder T0 review T1 audit T2 compute T3 formal
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Current large-scale language models can be politically biased as a result of the data they are trained on, potentially causing serious problems when they are deployed in real-world settings. In this paper, we describe metrics for measuring political bias in GPT-2 generation and propose a reinforcement learning (RL) framework for mitigating political biases in generated text. By using rewards from word embeddings or a classifier, our RL framework guides debiased generation without having access to the training data or requiring the model to be retrained. In empirical experiments on three attributes sensitive to political bias (gender, location, and topic), our methods reduced bias according to both our metrics and human evaluation, while maintaining readability and semantic coherence.

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  1. BharatBBQ: A Multilingual Bias Benchmark for Question Answering in the Indian Context

    cs.CL 2025-08 conditional novelty 6.0 of 10

    BharatBBQ measures social bias in question-answering models across eight languages and finds that Indian-language examples often elicit more stereotyped answers than English ones.

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