Multivalued Classification of Computer Attacks Using Artificial Neural Networks with Multiple Outputs
O. Shelukhin,
D. Rakovsky
Abstract:Modern computer networks (CN), having a complex and often heterogeneous structure, generate large volumes of multi-dimensional multi-label data. Accounting for information about multi-label experimental data (ED) can improve the efficiency of solving a number of information security problems: from CN profiling to detecting and preventing computer attacks on CN. The aim of the work is to develop a multi-label artificial neural network (ANN) architecture for detecting and classifying computer attacks in multi-la… Show more
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