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LLM in the Shell: Generative Honeypots. (arXiv:2309.00155v1 [cs.CR])
cs.CR updates on arXiv.org arxiv.org
Honeypots are essential tools in cybersecurity. However, most of them (even
the high-interaction ones) lack the required realism to engage and fool human
attackers. This limitation makes them easily discernible, hindering their
effectiveness. This work introduces a novel method to create dynamic and
realistic software honeypots based on Large Language Models. Preliminary
results indicate that LLMs can create credible and dynamic honeypots capable of
addressing important limitations of previous honeypots, such as deterministic
responses, lack of adaptability, etc. We evaluated …
attackers cybersecurity discernible dynamic generative high honeypots human language language models large llm novel shell software tools work