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Mitigating the fermion sign problem by automatic differentiation

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arxiv 2010.01141 v3 pith:GF2PX6ZQ submitted 2020-10-02 cond-mat.str-el cond-mat.stat-mechcond-mat.supr-conhep-latphysics.comp-ph

Mitigating the fermion sign problem by automatic differentiation

classification cond-mat.str-el cond-mat.stat-mechcond-mat.supr-conhep-latphysics.comp-ph
keywords adsosignproblemquantumautomaticframeworkmethodmodel
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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As an intrinsically unbiased method, the quantum Monte Carlo (QMC) method is of unique importance in simulating interacting quantum systems. Although the QMC method often suffers from the notorious sign problem, the sign problem of quantum models may be mitigated by finding better choices of the simulation scheme. However, a general framework for identifying optimal QMC schemes has been lacking. Here, we propose a general framework using automatic differentiation to automatically search for the best QMC scheme within a given ansatz of the Hubbard-Stratonovich transformation, which we call "automatic differentiable sign optimization" (ADSO). We apply the ADSO framework to the honeycomb lattice Hubbard model with Rashba spin-orbit coupling and demonstrate that ADSO is remarkably effective in mitigating and even solving its sign problem. Specifically, ADSO finds a sign-free point in the model which was previously thought to be sign-problematic. For the sign-free model discovered by ADSO, its ground state is shown by sign-free QMC simulations to possess spiral magnetic ordering; we also obtained the critical exponents characterizing the magnetic quantum phase transition.

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  1. Boosting quantum Monte Carlo and alleviating sign problem by Gutzwiller projection

    cond-mat.str-el 2023-03 unverdicted novelty 6.0

    Gutzwiller projection QMC combines projective determinant QMC with a minimum-energy Gutzwiller variational trial wavefunction to speed convergence and alleviate the sign problem in fermionic simulations.