Idioma: Inglés
Publicado por Cambridge University Press (edition New), 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press (edition New), 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Añadir al carritoHardcover. Condición: Very Good. New. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, GB, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Añadir al carritoHardback. Condición: New. Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press 2022-04-21, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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EUR 48,99
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Añadir al carritoHardcover. Condición: Brand New. 227 pages. 9.25x6.25x0.75 inches. In Stock.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Idioma: Inglés
Publicado por Cambridge University Press, Cambridge, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
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Añadir al carritoHardcover. Condición: new. Hardcover. Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks. Optimization techniques are at the core of data science. An understanding of the basic techniques and their fundamental properties provides important grounding for students, researchers, and practitioners. This compact, self-contained text covers the fundamentals of optimization algorithms, focusing on the techniques most relevant to data science. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.
Idioma: Inglés
Publicado por Cambridge University Pr., 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: moluna, Greven, Alemania
EUR 57,22
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Añadir al carritoCondición: New. Optimization techniques are at the core of data science. An understanding of the basic techniques and their fundamental properties provides important grounding for students, researchers, and practitioners. This compact, self-contained text covers the fundam.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: AHA-BUCH GmbH, Einbeck, Alemania
EUR 58,41
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Añadir al carritoBuch. Condición: Neu. Druck auf Anfrage Neuware - Printed after ordering - Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks.
Idioma: Inglés
Publicado por Cambridge University Press, GB, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: Rarewaves.com UK, London, Reino Unido
EUR 55,05
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Añadir al carritoHardback. Condición: New. Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: preigu, Osnabrück, Alemania
EUR 64,25
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Añadir al carritoBuch. Condición: Neu. Optimization for Data Analysis | Stephen J. Wright (u. a.) | Buch | Gebunden | Englisch | 2022 | Cambridge University Press | EAN 9781316518984 | Verantwortliche Person für die EU: Libri GmbH, Europaallee 1, 36244 Bad Hersfeld, gpsr[at]libri[dot]de | Anbieter: preigu.
Idioma: Inglés
Publicado por Cambridge University Press, Cambridge, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de America
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Añadir al carritoHardcover. Condición: new. Hardcover. Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks. Optimization techniques are at the core of data science. An understanding of the basic techniques and their fundamental properties provides important grounding for students, researchers, and practitioners. This compact, self-contained text covers the fundamentals of optimization algorithms, focusing on the techniques most relevant to data science. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Librería: Revaluation Books, Exeter, Reino Unido
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Añadir al carritoHardcover. Condición: Brand New. 227 pages. 9.25x6.25x0.75 inches. In Stock. This item is printed on demand.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: THE SAINT BOOKSTORE, Southport, Reino Unido
EUR 52,98
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Añadir al carritoHardback. Condición: New. This item is printed on demand. New copy - Usually dispatched within 5-9 working days.
Idioma: Inglés
Publicado por Cambridge University Press, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: Biblios, Frankfurt am main, HESSE, Alemania
EUR 77,39
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Añadir al carritoCondición: New. PRINT ON DEMAND.
Idioma: Inglés
Publicado por Cambridge University Press, Cambridge, 2022
ISBN 10: 1316518981 ISBN 13: 9781316518984
Librería: AussieBookSeller, Truganina, VIC, Australia
EUR 86,04
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Añadir al carritoHardcover. Condición: new. Hardcover. Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks. Optimization techniques are at the core of data science. An understanding of the basic techniques and their fundamental properties provides important grounding for students, researchers, and practitioners. This compact, self-contained text covers the fundamentals of optimization algorithms, focusing on the techniques most relevant to data science. This item is printed on demand. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.