计算机与现代化 ›› 2020, Vol. 0 ›› Issue (08): 109-113.doi: 10.3969/j.issn.1006-2475.2020.08.018

• 数据库与数据挖掘 • 上一篇    下一篇

基于大数据的半分布式僵尸网络动态抑制算法

  

  1. (福建林业职业技术学院自动化工程系,福建南平353000)
  • 收稿日期:2020-02-10 出版日期:2020-08-17 发布日期:2020-08-18
  • 作者简介:刘张榕(1971-),女,福建建瓯人,副教授,硕士,研究方向:网络安全,大数据,人工智能,E-mail: 83943419@qq.com。

Dynamic Suppression Algorithm of Semi-distributed Zombie Network Based on Big Data

  1. (Automation Engineering Department, Fujian Forestry Vocational Technical College, Nanping 353000, China)
  • Received:2020-02-10 Online:2020-08-17 Published:2020-08-18

摘要: 为了提高半分布式僵尸网络的安全性,提出一种基于大数据的半分布式僵尸网络动态抑制算法。采用波特间隔均衡控制方法,进行半分布式僵尸网络的动态特征补偿,构建半分布式僵尸网络动态特征信息采样模型,利用判决均衡方法,对采集到的动态特征信息进行定量递归分析,提取半分布式僵尸网络的统计特征量;在此基础上,采用大数据寻优计算方法,获取真正的半分布式僵尸网络最优抑制参数,在嵌入式环境下,将半分布式僵尸网络的最优抑制参数与迁移负载响应结果相结合,实现半分布式僵尸网络动态抑制。仿真结果表明,采用本文方法进行半分布式僵尸网络动态抑制的效果较好,提高了抑制精度,缩短了抑制时间,且降低了网络输出误码率。

关键词: 大数据, 半分布式, 僵尸网络, 动态抑制

Abstract: In order to improve the security of semi-distributed botnet, a dynamic suppression algorithm of semi-distributed botnet based on big data is proposed. The method of baud interval equalization control is used to compensate the dynamic characteristics of the semi-distributed botnet. The sampling model of the dynamic characteristics of the semi-distributed botnet is constructed. The decision equalization method is used to analyze the collected dynamic characteristics quantitatively and recursively and extract the statistical characteristics of the semi-distributed botnet. On this basis, the big data optimization calculation method is used to achieve the true optimal suppression of the semi-distributed botnet. Under the embedded environment, the optimal inhibition parameters of the semi-distributed botnet are combined with the results of load response to realize the dynamic inhibition of the semi-distributed botnet. The simulation results show that the semi-distributed botnet dynamic suppression method has a good effect, it improves the suppression precision, shortens the suppression time, and reduces the bit error rate of network output.

Key words: big data, semi-distributed, botnet, dynamic suppression

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