JOURNAL ARTICLE

Robust mean field games for coupled Markov jump linear systems

Jun MoonTamer Başar

Year: 2015 Journal:   International Journal of Control Vol: 89 (7)Pages: 1367-1381   Publisher: Taylor & Francis

Abstract

We consider robust stochastic large population games for coupled Markov jump linear systems (MJLSs). The N agents' individual MJLSs are governed by different infinitesimal generators, and are affected not only by the control input but also by an individual disturbance (or adversarial) input. The mean field term, representing the average behaviour of N agents, is included in the individual worst-case cost function to capture coupling effects among agents. To circumvent the computational complexity and analyse the worst-case effect of the disturbance, we use robust mean field game theory to design low-complexity robust decentralised controllers and to characterise the associated worst-case disturbance. We show that with the individual robust decentralised controller and the corresponding worst-case disturbance, which constitute a saddle-point solution to a generic stochastic differential game for MJLSs, the actual mean field behaviour can be approximated by a deterministic function which is a fixed-point solution to the constructed mean field system. We further show that the closed-loop system is uniformly stable independent of N, and an approximate optimality can be obtained in the sense of epsilon-Nash equilibrium, where epsilon can be taken to be arbitrarily close to zero as N becomes sufficiently large. A numerical example is included to illustrate the results

Keywords:
Mathematics Saddle point Infinitesimal Control theory (sociology) Mean field theory Nash equilibrium Jump Markov chain Markov process Mathematical optimization Applied mathematics Computer science Control (management) Mathematical analysis

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32
Cited By
2.53
FWCI (Field Weighted Citation Impact)
35
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0.92
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Citation History

Topics

Stochastic processes and financial applications
Social Sciences →  Economics, Econometrics and Finance →  Finance
Economic theories and models
Social Sciences →  Economics, Econometrics and Finance →  Economics and Econometrics
Mathematical and Theoretical Epidemiology and Ecology Models
Health Sciences →  Medicine →  Public Health, Environmental and Occupational Health

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