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An intrusion detection system for packet and flow based networks using deep neural network approach
by
Rahman, Maqsudur
, Farhana, Kaniz
, Ahmed, Md. Tofael
in
Algorithms
/ Artificial neural networks
/ Big Data
/ Computer networks
/ Cybersecurity
/ Datasets
/ Intrusion detection systems
/ Machine learning
/ Model accuracy
/ Neural networks
2020
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An intrusion detection system for packet and flow based networks using deep neural network approach
by
Rahman, Maqsudur
, Farhana, Kaniz
, Ahmed, Md. Tofael
in
Algorithms
/ Artificial neural networks
/ Big Data
/ Computer networks
/ Cybersecurity
/ Datasets
/ Intrusion detection systems
/ Machine learning
/ Model accuracy
/ Neural networks
2020
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Do you wish to request the book?
An intrusion detection system for packet and flow based networks using deep neural network approach
by
Rahman, Maqsudur
, Farhana, Kaniz
, Ahmed, Md. Tofael
in
Algorithms
/ Artificial neural networks
/ Big Data
/ Computer networks
/ Cybersecurity
/ Datasets
/ Intrusion detection systems
/ Machine learning
/ Model accuracy
/ Neural networks
2020
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An intrusion detection system for packet and flow based networks using deep neural network approach
Journal Article
An intrusion detection system for packet and flow based networks using deep neural network approach
2020
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Overview
Study on deep neural networks and big data is merging now by several aspects to enhance the capabilities of intrusion detection system (IDS). Many IDS models has been introduced to provide security over big data. This study focuses on the intrusion detection in computer networks using big datasets. The advent of big data has agitated the comprehensive assistance in cyber security by forwarding a brunch of affluent algorithms to classify and analysis patterns and making a better prediction more efficiently. In this study, to detect intrusion a detection model has been propounded applying deep neural networks. We applied the suggested model on the latest data set available at online, formatted with packet based, flow based data and some additional metadata. The data set is labeled and imbalanced with 79 attributes and some classes having much less training samples compared to other classes. The proposed model is build using Keras and Google Tensorflow deep learning environment. Experimental result shows that intrusions are detected with the accuracy over 99% for both binary and multi-class classification with selected best features. Receiver operating characteristics (ROC) and precision-recall curve average score is also 1. The outcome implies that Deep Neural Networks offers a novel research model with great accuracy for intrusion detection model, better than some models presented in the literature.
Publisher
IAES Institute of Advanced Engineering and Science
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