2022
DOI: 10.1109/lwc.2021.3133479
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DeepSecure: Detection of Distributed Denial of Service Attacks on 5G Network Slicing—Deep Learning Approach

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Cited by 29 publications
(15 citation statements)
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“…Thus, collaborative learning for detecting inter-slicing 5G V2X attacks is not yet explored. Moreover, The authors of [11] and [12] proposed a DL-based attack detection scheme for distributed denial of service (DDoS) attacks in 5G networks. However, these schemes are centralized and are only proposed to detect DDoS attacks on the core network and consider neither the 5G New Radio (NR) attacks, including V2X and the MEC, nor V2X-NS attacks.…”
Section: Related Workmentioning
confidence: 99%
See 1 more Smart Citation
“…Thus, collaborative learning for detecting inter-slicing 5G V2X attacks is not yet explored. Moreover, The authors of [11] and [12] proposed a DL-based attack detection scheme for distributed denial of service (DDoS) attacks in 5G networks. However, these schemes are centralized and are only proposed to detect DDoS attacks on the core network and consider neither the 5G New Radio (NR) attacks, including V2X and the MEC, nor V2X-NS attacks.…”
Section: Related Workmentioning
confidence: 99%
“…Unlike the schemes above, we exploit FL, DL, and VSaS to propose collaborative learning enabling scheme for detecting inter-slicing 5G V2X attacks. VSaS is a flexible and elastic approach, supporting the 5G security concept, which consists in integrating sVNFs in the slice life cycle [12].…”
Section: Related Workmentioning
confidence: 99%
“…With more layers and neurons, the deep neural network (DNN) has a greater ability to generalize and learn when large datasets are used [6]- [8] and more complex feature mappings [9] than the typical three-layer neural network. There is currently a DNN model for the automatic classification of modulation in communication techniques [9], and the DNN structure of encoders have been implemented to minimize the difficulties of peak-average power ratio and symbol identification against Doppler frequency shift [10], [11].…”
Section: A Related Workmentioning
confidence: 99%
“…Although different attack detection systems with different architectures (centralized, distributed) and different learning methods (supervised, unsupervised, and hybrid) have been proposed, intra-slice V2X attack detection is not addressed yet. Thantharate et al [12] and Kuadey et al [13] proposed a DLbased attack detection system for Distributed Denial of Service (DDoS) attacks for 5G networks. However, these systems are (i) only designed to detect DDoS against the core network and (ii) do not consider attacks on the network access part, including V2X and the MEC.…”
Section: Related Workmentioning
confidence: 99%