Suggested Cyber-Security Strategy That Maximizes Automated Detection of Internet of Things Attacks Using Machine Learning

Author:

Dhabliya Dharmesh1ORCID,Pandey Pratik2ORCID,Agarwal Varsha3,Gobi N.4,Dhablia Anishkumar5,Kumar Jambi Ratna Raja6ORCID,Gupta Ankur7ORCID,Pramanik Sabyasachi8ORCID

Affiliation:

1. Vishwakarma Institute of Information Technology, India

2. Vivekananda Global University, India

3. ATLAS SkillTech University, India

4. Jain University, India

5. Altimetrik India Pvt. Ltd., India

6. Genba Sopanrao Moze College of Engineering, India

7. Vaish College of Engineering, India

8. Haldia Institute of Technology, India

Abstract

The world is experiencing an unparalleled digital revolution because of the advancement of computer systems and the internet. This change is made even more noticeable by the fact that the internet of things is opening up new business options. However, the rise of cyberattacks has severely harmed system and data security. It is true that computer intrusion detection systems are automatically activated. However, due to its conceptual flaws, the security chain is insufficient to counter such attacks. It prevents the full potential of machine learning from being realized. Therefore, a new framework is required to properly safeguard the IT environment. The goal in this regard is to use machine learning methods to build and execute a new strategy for cyber-security. The goal is to improve and maximize the identification of harmful assaults and intrusions in the internet of things. Following the application of this novel strategy on the Weka platform, the authors get a final model that is reviewed and evaluated for performance.

Publisher

IGI Global

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