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Synthesis of Hybrid Automata with Affine Dynamics from Time-Series Data (2102.12734v1)

Published 25 Feb 2021 in eess.SY and cs.SY

Abstract: Formal design of embedded and cyber-physical systems relies on mathematical modeling. In this paper, we consider the model class of hybrid automata whose dynamics are defined by affine differential equations. Given a set of time-series data, we present an algorithmic approach to synthesize a hybrid automaton exhibiting behavior that is close to the data, up to a specified precision, and changes in synchrony with the data. A fundamental problem in our synthesis algorithm is to check membership of a time series in a hybrid automaton. Our solution integrates reachability and optimization techniques for affine dynamical systems to obtain both a sufficient and a necessary condition for membership, combined in a refinement framework. The algorithm processes one time series at a time and hence can be interrupted, provide an intermediate result, and be resumed. We report experimental results demonstrating the applicability of our synthesis approach.

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Authors (3)
  1. Miriam GarcĂ­a Soto (2 papers)
  2. Thomas A. Henzinger (103 papers)
  3. Christian Schilling (75 papers)
Citations (9)

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