Isbn: 9789811660450 - geometry of deep learning: a signal processing perspective: 37 (16 risultati)

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  • Lingua: Inglese

    Editore: Springer, 2022

    981166045X / 9789811660450

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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    Condizione: New. pp. 330.

  • Lingua: Inglese

    Editore: Springer, 2022

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    Da: Biblios, frankfurt am main, HESSE, GermaniaBiblios

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  • Lingua: Inglese

    Editore: Springer, 2022

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  • Lingua: Inglese

    Editore: Springer, 2022

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    Da: AHA-BUCH GmbH, Einbeck, GermaniaAHA-BUCH GmbH

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    Buch. Condizione: Neu. Druck auf Anfrage Neuware - Printed after ordering - The focus of this book is on providing students with insights into geometry that can help them understand deep learning from a unified perspective. Rather than describing deep learning as an implementation technique, as is usually the case in many existing deep learning books, here, deep learning is explained as an ultimate form of signal processing techniques that can be imagined.To support this claim, an overview of classical kernel machine learning approaches is presented, and their advantages and limitations are explained. Following a detailed explanation of the basic building blocks of deep neural networks from a biological and algorithmic point of view, the latest tools such as attention, normalization, Transformer, BERT, GPT-3, and others are described. Here, too, the focus is on the fact that in these heuristic approaches, there is an important, beautiful geometric structure behind the intuition that enables a systematic understanding. A unified geometric analysis to understand the working mechanism of deep learning from high-dimensional geometry is offered. Then, different forms of generative models like GAN, VAE, normalizing flows, optimal transport, and so on are described from a unified geometric perspective, showing that they actually come from statistical distance-minimization problems.Because this book contains up-to-date information from both a practical and theoretical point of view, it can be used as an advanced deep learning textbook in universities or as a reference source for researchers interested in acquiring the latest deep learning algorithms and their underlying principles. In addition, the book has been prepared for a codeshare course for both engineering and mathematics students, thus much of the content is interdisciplinary and will appeal to students from both disciplines.…

  • Lingua: Inglese

    Editore: Springer, 2022

    981166045X / 9789811660450

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    Hardcover. Condizione: Brand New. 330 pages. 9.25x6.25x1.00 inches. In Stock.

  • Lingua: Inglese

    Editore: Springer Nature Singapore Jan 2022, 2022

    981166045X / 9789811660450

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    Da: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermaniaBuchWeltWeit Ludwig Meier e.K.

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    Buch. Condizione: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -The focus of this book is on providing students with insights into geometry that can help them understand deep learning from a unified perspective. Rather than describing deep learning as an implementation technique, as is usually the case in many existing deep learning books, here, deep learning is explained as an ultimate form of signal processing techniques that can be imagined.To support this claim, an overview of classical kernel machine learning approaches is presented, and their advantages and limitations are explained. Following a detailed explanation of the basic building blocks of deep neural networks from a biological and algorithmic point of view, the latest tools such as attention, normalization, Transformer, BERT, GPT-3, and others are described. Here, too, the focus is on the fact that in these heuristic approaches, there is an important, beautiful geometric structure behind the intuition that enables a systematic understanding. A unified geometric analysis to understand the working mechanism of deep learning from high-dimensional geometry is offered. Then, different forms of generative models like GAN, VAE, normalizing flows, optimal transport, and so on are described from a unified geometric perspective, showing that they actually come from statistical distance-minimization problems.Because this book contains up-to-date information from both a practical and theoretical point of view, it can be used as an advanced deep learning textbook in universities or as a reference source for researchers interested in acquiring the latest deep learning algorithms and their underlying principles. In addition, the book has been prepared for a codeshare course for both engineering and mathematics students, thus much of the content is interdisciplinary and will appeal to students from both disciplines. 348 pp. Englisch.…

  • Lingua: Inglese

    Editore: Springer, 2022

    981166045X / 9789811660450

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  • Lingua: Inglese

    Editore: Springer, 2022

    981166045X / 9789811660450

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    Condizione: New. Print on Demand pp. 330 This item is printed on demand.

  • Lingua: Inglese

    Editore: Springer Nature Singapore, 2022

    981166045X / 9789811660450

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    Gebunden. Condizione: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Covers recent developments in deep learning and a wide spectrum of issues, with exercise problems for studentsEmploys unified mathematical approaches with illustrative graphics to present various techniques and their resultsCloses the gap b.…

  • Lingua: Inglese

    Editore: Springer, Springer Jan 2022, 2022

    981166045X / 9789811660450

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    Buch. Condizione: Neu. This item is printed on demand - Print on Demand Titel. Neuware -The focus of this book is on providing students with insights into geometry that can help them understand deep learning from a unified perspective. Rather than describing deep learning as an implementation technique, as is usually the case in many existing deep learning books, here, deep learning is explained as an ultimate form of signal processing techniques that can be imagined.To support this claim, an overview of classical kernel machine learning approaches is presented, and their advantages and limitations are explained. Following a detailed explanation of the basic building blocks of deep neural networks from a biological and algorithmic point of view, the latest tools such as attention, normalization, Transformer, BERT, GPT-3, and others are described. Here, too, the focus is on the fact that in these heuristic approaches, there is an important, beautiful geometric structure behind the intuition that enables a systematic understanding. A unified geometric analysis to understand the working mechanism of deep learning from high-dimensional geometry is offered. Then, different forms of generative models like GAN, VAE, normalizing flows, optimal transport, and so on are described from a unified geometric perspective, showing that they actually come from statistical distance-minimization problems.Because this book contains up-to-date information from both a practical and theoretical point of view, it can be used as an advanced deep learning textbook in universities or as a reference source for researchers interested in acquiring the latest deep learning algorithms and their underlying principles. In addition, the book has been prepared for a codeshare course for both engineering and mathematics students, thus much of the content is interdisciplinary and will appeal to students from both disciplines.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 348 pp. Englisch.…