Preliminary suggestions for rigorous GPAI model evaluations
Expert InsightsPublished May 1, 2025
Expert InsightsPublished May 1, 2025
This document presents a preliminary compilation of general-purpose AI (GPAI) evaluation practices that may promote internal validity, external validity and reproducibility. It includes suggestions for human uplift studies and benchmark evaluations, as well as cross-cutting suggestions that may apply to many different evaluation types. Suggestions are organised across four stages in the evaluation life cycle: design, implementation, execution and documentation. Drawing from established practices in machine learning, statistics, psychology, economics, biology and other fields recognised to have important lessons for AI evaluation, these suggestions seek to contribute to the conversation on the nascent and evolving field of the science of GPAI evaluations. The intended audience of this document includes providers of GPAI models presenting systemic risk (GPAISR), for whom the EU AI Act lays out specific evaluation requirements; third-party evaluators; policymakers assessing the rigour of evaluations; and academic researchers developing or conducting GPAI evaluations.
This work was sponsored by Chris Anderson and Jacqueline Novogratz, High Tide Foundation, Jaan Tallinn, Open Philanthropy, Sea Grape Foundation, and Valhalla Foundation. This work was conducted by the Science and Emerging Technology Program within RAND Europe and the Technology and Security Policy Center within RAND Global and Emerging Risks.
This publication is part of the RAND expert insights series. The expert insights series presents perspectives on timely policy issues.
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