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Immune Memory and Gene Library Evolution in the Dynamic Clonal Selection Algorithm

机译:动态克隆选择算法中的免疫记忆和基因库进化

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This paper describes two extensions to the original DynamiCS: (1) the deletion of memory detectors that are no longer valid and (2) the simulation of gene library evolution. Firstly, DynamiCS is extended in order to decrease the false positive (FP) error rates caused by memory detectors. The extended DynamiCS eliminates memory detectors when they show a poor degree of self-tolerance to new antigens. This system is tested to determine whether surviving memory detectors no longer cause high FP error rates. The results show a marked decrease in FP errors produced by the system but an increase in the amount of costimulation required. The large amount of costimulation can render the system weak for intrusion detection. The second extension to DynamiCS is proposed to resolve this problem. It employs the use of hypermutation to produce the effect of gene library evolution. This is designed to fine-tune generated memory detectors so that the system obtains higher true positive (TP) detection rates without increasing the amount of co-stimulation. The new extension is tested to determine whether it gains high TP detection rates without increasing the amount of costimulation as the result of gene library evolution. The test results prove that hypermutation leads the progress of gene library evolution and thus produces immature detectors that are more tuned to cover existing non-self antigens.
机译:本文描述了原始DynamiCS的两个扩展:(1)删除不再有效的内存检测器,以及(2)模拟基因库的进化。首先,扩展DynamiCS以减少由内存检测器引起的误报(FP)错误率。当扩展的DynamiCS对新抗原表现出较差的自我耐受性时,可消除记忆检测器。经过测试,可以确定尚存的内存检测器是否不再导致较高的FP错误率。结果表明,系统产生的FP错误显着减少,但是所需的协同仿真量却增加了。大量的成本刺激会导致系统无法进行入侵检测。提议对DynamiCS进行第二次扩展以解决此问题。它利用超突变来产生基因文库进化的效果。这旨在微调生成的内存检测器,以便系统获得更高的真实正(TP)检测率,而无需增加共刺激量。测试了新的扩展名,以确定它是否获得了较高的TP检测率,而又不会增加因基因文库进化而引起的共刺激量。测试结果证明,超突变导致基因文库进化的进展,从而产生了不成熟的检测器,其经过更优化后可以覆盖现有的非自身抗原。

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