C. Barry
University of Liverpool
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by C. Barry.
arXiv: High Energy Physics - Phenomenology | 2015
C. Andreopoulos; C. Barry; Steve Dytman; H. R. Gallagher; T. Golan; R. Hatcher; G. N. Perdue; Julia Yarba
GENIE is a suite of products for the experimental neutrino physics community. This suite includes i) a modern software framework for implementing neutrino event generators, a state-of-the-art comprehensive physics model and tools to support neutrino interaction simulation for realistic experimental setups (the Generator product), ii) extensive archives of neutrino, charged-lepton and hadron scattering data and software to produce a comprehensive set of data/MC comparisons (the Comparisons product), and iii) a generator tuning framework and fitting applications (the Tuning product). This book provides the definite guide for the GENIE Generator: It presents the software architecture and a detailed description of its physics model and official tunes. In addition, it provides a rich set of data/MC comparisons that characterise the physics performance of GENIE. Detailed step-by-step instructions on how to install and configure the Generator, run its applications and analyze its outputs are also included.
Journal of Physics: Conference Series | 2017
C. Andreopoulos; C. Barry; F. Bench; A. Chappell; T. Dealtry; S. Dennis; L. Escudero; R. Jones; N. Grant; M. Roda; D. Sgalaberna; R. Shah
Anomalies observed by different experiments, the most significant ones being the ~3.8 sigma νe appearance in a ~50 MeV νµ beam from muon decay at rest observed by the LSND experiment and the ~3.8 sigma νe and appearance in a ~1 GeV neutrino beam from pion decay in flight observed by MiniBooNE, suggest the existence of sterile neutrinos. The Short Baseline Neutrino (SBN) program at Fermilab aims to perform a sensitive search for sterile neutrinos by performing analyses of νe appearance and νµ disappearance employing three Liquid Argon Time Projection Chambers (LAr-TPCs) at different baselines. The VALOR neutrino fitting group was established within the T2K experiment and has led numerous flagship T2K oscillation analyses, and provided sensitivity and detector optimisation studies for DUNE and Hyper-K. The neutrino oscillation framework developed by this group is able to perform fits of several samples and systematic parameters within different neutrino models and experiments. Thus, VALOR is an ideal environment for the neutrino oscillation fits using multiple LAr-TPC detectors with proper treatment of correlated systematic uncertainties necessary for the SBN analyses.
Archive | 2015
C. Andreopoulos; C. Barry; Steve Dytman; H. R. Gallagher; T. Golan; R. Hatcher; G. N. Perdue; Julia Yarba