Towards Agentic Honeynet Configuration

Fuente: arXiv
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Main Authors: Mirra, Federico, Boffa, Matteo, Drago, Idilio, Giordano, Danilo, Mellia, Marco
Format: Preprint
Published: 2026
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author Mirra, Federico
Boffa, Matteo
Drago, Idilio
Giordano, Danilo
Mellia, Marco
author_facet Mirra, Federico
Boffa, Matteo
Drago, Idilio
Giordano, Danilo
Mellia, Marco
contents Honeypots are deception systems that emulate vulnerable services to collect threat intelligence. While deploying many honeypots increases the opportunity to observe attacker behaviour, in practise network and computational resources limit the number of honeypots that can be exposed. Hence, practitioners must select the assets to deploy, a decision that is typically made statically despite attackers' tactics evolving over time. This work investigates an AI-driven agentic architecture that autonomously manages honeypot exposure in response to ongoing attacks. The proposed agent analyses Intrusion Detection System (IDS) alerts and network state to infer the progression of the attack, identify compromised assets, and predict likely attacker targets. Based on this assessment, the agent dynamically reconfigures the system to maintain attacker engagement while minimizing unnecessary exposure. The approach is evaluated in a simulated environment where attackers execute Proof-of-Concept exploits for known CVEs. Preliminary results indicate that the agent can effectively infer the intent of the attacker and improve the efficiency of exposure under resource constraints
format Preprint
id arxiv_https___arxiv_org_abs_2603_14122
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Towards Agentic Honeynet Configuration
Mirra, Federico
Boffa, Matteo
Drago, Idilio
Giordano, Danilo
Mellia, Marco
Cryptography and Security
Artificial Intelligence
Honeypots are deception systems that emulate vulnerable services to collect threat intelligence. While deploying many honeypots increases the opportunity to observe attacker behaviour, in practise network and computational resources limit the number of honeypots that can be exposed. Hence, practitioners must select the assets to deploy, a decision that is typically made statically despite attackers' tactics evolving over time. This work investigates an AI-driven agentic architecture that autonomously manages honeypot exposure in response to ongoing attacks. The proposed agent analyses Intrusion Detection System (IDS) alerts and network state to infer the progression of the attack, identify compromised assets, and predict likely attacker targets. Based on this assessment, the agent dynamically reconfigures the system to maintain attacker engagement while minimizing unnecessary exposure. The approach is evaluated in a simulated environment where attackers execute Proof-of-Concept exploits for known CVEs. Preliminary results indicate that the agent can effectively infer the intent of the attacker and improve the efficiency of exposure under resource constraints
title Towards Agentic Honeynet Configuration
topic Cryptography and Security
Artificial Intelligence
url https://arxiv.org/abs/2603.14122