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  • 2005-2009  (3)
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  • 2005-2009  (3)
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  • 1
    Online Resource
    Online Resource
    American Physical Society (APS) ; 2005
    In:  Physical Review B Vol. 72, No. 7 ( 2005-8-23)
    In: Physical Review B, American Physical Society (APS), Vol. 72, No. 7 ( 2005-8-23)
    Type of Medium: Online Resource
    ISSN: 1098-0121 , 1550-235X
    RVK:
    Language: English
    Publisher: American Physical Society (APS)
    Publication Date: 2005
    detail.hit.zdb_id: 1473011-X
    detail.hit.zdb_id: 2844160-6
    detail.hit.zdb_id: 209770-9
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  • 2
    Online Resource
    Online Resource
    Elsevier BV ; 2009
    In:  Journal of Computational Physics Vol. 228, No. 9 ( 2009-5), p. 3390-3404
    In: Journal of Computational Physics, Elsevier BV, Vol. 228, No. 9 ( 2009-5), p. 3390-3404
    Type of Medium: Online Resource
    ISSN: 0021-9991
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2009
    detail.hit.zdb_id: 160508-2
    detail.hit.zdb_id: 1469164-4
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  • 3
    Online Resource
    Online Resource
    Walter de Gruyter GmbH ; 2009
    In:  Acta Physica Slovaca. Reviews and Tutorials Vol. 59, No. 2 ( 2009-04-1)
    In: Acta Physica Slovaca. Reviews and Tutorials, Walter de Gruyter GmbH, Vol. 59, No. 2 ( 2009-04-1)
    Abstract: Quantum Monte Carlo (QMC) is an advanced simulation methodology for studies of manybody quantum systems. The QMC approaches combine analytical insights with stochastic computational techniques for efficient solution of several classes of important many-body problems such as the stationary Schrödinger equation. QMC methods of various flavors have been applied to a great variety of systems spanning continuous and lattice quantum models, molecular and condensed systems, BEC-BCS ultracold condensates, nuclei, etc. In this review, we focus on the electronic structure QMC, i.e., methods relevant for systems described by the electron-ion Hamiltonians. Some of the key QMC achievements include direct treatment of electron correlation, accuracy in predicting energy differences and favorable scaling in the system size. Calculations of atoms, molecules, clusters and solids have demonstrated QMC applicability to real systems with hundreds of electrons while providing 90-95% of the correlation energy and energy differences typically within a few percent of experiments. Advances in accuracy beyond these limits are hampered by the so-called fixed-node approximation which is used to circumvent the notorious fermion sign problem. Many-body nodes of fermion states and their properties have therefore become one of the important topics for further progress in predictive power and efficiency of QMC calculations. Some of our recent results on the wave function nodes and related nodal domain topologies will be briefly reviewed. This includes analysis of few-electron systems and descriptions of exact and approximate nodes using transformations and projections of the highly-dimensional nodal hypersurfaces into the 3D space. Studies of fermion nodes offer new insights into topological properties of eigenstates such as explicit demonstrations that generic fermionic ground states exhibit the minimal number of two nodal domains. Recently proposed trial wave functions based on Pfaffians with pairing orbitals are presented and their nodal properties are tested in calculations of first row atoms and molecules. Finally, backflow "dressed" coordinates are introduced as another possibility for capturing correlation effects and for decreasing the fixed-node bias.
    Type of Medium: Online Resource
    ISSN: 1336-040X , 0323-0465
    Language: Unknown
    Publisher: Walter de Gruyter GmbH
    Publication Date: 2009
    detail.hit.zdb_id: 2028477-9
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