Semi-supervised intrusion detection method based on depth generation model
A technology for generating models and intrusion detection, applied in character and pattern recognition, instruments, electrical components, etc., can solve the problems of high computational complexity of model time, a large number of labeled samples, etc., to improve detection accuracy, shorten calculation time, The effect of reducing the need for prior knowledge
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[0067] In order to verify the effect of this method, the inventors designed corresponding embodiments. On the one hand, the influence of different parameters on the model detection effect was experimentally designed. Machine (LapSVM) intrusion detection algorithm, fusion intrusion detection algorithm based on semi-supervised, and semi-supervised deep neural network intrusion detection algorithm (SS-DNN) were compared.
[0068] The intrusion detection dataset uses NSL-KDD, 20% of which is used as the training set, and 20% of the data is randomly selected from NSL-KDD as the test set.
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