Vorlesung: Advanced Topics in Control - Details

Vorlesung: Advanced Topics in Control - Details

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Allgemeine Informationen

Veranstaltungsname Vorlesung: Advanced Topics in Control
Semester WiSe 17/18
Aktuelle Anzahl der Teilnehmenden 48
Heimat-Einrichtung Institut für Regelungstechnik (E-14)
Veranstaltungstyp Vorlesung in der Kategorie Lehre
Erster Termin Dienstag, 17.10.2017 16:45 - 18:15, Ort: (H0.06)
Voraussetzungen Control Systems Theory and Design, Optimal and Robust Control
Lernorganisation Learning Outcomes:

•Familiarization with current research topics in control
•Extension of the concept of L2 induced norm to nonlinear, interconnected and distributed systems
•Working with a variety of recent research publications
Leistungsnachweis
Oral exam
Sonstiges Literature:
Werner, H., Lecture Notes “Advanced Topics in Control”

Variety of relevant research papers made available as pdf documents via StudIP


Language: English

Räume und Zeiten

(H0.06)
Dienstag: 16:45 - 18:15, wöchentlich (14x)
(M.2589)
Mittwoch: 08:00 - 09:30, wöchentlich (12x)

Kommentar/Beschreibung

Linear Parameter-Varying (LPV) Gain Scheduling - Linearizing gain scheduling, hidden coupling - Jacobian linearization vs. quasi-LPV models - Stability and induced L2 norm of LPV systems - Synthesis of LPV controllers based on the two-sided projection lemma - Simplifications: controller synthesis for polytopic and LFT models - Experimental identification of LPV models - Controller synthesis based on input/output models - Applications: LPV torque vectoring for electric vehicles, LPV control of a robotic manipulator Control of Multi-Agent Systems - Communication graphs - Spectral properties of the graph Laplacian - First and second order consensus protocols - Formation control, stability and performance - LPV models for agents subject to nonholonomic constraints - Application: formation control for a team of quadrotor helicopters Control of Spatially Interconnected Systems - Multidimensional signals, l2 and L2 signal norm - Multidimensional systems in Roesser state space form - Extension of real-bounded lemma to spatially interconnected systems - LMI-based synthesis of distributed controllers - Spatial LPV control of spatially varying systems - Applications: control of temperature profiles, vibration damping for an actuated beam