Université Blida 1

Adversarial attacks detection based on an ontology of cyber threat

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dc.contributor.author Yahiaoui, Abdel Madjid
dc.contributor.author Ykrelef, Imad Eddine
dc.contributor.author Chachoua, Soraya (promotrice)
dc.date.accessioned 2023-11-05T13:33:41Z
dc.date.available 2023-11-05T13:33:41Z
dc.date.issued 2023-07
dc.identifier.uri https://di.univ-blida.dz/jspui/handle/123456789/26105
dc.description ill., Bibliogr. Cote:ma-004-986 fr_FR
dc.description.abstract Machine learning has been used in the field of cybersecurity to predict trends in cyberattacks. However, adversaries can inject malicious data into the dataset during training and testing to cause disruption and predict false narratives. It has become difficult to analyze and predict correlations of cyberattacks due to their fuzzy nature and lack of understanding of the nature of threats. We use our model to create a cyber threat ontology and use its rules to detect adversarial machine learning attacks. Keywords: Cyber security, cyber attacks, cyber defense, machine learning, adversary attacks, cyber threat ontology. fr_FR
dc.language.iso en fr_FR
dc.publisher Université Blida 1 fr_FR
dc.subject Cyber security fr_FR
dc.subject cyber attacks fr_FR
dc.subject cyber defense fr_FR
dc.subject machine learning fr_FR
dc.subject adversary attacks fr_FR
dc.subject cyber threat ontology fr_FR
dc.title Adversarial attacks detection based on an ontology of cyber threat fr_FR
dc.type Thesis fr_FR


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