Produktbild: Bio-Inspired Computing and Networking

Bio-Inspired Computing and Networking

87,99 €

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Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

14.06.2017

Abbildungen

262 SW-Abb., 13 Tabellen

Verlag

Taylor & Francis

Seitenzahl

554

Maße (L/B/H)

23,4/15,6/3 cm

Gewicht

831 g

Sprache

Englisch

ISBN

978-1-138-11525-5

Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

14.06.2017

Abbildungen

262 SW-Abb., 13 Tabellen

Verlag

Taylor & Francis

Seitenzahl

554

Maße (L/B/H)

23,4/15,6/3 cm

Gewicht

831 g

Sprache

Englisch

ISBN

978-1-138-11525-5

Herstelleradresse

Libri GmbH
Europaallee 1
36244 Bad Hersfeld
DE

Email: gpsr@libri.de

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  • Produktbild: Bio-Inspired Computing and Networking
  • Animal Behaviors and Animal Communications. Animal Models for Computing and Communications: Past Approaches and Future Challenges. Social Behaviors of the California Sea Lion, Bottlenose Dolphin, and Orca Whale. Bio-Inspired Computing and Robots. Social Insect Societies for the Optimization of Dynamic NP-Hard Problems. Bio-Inspired Locomotion Control of the Hexapod Robot Gregor III. BEECLUST: A Swarm Algorithm Derived from Honeybees: Derivation of the Algorithm, Analysis by Mathematical Models, and Implementation on a Robot Swarm. Self-Organizing Data and Signals Cellular Systems. Bio-Inspired Process Control. Multirobot Search Using Bio-Inspired Cooperation and Communication Paradigms. Abstractions for Planning and Control of Robotic Swarms. Ant-Inspired Allocation: Top-Down Controller Design for Distributing A Robot Swarm among Multiple Tasks. Human Peripheral Nervous System Controlling Robots. Bio-Inspired Communications and Networks. Adaptive Social Hierarchies: From Nature to Networks. Chemical Relaying Protocols. Attractor Selection as Self-Adaptive Control Mechanism for Communication Networks. Topological Robustness of Biological Systems for Information Networks-Modularity. Biologically Inspired Dynamic Spectrum Access in Cognitive Radio Networks. Weakly Connected Oscillatory Networks for Information Processing. Modeling the Dynamics of Cellular Signaling for Communication Networks. A Biologically Inspired QoS-Aware Architecture for Scalable, Adaptive, and Survivable Network Systems.