Maximally Permissive Hierarchical Control of Decentralized Discrete Event Systems
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Date
2011
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Ieee-inst Electrical Electronics Engineers inc
Open Access Color
Green Open Access
No
OpenAIRE Downloads
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Publicly Funded
No
Abstract
The subject of this paper is the synthesis of natural projections that serve as nonblocking and maximally permissive abstractions for the hierarchical and decentralized control of large-scale discrete event systems. To this end, existing concepts for nonblocking abstractions such as natural observers and marked string accepting (msa)-observers are extended by local control consistency (LCC) as a novel sufficient condition for maximal permissiveness. Furthermore, it is shown that, similar to the natural observer condition and the msa-observer condition, also LCC can be formulated in terms of a quasi-congruence. Based on existing algorithms in the literature, this allows to algorithmically compute natural projections that are either natural observers or msa-observers and that additionally fulfill LCC. The obtained results are illustrated by the synthesis of nonblocking and maximally permissive supervisors for a manufacturing system.
Description
Schmidt, Ece Guran/0000-0002-4062-389X
ORCID
Keywords
Decentralized Control, Discrete Event Systems, Hierarchical Control, Large-Scale Systems, Maximal Permissiveness, Supervisory Control
Fields of Science
0209 industrial biotechnology, 02 engineering and technology
Citation
Schmidt, K., Breindl, C. (2011). Maximally permissive hierarchical control of decentralized discrete event systems. IEEE Transactions On Automatic Control, 56(4), 723-737. http://dx.doi.org/10.1109/TAC.2010.2067250
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
67
Source
IEEE Transactions on Automatic Control
Volume
56
Issue
4
Start Page
723
End Page
737
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CrossRef : 59
Scopus : 70
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Mendeley Readers : 23
SCOPUS™ Citations
74
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Web of Science™ Citations
54
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3
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