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cs.CY2026

Mapping U.S. Federal AI Governance Against Sector Vulnerability

Ho Ting Hung, Angelica Chowdhury, James Teague +5

Artificial intelligence (AI) poses different levels of risk across sectors, but are these differences reflected in U.S. federal AI governance? To help answer this question, we asse…

cs.CY2026

Prioritization of Risks from Artificial Intelligence: A Delphi Study of 272 International Experts

Alexander K. Saeri, Jess Graham, Michael Noetel +185

Artificial intelligence poses many risks, ranging from familiar present-day harms to unprecedented and potentially catastrophic ones. Effective risk management requires prioritizat…

cs.CY2026

AI Incident Monitoring through a Public Health Lens

Sophia Abraham, Taiye Chen, Cyril Chhun +5

Artificial intelligence systems are now deployed at scale across sectors, accompanied by a growing number of real-world incidents ranging from misinformation and cybercrime to auto…

cs.CY2026

Scheming in the wild: detecting real-world AI scheming incidents with open-source intelligence

Tommy Shaffer Shane, Simon Mylius, Hamish Hobbs

Scheming, the covert pursuit of misaligned goals by AI systems, represents a potentially catastrophic risk, yet scheming research suffers from significant limitations. In particula…

cs.CY2026

A pragmatic classification framework for AI incident monitoring

Isaak Mengesha, Branwen Owen, Charlie Collins +4

Incident monitoring can drive safety improvements in high-reliability industries and population-scale technologies, but remains underdeveloped in AI governance. Public databases ca…

cs.CY2025

Systematic Hazard Analysis for Frontier AI using STPA

Simon Mylius

All of the frontier AI companies have published safety frameworks where they define capability thresholds and risk mitigations that determine how they will safely develop and deplo…