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Katharina Reinecke

5 accepted papers

2025

Biased LLMs can Influence Political Decision-Making

ACL 2025long

As modern large language models (LLMs) become integral to everyday tasks, concerns about their inherent biases and their potential impact on human decision-making have emerged. While bias in models are well-documented, less is known about how these biases influence human decisions. This paper presen…

Cited by 0SourcePDFScholar
2025

NormAd: A Framework for Measuring the Cultural Adaptability of Large Language Models

NAACL 2025long

To be effectively and safely deployed to global user populations, large language models (LLMs) may need to adapt outputs to user values and cultures, not just know about them. We introduce NormAd, an evaluation framework to assess LLMs’ cultural adaptability, specifically measuring their ability to…

2023

NLPositionality: Characterizing Design Biases of Datasets and Models

ACL 2023long

Design biases in NLP systems, such as performance differences for different populations, often stem from their creator’s positionality, i.e., views and lived experiences shaped by identity and background. Despite the prevalence and risks of design biases, they are hard to quantify because researcher…

2022

Gendered Mental Health Stigma in Masked Language Models

EMNLP 2022main

Mental health stigma prevents many individuals from receiving the appropriate care, and social psychology studies have shown that mental health tends to be overlooked in men. In this work, we investigate gendered mental health stigma in masked language models. In doing so, we operationalize mental h…

Cited by 9SourcePDFScholar
2022

Generating Scientific Definitions with Controllable Complexity

ACL 2022long

Unfamiliar terminology and complex language can present barriers to understanding science. Natural language processing stands to help address these issues by automatically defining unfamiliar terms. We introduce a new task and dataset for defining scientific terms and controlling the complexity of g…