Enhancing Intrusion Detection in IoT Botnets using Novel Pay-Offs and Matching Coin Game Comparing with Dominant Game Strategy

T.P. Anithaashri
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Abstract

To enhance the detection of attacks in the IoT botnets using Pay-offs and matching coin game method compared with dominant game strategy method. By using novel Pay-offs and matching coin game method, detection of attacks in the botnets performed using pytorch. The DDoS attacks disrupt the operations of IoT Botnets. The proposed system helps to detect the intrusion in the IoT botnets. It has been tested with several iterations of sample size 10. The performance of the Pay-offs and matching coin game method gives high accuracy than with dominant game strategy method. By using statistical tool SPSS mean accuracy of 92% for the Pay-offs and matching coin game method compared to the dominantly game strategy method, which gives 84% accuracy. On the whole process of prediction of accuracy in detection of intrusion in IoT botnets, the novel Pay-offs and matching coin game method gives significantly better performance compared with dominantly game strategy method.
利用新型报酬和匹配投币博弈与优势博弈策略比较增强物联网僵尸网络入侵检测
对比优势博弈策略方法,利用报酬匹配投币博弈方法增强对物联网僵尸网络攻击的检测能力。采用新颖的报酬和匹配投币游戏方法,利用pytorch对僵尸网络中的攻击进行检测。DDoS攻击会破坏物联网僵尸网络的运行。该系统有助于检测物联网僵尸网络中的入侵。它已经进行了几次样本大小为10的迭代测试。与优势博弈策略法相比,投币博弈法具有较高的准确率。通过使用统计工具SPSS,与占主导地位的游戏策略方法相比,支付和匹配硬币游戏方法的平均准确率为92%,准确率为84%。在物联网僵尸网络入侵检测准确度预测的整个过程中,与优势博弈策略方法相比,本文提出的报酬匹配投币博弈方法具有明显的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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