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Beyond CCSD(T) accuracy at lower scaling with auxiliary field quantum Monte Carlo
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abstract
We introduce a black-box auxiliary field quantum Monte Carlo (AFQMC) approach to perform highly accurate electronic structure calculations using configuration interaction singles and doubles (CISD) trial states. This method consistently provides more accurate energy estimates than coupled cluster singles and doubles with perturbative triples (CCSD(T)), often regarded as the gold standard in quantum chemistry. This level of precision is achieved at a lower asymptotic computational cost, scaling as $O(N^6)$ compared to the $O(N^7)$ scaling of CCSD(T). We provide numerical evidence supporting these findings through results for challenging main group and transition metal-containing molecules.
Forward citations
Cited by 2 Pith papers
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Self-Refinement of Auxiliary-Field Quantum Monte Carlo via Non-Orthogonal Configuration Interaction
AFQMC/NOCI self-refinement selects determinants from the AFQMC random walk to build compact multi-determinant trial states, achieving chemical accuracy for weakly correlated molecules.
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Auxiliary-field quantum Monte Carlo method with seniority-zero trial wave function
DOCI-based trial wave functions in ph-AFQMC match expensive CAS-based trials for single-bond breaking but underperform for strongly correlated systems.
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