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dc.contributor.editorJin, Andrew
dc.contributor.editorLeng, Lu
dc.date.accessioned2021-05-01T15:31:43Z
dc.date.available2021-05-01T15:31:43Z
dc.date.issued2020
dc.identifierONIX_20210501_9783039366989_615
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/68869
dc.description.abstractBiometrics, such as fingerprint, iris, face, hand print, hand vein, speech and gait recognition, etc., as a means of identity management have become commonplace nowadays for various applications. Biometric systems follow a typical pipeline, that is composed of separate preprocessing, feature extraction and classification. Deep learning as a data-driven representation learning approach has been shown to be a promising alternative to conventional data-agnostic and handcrafted pre-processing and feature extraction for biometric systems. Furthermore, deep learning offers an end-to-end learning paradigm to unify preprocessing, feature extraction, and recognition, based solely on biometric data. This Special Issue has collected 12 high-quality, state-of-the-art research papers that deal with challenging issues in advanced biometric systems based on deep learning. The 12 papers can be divided into 4 categories according to biometric modality; namely, face biometrics, medical electronic signals (EEG and ECG), voice print, and others.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues::TBX History of engineering and technologyen_US
dc.titleAdvanced Biometrics with Deep Learning
dc.typebook
oapen.identifier.doi10.3390/books978-3-03936-699-6
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783039366989
oapen.relation.isbn9783039366996
oapen.pages210
oapen.place.publicationBasel, Switzerland


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