Machine Learning and Deep Learning Methods for Cybersecurity
Методы машинного обучения и глубокого обучения для кибербезопасности
2018-01-01
SCID: 54.1/jjjwxfvh
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cybersecurity challengesdeep learningintrusion detectionmachine learningnetwork datasets
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Abstract (AI)
With the development of the Internet, cyber-attacks are changing rapidly and the cyber security situation is not optimistic. This survey report describes key literature surveys on machine learning (ML) and deep learning (DL) methods for network analysis of intrusion detection and provides a brief tutorial description of each ML/DL method. Papers representing each method were indexed, read, and summarized based on their temporal or thermal correlations. Because data are so important in ML/DL methods, we describe some of the commonly used network datasets used in ML/DL, discuss the challenges of using ML/DL for cybersecurity and provide suggestions for research directions.
Key Findings
1
Discusses practical challenges of applying ML/DL to cybersecurity and offers suggestions for future research directions.
2
Identifies and describes commonly used network datasets that are important for ML/DL cybersecurity research.
3
Provides brief tutorial descriptions and summaries of representative papers for each ML/DL method indexed by temporal or thematic correlations.
4
Survey compiles key literature on ML and DL methods applied to network intrusion detection and analysis.
Research Object
Application of machine learning and deep learning methods to network-based cybersecurity (intrusion detection)
Research Subject
Survey of ML/DL methods, datasets, challenges, and research directions for network intrusion detection and cybersecurity analysis
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2018-01-01
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