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20242026
most citedSimple Prompt Injection Attacks Can Leak Personal Data Observed by LLM Agents During Task Execution

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cs.CL2026

AI Coding Agents in Social Science: Methodologically Diverse, Empirically Consistent, Interpretively Vulnerable

Meysam Alizadeh, Fabrizio Gilardi, Mohsen Mosleh +1

The deployment of LLM-based agents in scientific analysis raises opposing concerns: that agents may reduce methodological diversity, or that they may amplify the analytic flexibili…

cs.CL2026

AI Coding Agents Can Reproduce Social Science Findings

Meysam Alizadeh, Mohsen Mosleh, Fabrizio Gilardi +2

Recent anecdotal evidence suggests that AI coding agents can reproduce published findings when provided with original data and code; yet systematic evaluation across social science…

cs.CL2026

Unsupervised Elicitation of Moral Values from Language Models

Meysam Alizadeh, Fabrizio Gilardi, Zeynab Samei

As AI systems become pervasive, grounding their behavior in human values is critical. Prior work suggests that language models (LMs) exhibit limited inherent moral reasoning, leadi…

cs.CL2025

Web-Browsing LLMs Can Access Social Media Profiles and Infer User Demographics

Meysam Alizadeh, Fabrizio Gilardi, Zeynab Samei +1

Large language models (LLMs) have traditionally relied on static training data, limiting their knowledge to fixed snapshots. Recent advancements, however, have equipped LLMs with w…

cs.CL2025

Societal AI Research Has Become Less Interdisciplinary

Dror Kris Markus, Fabrizio Gilardi, Daria Stetsenko

As artificial intelligence (AI) systems become deeply embedded in everyday life, calls to align AI development with ethical and societal values have intensified. Interdisciplinary…

cs.CL2023

Open-Source LLMs for Text Annotation: A Practical Guide for Model Setting and Fine-Tuning

Meysam Alizadeh, Maël Kubli, Zeynab Samei +5

This paper studies the performance of open-source Large Language Models (LLMs) in text classification tasks typical for political science research. By examining tasks like stance,…