基于移动销售员非确定性多项式难题tsp - np技术的集中式僵尸网络检测

V. Kebande, Nickson M. Karie, A. Ikuesan, A. Al-Ghushami, H. Venter
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引用次数: 1

摘要

僵尸网络在网络空间中构成的威胁每天都在持续增长,鉴于僵尸网络开发人员每天都在不断改变传播和攻击技术,检测或渗透僵尸网络变得非常困难。目前,这些攻击大多集中在窃取计算能量、窃取个人信息和分布式拒绝服务(DDoS)攻击上。在本文中,作者提出了一种新技术,该技术使用基于旅行销售人员(TSP)的非确定性多项式时间困难问题(NP-Hard Problem),该技术描述了给定的bot bj能够访问网络环境NE上的每个主机,然后通过最优地最小化被攻击或可能被攻击的主机,以指令(命令)的形式返回到botmaster。鉴于bj是一段恶意代码,基于组合优化中的TSP-NP难题,提出了一种有效的僵尸网络检测方法。值得注意的是,本研究的重点基本上集中在集中式僵尸网络架构上。这种整体方法表明,僵尸网络检测的准确性可以在一定程度上提高,并可能减少误报的机会。然而,本文也对其可能的适用性和实施进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detecting Centralized Architecture-Based Botnets using Travelling Salesperson Non-Deterministic Polynomial-Hard problem-TSP-NP Technique
The threats posed by botnets in the cyber-space continues to grow each day and it has become very hard to detect or infiltrate bots given that the botnet developers each day keep changing the propagation and attack techniques. Currently, most of these attacks have been centered on stealing computing energy, theft of personal information and Distributed Denial of Service (DDoS attacks). In this paper, the authors propose a novel technique that uses the Non-Deterministic Polynomial-Time Hardness (NP-Hard Problem) based on the Traveling Salesperson Person (TSP) that depicts that a given bot, bj, is able to visit each host on a network environment, NE, and then it returns to the botmaster in form of instruction(command) through optimal minimization of the hosts that are or may be attacked. Given that bj represents a piece of malicious code and based on TSP-NP Hard Problem which forms part of combinatorial optimization, the authors present an effective approach for the detection of the botnet. It is worth noting that the concentration of this study is basically on the centralized botnet architecture. This holistic approach shows that botnet detection accuracy can be increased with a degree of certainty and potentially decrease the chances of false positives. Nevertheless, a discussion on the possible applicability and implementation has also been given in this paper.
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