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arXiv · 2606.20923

Event-Level QCD Inference Framework for Quark-Gluon Imaging

Abstract

We introduce and demonstrate an event-level analysis framework for quark-gluon imaging. For a first application we use it for the inference of parton distribution functions from synthetic deep inelastic scattering data. This framework removes the need for unfolding of detector effects and the binning of events, and therefore eliminates two key sources of information loss. We contrast this event-level framework with the traditional histogram approach by performing a closure test for parton distribution functions from event data obtained from a known ground truth. In this study we assume a perfect detector, which makes unfolding straightforward. The elimination of binning in the event-level framework is demonstrated to have important benefits over the traditional histogram approach, and performs better in the closure test, particularly for a smaller number of events. For example, defining a mean-squared error distance metric, we find that the event-level framework performs around $35\%$ better than the traditional approach for a moderate number of events. The benefits of an event-level framework should increase for inference associated with 3D quark-gluon imaging, because these differential cross sections are of higher dimension and the comparative number of measured events is significantly reduced.

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Patrick Barry, Pi-Yueh Chuang, Ian Cloët, Emil Constantinescu, Arkaprabha Ganguli, Chao Peng. 2026-06-18. Event-Level QCD Inference Framework for Quark-Gluon Imaging. https://arxiv.org/abs/2606.20923

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