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Unraveling Open Quantum Dynamics with Time-Dependent Variational Monte Carlo

Unraveling Open Quantum Dynamics with Time-Dependent Variational Monte Carlo

来源:Arxiv_logoArxiv
英文摘要

We introduce a method to simulate open quantum many-body dynamics by combining time-dependent variational Monte Carlo (tVMC) with quantum trajectory techniques. Our approach unravels the Lindblad master equation into an ensemble of stochastic Schrödinger equations for a variational ansatz, avoiding the exponential cost of density matrix evolution. The method is compatible with generic ansatzë, including expressive neural-network wavefunctions. We derive the nonlinear stochastic equations of motion for the variational parameters and employ suitable Stratonovich numerical solvers. To validate our approach, we simulate quenches in the locally dissipative long-range Ising model in a transverse field, accurately capturing non-equilibrium magnetization and spin squeezing dynamics relevant to trapped-ion and Rydberg atom experiments. The framework is computationally efficient, scalable on high-performance computing platforms, and can be readily integrated into existing tVMC implementations. This work enables large-scale simulations of complex, dissipative quantum systems in higher dimensions, with broad implications for quantum technology and fundamental science.

Christian Apostoli、Jacopo D'Alberto、Marco G. Genoni、Gianluca Bertaina、Davide E. Galli

物理学计算技术、计算机技术

Christian Apostoli,Jacopo D'Alberto,Marco G. Genoni,Gianluca Bertaina,Davide E. Galli.Unraveling Open Quantum Dynamics with Time-Dependent Variational Monte Carlo[EB/OL].(2025-06-30)[2025-07-21].https://arxiv.org/abs/2506.23928.点此复制

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