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Optimizing constrained problems through a T-Cell artificial immune system

Aragón, Victoria S. et al · SEDICI UNLP · 2008

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In this paper, we present a new model of an artificial immune system (AIS), based on the process that suffers the T-Cell, it is called T-Cell Model. It is used for solving constrained (numerical) optimization problems. The model operates on three populations: Virgins, Effectors and Memory. Each of them has a different role. Also, the model dynamically adapts the tolerance factor in order to improve the exploration capabilities of the algorithm. We also develop a new mutation operator which incorporates knowledge of the problem. We validate our proposed approach with a set of test functions taken from the specialized literature and we compare our results with respect to Stochastic Ranking (which is an approach representative of the state-of-theart in the area), with respect to an AIS previously proposed and a self-organizing migrating genetic algorithm for constrained optimization (C-SOMGA). Facultad de Informática

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APA 7

Aragón, V. S. E. A. (2008). Optimizing constrained problems through a T-Cell artificial immune system. http://sedici.unlp.edu.ar/handle/10915/9640

MLA

Aragón, Victoria S. et al. "Optimizing constrained problems through a T-Cell artificial immune system." 2008. http://sedici.unlp.edu.ar/handle/10915/9640.

Chicago

Aragón, Victoria S. et al. 2008. "Optimizing constrained problems through a T-Cell artificial immune system.". http://sedici.unlp.edu.ar/handle/10915/9640.

Harvard

Aragón, V. S. E. A. 2008, Optimizing constrained problems through a T-Cell artificial immune system, SEDICI UNLP, available at: http://sedici.unlp.edu.ar/handle/10915/9640 [Accessed 8 Aug. 2026].

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Title
Optimizing constrained problems through a T-Cell artificial immune system
Author / contributors
Aragón, Victoria S. et al
Publisher
SEDICI UNLP
Publication year
2008
Language
English

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