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An Immune Learning Classifier Network for Autonomous Navigation.

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posted on 2023-06-07, 22:26 authored by Patrícia A Vargas, Leandro N de Castro, Roberto Michelan, Fernando J Von Zuben
This paper proposes a non-parametric hybrid system for autonomous navigation combining the strengths of learning classifier systems, evolutionary algorithms, and an immune network model. The system proposed is basically an immune network of classifiers, named CLARINET. CLARINET has three degrees of freedom: the attributes that define the network cells (classifiers) are dynamically adjusted to a changing environment; the network connections are evolved using an evolutionary algorithm; and the concentration of network nodes is varied following a continuous dynamic model of an immune network. CLARINET is described in detail, and the resultant hybrid system demonstrated effectiveness and robustness in the experiments performed, involving the computational simulation of robotic autonomous navigation.

History

Publication status

  • Published

ISSN

0302-9743

Publisher

ICARIS

Page range

69-80

Pages

12.0

Presentation Type

  • paper

Event name

Artificial Immune Systems Second International Conference, ICARIS 2003

Event location

Edinburgh, UK.

Event type

conference

Event date

September 1-3, 2003.

ISBN

3-540-40766-9

Department affiliated with

  • Informatics Publications

Notes

Lecture Notes in Computer Science (LNCS 2787) Special Issue on Artificial Immune Systems

Full text available

  • No

Peer reviewed?

  • Yes

Legacy Posted Date

2012-02-06

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