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Risk mitigation approach to cyber threat using ai-driven models

Printed Book
SR 208
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SR12Per Month/24 months
Author:Olanrewaju, Jesufemi
Date of Publication: 2025
Book classification:Computer & Technology,English Books,
No. of pages:76 Pages
Format:Paperback

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About this Product

This systematic review evaluates the effectiveness of AI-driven models in mitigating evolving cyber threats, focusing on machine learning techniques like supervised, unsupervised, and deep learning. Deep learning excels in detecting complex threats like APTs and zero-day vulnerabilities, while supervised learning is effective for known threats but struggles with novel attacks. Unsupervised learning adapts well to dynamic environments but has higher false positive rates. The review proposes a multi-layered framework combining AI models with traditional security measures for enhanced threat detection and response. Challenges such as data quality, algorithmic bias, and adversarial attacks must be addressed for optimal implementation. A hybrid approach is recommended for robust cybersecurity.
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Specifications

SKU9786208432416
Manufacturer Number9786208432416
year published2025
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