A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology

Although Vehicle Ad Hoc Network (VANETs) as a new technology is being used in wide range of applications to improve the driving experience as well as safety, it is vulnerable to various type of network attacks. Literature studies have revealed several reliable approaches based on intrusion detection...

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Main Authors: Liang, Junwei, Ma, Maode, Muhammad Sadiq, Yeung, Kai-Hau
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/143596
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1435962021-01-29T02:38:24Z A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology Liang, Junwei Ma, Maode Muhammad Sadiq Yeung, Kai-Hau School of Electrical and Electronic Engineering Engineering::Electrical and electronic engineering Vehicle Ad Hoc Networks Intrusion Detection System Although Vehicle Ad Hoc Network (VANETs) as a new technology is being used in wide range of applications to improve the driving experience as well as safety, it is vulnerable to various type of network attacks. Literature studies have revealed several reliable approaches based on intrusion detection system (IDS), to protect VANETs against attacks. However, by those solutions, the overheads of IDSs are serious which cause too long detection time, especially when the number of vehicles increases. In this paper, we propose a novel filter model based hidden Markov model (HMM) (FM-HMM) for IDS to reduce the overhead and time for detection without impairing detection rate. To the best of our knowledge, this is the first work in the literature to model the state pattern of each vehicle in VANETs as a HMM to quickly filter the messages from the vehicles instead of detecting these messages. The FM-HMM consists of three modules, i.e., schedule, filter and update. In the schedule module, Baum–Welch algorithm is used to produce a HMM and its parameters for each neighbor vehicle. In the filter module, multiple HMMs are used with their parameters to forecast the future states of neighbor vehicles with which the messages from them are filtered. In the update module, a timeliness method is used to update HMMs and their parameters. Experiments show that the IDS with FM-HMM has a better performance in terms of detection rate, detection time and overhead. Accepted version 2020-09-14T01:49:43Z 2020-09-14T01:49:43Z 2019 Journal Article Liang, J., Ma, M., Muhammad Sadiq, & Yeung, K.-H. (2019). A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology. Knowledge-Based Systems, 163, 611–623. doi:10.1016/j.knosys.2018.09.022 0950-7051 https://hdl.handle.net/10356/143596 10.1016/j.knosys.2018.09.022 163 611 623 en Knowledge-Based Systems © 2018 Elsevier B.V. All rights reserved. This paper was published in Knowledge-Based Systems and is made available with permission of Elsevier B.V. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Vehicle Ad Hoc Networks
Intrusion Detection System
spellingShingle Engineering::Electrical and electronic engineering
Vehicle Ad Hoc Networks
Intrusion Detection System
Liang, Junwei
Ma, Maode
Muhammad Sadiq
Yeung, Kai-Hau
A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
description Although Vehicle Ad Hoc Network (VANETs) as a new technology is being used in wide range of applications to improve the driving experience as well as safety, it is vulnerable to various type of network attacks. Literature studies have revealed several reliable approaches based on intrusion detection system (IDS), to protect VANETs against attacks. However, by those solutions, the overheads of IDSs are serious which cause too long detection time, especially when the number of vehicles increases. In this paper, we propose a novel filter model based hidden Markov model (HMM) (FM-HMM) for IDS to reduce the overhead and time for detection without impairing detection rate. To the best of our knowledge, this is the first work in the literature to model the state pattern of each vehicle in VANETs as a HMM to quickly filter the messages from the vehicles instead of detecting these messages. The FM-HMM consists of three modules, i.e., schedule, filter and update. In the schedule module, Baum–Welch algorithm is used to produce a HMM and its parameters for each neighbor vehicle. In the filter module, multiple HMMs are used with their parameters to forecast the future states of neighbor vehicles with which the messages from them are filtered. In the update module, a timeliness method is used to update HMMs and their parameters. Experiments show that the IDS with FM-HMM has a better performance in terms of detection rate, detection time and overhead.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Liang, Junwei
Ma, Maode
Muhammad Sadiq
Yeung, Kai-Hau
format Article
author Liang, Junwei
Ma, Maode
Muhammad Sadiq
Yeung, Kai-Hau
author_sort Liang, Junwei
title A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
title_short A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
title_full A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
title_fullStr A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
title_full_unstemmed A filter model for intrusion detection system in Vehicle Ad Hoc Networks : a hidden Markov methodology
title_sort filter model for intrusion detection system in vehicle ad hoc networks : a hidden markov methodology
publishDate 2020
url https://hdl.handle.net/10356/143596
_version_ 1690658425031098368