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dc.contributor.advisorBhilare, Shruti
dc.contributor.authorSarvaiya, Maulik Karshanbhai
dc.date.accessioned2024-08-22T05:21:16Z
dc.date.available2024-08-22T05:21:16Z
dc.date.issued2023
dc.identifier.citationSarvaiya, Maulik Karshanbhai (2023). Investigating Robustness of Face Recognition System against Adversarial Attacks. Dhirubhai Ambani Institute of Information and Communication Technology. ix, 38 p. (Acc. # T01111).
dc.identifier.urihttp://drsr.daiict.ac.in//handle/123456789/1170
dc.description.abstractFacial Recognition (FR) systems based on deep neural networks (DNNs) are widelyused in critical applications such as surveillance and access control necessitat-ing their reliable working. Recent research has highlighted the vulnerability ofDNNs to adversarial attacks, which involve adding imperceptible perturbationsto the original image. The presence of these adversarial attacks raises seriousconcerns about the security and robustness of deep neural networks. As a re-sult, researchers are actively exploring and developing strategies to strengthenthe DNNs against such threats. Additionally, the object used should look natu-ral and not draw undue attention. Attacks are carried out in white-box targetedas well as untargeted settings on Labeled Faced in Wild (LFW) dataset. Attacksuccess rate of 97.76% and 91.78% are achieved in untargeted and targeted set-tings, respectively demonstrating the high vulnerability of the FR systems to suchattacks. The attacks will be evaluated in the digital domain to optimize the adver-sarial pattern, its size and location on the face.
dc.publisherDhirubhai Ambani Institute of Information and Communication Technology
dc.subjectFace Recognition
dc.subjectAdversarial Attacks
dc.subjectSecurity
dc.subjectDeep neural networks
dc.classification.ddc006.37 SAR
dc.titleInvestigating Robustness of Face Recognition System against Adversarial Attacks
dc.typeDissertation
dc.degreeM. Tech
dc.student.id202111025
dc.accession.numberT01111


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