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Deep learning model for deep fake face recognition and detection

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dc.rights.license CC BY eng
dc.contributor.author Suganthi, S. T. cze
dc.contributor.author Ayoobkhan, Mohamed U. A. cze
dc.contributor.author Kumar, Krishna, V. cze
dc.contributor.author Bacanin, Nebojsa cze
dc.contributor.author Kandasamy, Venkatachalam cze
dc.contributor.author Hubálovský, Štěpán cze
dc.contributor.author Trojovský, Pavel cze
dc.date.accessioned 2025-12-05T11:06:45Z
dc.date.available 2025-12-05T11:06:45Z
dc.date.issued 2022 eng
dc.identifier.issn 2376-5992 eng
dc.identifier.uri http://hdl.handle.net/20.500.12603/1473
dc.description.abstract Deep Learning is an effective technique and used in various fields of natural language processing, computer vision, image processing and machine vision. Deep fakes uses deep learning technique to synthesis and manipulate image of a person in which human beings cannot distinguish the fake one. By using generative adversarial neural networks (GAN) deep fakes are generated which may threaten the public. Detecting deep fake image content plays a vital role. Many research works have been done in detection of deep fakes in image manipulation. The main issues in the existing techniques are inaccurate, consumption time is high. In this work we implement detecting of deep fake face image analysis using deep learning technique of fisherface using Local Binary Pattern Histogram (FF-LBPH). Fisherface algorithm is used to recognize the face by reduction of the dimension in the face space using LBPH. Then apply DBN with RBM for deep fake detection classifier. The public data sets used in this work are FFHQ, 100K-Faces DFFD, CASIA-WebFace. eng
dc.format p. "Article Number: e881" eng
dc.language.iso eng eng
dc.publisher PeerJ Inc eng
dc.relation.ispartof PeerJ Computer Science, volume 8, issue: February eng
dc.subject Deep fake eng
dc.subject Fisherface eng
dc.subject LBPH eng
dc.subject DBN eng
dc.subject RBM eng
dc.subject Deep learning eng
dc.title Deep learning model for deep fake face recognition and detection eng
dc.type article eng
dc.identifier.obd 43878796 eng
dc.identifier.doi 10.7717/peerj-cs.881 eng
dc.publicationstatus postprint eng
dc.peerreviewed yes eng
dc.source.url https://peerj.com/articles/cs-881/# cze
dc.relation.publisherversion https://peerj.com/articles/cs-881/# eng
dc.rights.access Open Access eng


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