Tensor approximation of the self-diffusion matrix of tagged particle processes

The objective of this paper is to investigate a new numerical method for the approximation of the self-diffusion matrix of a tagged particle process defined on a grid. While standard numerical methods make use of long-time averages of empirical means of deviations of some stochastic processes, and a...

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Published inJournal of computational physics Vol. 480; p. 112017
Main Authors Dabaghi, Jad, Ehrlacher, Virginie, Strössner, Christoph
Format Journal Article
LanguageEnglish
Published Elsevier Inc 01.05.2023
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Abstract The objective of this paper is to investigate a new numerical method for the approximation of the self-diffusion matrix of a tagged particle process defined on a grid. While standard numerical methods make use of long-time averages of empirical means of deviations of some stochastic processes, and are thus subject to statistical noise, we propose here a tensor method in order to compute an approximation of the solution of a high-dimensional quadratic optimization problem, which enables to obtain a numerical approximation of the self-diffusion matrix. The tensor method we use here relies on an iterative scheme which builds low-rank approximations of the quantity of interest and on a carefully tuned variance reduction method so as to evaluate the various terms arising in the functional to minimize. In particular, we numerically observe here that it is much less subject to statistical noise than classical approaches. •Novel approach for computing self-diffusion matrices of tagged particle processes.•Solution of a high-dimensional minimization problem using low-rank techniques.•Less statistical noise in the approximation compared to classical approaches.
AbstractList The objective of this paper is to investigate a new numerical method for the approximation of the self-diffusion matrix of a tagged particle process defined on a grid. While standard numerical methods make use of long-time averages of empirical means of deviations of some stochastic processes, and are thus subject to statistical noise, we propose here a tensor method in order to compute an approximation of the solution of a high-dimensional quadratic optimization problem, which enables to obtain a numerical approximation of the self-diffusion matrix. The tensor method we use here relies on an iterative scheme which builds low-rank approximations of the quantity of interest and on a carefully tuned variance reduction method so as to evaluate the various terms arising in the functional to minimize. In particular, we numerically observe here that it is much less subject to statistical noise than classical approaches. •Novel approach for computing self-diffusion matrices of tagged particle processes.•Solution of a high-dimensional minimization problem using low-rank techniques.•Less statistical noise in the approximation compared to classical approaches.
ArticleNumber 112017
Author Dabaghi, Jad
Ehrlacher, Virginie
Strössner, Christoph
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  givenname: Virginie
  surname: Ehrlacher
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  givenname: Christoph
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  surname: Strössner
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  email: christoph.stroessner@epfl.ch
  organization: École Polytechnique Fédérale de Lausanne (EPFL), Institute of Mathematics, CH-1015 Lausanne, Switzerland
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Keywords Low-rank approximations
Monte Carlo methods
Alternating least squares
Tagged particle process
High-dimensional optimization
Self-diffusion
Language English
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Snippet The objective of this paper is to investigate a new numerical method for the approximation of the self-diffusion matrix of a tagged particle process defined on...
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SubjectTerms Alternating least squares
High-dimensional optimization
Low-rank approximations
Monte Carlo methods
Self-diffusion
Tagged particle process
Title Tensor approximation of the self-diffusion matrix of tagged particle processes
URI https://dx.doi.org/10.1016/j.jcp.2023.112017
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