An Approach to Detect Fileless Malware that Maintains Persistence in Windows Environment

dc.contributor.authorAtapattu, Malmi
dc.contributor.authorJayawardena, Buddhika
dc.date.accessioned2022-02-25T03:54:00Z
dc.date.available2022-02-25T03:54:00Z
dc.date.issued2021
dc.description.abstractThe rapid enhancement of the Internet in the past few years has increasingly impacted the general public’s work and life. As a drawback, this enhancement has also led to a major increase in malicious software on the internet causing great security threats to the consumers of the internet. Currently, a new type of malware class called Fileless malware has come into action causing more destructive damages. As the name Fileless suggests, these types of malware programs are not files or executables, but a malicious activity that runs entirely in the memory, leaving the slightest evidence on the targeted host machine. Microsoft Windows is one of the most widely used operating systems both in personal desktop computers and enterprise computer systems and is highly targeted by Fileless malware. This paper provides an approach to detect fileless malware that maintains persistence in the Windows environment using Fileless malware behavioural data and deep learningbased classification models.en_US
dc.identifier.citationAtapattu Malmi, Jayawardena Buddhika (2021), An Approach to Detect Fileless Malware that Maintains Persistence in Windows Environment, International Conference on Advances in Computing and Technology (ICACT–2021) Faculty of Computing and Technology (FCT), University of Kelaniya, Sri Lanka 47-52en_US
dc.identifier.urihttp://repository.kln.ac.lk/handle/123456789/24494
dc.publisherFaculty of Computing and Technology (FCT), University of Kelaniya, Sri Lankaen_US
dc.subjectfileless malware, windows, deep learningen_US
dc.titleAn Approach to Detect Fileless Malware that Maintains Persistence in Windows Environmenten_US

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