Adversarial Attacks against Windows PE Malware Detection: A Survey of the State-of-the-Art
Xiang Ling, Lingfei Wu, Jiangyu Zhang, Zhenqing Qu, Wei Deng, Xiang, Chen, Yaguan Qian, Chunming Wu, Shouling Ji, Tianyue Luo, Jingzheng Wu,, Yanjun Wu

TL;DR
This survey reviews the latest adversarial attack methods and defenses against Windows PE malware detection using ML and DL, highlighting challenges and future research directions in this evolving security domain.
Contribution
It provides a comprehensive categorization of adversarial attacks and defenses specific to Windows PE malware detection, addressing unique challenges and offering a resource list for researchers.
Findings
Categorized state-of-the-art adversarial attacks and defenses.
Identified three unique challenges in attacking Windows PE malware detection.
Highlighted future research directions and opportunities.
Abstract
Malware has been one of the most damaging threats to computers that span across multiple operating systems and various file formats. To defend against ever-increasing and ever-evolving malware, tremendous efforts have been made to propose a variety of malware detection that attempt to effectively and efficiently detect malware so as to mitigate possible damages as early as possible. Recent studies have shown that, on the one hand, existing ML and DL techniques enable superior solutions in detecting newly emerging and previously unseen malware. However, on the other hand, ML and DL models are inherently vulnerable to adversarial attacks in the form of adversarial examples. In this paper, we focus on malware with the file format of portable executable (PE) in the family of Windows operating systems, namely Windows PE malware, as a representative case to study the adversarial attack…
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Taxonomy
TopicsAdvanced Malware Detection Techniques · Security and Verification in Computing · Software Testing and Debugging Techniques
