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Back Propagation Algorithm-Based Intelligent Model for Botnet Detection

机译:基于传播算法的僵尸网络检测智能模型

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摘要

The ever-increasing growth of network computers and the internet of things makes botnet recognition become more difficult and it is making it all the more less difficult for intruders and attackers to propagate botnet infections. The unified propagation character of botnet floods warmsthrough different botnet environment and clients the network security. To conquer the down sides in determining the botnet, we propose a back-propagation algorithm for botnet recognition. The focus of this study is a proposed back propagation algorithm in for training the sensor leveragingthe machine learning techniques, which will keep an eye on attributes of the identified or recognized traffic flow. For every identified attribute recognized, it quickly identifies, which will include nine attributes used and identify it altogether. Every time the traffic is determined, itsflow is tracked and weighed against the set of attributes within the feature set for the event of address within the network route.
机译:网络计算机的不断增长和内容互联网使僵尸网络识别变得更加困难,并且侵入者和攻击者宣传僵尸网感染的血液和攻击者的难度变得更少。 僵尸网络的统一传播字符泛滥热烈的僵尸网络环境和客户端网络安全。 为了征服下方在确定僵尸网络时,我们提出了一种用于僵尸网络识别的背传播算法。 本研究的重点是用于训练机器学习技术的传感器的提出的回波算法,这将密切关注所识别或识别的业务流量的属性。 对于每个识别的属性,它很快识别,它将包括使用的九个属性并完全识别。 每次如何确定流量时,都会跟踪其流并按在网络路由中的地址集中的功能集中的一组属性中称重。

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