MRI
MRI India Journals Vol. 15 No. 1S (2026): Special Issue on Cognition, Human and Artificial Intelligence

AI-Driven Cyber Defense: Enhancing Data Security and Securing Human and Non-Human Identities Against Modern Cyber Attacks

Authors

  • Prabhudas Borkar Global Lead Security Architect (Senior Manager) ATOS Global IT Services and Solutions India Ltd [GITSS] PUNE, India

DOI:

https://doi.org/10.65521/ijaece.v15i1S.1373

Keywords:

Artificial Intelligence Cyber Defense Data Security Identity Management Machine Learning Threat Detection Human Identities Non-Human Identities Zero-Day Exploits Behavioral Analytics

Abstract

The rise of sophisticated cyber threats has driven the need for defense mechanisms to evolve beyond traditional rule-based systems. This study presents a comprehensive analysis of artificial intelligence-driven cyber defense systems, focusing on their application to enhance data security and protect human and non-human identities. We examine the integration of machine learning algorithms, deep learning architectures, and behavioral analytics to create adaptive defense mechanisms that can detect and mitigate advanced, persistent threats, zero-day exploits, and identity-based attacks. This research explores various AI techniques, including supervised and unsupervised learning, neural networks, and anomaly detection systems, demonstrating their effectiveness in real-time threat identification and response. Furthermore, we address the unique challenges of securing nonhuman identities, such as IoT devices, service accounts, and API keys, which have become critical attack vectors in modern cyber infrastructure. Our analysis reveals that AI-driven systems can reduce detection time by 73% and false-positive rates by 68% compared to traditional methods. The paper concludes with recommendations for implementing robust AI-based cyber defense frameworks and discusses future directions for adaptive security systems.

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Published

2026-01-19

How to Cite

Borkar , P. (2026). AI-Driven Cyber Defense: Enhancing Data Security and Securing Human and Non-Human Identities Against Modern Cyber Attacks. International Journal on Advanced Electrical and Computer Engineering, 15(1S), 325–339. https://doi.org/10.65521/ijaece.v15i1S.1373

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