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Distributed embedded controller deve...
~
Gomes, Luis.
Distributed embedded controller development with petri nets = application to globally-asynchronous locally-synchronous systems /
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Distributed embedded controller development with petri nets/ by Filipe Moutinho, Luis Gomes.
Reminder of title:
application to globally-asynchronous locally-synchronous systems /
Author:
Moutinho, Filipe.
other author:
Gomes, Luis.
Published:
Cham :Springer International Publishing : : 2016.,
Description:
xii, 79 p. :ill., digital ; : 24 cm.;
Contained By:
Springer eBooks
Subject:
Embedded computer systems. -
Online resource:
http://dx.doi.org/10.1007/978-3-319-20822-0
ISBN:
9783319208220
Distributed embedded controller development with petri nets = application to globally-asynchronous locally-synchronous systems /
Moutinho, Filipe.
Distributed embedded controller development with petri nets
application to globally-asynchronous locally-synchronous systems /[electronic resource] :by Filipe Moutinho, Luis Gomes. - Cham :Springer International Publishing :2016. - xii, 79 p. :ill., digital ;24 cm. - SpringerBriefs in electrical and computer engineering,1502191-8112 ;. - SpringerBriefs in electrical and computer engineering ;74..
Introduction -- Related work -- Development of distributed embedded controllers -- Application Example -- Conclusions and future work.
This book describes a model-based development approach for globally-asynchronous locally-synchronous distributed embedded controllers. This approach uses Petri nets as modeling formalism to create platform and network independent models supporting the use of design automation tools. To support this development approach, the Petri nets class in use is extended with time-domains and asynchronous-channels. The authors' approach uses models not only providing a better understanding of the distributed controller and improving the communication among the stakeholders, but also to be ready to support the entire lifecycle, including the simulation, the verification (using model-checking tools), the implementation (relying on automatic code generators), and the deployment of the distributed controller into specific platforms. Uses a graphical and intuitive modeling formalism supported by design automation tools; Enables verification, ensuring that the distributed controller was correctly specified; Provides flexibility in the implementation and maintenance phases to achieve desired constraints (high performance, low power consumption, reduced costs), enabling porting to different platforms using different communication nodes, without changing the underlying behavioral model.
ISBN: 9783319208220
Standard No.: 10.1007/978-3-319-20822-0doiSubjects--Topical Terms:
562313
Embedded computer systems.
LC Class. No.: TK7895.E42
Dewey Class. No.: 006.22
Distributed embedded controller development with petri nets = application to globally-asynchronous locally-synchronous systems /
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Introduction -- Related work -- Development of distributed embedded controllers -- Application Example -- Conclusions and future work.
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This book describes a model-based development approach for globally-asynchronous locally-synchronous distributed embedded controllers. This approach uses Petri nets as modeling formalism to create platform and network independent models supporting the use of design automation tools. To support this development approach, the Petri nets class in use is extended with time-domains and asynchronous-channels. The authors' approach uses models not only providing a better understanding of the distributed controller and improving the communication among the stakeholders, but also to be ready to support the entire lifecycle, including the simulation, the verification (using model-checking tools), the implementation (relying on automatic code generators), and the deployment of the distributed controller into specific platforms. Uses a graphical and intuitive modeling formalism supported by design automation tools; Enables verification, ensuring that the distributed controller was correctly specified; Provides flexibility in the implementation and maintenance phases to achieve desired constraints (high performance, low power consumption, reduced costs), enabling porting to different platforms using different communication nodes, without changing the underlying behavioral model.
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Engineering (Springer-11647)
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