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Machine Learning-Assisted Unfolding for Neutrino Cross-section Measurements with the OmniFold Technique

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arxiv 2504.06857 v2 pith:2VA23XJL submitted 2025-04-09 physics.data-an hep-exhep-ph

classification physics.data-anhep-exhep-ph
keywords cross-sectionunfoldingneutrinoomnifolddatasetdetectormachinemeasurement
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The choice of unfolding method for a cross-section measurement is tightly coupled to the model dependence of the efficiency correction and the overall impact of cross-section modeling uncertainties in the analysis. A key issue is the dimensionality used in unfolding, as the kinematics of all outgoing particles in an event typically affect the reconstruction performance in a neutrino detector. OmniFold is an unfolding method that iteratively reweights a simulated dataset, using machine learning to utilize arbitrarily high-dimensional information, that has previously been applied to proton-proton and proton-electron datasets. This paper demonstrates OmniFold's application to a neutrino cross-section measurement for the first time using a public T2K near detector simulated dataset, comparing its performance with traditional approaches using a mock data study.

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  1. Analysis-ready Generative Unfolding

    hep-ph 2025-09 conditional novelty 6.0 of 10

    Generative unfolding is extended to handle backgrounds, acceptance, and efficiency effects in an unbinned, iterative pipeline, demonstrated at percent-level accuracy on Gaussian and Z+jets simulations.

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