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INTRUSION RESPONSE THROUGH DEEP PACKET INSPECTION USING MULTI-AGENT SYSTEMS

dc.contributor.advisorSohan Gyawali
dc.contributor.authorWilliams, James Alan
dc.contributor.committeeMemberChou Te-Shun
dc.contributor.committeeMemberYang Biwu
dc.contributor.departmentTechnology Systems
dc.date.accessioned2026-06-16T19:25:46Z
dc.date.created2026-05
dc.date.issued2026-05
dc.date.submittedMay 2026
dc.date.updated2026-06-09T18:09:45Z
dc.description.abstractAs cyber threats continue to increase in both sophistication and frequency, alongside the growing reliance on cloud-based data storage and networked systems, the need for robust and adaptive security solutions has become increasingly critical. Recent advancements in artificial intelligence (AI) have demonstrated significant potential in automating complex tasks and enabling dynamic, context-aware decision-making, making AI a natural fit for modern cybersecurity applications. By integrating AI-driven techniques into cybersecurity systems, organizations can proactively identify and intercept potential attacks, such as network-based intrusions, before they compromise devices, services, or access points. This thesis proposes a multi-agent intrusion response architecture that integrates LLM-assisted reasoning with traditional classification models to detect and respond to malicious network traffic.
dc.format.mimetypeapplication/pdf
dc.identifier.urihttp://hdl.handle.net/10342/14713
dc.language.isoEnglish
dc.publisherEast Carolina University
dc.subjectInformation Technology
dc.titleINTRUSION RESPONSE THROUGH DEEP PACKET INSPECTION USING MULTI-AGENT SYSTEMS
dc.typeMaster's Thesis
dc.type.materialtext
thesis.degree.collegeCollege of Engineering and Technology
thesis.degree.grantorEast Carolina University
thesis.degree.nameMaster of Science
thesis.degree.programMS-Information and Cybersecurity Technology

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