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Please use this identifier to cite or link to this item: http://142.54.178.187:9060/xmlui/handle/123456789/990
Title: BotDet: A System for Real Time Botnet Command and Control Traffic Detection
Authors: Ghafir, Ibrahim
Jabbar, Sohail
Khalid, Shehzad
Jaf, Sardar
Keywords: Medical and Health Sciences
Medical Services
Command and control systems
Health Care
Cybersecurity threats
Malware attacks
Critical ultrastructure systems
Botnet C&C communications
Critical infrastructure security
Healthcare cyber attacks
Issue Date: 13-Jun-2018
Publisher: IEEE Access
Abstract: Over the past decade, the digitization of services transformed the healthcare sector leading to a sharp rise in cybersecurity threats. Poor cybersecurity in the healthcare sector, coupled with high value of patient records attracted the attention of hackers. Sophisticated advanced persistent threats and malware have significantly contributed to increasing risks to the health sector. Many recent attacks are attributed to the spread of malicious software, e.g., ransomware or bot malware. Machines infected with bot malware can be used as tools for remote attack or even cryptomining. This paper presents a novel approach, called BotDet, for botnet Command and Control (C&C) traffic detection to defend against malware attacks in critical ultrastructure systems. There are two stages in the development of the proposed system: 1) we have developed four detection modules to detect different possible techniques used in botnet C&C communications and 2) we have designed a correlation framework to reduce the rate of false alarms raised by individual detection modules. Evaluation results show that BotDet balances the true positive rate and the false positive rate with 82.3% and 13.6%, respectively. Furthermore, it proves BotDet capability of real time detection.
URI: http://142.54.178.187:9060/xmlui/handle/123456789/990
ISSN: 2169-3536
Appears in Collections:Journals

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