Anomaly Detection from Cyber Threats via Infrastructure to Automated Vehicle

Chris van der Ploeg, Robin M.B. Smit, Alexis Siagkris-Lekkos, F.P.A. Benders, Emilia Silvas

Onderzoeksoutput: Hoofdstuk in Boek/Rapport/CongresprocedureConferentiebijdrageAcademicpeer review

6 Citaten (Scopus)
2 Downloads (Pure)

Samenvatting

Using Infrastructure-to-Vehicle (I2V) information can be of great benefit when driving autonomously in high-density traffic situations with limited visibility, since the sensing capabilities of the vehicle are enhanced by external sensors. In this research, a method is introduced to increase the vehicle's self-awareness in intersections for one of the largest foreseen challenges when using I2V communication: cyber security. The introduced anomaly detection algorithm, running on the automated vehicle, assesses the health of the I2V communication against multiple cyber security attacks. The analysis is done in a simulation environment, using cyber-attack scenarios from the Secredas Project (Cyber Security for Cross Domain Reliable Dependable Automated Systems) and provides insights into the limitations the vehicle has when facing I2V cyber attacks of different types and amplitudes and when sensor redundancy is lost. The results demonstrate that anomalies injected can be robustly detected and mitigated by the autonomous vehicle, allowing it to react more safely and comfortably and maintaining correct object tracking in intersections.
Originele taal-2Engels
Titel2021 European Control Conference (ECC)
UitgeverijInstitute of Electrical and Electronics Engineers
Pagina's1788-1794
Aantal pagina's7
ISBN van elektronische versie978-9-4638-4236-5
DOI's
StatusGepubliceerd - 3 jan. 2022
Evenement2021 European Control Conference, ECC 2021 - Virtual, Delft, Nederland
Duur: 29 jun. 20212 jul. 2021
Congresnummer: 19
https://ecc21.euca-ecc.org/

Congres

Congres2021 European Control Conference, ECC 2021
Verkorte titelECC 2021
Land/RegioNederland
StadDelft
Periode29/06/212/07/21
Internet adres

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