Clustering and Retrieval Method of Immunological Memory Cell in Clonal Selection Algorithm
April 08, 2018 ยท Declared Dead ยท ๐ The 6th International Conference on Soft Computing and Intelligent Systems, and The 13th International Symposium on Advanced Intelligence Systems
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Authors
Takumi Ichimura, Shin Kamada
arXiv ID
1804.02628
Category
cs.NE: Neural & Evolutionary
Cross-listed
cs.AI,
q-bio.QM
Citations
2
Venue
The 6th International Conference on Soft Computing and Intelligent Systems, and The 13th International Symposium on Advanced Intelligence Systems
Last Checked
4 months ago
Abstract
The clonal selection principle explains the basic features of an adaptive immune response to a antigenic stimulus. It established the idea that only those cells that recognize the antigens are selected to proliferate and differentiate. This paper explains a computational implementation of the clonal selection principle that explicitly takes into account the affinity maturation of the immune response. Antibodies generated by the clonal selection algorithm are clustered in some categories according to the affinity maturation, so that immunological memory cells which respond to the specified pathogen are created. Experimental results to classify the medical database of Coronary Heart Disease databases are reported. For the dataset, our proposed method shows the 99.6\% classification capability of training data.
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