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      A deep-learning based raw waveform region-of-interest finder for the liquid argon time projection chamber

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          Abstract

          The liquid argon time projection chamber (LArTPC) detector technology has an excellent capability to measure properties of low-energy neutrinos produced by the sun and supernovae and to look for exotic physics at very low energies. In order to achieve those physics goals, it is crucial to identify and reconstruct signals in the waveforms recorded on each TPC wire. In this paper, we report on a novel algorithm based on a one-dimensional convolutional neural network (CNN) to look for the region-of-interest (ROI) in raw waveforms. We test this algorithm using data from the ArgoNeuT experiment in conjunction with an improved noise mitigation procedure and a more realistic data-driven noise model for simulated events. This deep-learning ROI finder shows promising performance in extracting small signals and gives an efficiency approximately twice that of the traditional algorithm in the low energy region of ∼0.03–0.1 MeV. This method offers great potential to explore low-energy physics using LArTPCs.

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          Improved Search for Muon-Neutrino to Electron-Neutrino Oscillations in MINOS

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            Overview of the FLUKA code

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              From eV to EeV: Neutrino cross sections across energy scales

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                Author and article information

                Journal
                Journal of Instrumentation
                J. Inst.
                IOP Publishing
                1748-0221
                January 12 2022
                January 01 2022
                January 12 2022
                January 01 2022
                : 17
                : 01
                : P01018
                Article
                10.1088/1748-0221/17/01/P01018
                9e45b1b3-07e2-4836-8935-2b76ad8c5ad5
                © 2022

                https://iopscience.iop.org/page/copyright

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