Gauri Joshi Joshi (29 results)

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  • Language: English

    Published by Petals Publishers & Distributors, 2021

    8195060129 / 9788195060122

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    Condition: New. pp. 110.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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  • Language: English

    Published by Springer 11/26/2023, 2023

    3031190696 / 9783031190698

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    Paperback or Softback. Condition: New. Optimization Algorithms for Distributed Machine Learning. Book.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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  • Language: English

    Published by Petals Publishers & Distributors, 2021

    8195060129 / 9788195060122

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    Condition: New. Print on Demand pp. 110.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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    Condition: New. In English.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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  • Language: English

    Published by Springer, 2022

    3031190688 / 9783031190681

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    Condition: New. In English.

  • Language: English

    Published by Petals Publishers & Distributors, 2021

    8195060129 / 9788195060122

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    Seller: Biblios, frankfurt am main, HESSE, GermanyBiblios

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    Condition: New. PRINT ON DEMAND pp. 110.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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    Condition: New. 1st ed. 2023 edition NO-PA16APR2015-KAP.

  • Language: English

    Published by Springer-Nature New York Inc, 2023

    3031190696 / 9783031190698

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    Seller: Revaluation Books, Exeter, United KingdomRevaluation Books

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    Paperback. Condition: Brand New. 140 pages. 9.45x6.61x0.33 inches. In Stock.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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    Seller: AHA-BUCH GmbH, Einbeck, GermanyAHA-BUCH GmbH

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    Taschenbuch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime.

  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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    Buch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime.

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    Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

    • Softcover

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    Taschenbuch. Condition: Neu. Optimization Algorithms for Distributed Machine Learning | Gauri Joshi | Taschenbuch | Synthesis Lectures on Learning, Networks, and Algorithms | xiii | Englisch | 2023 | Springer | EAN 9783031190698 | Verantwortliche Person für die EU: Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg, juergen[dot]hartmann[at]springer[dot]com | Anbieter: preigu.

  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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    Seller: Buchpark, Trebbin, GermanyBuchpark

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    Condition: Hervorragend. Zustand: Hervorragend | Sprache: Englisch | Produktart: Bücher | This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime.

  • Language: English

    Published by Springer, 2023

    3031190696 / 9783031190698

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  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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    Seller: Brook Bookstore On Demand, Napoli, NA, ItalyBrook Bookstore On Demand

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  • Language: English

    Published by Springer Nature B.V., 2022

    3031190688 / 9783031190681

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    PAP. Condition: New. New Book. Shipped from UK. THIS BOOK IS PRINTED ON DEMAND. Established seller since 2000.

  • Language: English

    Published by Springer Nature B.V., 2022

    3031190688 / 9783031190681

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    PAP. Condition: New. New Book. Delivered from our UK warehouse in 4 to 14 business days. THIS BOOK IS PRINTED ON DEMAND. Established seller since 2000.

  • Language: English

    Published by Springer International Publishing, Springer Nature Switzerland Nov 2023, 2023

    3031190696 / 9783031190698

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    Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermanyBuchWeltWeit Ludwig Meier e.K.

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    Taschenbuch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime. 144 pp. Englisch.

  • Language: English

    Published by Springer International Publishing, Springer Nature Switzerland Nov 2022, 2022

    3031190661 / 9783031190667

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    Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermanyBuchWeltWeit Ludwig Meier e.K.

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    Buch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime. 144 pp. Englisch.

  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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  • Language: English

    Published by Springer, 2022

    3031190661 / 9783031190667

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  • Language: English

    Published by Springer, 2023

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    Condition: New. PRINT ON DEMAND pp. 144.

  • Language: English

    Published by Springer, Berlin|Springer International Publishing|Springer, 2023

    3031190696 / 9783031190698

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    Kartoniert / Broschiert. Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where th.

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    Published by Springer, Berlin|Springer International Publishing|Springer, 2023

    3031190661 / 9783031190667

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    Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where th.

  • Language: English

    Published by Springer, Palgrave Macmillan Nov 2022, 2022

    3031190661 / 9783031190667

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    Buch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 144 pp. Englisch.

  • Language: English

    Published by Springer, Palgrave Macmillan Nov 2023, 2023

    3031190696 / 9783031190698

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    Taschenbuch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book discusses state-of-the-art stochastic optimization algorithms for distributed machine learning and analyzes their convergence speed. The book first introduces stochastic gradient descent (SGD) and its distributed version, synchronous SGD, where the task of computing gradients is divided across several worker nodes. The author discusses several algorithms that improve the scalability and communication efficiency of synchronous SGD, such as asynchronous SGD, local-update SGD, quantized and sparsified SGD, and decentralized SGD. For each of these algorithms, the book analyzes its error versus iterations convergence, and the runtime spent per iteration. The author shows that each of these strategies to reduce communication or synchronization delays encounters a fundamental trade-off between error and runtime.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 144 pp. Englisch.