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What can we learn about QCD and collider physics from N=4 super Yang-Mills?

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arxiv 2006.00361 v2 pith:LFVXJMB6 submitted 2020-05-30 hep-th hep-exhep-ph

classification hep-thhep-exhep-ph
keywords mathcaladvancescalculationsfeynmanlearnmethodsnovelphysics
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Tremendous ongoing theory efforts are dedicated to developing new methods for QCD calculations. Qualitative rather than incremental advances are needed to fully exploit data still to be collected at the LHC. The maximally supersymmetric Yang-Mills theory (${\mathcal N}=4$ sYM) shares with QCD the gluon sector, which contains the most complicated Feynman graphs, but at the same time has many special properties, and is believed to be solvable exactly. It is natural to ask what we can learn from advances in ${\mathcal N}=4$ sYM for addressing difficult problems in QCD. With this in mind, we review here several remarkable developments and highlights of recent results in ${\mathcal N}=4$ sYM. This includes all-order results for certain scattering amplitudes, novel symmetries, surprising geometrical structures of loop integrands, novel tools for the calculation of Feynman integrals, and bootstrap methods. While several insights and tools have already been carried over to QCD and have contributed to state-of-the-art calculations for LHC physics, we argue that there is a host of further fascinating ideas waiting to be explored.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. QCD Scattering Amplitudes and Prescriptive Unitarity

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    Boundary structure of negative geometries, combined with Landau analysis, determines physical singularities and yields symbol alphabets for six-point two-loop and five-point three-loop ladder integrals in planar N=4 s...

  3. Graph Neural Networks for the Graphical Bootstrap

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    GNNs and graph transformers classify vanishing coefficients on millions of N=4 SYM f-graphs, generalizing to larger n with 99.996% ROC AUC and pruning up to 85.5% of redundant d-graphs.

  4. Energy Correlators: A Journey From Theory to Experiment

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    A review of energy correlators and their role in QCD, collider experiments, and formal quantum field theory.

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