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      Variational Fast Forwarding for Quantum Simulation Beyond the Coherence Time

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          Abstract

          Trotterization-based, iterative approaches to quantum simulation are restricted to simulation times less than the coherence time of the quantum computer, which limits their utility in the near term. Here, we present a hybrid quantum-classical algorithm, called Variational Fast Forwarding (VFF), for decreasing the quantum circuit depth of quantum simulations. VFF seeks an approximate diagonalization of a short-time simulation to enable longer-time simulations using a constant number of gates. Our error analysis provides two results: (1) the simulation error of VFF scales at worst linearly in the fast-forwarded simulation time, and (2) our cost function's operational meaning as an upper bound on average-case simulation error provides a natural termination condition for VFF. We implement VFF for the Hubbard, Ising, and Heisenberg models on a simulator. Finally, we implement VFF on Rigetti's quantum computer to show simulation beyond the coherence time.

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          Most cited references20

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          Universal Quantum Simulators

          Lloyd (1996)
          Feynman's 1982 conjecture, that quantum computers can be programmed to simulate any local quantum system, is shown to be correct.
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            Efficient Variational Quantum Simulator Incorporating Active Error Minimization

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              Self-verifying variational quantum simulation of lattice models

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                Author and article information

                Journal
                09 October 2019
                Article
                1910.04292
                636cd1fb-a2f8-49f8-ad69-64163a93434f

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

                History
                Custom metadata
                LA-UR-19-29521
                10 + 3 pages, 7 figures
                quant-ph

                Quantum physics & Field theory
                Quantum physics & Field theory

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