On Higher Order Drift and Diffusion Estimates for Stochastic SINDy
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arXiv
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| Format: | Preprint |
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2023
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| _version_ | 1866929224626995200 |
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| author | Wanner, Mathias Mezić, Igor |
| author_facet | Wanner, Mathias Mezić, Igor |
| contents | The Sparse Identification of Nonlinear Dynamics (SINDy) algorithm can be applied to stochastic differential equations to estimate the drift and the diffusion function using data from a realization of the SDE. The SINDy algorithm requires sample data from each of these functions, which is typically estimated numerically from the data of the state. We analyze the performance of the previously proposed estimates for the drift and diffusion function to give bounds on the error for finite data. However, since this algorithm only converges as both the sampling frequency and the length of trajectory go to infinity, obtaining approximations within a certain tolerance may be infeasible. To combat this, we develop estimates with higher orders of accuracy for use in the SINDy framework. For a given sampling frequency, these estimates give more accurate approximations of the drift and diffusion functions, making SINDy a far more feasible system identification method. |
| format | Preprint |
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arxiv_https___arxiv_org_abs_2306_17814 |
| institution | arXiv |
| publishDate | 2023 |
| record_format | arxiv |
| spellingShingle | On Higher Order Drift and Diffusion Estimates for Stochastic SINDy Wanner, Mathias Mezić, Igor Numerical Analysis Dynamical Systems 37H99, 37M15, 60H35, 65C40, 93E12 The Sparse Identification of Nonlinear Dynamics (SINDy) algorithm can be applied to stochastic differential equations to estimate the drift and the diffusion function using data from a realization of the SDE. The SINDy algorithm requires sample data from each of these functions, which is typically estimated numerically from the data of the state. We analyze the performance of the previously proposed estimates for the drift and diffusion function to give bounds on the error for finite data. However, since this algorithm only converges as both the sampling frequency and the length of trajectory go to infinity, obtaining approximations within a certain tolerance may be infeasible. To combat this, we develop estimates with higher orders of accuracy for use in the SINDy framework. For a given sampling frequency, these estimates give more accurate approximations of the drift and diffusion functions, making SINDy a far more feasible system identification method. |
| title | On Higher Order Drift and Diffusion Estimates for Stochastic SINDy |
| topic | Numerical Analysis Dynamical Systems 37H99, 37M15, 60H35, 65C40, 93E12 |
| url | https://arxiv.org/abs/2306.17814 |