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Report of the Snowmass 2013 Computing Frontier working group on Lattice Field Theory -- Lattice field theory for the energy and intensity frontiers: Scientific goals and computing needs

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abstract

This is the report of the Computing Frontier working group on Lattice Field Theory prepared for the proceedings of the 2013 Community Summer Study ("Snowmass"). We present the future computing needs and plans of the U.S. lattice gauge theory community and argue that continued support of the U.S. (and worldwide) lattice-QCD effort is essential to fully capitalize on the enormous investment in the high-energy physics experimental program. We first summarize the dramatic progress of numerical lattice-QCD simulations in the past decade, with some emphasis on calculations carried out under the auspices of the U.S. Lattice-QCD Collaboration, and describe a broad program of lattice-QCD calculations that will be relevant for future experiments at the intensity and energy frontiers. We then present details of the computational hardware and software resources needed to undertake these calculations.

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hep-lat 1

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2024 1

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Spectroscopy using tensor renormalization group method

hep-lat · 2024-11-29 · conditional · novelty 6.0

A spectroscopy scheme combining transfer matrices, HOTRG coarse graining, impurity tensor networks, and Luescher's formula is demonstrated on the (1+1)d Ising model, reproducing low-lying energy gaps and the elastic phase shift.

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  • Spectroscopy using tensor renormalization group method hep-lat · 2024-11-29 · conditional · none · ref 1 · internal anchor

    A spectroscopy scheme combining transfer matrices, HOTRG coarse graining, impurity tensor networks, and Luescher's formula is demonstrated on the (1+1)d Ising model, reproducing low-lying energy gaps and the elastic phase shift.