Fingerprint Recognition Using a Transfer Learning Method

dc.contributor.authorAssouma, Abdoul K.
dc.contributor.authorDJARA, TAÏROU
dc.contributor.authorSANYA, MAX FREJUS O.
dc.contributor.authorSOBABE, Abdou-Aziz
dc.contributor.authorBLOCHAOU, Blaise
dc.date.accessioned2026-06-02T16:06:57Z
dc.date.available2026-06-02T16:06:57Z
dc.date.issued2023
dc.description.abstractIndividuals’ recognition has been the major concern of many computer science scholars. This paper highlights the development of a biometric fingerprint recognition system using an artificial intelligence method. The methodology used is structured into three main steps: fingerprint image acquisition, feature extraction and comparison or matching. Firstly, we use non-contact fingerprint images for training the recognition model to allow the developed system to work without contact. Secondly, we used a database of nineteen individuals each having fifteen fingerprint images acquired without contact. To perform the transfer learning, we have exploited the MobileNets model while adapting its architecture to the new task of contactless fingerprint classification. After training the new model obtained, we performed it evaluation through a confusion matrix. This evaluation reveals that the developed method confuses one individual out of 19, i.e. a confusion rate of 5.26%. This rate testifies to the efficiency of the method used for non-contact fingerprint recognition.
dc.identifier.doi10.20533/ijmip.2042.4647.2023.0069
dc.identifier.otherBECDB-16884
dc.identifier.urihttps://dspace.uac.bj/handle/123456789/14115
dc.language.isofr
dc.relation.ispartofInternational Journal of Multimedia and Image Processing (IJMIP)
dc.subjectbiometrics
dc.subjectrecognition Fingerprints
dc.subjectcontactless
dc.subjectartificial intelligence
dc.subjecttransfer learning
dc.titleFingerprint Recognition Using a Transfer Learning Method
dc.typeArticle

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