Trends in deep learning methodologies : algorithms, applications, and systems

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Détails bibliographiques
Auteur principal: Piuri, Vincenzo (1960-....). (Directeur de la publication)
Autres auteurs: Srivastava, Rajshree (19..-....). (Directeur de la publication), Raj, Sandeep (19..-....)., Genovese, Angelo (1985-....).
Support: E-Book
Langue: Anglais
Publié: London ; San Diego (Calif.) ; Cambridge (Mass.) : Academic Press : Elsevier.
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Autres localisations: Voir dans le Sudoc
Résumé: "Trends in deep learning methodologies [...] covers deep learning approaches such as neural networks, deep belief networks, recurrent neural networks, convolutional neural networks, deep auto-encoder, and deep generative networks, which have emerged as powerful computational models. Chapters elaborate on these models which have shown significant success in dealing with massive data for a large number of applications, given their capacity to extract complex hidden features and learn efficient representation in unsupervised settings. Chapters investigate deep learning-based algorithms in a variety of application, including biomedical and health informatics, computer vision, image processing, and more
Accès en ligne: Accès à l'E-book