FAIR AI models in high energy physics

Author:

Duarte JavierORCID,Li HaoyangORCID,Roy AvikORCID,Zhu Ruike,Huerta E AORCID,Diaz DanielORCID,Harris PhilipORCID,Kansal RaghavORCID,Katz Daniel SORCID,Kavoori Ishaan H,Kindratenko Volodymyr VORCID,Mokhtar FaroukORCID,Neubauer Mark SORCID,Eon Park SangORCID,Quinnan MelissaORCID,Rusack RogerORCID,Zhao Zhizhen

Abstract

Abstract The findable, accessible, interoperable, and reusable (FAIR) data principles provide a framework for examining, evaluating, and improving how data is shared to facilitate scientific discovery. Generalizing these principles to research software and other digital products is an active area of research. Machine learning models—algorithms that have been trained on data without being explicitly programmed—and more generally, artificial intelligence (AI) models, are an important target for this because of the ever-increasing pace with which AI is transforming scientific domains, such as experimental high energy physics (HEP). In this paper, we propose a practical definition of FAIR principles for AI models in HEP and describe a template for the application of these principles. We demonstrate the template’s use with an example AI model applied to HEP, in which a graph neural network is used to identify Higgs bosons decaying to two bottom quarks. We report on the robustness of this FAIR AI model, its portability across hardware architectures and software frameworks, and its interpretability.

Funder

Argonne National Laboratory

Office of Science

National Science Foundation

Publisher

IOP Publishing

Subject

Artificial Intelligence,Human-Computer Interaction,Software

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