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Quantum computing for lattice supersymmetry

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arxiv 2112.07651 v1 pith:M4KISSTD submitted 2021-12-14 hep-lat

classification hep-lat
keywords quantumcomputinglatticesupersymmetrybreakingdynamicsreal-timesimple
verification ladder T0 review T1 audit T2 compute T3 formal
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Quantum computing promises the possibility of studying the real-time dynamics of nonperturbative quantum field theories while avoiding the sign problem that obstructs conventional lattice approaches. Current and near-future quantum devices are severely limited by noise, making investigations of simple low-dimensional lattice systems ideal testbeds for algorithm development. Considering simple supersymmetric systems, such as supersymmetric quantum mechanics with different superpotentials, allows for the analysis of phenomena like dynamical supersymmetry breaking. We present ongoing work applying quantum computing techniques to study such theories, targeting real-time dynamics and supersymmetry breaking effects.

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  1. Towards quantum simulation of lower-dimensional supersymmetric lattice models

    hep-lat 2024-11 conditional novelty 5.0 of 10

    VQE simulations of 0+1 dimensional supersymmetric quantum mechanics show that shot noise can mimic spontaneous supersymmetry breaking, and that a general-purpose ansatz fails for larger bosonic truncations.

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