Rodrigo F Mello (26 results)

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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  • Language: English

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    3030069494 / 9783030069490

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  • Language: English

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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    paperback. Condition: Wie neu. 380 Seiten; 9783030069490.1 Gewicht in Gramm: 1.

  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, 2018

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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    Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

    • Softcover

    Seller: preigu, Osnabrück, Germanypreigu

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    Taschenbuch. Condition: Neu. Machine Learning | A Practical Approach on the Statistical Learning Theory | Rodrigo F Mello (u. a.) | Taschenbuch | xv | Englisch | 2019 | Springer | EAN 9783030069490 | 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, Springer, 2019

    3030069494 / 9783030069490

    • Softcover

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

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    Taschenbuch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book presents the Statistical Learning Theory in a detailed and easy to understand way, by using practical examples, algorithms and source codes. It can be used as a textbook in graduation or undergraduation courses, for self-learners, or as reference with respect to the main theoretical concepts of Machine Learning. Fundamental concepts of Linear Algebra and Optimization applied to Machine Learning are provided, as well as source codes in R, making the book as self-contained as possible.It starts with an introduction to Machine Learning concepts and algorithms such as the Perceptron, Multilayer Perceptron and the Distance-Weighted Nearest Neighbors with examples, in order to provide the necessary foundation so the reader is able to understand the Bias-Variance Dilemma, which is the central point of the Statistical Learning Theory.Afterwards, we introduce all assumptions and formalize the Statistical Learning Theory, allowing the practical study of different classification algorithms. Then, we proceed with concentration inequalities until arriving to the Generalization and the Large-Margin bounds, providing the main motivations for the Support Vector Machines. From that, we introduce all necessary optimization concepts related to the implementation of Support Vector Machines. To provide a next stage of development, the book finishes with a discussion on SVM kernels as a way and motivation to study data spaces and improve classification results.

  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

    • Softcover

    Seller: Mispah books, Redhill, SURRE, United KingdomMispah books

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  • Language: English

    Published by Springer, Springer, 2018

    3319949888 / 9783319949888

    • Hardcover

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    Buch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book presents the Statistical Learning Theory in a detailed and easy to understand way, by using practical examples, algorithms and source codes. It can be used as a textbook in graduation or undergraduation courses, for self-learners, or as reference with respect to the main theoretical concepts of Machine Learning. Fundamental concepts of Linear Algebra and Optimization applied to Machine Learning are provided, as well as source codes in R, making the book as self-contained as possible.It starts with an introduction to Machine Learning concepts and algorithms such as the Perceptron, Multilayer Perceptron and the Distance-Weighted Nearest Neighbors with examples, in order to provide the necessary foundation so the reader is able to understand the Bias-Variance Dilemma, which is the central point of the Statistical Learning Theory.Afterwards, we introduce all assumptions and formalize the Statistical Learning Theory, allowing the practical study of different classification algorithms. Then, we proceed with concentration inequalities until arriving to the Generalization and the Large-Margin bounds, providing the main motivations for the Support Vector Machines. From that, we introduce all necessary optimization concepts related to the implementation of Support Vector Machines. To provide a next stage of development, the book finishes with a discussion on SVM kernels as a way and motivation to study data spaces and improve classification results.

