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Research on Intrusion Detection Based on Heuristic Genetic Neural Network

ADVANCES IN ELECTRONIC COMMERCE, WEB APPLICATION AND COMMUNICATION, VOL 2(2012)

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摘要
In order to model normal behaviors accurately and improve the performance of intrusion detection, a heuristic genetic neural network (HGNN) is presented. The crossover operator based on generated subnet is adopted considering the relationship between genotype and phenotype. An adaptive mutation rate is applied, and the mutation type is selected heuristically from weight adaptation, node deletion and node addition. When the population is not evolved continuously for many generations. in order to jump from the local optima and extend the search space, the mutation rate will be increased and the mutation type will be changed. Experimental results with the KDD-99 dataset show that the HGNN achieves better detection performance in terms of detection rate and false positive rate.
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关键词
intrusion detection,neural network,genetic algorithm,mutation operator
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