Isbn: 9781611978551 - conditional gradient methods: from core principles to ai applications (16 risultati)

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  • Lingua: Inglese

    Editore: John Wiley and Sons, 2025

    1611978556 / 9781611978551

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    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

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    Editore: Society for Industrial and Applied Mathematics,U.S., US, 2025

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    Paperback. Condizione: New. Conditional Gradient Methods: From Core Principles to AI Applications offers a definitive and modern treatment of one of the most elegant and versatile algorithmic families in optimization: the Frank-Wolfe method and its many variants. Originally proposed in the 1950s, these projection-free techniques have seen a powerful resurgence, now playing a central role in machine learning, signal processing, and large-scale data science. This comprehensive monograph unites deep theoretical insights with practical considerations, guiding readers through the foundations of constrained optimization and into cutting-edge territory, including stochastic, online, and distributed settings. With a clear narrative, rigorous proofs, and illuminating illustrations, the book demystifies adaptive variants, away-steps, and the nuances of dealing with structured convex sets. A FrankWolfe.jl Julia package that implements most of the algorithms in the book is available on a supplementary website. …

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    Paperback. Condizione: Brand New. 198 pages. 10.00x7.00x0.30 inches. In Stock.

  • Lingua: Inglese

    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

    1611978556 / 9781611978551

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  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., 2025

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    Condizione: New. 2025. paperback. . . . . .

  • Lingua: Inglese

    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

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  • Lingua: Inglese

    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

    1611978556 / 9781611978551

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  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., New York, 2025

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    Paperback. Condizione: new. Paperback. Conditional Gradient Methods: From Core Principles to AI Applications offers a definitive and modern treatment of one of the most elegant and versatile algorithmic families in optimization: the FrankWolfe method and its many variants. Originally proposed in the 1950s, these projection-free techniques have seen a powerful resurgence, now playing a central role in machine learning, signal processing, and large-scale data science. This comprehensive monograph unites deep theoretical insights with practical considerations, guiding readers through the foundations of constrained optimization and into cutting-edge territory, including stochastic, online, and distributed settings. With a clear narrative, rigorous proofs, and illuminating illustrations, the book demystifies adaptive variants, away-steps, and the nuances of dealing with structured convex sets. A FrankWolfe.jl Julia package that implements most of the algorithms in the book is available on a supplementary website. Blends solid theoretical foundations with practical insight, the work demystifies projection-free optimization through the FrankWolfe method and its adaptive variants. This book tackles constrained challenges in machine learning, signal processing, and large-scale data, supported by rigorous proofs and clear illustrations. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

  • Lingua: Inglese

    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

    1611978556 / 9781611978551

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  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., 2025

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  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., 2025

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  • Lingua: Inglese

    Editore: SIAM - Society for Industrial and Applied Mathematics, 2025

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  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., New York, 2025

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    Paperback. Condizione: new. Paperback. Conditional Gradient Methods: From Core Principles to AI Applications offers a definitive and modern treatment of one of the most elegant and versatile algorithmic families in optimization: the FrankWolfe method and its many variants. Originally proposed in the 1950s, these projection-free techniques have seen a powerful resurgence, now playing a central role in machine learning, signal processing, and large-scale data science. This comprehensive monograph unites deep theoretical insights with practical considerations, guiding readers through the foundations of constrained optimization and into cutting-edge territory, including stochastic, online, and distributed settings. With a clear narrative, rigorous proofs, and illuminating illustrations, the book demystifies adaptive variants, away-steps, and the nuances of dealing with structured convex sets. A FrankWolfe.jl Julia package that implements most of the algorithms in the book is available on a supplementary website. Blends solid theoretical foundations with practical insight, the work demystifies projection-free optimization through the FrankWolfe method and its adaptive variants. This book tackles constrained challenges in machine learning, signal processing, and large-scale data, supported by rigorous proofs and clear illustrations. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…

  • Lingua: Inglese

    Editore: Society for Industrial and Applied Mathematics,U.S., US, 2025

    1611978556 / 9781611978551

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    Paperback. Condizione: New. Conditional Gradient Methods: From Core Principles to AI Applications offers a definitive and modern treatment of one of the most elegant and versatile algorithmic families in optimization: the Frank-Wolfe method and its many variants. Originally proposed in the 1950s, these projection-free techniques have seen a powerful resurgence, now playing a central role in machine learning, signal processing, and large-scale data science. This comprehensive monograph unites deep theoretical insights with practical considerations, guiding readers through the foundations of constrained optimization and into cutting-edge territory, including stochastic, online, and distributed settings. With a clear narrative, rigorous proofs, and illuminating illustrations, the book demystifies adaptive variants, away-steps, and the nuances of dealing with structured convex sets. A FrankWolfe.jl Julia package that implements most of the algorithms in the book is available on a supplementary website. …

  • Lingua: Inglese

    Editore: Society for Industrial & Applied Mathematics,U.S., New York, 2025

    1611978556 / 9781611978551

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    Paperback. Condizione: new. Paperback. Conditional Gradient Methods: From Core Principles to AI Applications offers a definitive and modern treatment of one of the most elegant and versatile algorithmic families in optimization: the FrankWolfe method and its many variants. Originally proposed in the 1950s, these projection-free techniques have seen a powerful resurgence, now playing a central role in machine learning, signal processing, and large-scale data science. This comprehensive monograph unites deep theoretical insights with practical considerations, guiding readers through the foundations of constrained optimization and into cutting-edge territory, including stochastic, online, and distributed settings. With a clear narrative, rigorous proofs, and illuminating illustrations, the book demystifies adaptive variants, away-steps, and the nuances of dealing with structured convex sets. A FrankWolfe.jl Julia package that implements most of the algorithms in the book is available on a supplementary website. Blends solid theoretical foundations with practical insight, the work demystifies projection-free optimization through the FrankWolfe method and its adaptive variants. This book tackles constrained challenges in machine learning, signal processing, and large-scale data, supported by rigorous proofs and clear illustrations. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.…