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QRASSH - A Self-Adaptive SSH Honeypot Driven by Q-Learning

机译:Qrassh - 由Q-Learning推动的自适应SSH蜜罐

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Developed for the first time in the 80s, honeypot systems research increased tremendously in the last decade. Moving from simple monitored, emulated, Internet Services, towards intelligent systems that autonomously interact with attackers, was a normal engagement in the context of higher development of artificial intelligence as science. In this paper we present a newly developed SSH self-adaptive honeypot system that uses a Deep Q-Learning algorithm in order to decide how to interact with external attackers. The honeypot system is developed in Python and integrates an existing implementation of a Reinforcement Learning algorithm that makes use of neural network (NN).
机译:在80年代首次开发,蜜罐系统研究在过去十年中越来越大。从简单的监控,模拟,互联网服务转向智能系统,旨在与攻击者自主互动,是人工智能高等教育的正常参与。在本文中,我们提出了一种新开发的SSH自适应蜜罐系统,它使用深度Q学习算法来决定如何与外部攻击者进行交互。蜜罐系统是在Python中开发的,并集成了利用神经网络(NN)的加强学习算法的现有实现。

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