2021
DOI: 10.1016/j.jcp.2020.109864
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Data-driven model reduction, Wiener projections, and the Koopman-Mori-Zwanzig formalism

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Cited by 60 publications
(55 citation statements)
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“…In particular, the term approximates F based on information up to time n (e.g., the conditional expectation), and the noise aims to statistically represent the residual of the approximation. Since the truncation error depends on the past history of the low wavenumber modes, and as suggested by the Mori–Zwanzig formalism [ 6 , 7 ], we make depend on the trajectory of the state process, as well as the trajectories and : For simplicity, we assume the noise to be iid Gaussian, and the resulted time series model in ( 10 ) is a nonlinear autoregression moving average model (NARMA) [ 13 , 45 , 46 ].…”
Section: Space-time Reduction For Stochastic Burgers Equationationmentioning
confidence: 99%
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“…In particular, the term approximates F based on information up to time n (e.g., the conditional expectation), and the noise aims to statistically represent the residual of the approximation. Since the truncation error depends on the past history of the low wavenumber modes, and as suggested by the Mori–Zwanzig formalism [ 6 , 7 ], we make depend on the trajectory of the state process, as well as the trajectories and : For simplicity, we assume the noise to be iid Gaussian, and the resulted time series model in ( 10 ) is a nonlinear autoregression moving average model (NARMA) [ 13 , 45 , 46 ].…”
Section: Space-time Reduction For Stochastic Burgers Equationationmentioning
confidence: 99%
“…These criteria are by no means exhaustive. Other methods include Bayesian information criterion (BIC, see, e.g., [ 50 ]), and the error reduction ratio [ 51 ] may be applied, but in our experience, they provide limited help for the selection of reduced models [ 7 , 14 , 46 ].…”
Section: Inference Of Reduced Modelsmentioning
confidence: 99%
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