The intrusion detection system with Learning Automata

Journal Title: International Research Journal of Applied and Basic Sciences - Year 2013, Vol 4, Issue 8

Abstract

Intrusion detection, a topic that has evolved heavily due to the rising concern for information technology security, has endured numerous architecture abstractions. All of these architecture abstractions have strengths and weaknesses with regards to various factors like efficiency, security, integrity, durability, and cost-effectiveness, to name a few. In this paper, we will attempt to describe the architecture of intrusion detection that minimizes the weaknesses of this model. Our architecture will heavily build upon the Autonomous Agents For Intrusion Detection (AAFID) architecture, which has already been implemented in the Center for Education and Research in Information Assurance and Security (CERIAS) center in Purdue University. We will, however, design a different functionality for our agents, making them rather intelligent. Such intelligent agents will seek to use tools that the field of artificial intelligence provides in order to maximize their probability of detecting intrusions.

Authors and Affiliations

Hamdollah Ghamgin*| Zanjan Branch, Islamic Azad University, Zanjan, Iran., Mohammad Taghi Jafari| Zanjan Branch, Islamic Azad University, Zanjan, Iran., morteza salari akhgar| Department of computer, Ghorveh Branch, Islamic Azad University, GHorveh, Iran

Keywords

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  • EP ID EP5577
  • DOI -
  • Views 280
  • Downloads 13

How To Cite

Hamdollah Ghamgin*, Mohammad Taghi Jafari, morteza salari akhgar (2013). The intrusion detection system with Learning Automata. International Research Journal of Applied and Basic Sciences, 4(8), 2059-2066. https://europub.co.uk/articles/-A-5577