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Lattice QCD and the Computational Frontier

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arxiv 2204.00039 v1 pith:77DR7WM4 submitted 2022-03-31 hep-lat physics.comp-ph

Lattice QCD and the Computational Frontier

classification hep-lat physics.comp-ph
keywords challengeslatticetheoreticalexperimentalneededdecadeeffortphysics
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The search for new physics requires a joint experimental and theoretical effort. Lattice QCD is already an essential tool for obtaining precise model-free theoretical predictions of the hadronic processes underlying many key experimental searches, such as those involving heavy flavor physics, the anomalous magnetic moment of the muon, nucleon-neutrino scattering, and rare, second-order electroweak processes. As experimental measurements become more precise over the next decade, lattice QCD will play an increasing role in providing the needed matching theoretical precision. Achieving the needed precision requires simulations with lattices with substantially increased resolution. As we push to finer lattice spacing we encounter an array of new challenges. They include algorithmic and software-engineering challenges, challenges in computer technology and design, and challenges in maintaining the necessary human resources. In this white paper we describe those challenges and discuss ways they are being dealt with. Overcoming them is key to supporting the community effort required to deliver the needed theoretical support for experiments in the coming decade.

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