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research article

Multigrid Methods Combined With Low-Rank Approximation For Tensor-Structured Markov Chains

Bolten, Matthias
•
Kahl, Karsten
•
Kressner, Daniel  
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January 1, 2018
Electronic Transactions On Numerical Analysis

Markov chains that describe interacting subsystems suffer from state space explosion but lead to highly structured matrices. In this work, we propose a novel tensor-based algorithm to address such tensor-structured Markov chains. Our algorithm combines a tensorized multigrid method with AMEn, an optimization-based low-rank tensor solver, for addressing coarse grid problems. Numerical experiments demonstrate that this combination overcomes the limitations incurred when using each of the two methods individually. As a consequence, Markov chain models of unprecedented size from a variety of applications can be addressed.

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Type
research article
DOI
10.1553/etna_vol48s348
Web of Science ID

WOS:000459295400018

Author(s)
Bolten, Matthias
Kahl, Karsten
Kressner, Daniel  
Macedo, Francisco  
Sokolovic, Sonja
Date Issued

2018-01-01

Published in
Electronic Transactions On Numerical Analysis
Volume

48

Start page

348

End page

361

Subjects

Mathematics, Applied

•

Mathematics

•

multigrid method

•

svd

•

tensor train format

•

markov chains

•

singular linear system

•

alternating optimization

•

linear-systems

•

product

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
ANCHP  
Available on Infoscience
June 18, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/157402
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