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2017 | OriginalPaper | Buchkapitel

Euler’s Method Applied to the Control of Switched Systems

verfasst von : Laurent Fribourg

Erschienen in: Formal Modeling and Analysis of Timed Systems

Verlag: Springer International Publishing

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Abstract

Hybrid systems are a powerful formalism for modeling and reasoning about cyber-physical systems. They mix the continuous and discrete natures of the evolution of computerized systems. Switched systems are a special kind of hybrid systems, with restricted discrete behaviours: those systems only have finitely many different modes of (continuous) evolution, with isolated switches between modes. Such systems provide a good balance between expressiveness and controllability, and are thus in widespread use in large branches of industry such as power electronics and automotive control. The control law for a switched system defines the way of selecting the modes during the run of the system. Controllability is the problem of (automatically) synthesizing a control law in order to satisfy a desired property, such as safety (maintaining the variables within a given zone) or stabilisation (confinement of the variables in a close neighborhood around an objective point). In order to compute the control of a switched system, we need to compute the solutions of the differential equations governing the modes. Euler’s method is the most basic technique for approximating such solutions. We present here an estimation of the Euler’s method local error, using the notion of “one-sided Lispchitz constant” for modes. This yields a general control synthesis approach which can encompass several features such as bounded disturbance and compositionality.

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Fußnoten
1
Given an initial point \(x\in R\), the induced control \(\sigma \) corresponds to a sequence of patterns \(\pi _{i_1},\pi _{i_2},\dots \) defined as follows: Since \(x\in R\), there exists a a point \(\tilde{x}_{i_1}\) with \(1\le i_1\le m\) such that \(x\in B(\tilde{x}_{i_1},\delta ^0)\); then using pattern \(\pi _{i_1}\), one has: \(\phi _{\pi _{i_1}}(k_{i_1}\tau ;x)\in R\). Let \(x'=\phi _{\pi _{i_1}}(k_{i_1}\tau ;x)\); there exists a point \(\tilde{x}_{i_2}\) with \(1\le i_2\le m\) such that \(x'\in B(\tilde{x}_{i_2},\delta ^0)\), etc.
 
2
The diameter of a set is the maximal distance of two elements.
 
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Metadaten
Titel
Euler’s Method Applied to the Control of Switched Systems
verfasst von
Laurent Fribourg
Copyright-Jahr
2017
DOI
https://doi.org/10.1007/978-3-319-65765-3_1