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  • Klancar, Gregor/ Zdear, Andrej/ Blaic, Sao/ krjanc, Igor

    Sprache: Englisch

    Verlag: Butterworth-Heinemann, 2017

    ISBN 10: 0128042044 ISBN 13: 9780128042045

    Anbieter: Revaluation Books, Exeter, Vereinigtes Königreich

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    EUR 117,99

    EUR 14,36 Versand
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    Anzahl: 2 verfügbar

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    Paperback. Zustand: Brand New. 502 pages. 8.75x5.75x1.25 inches. In Stock.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, 2014

    ISBN 10: 3642439772 ISBN 13: 9783642439773

    Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland

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    EUR 106,99

    EUR 62,09 Versand
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    Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland

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    EUR 106,99

    EUR 62,88 Versand
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    Anzahl: 1 verfügbar

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    Buch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems.

  • ¿Krjanc, Igor

    Sprache: Englisch

    Verlag: Springer, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: Buchpark, Trebbin, Deutschland

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    Sonderangebot

    EUR 74,31

    EUR 105,00 Versand
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    Anzahl: 1 verfügbar

    In den Warenkorb

    Zustand: Sehr gut. Zustand: Sehr gut | Seiten: 272 | Sprache: Englisch | Produktart: Bücher | A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems.

  • Karer, Gorazd, krjanc, Igor

    Sprache: Englisch

    Verlag: Springer, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: Mispah books, Redhill, SURRE, Vereinigtes Königreich

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    EUR 162,14

    EUR 28,73 Versand
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    Anzahl: 1 verfügbar

    In den Warenkorb

    Hardcover. Zustand: Like New. Like New. book.

  • Karer, Gorazd, krjanc, Igor

    Sprache: Englisch

    Verlag: Springer, 2014

    ISBN 10: 3642439772 ISBN 13: 9783642439773

    Anbieter: Mispah books, Redhill, SURRE, Vereinigtes Königreich

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    EUR 179,89

    EUR 28,73 Versand
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    Anzahl: 1 verfügbar

    In den Warenkorb

    Paperback. Zustand: Like New. LIKE NEW. SHIPS FROM MULTIPLE LOCATIONS. book.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg Sep 2012, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, Deutschland

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    Print-on-Demand

    EUR 106,99

    EUR 23,00 Versand
    Versand von Deutschland nach USA

    Anzahl: 2 verfügbar

    In den Warenkorb

    Buch. Zustand: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems. 272 pp. Englisch.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg Okt 2014, 2014

    ISBN 10: 3642439772 ISBN 13: 9783642439773

    Anbieter: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, Deutschland

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    Print-on-Demand

    EUR 106,99

    EUR 23,00 Versand
    Versand von Deutschland nach USA

    Anzahl: 2 verfügbar

    In den Warenkorb

    Taschenbuch. Zustand: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems. 272 pp. Englisch.

  • Gorazd Karer|Igor krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, 2014

    ISBN 10: 3642439772 ISBN 13: 9783642439773

    Anbieter: moluna, Greven, Deutschland

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    Print-on-Demand

    EUR 92,27

    EUR 48,99 Versand
    Versand von Deutschland nach USA

    Anzahl: Mehr als 20 verfügbar

    In den Warenkorb

    Zustand: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Presents control of time-delayed, unstable, multivariable processes and modelling approaches for several classes of complex systems Special emphasis is put on hybrid systems with distinct nonlinearities Treats time-varying systems and adapti.

  • Gorazd Karer|Igor krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: moluna, Greven, Deutschland

    Verkäuferbewertung 4 von 5 Sternen 4 Sterne, Erfahren Sie mehr über Verkäufer-Bewertungen

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    Print-on-Demand

    EUR 92,27

    EUR 48,99 Versand
    Versand von Deutschland nach USA

    Anzahl: Mehr als 20 verfügbar

    In den Warenkorb

    Zustand: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Presents control of time-delayed, unstable, multivariable processes and modelling approaches for several classes of complex systems Special emphasis is put on hybrid systems with distinct nonlinearities Treats time-varying systems and adapti.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, Springer Berlin Heidelberg Sep 2012, 2012

    ISBN 10: 3642339468 ISBN 13: 9783642339462

    Anbieter: buchversandmimpf2000, Emtmannsberg, BAYE, Deutschland

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    Print-on-Demand

    EUR 106,99

    EUR 60,00 Versand
    Versand von Deutschland nach USA

    Anzahl: 1 verfügbar

    In den Warenkorb

    Buch. Zustand: Neu. This item is printed on demand - Print on Demand Titel. Neuware -A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm.This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems.Springer-Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 272 pp. Englisch.

  • Igor ¿Krjanc

    Sprache: Englisch

    Verlag: Springer Berlin Heidelberg, Springer Berlin Heidelberg Okt 2014, 2014

    ISBN 10: 3642439772 ISBN 13: 9783642439773

    Anbieter: buchversandmimpf2000, Emtmannsberg, BAYE, Deutschland

    Verkäuferbewertung 5 von 5 Sternen 5 Sterne, Erfahren Sie mehr über Verkäufer-Bewertungen

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    Print-on-Demand

    EUR 106,99

    EUR 60,00 Versand
    Versand von Deutschland nach USA

    Anzahl: 1 verfügbar

    In den Warenkorb

    Taschenbuch. Zustand: Neu. This item is printed on demand - Print on Demand Titel. Neuware -A predictive control algorithm uses a model of the controlled system to predict the system behavior for various input scenarios and determines the most appropriate inputs accordingly. Predictive controllers are suitable for a wide range of systems; therefore, their advantages are especially evident when dealing with relatively complex systems, such as nonlinear, constrained, hybrid, multivariate systems etc. However, designing a predictive control strategy for a complex system is generally a difficult task, because all relevant dynamical phenomena have to be considered. Establishing a suitable model of the system is an essential part of predictive control design. Classic modeling and identification approaches based on linear-systems theory are generally inappropriate for complex systems; hence, models that are able to appropriately consider complex dynamical properties have to be employed in a predictive control algorithm. This book first introduces some modeling frameworks, which can encompass the most frequently encountered complex dynamical phenomena and are practically applicable in the proposed predictive control approaches. Furthermore, unsupervised learning methods that can be used for complex-system identification are treated. Finally, several useful predictive control algorithms for complex systems are proposed and their particular advantages and drawbacks are discussed. The presented modeling, identification and control approaches are complemented by illustrative examples. The book is aimed towards researches and postgraduate students interested in modeling, identification and control, as well as towards control engineers needing practically usable advanced control methods for complex systems.Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 272 pp. Englisch.