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cs.CL2026

BEADs: Bias Evaluation Across Domains

Shaina Raza, Mizanur Rahman, Michael R. Zhang

Recent advances in large language models (LLMs) have substantially improved natural language processing (NLP) applications. However, these models often inherit and amplify biases p…

cs.CL2025

Developing Safe and Responsible Large Language Model : Can We Balance Bias Reduction and Language Understanding in Large Language Models?

Shaina Raza, Oluwanifemi Bamgbose, Shardul Ghuge +3

Large Language Models (LLMs) have advanced various Natural Language Processing (NLP) tasks, such as text generation and translation, among others. However, these models often gener…

cs.CL2024

Fact or Fiction? Can LLMs be Reliable Annotators for Political Truths?

Veronica Chatrath, Marcelo Lotif, Shaina Raza

Political misinformation poses significant challenges to democratic processes, shaping public opinion and trust in media. Manual fact-checking methods face issues of scalability an…

cs.CL2024

MBIAS: Mitigating Bias in Large Language Models While Retaining Context

Shaina Raza, Ananya Raval, Veronica Chatrath

The deployment of Large Language Models (LLMs) in diverse applications necessitates an assurance of safety without compromising the contextual integrity of the generated content. T…

cs.CL2024

FakeWatch: A Framework for Detecting Fake News to Ensure Credible Elections

Shaina Raza, Tahniat Khan, Veronica Chatrath +3

In today's technologically driven world, the rapid spread of fake news, particularly during critical events like elections, poses a growing threat to the integrity of information.…

cs.CL2024

Unlocking Bias Detection: Leveraging Transformer-Based Models for Content Analysis

Shaina Raza, Oluwanifemi Bamgbose, Veronica Chatrath +3

Bias detection in text is crucial for combating the spread of negative stereotypes, misinformation, and biased decision-making. Traditional language models frequently face challeng…