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Designing an efficient security framework for detecting intrusions in virtual network of cloud computing

机译:设计一种有效的安全框架以检测云计算虚拟网络中的入侵

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摘要

Cloud computing has grown for various IT capabilities such as IoTs, Mobile Computing, Smart IT, etc. However, due to the dynamic and distributed nature of cloud and vulnerabilities existing in the current implementations of virtualization, several security threats and attacks have been reported. To address these issues, there is a need of extending traditional security solutions like firewall, intrusion detection/prevention systems which can cope up with high-speed network traffic and dynamic network configuration in the cloud. In addition, identifying feasible network traffic features is a major challenge for an accurate detection of the attacks. In this paper, we propose a hypervisor level distributed network security (HLDNS) framework which is deployed on each processing server of cloud computing. At each server, it monitors the underlying virtual machines (VMs) related network traffic to/from the virtual network, internal network and external network for intrusion detection. We have extended a binary bat algorithm (BBA) with two new fitness functions for deriving the feasible features from cloud network traffic. The derived features are applied to the Random Forest classifier for detecting the intrusions in cloud network traffic and intrusion alerts are generated. The intrusion alerts from different servers are correlated to identify the distributed attack and to generate new attack signature. For the performance and feasibility analysis, the proposed security framework is tested on the cloud network testbed at NIT Goa and using recent UNSW-NB15 and CICIDS-2017 intrusion datasets. We have performed a comparative analysis of the proposed security framework in terms of fulfilling the cloud network security needs. (C) 2019 Elsevier Ltd. All rights reserved.
机译:云计算已经发展为各种IT功能,例如IoT,移动计算,智能IT等。但是,由于云的动态和分布式特性以及当前虚拟化实现中存在的漏洞,已经报道了一些安全威胁和攻击。为了解决这些问题,需要扩展传统的安全解决方案,例如防火墙,入侵检测/预防系统,这些系统可以应对云中的高速网络流量和动态网络配置。另外,识别可行的网络流量功能是准确检测攻击的主要挑战。在本文中,我们提出了一个管理程序级别的分布式网络安全(HLDNS)框架,该框架部署在云计算的每个处理服务器上。在每台服务器上,它监视与虚拟网络,内部网络和外部网络之间的基础虚拟机(VM)相关的网络流量,以进行入侵检测。我们扩展了具有两个新的适应度函数的二进制bat算法(BBA),用于从云网络流量中导出可行的功能。派生的功能应用于随机森林分类器,以检测云网络流量中的入侵,并生成入侵警报。来自不同服务器的入侵警报相关联,以识别分布式攻击并生成新的攻击签名。为了进行性能和可行性分析,建议的安全框架已在NIT Goa的云网络测试平台上进行了测试,并使用了最新的UNSW-NB15和CICIDS-2017入侵数据集。在满足云网络安全需求方面,我们对建议的安全框架进行了比较分析。 (C)2019 Elsevier Ltd.保留所有权利。

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