A deep learning approach for intrusion detection in Internet of Things using bi-directional long short-term memory recurrent neural network

Bipraneel Roy, Hon Cheung

Research output: Chapter in Book / Conference PaperConference Paperpeer-review

146 Citations (Scopus)

Abstract

![CDATA[Internet of Things (IoT) is one of the most rapidly evolving technologies nowadays. It has its impact in various industrial sectors including logistics tracking, medical fields, automobiles and smart cities. With its immense potentiality, IoT comes with crucial security concerns that need to be addressed. In this paper, we present a novel deep learning technique for detecting attacks within the IoT network using Bi-directional Long Short-Term Memory Recurrent Neural Network (BLSTM RNN). A multi-layer Deep Learning Neural Network is trained using a novel benchmark data set: UNSWNB15. This paper focuses on the binary classification of normal and attack patterns on the IoT network. The experimental outcomes show the efficiency of our proposed model with regard to precision, recall, f-1 score and FAR. Our proposed BLSTM model achieves over 95% accuracy in attack detection. The experimental outcome shows that BLSTM RNN is highly efficient for building high accuracy intrusion detection model and offers a novel research methodology.]]
Original languageEnglish
Title of host publicationProceedings of the 28th International Telecommunication Networks and Applications Conference (ITNAC), 21-23 November 2018, University of New South Wales, Sydney, Australia
PublisherIEEE
Number of pages6
ISBN (Print)9781538671771
DOIs
Publication statusPublished - 2018
EventInternational Telecommunication Networks and Applications Conference -
Duration: 21 Nov 2018 → …

Conference

ConferenceInternational Telecommunication Networks and Applications Conference
Period21/11/18 → …

Keywords

  • Internet of things
  • computer security
  • machine learning
  • neural networks (computer science)

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