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Hate Personified: Investigating the role of LLMs in content moderation

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arxiv 2410.02657 v1 pith:OQLMZ5NM submitted 2024-10-03 cs.CL cs.CY

classification cs.CLcs.CY
keywords llmshateabilityattributesgeographicalgroupsleadsnumerical
verification ladder T0 review T1 audit T2 compute T3 formal
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For subjective tasks such as hate detection, where people perceive hate differently, the Large Language Model's (LLM) ability to represent diverse groups is unclear. By including additional context in prompts, we comprehensively analyze LLM's sensitivity to geographical priming, persona attributes, and numerical information to assess how well the needs of various groups are reflected. Our findings on two LLMs, five languages, and six datasets reveal that mimicking persona-based attributes leads to annotation variability. Meanwhile, incorporating geographical signals leads to better regional alignment. We also find that the LLMs are sensitive to numerical anchors, indicating the ability to leverage community-based flagging efforts and exposure to adversaries. Our work provides preliminary guidelines and highlights the nuances of applying LLMs in culturally sensitive cases.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. SocialMaze: A Benchmark for Evaluating Social Reasoning in Large Language Models

    cs.CL 2025-05 conditional novelty 6.0 of 10

    SocialMaze is a six-task benchmark that claims to evaluate LLM social reasoning along deep reasoning, dynamic interaction, and information uncertainty dimensions.

  2. 'Teens Need to Be Educated on the Danger': Digital Access, Online Risks, and Safety Practices Among Nigerian Adolescents

    cs.HC 2025-07 conditional novelty 5.0 of 10

    Nigerian adolescents in the FCT report moderate digital access, frequent reliance on blocking tools, parents as primary support, and a strong demand for better online safety education.

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