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Neuro-symbolic ai for cloud intrusion detection: A hybrid intelligence approach

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  • Neuro-symbolic Ai For Cloud Intrusion Detection: A Hybrid Intelligence Approach
  • Neuro-symbolic ai for cloud intrusion detection: A hybrid intelligence approach

Shraddhaben R. Gajjar *

California, USA.
 
Research Article
GSC Advanced Research and Reviews, 2025, 22(02), 142-144.
Article DOI: 10.30574/gscarr.2025.22.2.0049
DOI url: https://doi.org/10.30574/gscarr.2025.22.2.0049
Received on 03 January 2025; revised on 15 February 2025; accepted on 18 February 2025
 
As cloud computing becomes more prevalent, ensuring robust cybersecurity is an ongoing challenge. Traditional intrusion detection systems (IDS) often struggle to keep pace with emerging cyber threats due to their reliance on static rule-based mechanisms. Neuro-Symbolic AI presents a hybrid intelligence approach that merges deep learning (neural networks) with symbolic reasoning, offering enhanced accuracy, explainability, and adaptability in intrusion detection. This paper investigates the role of Neuro-Symbolic AI in cloud security, detailing its application in threat detection, real-time response, and compliance management. Additionally, we explore its role in proactive threat intelligence, real-world implementation challenges, and emerging trends in AI-driven security models.
 
Neuro-Symbolic AI; Cloud Security; Intrusion Detection; Hybrid Intelligence; Cyber Threats; Threat Intelligence; AI-driven Security
 
https://gscarr.gsconlinepress.com/sites/default/files/fulltext_pdf/GSCARR-2025-…

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Shraddhaben R. Gajjar. Neuro-symbolic ai for cloud intrusion detection: A hybrid intelligence approach. GSC Advanced Research and Reviews, 2025, 22(2), 142-144. Article DOI: https://doi.org/10.30574/gscarr.2025.22.2.0049

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