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Metamorphic malware and obfuscation: a survey of techniques, variants, and generation kits
K Brezinski, K Ferens - Security and Communication Networks, 2023 - Wiley Online Library
The competing landscape between malware authors and security analysts is an ever‐
changing battlefield over who can innovate over the other. While security analysts are …
changing battlefield over who can innovate over the other. While security analysts are …
[HTML][HTML] A dynamic MLP-based DDoS attack detection method using feature selection and feedback
M Wang, Y Lu, J Qin - Computers & Security, 2020 - Elsevier
Abstract Distributed Denial of Service (DDoS) attack is a stubborn network security problem.
Various machine learning-based methods have been proposed to detect such attacks …
Various machine learning-based methods have been proposed to detect such attacks …
[HTML][HTML] An efficient deep-learning-based detection and classification system for cyber-attacks in IoT communication networks
Q Abu Al-Haija, S Zein-Sabatto - Electronics, 2020 - mdpi.com
With the rapid expansion of intelligent resource-constrained devices and high-speed
communication technologies, the Internet of Things (IoT) has earned wide recognition as the …
communication technologies, the Internet of Things (IoT) has earned wide recognition as the …
Semi-supervised K-means DDoS detection method using hybrid feature selection algorithm
Y Gu, K Li, Z Guo, Y Wang - IEEE Access, 2019 - ieeexplore.ieee.org
Distributed denial of service (DDoS) attack is an attempt to make an online service
unavailable by overwhelming it with traffic from multiple sources. Therefore, it is necessary to …
unavailable by overwhelming it with traffic from multiple sources. Therefore, it is necessary to …
Hyperband tuned deep neural network with well posed stacked sparse autoencoder for detection of DDoS attacks in cloud
A Bhardwaj, V Mangat, R Vig - Ieee Access, 2020 - ieeexplore.ieee.org
Cloud computing has very attractive features like elastic, on demand and fully managed
computer system resources and services. However, due to its distributed and dynamic …
computer system resources and services. However, due to its distributed and dynamic …
[PDF][PDF] DDoS attack intrusion detection system based on hybridization of CNN and LSTM
ASA Issa, Z Albayrak - Acta Polytechnica Hungarica, 2023 - epa.niif.hu
A distributed denial-of-service (DDoS) attack is one of the most pernicious threats to network
security. DDoS attacks are considered one of the most common attacks among all network …
security. DDoS attacks are considered one of the most common attacks among all network …
[HTML][HTML] A novel machine learning approach for severity classification of diabetic foot complications using thermogram images
Diabetes mellitus (DM) is one of the most prevalent diseases in the world, and is correlated
to a high index of mortality. One of its major complications is diabetic foot, leading to plantar …
to a high index of mortality. One of its major complications is diabetic foot, leading to plantar …
A feature reduction based reflected and exploited DDoS attacks detection system
D Kshirsagar, S Kumar - Journal of Ambient Intelligence and Humanized …, 2022 - Springer
The hacker attempts distributed denial of service (DDoS) attacks towards network resources
to disturb or deny services. The hacker degrades the quality of service to legitimate users by …
to disturb or deny services. The hacker degrades the quality of service to legitimate users by …
DDoS attack detection with feature engineering and machine learning: the framework and performance evaluation
M Aamir, SMA Zaidi - International Journal of Information Security, 2019 - Springer
This paper applies an organized flow of feature engineering and machine learning to detect
distributed denial-of-service (DDoS) attacks. Feature engineering has a focus to obtain the …
distributed denial-of-service (DDoS) attacks. Feature engineering has a focus to obtain the …
Multi‐objective‐based feature selection for DDoS attack detection in IoT networks
In this study, the authors propose a multi‐objective optimisation‐based feature selection
(FS) method for the detection of distributed denial of service (DDoS) attacks in an internet of …
(FS) method for the detection of distributed denial of service (DDoS) attacks in an internet of …