An unconventional robust integrator for dynamical low-rank approximation
We propose and analyse a numerical integrator that computes a low-rank approximation to large time-dependent matrices that are either given explicitly via their increments or are the unknown solution to a matrix differential equation. Furthermore, the integrator is extended to the approximation of t...
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Published in | BIT Vol. 62; no. 1; pp. 23 - 44 |
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Main Authors | , |
Format | Journal Article |
Language | English |
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Dordrecht
Springer Netherlands
01.03.2022
Springer Nature B.V |
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ISSN | 0006-3835 1572-9125 |
DOI | 10.1007/s10543-021-00873-0 |
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Abstract | We propose and analyse a numerical integrator that computes a low-rank approximation to large time-dependent matrices that are either given explicitly via their increments or are the unknown solution to a matrix differential equation. Furthermore, the integrator is extended to the approximation of time-dependent tensors by Tucker tensors of fixed multilinear rank. The proposed low-rank integrator is different from the known projector-splitting integrator for dynamical low-rank approximation, but it retains the important robustness to small singular values that has so far been known only for the projector-splitting integrator. The new integrator also offers some potential advantages over the projector-splitting integrator: It avoids the backward time integration substep of the projector-splitting integrator, which is a potentially unstable substep for dissipative problems. It offers more parallelism, and it preserves symmetry or anti-symmetry of the matrix or tensor when the differential equation does. Numerical experiments illustrate the behaviour of the proposed integrator. |
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AbstractList | We propose and analyse a numerical integrator that computes a low-rank approximation to large time-dependent matrices that are either given explicitly via their increments or are the unknown solution to a matrix differential equation. Furthermore, the integrator is extended to the approximation of time-dependent tensors by Tucker tensors of fixed multilinear rank. The proposed low-rank integrator is different from the known projector-splitting integrator for dynamical low-rank approximation, but it retains the important robustness to small singular values that has so far been known only for the projector-splitting integrator. The new integrator also offers some potential advantages over the projector-splitting integrator: It avoids the backward time integration substep of the projector-splitting integrator, which is a potentially unstable substep for dissipative problems. It offers more parallelism, and it preserves symmetry or anti-symmetry of the matrix or tensor when the differential equation does. Numerical experiments illustrate the behaviour of the proposed integrator. |
Author | Ceruti, Gianluca Lubich, Christian |
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Cites_doi | 10.1137/17M1146889 10.1007/s10543-019-00799-8 10.1103/PhysRevB.94.165116 10.1007/s004600050342 10.1016/S0370-1573(99)00047-2 10.1093/amrx/abv006 10.1137/140976546 10.1137/S0895479896305696 10.1137/09076578X 10.1090/mcom/3626 10.1137/20M1321838 10.1137/050639703 10.1137/15M1026791 10.1007/s10543-013-0454-0 10.1137/07070111X |
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Copyright | The Author(s) 2021 The Author(s) 2021. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. |
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References | Lubich (CR15) 2015; 2015 Lubich, Vandereycken, Walach (CR18) 2018; 56 CR4 Kieri, Lubich, Walach (CR11) 2016; 54 Ceruti, Lubich, Walach (CR6) 2021; 59 Lubich, Oseledets (CR16) 2014; 54 Lubich, Oseledets, Vandereycken (CR17) 2015; 53 CR19 CR9 Koch, Lubich (CR12) 2007; 29 Beck, Meyer (CR3) 1997; 42 Bachmayr, Eisenmann, Kieri, Uschmajew (CR1) 2021 De Lathauwer, De Moor, Vandewalle (CR7) 2000; 21 CR10 Kolda, Bader (CR14) 2009; 51 Koch, Lubich (CR13) 2010; 31 Haegeman, Lubich, Oseledets, Vandereycken, Verstraete (CR8) 2016; 94 Ceruti, Lubich (CR5) 2020; 60 Beck, Jäckle, Worth, Meyer (CR2) 2000; 324 J Haegeman (873_CR8) 2016; 94 873_CR10 O Koch (873_CR13) 2010; 31 873_CR4 G Ceruti (873_CR5) 2020; 60 MH Beck (873_CR3) 1997; 42 873_CR9 C Lubich (873_CR17) 2015; 53 G Ceruti (873_CR6) 2021; 59 C Lubich (873_CR16) 2014; 54 M Bachmayr (873_CR1) 2021 C Lubich (873_CR18) 2018; 56 C Lubich (873_CR15) 2015; 2015 873_CR19 E Kieri (873_CR11) 2016; 54 L De Lathauwer (873_CR7) 2000; 21 MH Beck (873_CR2) 2000; 324 O Koch (873_CR12) 2007; 29 TG Kolda (873_CR14) 2009; 51 |
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SubjectTerms | Antisymmetry Approximation Computational Mathematics and Numerical Analysis Differential equations Mathematical analysis Mathematics Mathematics and Statistics Matrices (mathematics) Numeric Computing Robustness (mathematics) Splitting Symmetry Tensors Time dependence Time integration |
Title | An unconventional robust integrator for dynamical low-rank approximation |
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