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Using AI to face covert attacks in IoT and softwarized scenarios: challenges and opportunities

Conference Paper
Publication Date:
2023
abstract:
Recently, the number of attacks aiming at breaching networked and softwarized environments has been growing exponentially. In particular, information hiding methods and covert attacks have been proven to be able to elude traditional detection systems and exfiltrate sensitive data without producing visible network flows or data exchanges. In this context, Artificial Intelligence techniques can play a key role in detecting these new emerging attacks, owing to their capability of quickly processing huge amounts of data without the necessity of expert intervention. In this work, we discuss the main challenges to face covert attacks in IoT and softwarized environments and we describe some preliminary results obtained by adopting Deep Learning architectures.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
Stealthy Malware; stegomalware; container security; covert channels; evolving threats; AI; cybersecurity; security
List of contributors:
Zuppelli, Marco; Liguori, Angelica; Manco, Giuseppe; Caviglione, Luca; Comito, Carmela; Guarascio, Massimo; Cambiaso, Enrico; Repetto, Matteo
Authors of the University:
CAMBIASO ENRICO
CAVIGLIONE LUCA
COMITO CARMELA
GUARASCIO MASSIMO
MANCO GIUSEPPE
REPETTO MATTEO
ZUPPELLI MARCO
Handle:
https://iris.cnr.it/handle/20.500.14243/434723
Book title:
Proceedings of the Italia Intelligenza Artificiale - Thematic Workshops co-located with the 3rd CINI National Lab AIIS Conference on Artificial Intelligence (Ital IA 2023)
Published in:
CEUR WORKSHOP PROCEEDINGS
Series
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URL

https://www.ital-ia2023.it/workshop/ai-per-cybersecurity
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