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Deep Learning: Research and Applications De Gruyter frontiers in computational intelligence ;, v. 7./ edited by Siddhartha Bhattacharyya, Vaclav Snasel, Aboul Ella Hassanien, Satadal Saha, B. K. Tripathy.

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dc.contributor.author Bhattacharyya Siddhartha
dc.contributor.author Ella Hassanien Aboul
dc.contributor.author Saha Satadal
dc.contributor.author Snasel Vaclav
dc.contributor.author Tripathy B. K.,
dc.date.accessioned 2024-01-29T21:45:54Z
dc.date.available 2024-01-29T21:45:54Z
dc.date.issued 2020
dc.identifier.citation Deep Learning: Research and Applications De Gruyter frontiers in computational intelligence ;, v. 7. - 1 online resource (IX, 152 p.). - URL: https://libweb.kpfu.ru/ebsco/pdf/2499097.pdf
dc.identifier.isbn 9783110670929
dc.identifier.isbn 3110670925
dc.identifier.isbn 9783110670905
dc.identifier.isbn 3110670909
dc.identifier.uri https://dspace.kpfu.ru/xmlui/handle/net/179860
dc.description In English.
dc.description Includes bibliographical references and index.
dc.description.abstract This book focuses on the fundamentals of deep learning along with reporting on the current state-of-art research on deep learning. In addition, it provides an insight of deep neural networks in action with illustrative coding examples. Deep learning is a new area of machine learning research which has been introduced with the objective of moving ML closer to one of its original goals, i.e. artificial intelligence. Deep learning was developed as an ML approach to deal with complex input-output mappings. While traditional methods successfully solve problems where final value is a simple function of input data, deep learning techniques are able to capture composite relations between non-immediately related fields, for example between air pressure recordings and English words, millions of pixels and textual description, brand-related news and future stock prices and almost all real world problems. Deep learning is a class of nature inspired machine learning algorithms that uses a cascade of multiple layers of nonlinear processing units for feature extraction and transformation. Each successive layer uses the output from the previous layer as input. The learning may be supervised (e.g. classification) and/or unsupervised (e.g. pattern analysis) manners. These algorithms learn multiple levels of representations that correspond to different levels of abstraction by resorting to some form of gradient descent for training via backpropagation. Layers that have been used in deep learning include hidden layers of an artificial neural network and sets of propositional formulas. They may also include latent variables organized layer-wise in deep generative models such as the nodes in deep belief networks and deep boltzmann machines. Deep learning is part of state-of-the-art systems in various disciplines, particularly computer vision, automatic speech recognition (ASR) and human action recognition.
dc.description.tableofcontents Frontmatter -- Preface -- Contents -- List of Contributors -- 1 Deep Learning -- A State-of-the-Art Approach to Artificial Intelligence -- 2 Convolutional Neural Networks: A Bottom-Up Approach -- 3 Handwritten Digit Recognition Using Convolutional Neural Networks -- 4 Impact of Deep Neural Learning on Artificial Intelligence Research -- 5 Extraction of Common Feature of Dysgraphia Patients by Handwriting Analysis Using Variational Autoencoder -- 6 Deep Learning for Audio Signal Classification -- 7 Backpropagation Through Time Algorithm in Temperature Prediction -- Index
dc.language English
dc.language.iso en
dc.relation.ispartofseries De Gruyter Frontiers in Computational Intelligence. Volume 7
dc.relation.ispartofseries De Gruyter frontiers in computational intelligence ;. v. 7.
dc.subject.other Machine learning.
dc.subject.other Artificial intelligence -- Industrial applications.
dc.subject.other Algorithmus.
dc.subject.other Deep Learning.
dc.subject.other Maschinelles Lernen.
dc.subject.other Neuronales Netz.
dc.subject.other COMPUTERS / Intelligence (AI) & Semantics.
dc.subject.other Artificial intelligence -- Industrial applications
dc.subject.other Machine learning
dc.subject.other Electronic books.
dc.title Deep Learning: Research and Applications De Gruyter frontiers in computational intelligence ;, v. 7./ edited by Siddhartha Bhattacharyya, Vaclav Snasel, Aboul Ella Hassanien, Satadal Saha, B. K. Tripathy.
dc.type Book
dc.description.pages 1 online resource (IX, 152 p.).
dc.collection Электронно-библиотечные системы
dc.source.id EN05CEBSCO05C574


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