DocumentCode :
3635931
Title :
Towards self-organizing maps based Computational Intelligent System for denial of Service Attacks Detection
Author :
M.A. P?rez del Pino;P. Garc?a B?ez;P. Fern?ndez L?pez;C.P. Su?rez Ara?jo
Author_Institution :
Instituto Universitario de Ciencias y Tecnolog?as Cibern?ticas, Universidad de Las Palmas de Gran Canaria, Islas Canarias, Espa?a
fYear :
2010
fDate :
5/1/2010 12:00:00 AM
Firstpage :
151
Lastpage :
157
Abstract :
Denial of Service (DoS) attacks are some of the biggest problems for computer security. Detection and early alert of these attacks would be helpful information which could be used to make appropriate decisions in order to minimize their negative impact. This paper proposes a new approach based on SOM-type unsupervised artificial neural networks for detection of this type of attacks at an early stage. We present a SOM-based Computational Intelligent System for DoS Attacks Detection (CISDAD) and a new representation scheme for information. A study has been carried out on real traffic from a healthcare environment based on web technologies. Results show effectiveness in the detection of toxic traffic and congestion regarding abuse in communication networks.
Keywords :
"Self organizing feature maps","Intelligent systems","Computational intelligence","Competitive intelligence","Computer crime","Telecommunication traffic","Computer security","Artificial neural networks","Computational and artificial intelligence","Medical services"
Publisher :
ieee
Conference_Titel :
Intelligent Engineering Systems (INES), 2010 14th International Conference on
ISSN :
1543-9259
Print_ISBN :
978-1-4244-7650-3
Type :
conf
DOI :
10.1109/INES.2010.5483858
Filename :
5483858
Link To Document :
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