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Optimization Algorithms for Distributed Machine Learning

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Optimization Algorithms for Distributed Machine Learning
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6 434,00 JPY
Typical price390,52 PLN
Lowest (90 days)22,51 PLN
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2026-08-07 2026-08-08
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2026-08-0722,51
2026-08-0842,79
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SP Springer Nature Author 6 434,00 JPY free 6 434,00 JPY Disponible il y a 14 heures View offer
VI VitalSource 48,14 EUR 15,00 EUR 63,14 EUR Disponible il y a 1 jour View offer
SP SpringerNatureLink Shop INT 53,50 EUR free 53,50 EUR Disponible il y a 1 jour View offer

Les prix et la disponibilité peuvent changer. Dernière mise à jour: 08.08.2026 10:24.

EAN 9783031190667
Springer Nature
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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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