DocumentCode :
3084545
Title :
Use of an artificial neural network to detect anomalies in wireless device location for the purpose of intrusion detection
Author :
Spencer, Jared
fYear :
2005
fDate :
8-10 April 2005
Firstpage :
686
Abstract :
Summary form only given. This work proposes that wireless signals can be monitored for potential intruders based on signal-sensing, and presents a framework methodology for implementing such a system. By identifying potential threats in this way, actions could be taken early before the intruder has had the opportunity to compromise the network. On the leading edge of intrusion detection, and the focus of this research, is in the application of intelligent technology to predict patterns of anomalies that may point to deviant behavior. The specific goal is the proposal of applying an artificial neural network (ANN) or other intelligent system for the use of monitoring wireless radio signals to detect location trends. The typical wireless network user will use their device in a predictable pattern of locations. It would be possible to map the physical locations of users and train an intelligent system with existing location patterns. By developing the established usage information, it would then be possible for the intelligent system to pinpoint anomalies in wireless location.
Keywords :
neural nets; radio access networks; telecommunication security; ANN; anomaly detection; artificial neural networks; intelligent technology; intrusion detection; location trend detection; location usage information; potential threat identification; signal-sensing; wireless device location; wireless signal monitoring; wireless user location trends; Artificial intelligence; Artificial neural networks; Communication system security; Data security; Floors; Intelligent networks; Intelligent systems; Intrusion detection; Monitoring; Wireless networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
SoutheastCon, 2005. Proceedings. IEEE
Print_ISBN :
0-7803-8865-8
Type :
conf
DOI :
10.1109/SECON.2005.1423328
Filename :
1423328
Link To Document :
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