DDoS Attack Detection Using Machine Learning Techniques in SDN

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Details

Software Defined Networks (SDN) paradigm was introduced to overcome the limitations of the traditional network. It becomes a promising network architecture that provide network operators more control over the network infrastructure. The controller also called as the operating system of the SDN which has the centralized control over the network. Despite all its capabilities, introduction of various architectural entities of SDN poses many security threats. Among many such security threats, Distributed Denial of Services (DDoS) is a rapidly growing attack. This targets the availability of the network, by flooding the controller with spoofed packets. Therefore, it is important to design a robust attack detection mechanism to prevent the control plane DDoS attack. In this work, we have used Machine Learning techniques such as Naive Bayes, Random Forest, Multilayer Perceptron and Support Vector Machines to classify and predict DDoS attacks like ICMP-Echo, Smurf, TCP SYN, and HTTP flood on a self generated dataset. Experimental results with proper analysis have been presented in this work.

Autorentext

Sonali Patro is currently working as a data engineer at WhiteklayTechnologies Pvt Ltd, Pune, India. She competed her B.tech in ComputerScience and Engg. from NIT, Rourkela, India in 2018. Kshira SagarSahoo is currently working as an Assistant Professor at MadanapalleInstitute of Technology and Science, AP, India.

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Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783659956706
    • Anzahl Seiten 64
    • Genre Allgemein & Lexika
    • Herausgeber LAP LAMBERT Academic Publishing
    • Gewicht 113g
    • Größe H220mm x B150mm x T4mm
    • Jahr 2018
    • EAN 9783659956706
    • Format Kartonierter Einband
    • ISBN 3659956708
    • Veröffentlichung 12.09.2018
    • Titel DDoS Attack Detection Using Machine Learning Techniques in SDN
    • Autor Sonali Patro Polaki , Kshira Sagar Sahoo , Bibhudatta Sahoo
    • Sprache Englisch

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