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A Neural Network Based User Identification for Tor Networks: Comparison Analysis of Activation Function Using Friedman Test

机译:基于神经网络的Tor网络用户识别:使用Friedman检验的激活函数的比较分析

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Due to the amount of anonymity afforded to users of the Tor infrastructure, Tor has become a useful tool for malicious users. With Tor, the users are able to compromise the non-repudiation principle of computer security. Also, the potentially hackers may launch attacks such as DDoS or identity theft behind Tor. For this reason, there are needed new systems and models to detect or identify the bad behavior users in Tor networks. In this paper, we present the application of Neural Networks (NNs) for user identification in Tor networks. We used the Back-propagation NN and constructed a Tor server, a Deep Web browser (Tor client) and a Surface Web browser. Then, the client sends the data browsing to the Tor server using the Tor network. We used Wireshark Network Analyzer to get the data and then used the Back-propagation NN to make the approximation. For evaluation we considered Number of Packets (NoP) metric and activation function. We present many simulation results considering Tor client. We analyze the data using Friedman test. From the results, we see that by using softplus activation function the system can identify Tor client.
机译:由于提供给Tor基础架构用户的匿名性很高,Tor已成为恶意用户的有用工具。使用Tor,用户可以破坏计算机安全性的不可抵赖性原则。同样,潜在的黑客可能会在Tor后面发起DDoS或身份盗窃之类的攻击。因此,需要新的系统和模型来检测或识别Tor网络中的不良行为用户。在本文中,我们介绍了神经网络(NN)在Tor网络中用于用户识别的应用。我们使用了反向传播NN,并构建了一个Tor服务器,一个Deep Web浏览器(Tor客户端)和一个Surface Web浏览器。然后,客户端使用Tor网络将数据浏览发送到Tor服务器。我们使用Wireshark Network Analyzer来获取数据,然后使用反向传播NN进行近似。为了进行评估,我们考虑了数据包数量(NoP)指标和激活功能。考虑到Tor客户,我们提出了许多仿真结果。我们使用弗里德曼检验分析数据。从结果可以看出,通过使用softplus激活功能,系统可以识别Tor客户端。

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