  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

    • Hardcover

    Seller: Mispah books, Redhill, SURRE, United KingdomMispah books

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  • Language: English

    Published by Springer, 2019

    3030069494 / 9783030069490

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  • Language: English

    Published by Springer, 2018

    3319949888 / 9783319949888

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  • Language: English

    Published by Springer, Springer Feb 2019, 2019

    3030069494 / 9783030069490

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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 presents the Statistical Learning Theory in a detailed and easy to understand way, by using practical examples, algorithms and source codes. It can be used as a textbook in graduation or undergraduation courses, for self-learners, or as reference with respect to the main theoretical concepts of Machine Learning. Fundamental concepts of Linear Algebra and Optimization applied to Machine Learning are provided, as well as source codes in R, making the book as self-contained as possible.It starts with an introduction to Machine Learning concepts and algorithms such as the Perceptron, Multilayer Perceptron and the Distance-Weighted Nearest Neighbors with examples, in order to provide the necessary foundation so the reader is able to understand the Bias-Variance Dilemma, which is the central point of the Statistical Learning Theory.Afterwards, we introduce all assumptions and formalize the Statistical Learning Theory, allowing the practical study of different classification algorithms. Then, we proceed with concentration inequalities until arriving to the Generalization and the Large-Margin bounds, providing the main motivations for the Support Vector Machines. From that, we introduce all necessary optimization concepts related to the implementation of Support Vector Machines. To provide a next stage of development, the book finishes with a discussion on SVM kernels as a way and motivation to study data spaces and improve classification results. 380 pp. Englisch.

  • Language: English

    Published by Springer International Publishing, 2019

    3030069494 / 9783030069490

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    Seller: moluna, Greven, Germanymoluna

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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 includes a relevant discussion on Classification Algorithms as well as their source codes using the R Statistical LanguageIt also presents a very simple approach to understand the Statistical Learning Theory, which is considered a comple.

  • Language: English

    Published by Springer, Springer Feb 2019, 2019

    3030069494 / 9783030069490

    • Softcover
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    Seller: buchversandmimpf2000, Emtmannsberg, BAYE, Germanybuchversandmimpf2000

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    Taschenbuch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book presents the Statistical Learning Theory in a detailed and easy to understand way, by using practical examples, algorithms and source codes. It can be used as a textbook in graduation or undergraduation courses, for self-learners, or as reference with respect to the main theoretical concepts of Machine Learning. Fundamental concepts of Linear Algebra and Optimization applied to Machine Learning are provided, as well as source codes in R, making the book as self-contained as possible.It starts with an introduction to Machine Learning concepts and algorithms such as the Perceptron, Multilayer Perceptron and the Distance-Weighted Nearest Neighbors with examples, in order to provide the necessary foundation so the reader is able to understand the Bias-Variance Dilemma, which is the central point of the Statistical Learning Theory.Afterwards, we introduce all assumptions and formalize the Statistical Learning Theory, allowing the practical study of different classification algorithms. Then, we proceed with concentration inequalities until arriving to the Generalization and the Large-Margin bounds, providing the main motivations for the Support Vector Machines.From that, we introduce all necessary optimization concepts related to the implementation of Support Vector Machines. To provide a next stage of development, the book finishes with a discussion on SVM kernels as a way and motivation to study data spaces and improve classification results.Springer-Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 380 pp. Englisch.

  • Language: English

    Published by Springer International Publishing, 2018

    3319949888 / 9783319949888

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    Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. This book includes a relevant discussion on Classification Algorithms as well as their source codes using the R Statistical LanguageIt also presents a very simple approach to understand the Statistical Learning Theory, which is considered a comple.

  • Language: English

    Published by Springer, Springer Aug 2018, 2018

    3319949888 / 9783319949888

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    Buch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book presents the Statistical Learning Theory in a detailed and easy to understand way, by using practical examples, algorithms and source codes. It can be used as a textbook in graduation or undergraduation courses, for self-learners, or as reference with respect to the main theoretical concepts of Machine Learning. Fundamental concepts of Linear Algebra and Optimization applied to Machine Learning are provided, as well as source codes in R, making the book as self-contained as possible.It starts with an introduction to Machine Learning concepts and algorithms such as the Perceptron, Multilayer Perceptron and the Distance-Weighted Nearest Neighbors with examples, in order to provide the necessary foundation so the reader is able to understand the Bias-Variance Dilemma, which is the central point of the Statistical Learning Theory.Afterwards, we introduce all assumptions and formalize the Statistical Learning Theory, allowing the practical study of different classification algorithms. Then, we proceed with concentration inequalities until arriving to the Generalization and the Large-Margin bounds, providing the main motivations for the Support Vector Machines.From that, we introduce all necessary optimization concepts related to the implementation of Support Vector Machines. To provide a next stage of development, the book finishes with a discussion on SVM kernels as a way and motivation to study data spaces and improve classification results.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 380 pp. Englisch.