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      Benchmarking digital quantum simulations and optimization above hundreds of qubits using quantum critical dynamics

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          Abstract

          The real-time simulation of large many-body quantum systems is a formidable task, that may only be achievable with a genuine quantum computational platform. Currently, quantum hardware with a number of qubits sufficient to make classical emulation challenging is available. This condition is necessary for the pursuit of a so-called quantum advantage, but it also makes verifying the results very difficult. In this manuscript, we flip the perspective and utilize known theoretical results about many-body quantum critical dynamics to benchmark quantum hardware and various error mitigation techniques on up to 133 qubits. In particular, we benchmark against known universal scaling laws in the Hamiltonian simulation of a time-dependent transverse field Ising Hamiltonian. Incorporating only basic error mitigation and suppression methods, our study shows coherent control up to a two-qubit gate depth of 28, featuring a maximum of 1396 two-qubit gates, before noise becomes prevalent. These results are transferable to applications such as digitized quantum annealing and match the results of a 133-site optimization, where we identify an optimal working point in terms of both circuit depth and time step.

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          Author and article information

          Journal
          11 April 2024
          Article
          2404.08053
          67061f99-c31b-4659-83cb-3f3adeb4d0fa

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          10 pages, 2 pages appendix, 8 figures
          quant-ph cond-mat.stat-mech cond-mat.str-el

          Condensed matter,Quantum physics & Field theory
          Condensed matter, Quantum physics & Field theory

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