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Model selection for hybrid dynamical systems via sparse regression

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arxiv 1808.03251 v1 pith:72PPTXZZ submitted 2018-08-09 math.DS

classification math.DS
keywords systemsdatanonlinearhybrididentificationmodeldynamicaltheory
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Hybrid systems are traditionally difficult to identify and analyze using classical dynamical systems theory. Moreover, recently developed model identification methodologies largely focus on identifying a single set of governing equations solely from measurement data. In this article, we develop a new methodology, Hybrid-Sparse Identification of Nonlinear Dynamics (Hybrid-SINDy), which identifies separate nonlinear dynamical regimes, employs information theory to manage uncertainty, and characterizes switching behavior. Specifically, we utilize the nonlinear geometry of data collected from a complex system to construct a set of coordinates based on measurement data and augmented variables. Clustering the data in these measurement-based coordinates enables the identification of nonlinear hybrid systems. This methodology broadly empowers nonlinear system identification without constraining the data locally in time and has direct connections to hybrid systems theory. We demonstrate the success of this method on numerical examples including a mass-spring hopping model and an infectious disease model. Characterizing complex systems that switch between dynamic behaviors is integral to overcoming modern challenges such as eradication of infectious diseases, the design of efficient legged robots, and the protection of cyber infrastructures.

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  1. SINDybrid: automatic generation of hybrid models for dynamic systems

    math.DS 2025-06 conditional novelty 5.0 of 10

    SINDybrid uses a mixed-integer linear program over a library of candidate functions to locate and fit data-driven corrections for the uncertain equations in an ODE model.

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