Lanczos subspace filter diagonalization: Homogeneous recursive filtering and a low-storage method for the calculation of matrix elements
| Data(s) |
01/01/2001
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| Resumo |
We develop a new iterative filter diagonalization (FD) scheme based on Lanczos subspaces and demonstrate its application to the calculation of bound-state and resonance eigenvalues. The new scheme combines the Lanczos three-term vector recursion for the generation of a tridiagonal representation of the Hamiltonian with a three-term scalar recursion to generate filtered states within the Lanczos representation. Eigenstates in the energy windows of interest can then be obtained by solving a small generalized eigenvalue problem in the subspace spanned by the filtered states. The scalar filtering recursion is based on the homogeneous eigenvalue equation of the tridiagonal representation of the Hamiltonian, and is simpler and more efficient than our previous quasi-minimum-residual filter diagonalization (QMRFD) scheme (H. G. Yu and S. C. Smith, Chem. Phys. Lett., 1998, 283, 69), which was based on solving for the action of the Green operator via an inhomogeneous equation. A low-storage method for the construction of Hamiltonian and overlap matrix elements in the filtered-basis representation is devised, in which contributions to the matrix elements are computed simultaneously as the recursion proceeds, allowing coefficients of the filtered states to be discarded once their contribution has been evaluated. Application to the HO2 system shows that the new scheme is highly efficient and can generate eigenvalues with the same numerical accuracy as the basic Lanczos algorithm. |
| Identificador | |
| Idioma(s) |
eng |
| Publicador |
Royal Society of Chemistry |
| Palavras-Chave | #Chemistry, Physical #Physics, Atomic, Molecular & Chemical #Resonance Energies #Bound-states #Unimolecular Dissociation #Stabilization Method #Reactive Scattering #H+o-2 Scattering #Ho2 #Algorithm #Eigenfunctions #Expansion #C1 #250600 Theoretical and Computational Chemistry #780103 Chemical sciences |
| Tipo |
Journal Article |