Detection of ransomware attacks using federated learning based on the CNN model

Fuente: arXiv
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Main Authors: Nguyen, Hong-Nhung, Nguyen, Ha-Thanh, Lescos, Damien
Format: Preprint
Published: 2024
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author Nguyen, Hong-Nhung
Nguyen, Ha-Thanh
Lescos, Damien
author_facet Nguyen, Hong-Nhung
Nguyen, Ha-Thanh
Lescos, Damien
contents Computing is still under a significant threat from ransomware, which necessitates prompt action to prevent it. Ransomware attacks can have a negative impact on how smart grids, particularly digital substations. In addition to examining a ransomware detection method using artificial intelligence (AI), this paper offers a ransomware attack modeling technique that targets the disrupted operation of a digital substation. The first, binary data is transformed into image data and fed into the convolution neural network model using federated learning. The experimental findings demonstrate that the suggested technique detects ransomware with a high accuracy rate.
format Preprint
id arxiv_https___arxiv_org_abs_2405_00418
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Detection of ransomware attacks using federated learning based on the CNN model
Nguyen, Hong-Nhung
Nguyen, Ha-Thanh
Lescos, Damien
Cryptography and Security
Artificial Intelligence
Computing is still under a significant threat from ransomware, which necessitates prompt action to prevent it. Ransomware attacks can have a negative impact on how smart grids, particularly digital substations. In addition to examining a ransomware detection method using artificial intelligence (AI), this paper offers a ransomware attack modeling technique that targets the disrupted operation of a digital substation. The first, binary data is transformed into image data and fed into the convolution neural network model using federated learning. The experimental findings demonstrate that the suggested technique detects ransomware with a high accuracy rate.
title Detection of ransomware attacks using federated learning based on the CNN model
topic Cryptography and Security
Artificial Intelligence
url https://arxiv.org/abs/2405.00418