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Optimal control of infinite horizon partially observable decision processes modelled as generators of probabilistic regular languages

Producción científica: Articlerevisión exhaustiva

3 Citas (Scopus)

Resumen

Decision processes with incomplete state feedback have been traditionally modelled as partially observable Markov decision processes. In this article, we present an alternative formulation based on probabilistic regular languages. The proposed approach generalises the recently reported work on language measure theoretic optimal control for perfectly observable situations and shows that such a framework is far more computationally tractable to the classical alternative. In particular, we show that the infinite horizon decision problem under partial observation, modelled in the proposed framework, is λ-approximable and, in general, is not harder to solve compared to the fully observable case. The approach is illustrated via two simple examples.

Idioma originalEnglish
Páginas (desde-hasta)457-483
Número de páginas27
PublicaciónInternational Journal of Control
Volumen83
N.º3
DOI
EstadoPublished - mar 2010

Financiación

This work has been supported in part by the US Army Research Laboratory (ARL) and the US Army Research Office (ARO) under Grant No. W911NF-07-1-0376, by the US Office of Naval Research (ONR) under Grant No. N00014-09-1-0688, and by NASA under Cooperative Agreement No. NNX07AK49A. Any opinions, findings and conclusions or recommendations expressed in this publication are those of the authors and do not necessarily reflect the views of the sponsoring agencies.

FinanciadoresNúmero del financiador
US Army Research Office
US Department of Navy Office of Naval Research (ONR)
Office of Naval ResearchN00014-09-1-0688
National Aeronautics and Space Administration
Army Research OfficeW911NF-07-1-0376
Association of Southeastern Research Libraries (ASERL)
Army Research Laboratory

    ASJC Scopus subject areas

    • Control and Systems Engineering
    • Computer Science Applications

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