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Cited 14 time in webofscience Cited 22 time in scopus
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Ransomware detection using machine learning algorithms

Authors
Bae, Seong IlLee, Gyu BinIm, Eul Gyu
Issue Date
Sep-2020
Publisher
WILEY
Keywords
machine learning; malware analysis; malware detection; network security; ransomware detection
Citation
CONCURRENCY AND COMPUTATION-PRACTICE & EXPERIENCE, v.32, no.18, pp.1 - 11
Indexed
SCIE
SCOPUS
Journal Title
CONCURRENCY AND COMPUTATION-PRACTICE & EXPERIENCE
Volume
32
Number
18
Start Page
1
End Page
11
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/145204
DOI
10.1002/cpe.5422
ISSN
1532-0626
Abstract
The number of ransomware variants has increased rapidly every year, and ransomware needs to be distinguished from the other types of malware to protect users' machines from ransomware-based attacks. Ransomware is similar to other types of malware in some aspects, but other characteristics are clearly different. For example, ransomware generally conducts a large number of file-related operations in a short period of time to lock or to encrypt files of a victim's machine. The signature-based malware detection methods, which have difficulties to detect zero-day ransomware, are not suitable to protect users' files against the attacks caused by risky unknown ransomware. Therefore, a new protection mechanism specialized for ransomware is needed, and the mechanism should focus on ransomware-specific operations to distinguish ransomware from other types of malware as well as benign files. This paper proposes a ransomware detection method that can distinguish between ransomware and benign files as well as between ransomware and malware. The experimental results show that our proposed method can detect ransomware among malware and benign files.
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