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arxiv: 1303.7204 · v2 · pith:4UTTARB2new · submitted 2013-03-28 · ✦ hep-lat · cond-mat.stat-mech· cond-mat.str-el· nucl-th· physics.comp-ph

Monte Carlo simulations on the Lefschetz thimble: taming the sign problem

classification ✦ hep-lat cond-mat.stat-mechcond-mat.str-elnucl-thphysics.comp-ph
keywords thimblecarlolefschetzmonteproblemsigncalculationsfield
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We present the first practical Monte Carlo calculations of the recently proposed Lefschetz thimble formulation of quantum field theories. Our results provide strong evidence that the numerical sign problem that afflicts Monte Carlo calculations of models with complex actions can be softened significantly by changing the domain of integration to the Lefschetz thimble or approximations thereof. We study the interacting complex scalar field theory (relativistic Bose gas) in lattices of size up to 8^4 using a computationally inexpensive approximation of the Lefschetz thimble. Our results are in excellent agreement with known results. We show that - at least in the case of the relativistic Bose gas - the thimble can be systematically approached and the remaining residual phase leads to a much more tractable sign problem (if at all) than the original formulation. This is especially encouraging in view of the wide applicability - in principle - of our method to quantum field theories with a sign problem. We believe that this opens up new possibilities for accurate Monte Carlo calculations in strongly interacting systems of sizes much larger that previously possible.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

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    Embedding generalized thimble HMC into worldvolume HMC improves ergodicity and phase-space exploration for sign-problem mitigation in 2D doped Hubbard model simulations, enabling larger lattices and controlled extrapolations.

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  3. Applying the Worldvolume Hybrid Monte Carlo method to the Hubbard model away from half filling

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