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Overview
- Broad literature overview give the reader a solid background on the evolution of congestion control techniques in the history of modern networking
- Numerous examples facilitate understanding of the key aspects of data flow regulation in communication networks
- Thorough discussion of unique modeling solutions enable the designer to apply advanced techniques of control theory to network analysis and protocol upgrade
- A separate chapter is provided to familiarize the reader with the design methods and characteristics of sliding-mode control
Part of the book series: Communications and Control Engineering (CCE)
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About this book
The authors address a number of difficult real-life problems, such as:
optimal control of flows with disparate, time-varying delay;
the existence of source and channel nonlinearities;
the balancing of quality of service and fairness requirements; and
the incorporation of variable rate allocation policies.
Appropriate control mechanisms which can handle congestion and guarantee high throughput in various traffic scenarios (with different networking phenomena being considered) are proposed. Systematic design procedures using sound control-theoretic foundations are adopted. Since robustness issues are of major concern in providing efficient data-flow regulation in today’s networks, sliding-mode control is selected as the principal technique to be applied in creating the control solutions. The controller derivation is given extensive analytical treatment and is supported with numerous realistic simulations. A comparison with existing solutions is also provided. The concepts applied are discussed in a number of illustrative examples, and supported by many figures, tables, and graphs walking the reader through the ideas and introducing their relevance in real networks.
Academic researchers and graduate students working in computer networks and telecommunications and in control (especially time-delay systems and discrete-time optimal and sliding-mode control) will find this text a valuable assistance in ensuring smooth data-flow within communications networks.
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Keywords
Table of contents (9 chapters)
Authors and Affiliations
About the authors
Andrzej Bartoszewicz received the MSc degree in 1987 and the PhD degree in 1993 both from Technical University of Łódź, Poland. Then he obtained the degree of doktor habilitowany in control engineering and robotics from the Academy of Mining and Metallurgy in Cracow, Poland. He was visiting scholar at Purdue University, West Lafayette, Indiana, USA and at Strathclyde University, Glasgow, UK. Then for one year he was at the University of Leicester, UK. Currently he is Professor at the Technical University of Łódź, Vice-dean of Faculty of Electrical, Electronic, Computer and Control Engineering, head of the Electric Drive and Industrial Automation Group and Vice-director of the Institute of Automatic Control. He has published three monographs (having served as an editor of three others) and over 230 papers, primarily in the fields of sliding-mode control and congestion control in data transmission networks.
Bibliographic Information
Book Title: Congestion Control in Data Transmission Networks
Book Subtitle: Sliding Mode and Other Designs
Authors: Przemysław Ignaciuk, Andrzej Bartoszewicz
Series Title: Communications and Control Engineering
DOI: https://doi.org/10.1007/978-1-4471-4147-1
Publisher: Springer London
eBook Packages: Engineering, Engineering (R0)
Copyright Information: Springer-Verlag London 2013
Hardcover ISBN: 978-1-4471-4146-4Published: 01 August 2012
Softcover ISBN: 978-1-4471-5831-8Published: 19 September 2014
eBook ISBN: 978-1-4471-4147-1Published: 01 August 2012
Series ISSN: 0178-5354
Series E-ISSN: 2197-7119
Edition Number: 1
Number of Pages: XVI, 384
Topics: Control and Systems Theory, Computer Communication Networks, Communications Engineering, Networks, Calculus of Variations and Optimal Control; Optimization