| Title: |
ADAM-SINDy: An efficient optimization framework for parameterized nonlinear dynamical system identification |
| Authors: |
Viknesh, Siva; Tatari, Younes; Christenson, Chase; Arzani, Amirhossein |
| Contributors: |
National Science Foundation |
| Source: |
Physical Review Research ; volume 8, issue 1 ; ISSN 2643-1564 |
| Publisher Information: |
American Physical Society (APS) |
| Publication Year: |
2026 |
| Description: |
Identifying nonlinear dynamical systems characterized by nonlinear parameters presents significant challenges in deriving mathematical models that enhance understanding of physical phenomena. Traditional methods, such as Sparse Identification of Nonlinear Dynamics (SINDy) and symbolic regression, can extract governing equations from observational data; however, they also come with distinct advantages and disadvantages. This paper introduces a differentiable optimization methodology within the SINDy framework, termed ADAM-SINDy, which synthesizes the strengths of established approaches by employing the ADAM optimization algorithm. This integration facilitates the simultaneous optimization of nonlinear parameters and coefficients associated with nonlinear candidate functions, enabling efficient and precise parameter estimation without requiring prior knowledge of nonlinear characteristics such as trigonometric frequencies, exponential bandwidths, or polynomial exponents, thereby addressing a key limitation of the classical SINDy framework. Through an integrated global differentiable optimization, ADAM-SINDy dynamically computes all unknown variables in response to system-specific data, resulting in a more adaptive and efficient identification procedure that reduces the sensitivity to the library of candidate functions. The performance of the ADAM-SINDy methodology is demonstrated across a spectrum of dynamical systems, including benchmark coupled nonlinear ordinary differential equations such as oscillators, chaotic fluid flows, reaction kinetics, pharmacokinetics, as well as nonlinear partial differential equations (wildfire transport). The results demonstrate significant improvements in identifying parameterized dynamical systems and underscore the importance of concurrently optimizing all parameters, particularly those characterized by nonlinear parameters. These findings highlight the potential of ADAM-SINDy to extend the applicability of the SINDy framework in addressing more complex challenges in dynamical ... |
| Document Type: |
article in journal/newspaper |
| Language: |
English |
| DOI: |
10.1103/dwkk-5g2h |
| DOI: |
10.1103/dwkk-5g2h/fulltext |
| Availability: |
https://doi.org/10.1103/dwkk-5g2h; https://link.aps.org/article/10.1103/dwkk-5g2h; http://harvest.aps.org/v2/journals/articles/10.1103/dwkk-5g2h/fulltext |
| Rights: |
https://creativecommons.org/licenses/by/4.0/ |
| Accession Number: |
edsbas.C353717C |
| Database: |
BASE |