Reproducing Kernel Methods Machine by Lefloch Philippe (10 results)

Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics
Lefloch, Philippe G. (Author)/ Mercier, Jeanmarc (Author)/ Miryusupov, Shohruh (Author)
- Softcover
Seller: Revaluation Books, Exeter, United KingdomRevaluation Books
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Paperback. Condition: Brand New. 170 pages. 7.09x0.39x10.00 inches. In Stock.

Language: English
Published by Society for Industrial and Applied Mathematics,U.S., US, 2026
- Softcover
Seller: Rarewaves.com USA, London, LONDO, United KingdomRarewaves.com USA
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£ 73.56
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Paperback. Condition: New. This monograph develops a unified, application-driven framework for kernel methods grounded in reproducing kernel Hilbert spaces and optimal transport. The primary goal is to tackle industrial cases from computational physics and mathematical finance and discuss applications across various areas, such as statistics, or artificial intelligence (physics-informed systems, reinforcement learning, machine learning, generative methods, etc.).Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics is divided into two parts, theoretical principles and the techniques employed in their applications; contains numerous applications in engineering, finance, and machine learning; and provides a framework for designing numerically efficient, large-scale dataset strategies.…

Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics
LeFloch, Philippe G.; Mercier, Jean-Marc; Miryusupov, Shohruh
Language: English
Published by Society for Industrial & Applied Mathematics,U.S., 2026
- Softcover
Seller: Majestic Books, Hounslow, United KingdomMajestic Books
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£ 72.25
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Language: English
Published by Society for Industrial & Applied Mathematics,U.S., New York, 2026
- Softcover
Seller: Grand Eagle Retail, Bensenville, IL, U.S.A.Grand Eagle Retail
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£ 79.15
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Paperback. Condition: new. Paperback. This monograph develops a unified, application-driven framework for kernel methods grounded in reproducing kernel Hilbert spaces and optimal transport. The primary goal is to tackle industrial cases from computational physics and mathematical finance and discuss applications across various areas, such as statistics, or artificial intelligence (physics-informed systems, reinforcement learning, machine learning, generative methods, etc.).Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics is divided into two parts, theoretical principles and the techniques employed in their applications; contains numerous applications in engineering, finance, and machine learning; and provides a framework for designing numerically efficient, large-scale dataset strategies. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics
LeFloch, Philippe G.; Mercier, Jean-Marc; Miryusupov, Shohruh
Language: English
Published by Society for Industrial & Applied Mathematics,U.S., 2026
- Softcover
Seller: Books Puddle, New York, NY, U.S.A.Books Puddle
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£ 82.65
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Language: English
Published by Society for Industrial & Applied Mathematics,U.S., 2026
- Softcover
Seller: Kennys Bookshop and Art Galleries Ltd., Galway, GY, IrelandKennys Bookshop and Art Galleries Ltd.
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£ 82.43
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Condition: New. 2026. paperback. . . . . .

Language: English
Published by Society for Industrial & Applied Mathematics,U.S., 2026
- Softcover
Seller: Kennys Bookstore, Olney, MD, U.S.A.Kennys Bookstore
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£ 84.05
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Condition: New. 2026. paperback. . . . . . Books ship from the US and Ireland.

Language: English
Published by Society for Industrial & Applied Mathematics,U.S., New York, 2026
- Softcover
Seller: CitiRetail, Stevenage, United KingdomCitiRetail
Contact seller5-star sellerCondition: New
£ 67.49
£ 37.00 shippingShips from United Kingdom to U.S.A.Quantity: 1 available
Paperback. Condition: new. Paperback. This monograph develops a unified, application-driven framework for kernel methods grounded in reproducing kernel Hilbert spaces and optimal transport. The primary goal is to tackle industrial cases from computational physics and mathematical finance and discuss applications across various areas, such as statistics, or artificial intelligence (physics-informed systems, reinforcement learning, machine learning, generative methods, etc.).Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics is divided into two parts, theoretical principles and the techniques employed in their applications; contains numerous applications in engineering, finance, and machine learning; and provides a framework for designing numerically efficient, large-scale dataset strategies. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…

Language: English
Published by Society for Industrial and Applied Mathematics,U.S., US, 2026
- Softcover
Seller: Rarewaves.com UK, London, United KingdomRarewaves.com UK
Contact seller5-star sellerCondition: New
£ 64.59
£ 65.00 shippingShips from United Kingdom to U.S.A.Quantity: Over 20 available
Paperback. Condition: New. This monograph develops a unified, application-driven framework for kernel methods grounded in reproducing kernel Hilbert spaces and optimal transport. The primary goal is to tackle industrial cases from computational physics and mathematical finance and discuss applications across various areas, such as statistics, or artificial intelligence (physics-informed systems, reinforcement learning, machine learning, generative methods, etc.).Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics is divided into two parts, theoretical principles and the techniques employed in their applications; contains numerous applications in engineering, finance, and machine learning; and provides a framework for designing numerically efficient, large-scale dataset strategies.…

Language: English
Published by Society for Industrial & Applied Mathematics,U.S., New York, 2026
- Softcover
Seller: AussieBookSeller, Truganina, VIC, AustraliaAussieBookSeller
Contact seller5-star sellerCondition: New
£ 124.44
£ 27.32 shippingShips from Australia to U.S.A.Quantity: 1 available
Paperback. Condition: new. Paperback. This monograph develops a unified, application-driven framework for kernel methods grounded in reproducing kernel Hilbert spaces and optimal transport. The primary goal is to tackle industrial cases from computational physics and mathematical finance and discuss applications across various areas, such as statistics, or artificial intelligence (physics-informed systems, reinforcement learning, machine learning, generative methods, etc.).Reproducing Kernel Methods for Machine Learning, PDEs, and Statistics is divided into two parts, theoretical principles and the techniques employed in their applications; contains numerous applications in engineering, finance, and machine learning; and provides a framework for designing numerically efficient, large-scale dataset strategies. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.…