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  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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  • Lingua: Inglese

    Editore: VDM Verlag 3/5/2010, 2010

    3639236629 / 9783639236620

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    Paperback or Softback. Condizione: New. Community Economic Development in Atlantic Canada. Book.

  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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    Da: California Books, Miami, FL, U.S.A.California Books

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  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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  • Lingua: Inglese

    Editore: VDM Verlag Dr. M�ller 2010-03-05, 2010

    3639236629 / 9783639236620

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    Da: Chiron Media, Wallingford, Regno UnitoChiron Media

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  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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  • Lingua: Inglese

    Editore: Springer, 2023

    3031106032 / 9783031106033

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    Da: Ria Christie Collections, Uxbridge, Regno UnitoRia Christie Collections

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  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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  • Lingua: Inglese

    Editore: Springer International Publishing AG, CH, 2024

    3031106040 / 9783031106040

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    Da: Rarewaves.com USA, London, LONDO, Regno UnitoRarewaves.com USA

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    EUR 85,68

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    Paperback. Condizione: New. 2023 ed. Dimensionality reduction, also known as manifold learning, is an area of machine learning used for extracting informative features from data for better representation of data or separation between classes. This book presents a cohesive review of linear and nonlinear dimensionality reduction and manifold learning. Three main aspects of dimensionality reduction are covered: spectral dimensionality reduction, probabilistic dimensionality reduction, and neural network-based dimensionality reduction, which have geometric, probabilistic, and information-theoretic points of view to dimensionality reduction, respectively. The necessary background and preliminaries on linear algebra, optimization, and kernels are also explained to ensure a comprehensive understanding of the algorithms.The tools introduced in this book can be applied to various applications involving feature extraction, image processing, computer vision, and signal processing. This book is applicable to a wide audience who would like to acquire a deep understanding of the various ways to extract, transform, and understand the structure of data. The intended audiences are academics, students, and industry professionals. Academic researchers and students can use this book as a textbook for machine learning and dimensionality reduction. Data scientists, machine learning scientists, computer vision scientists, and computer scientists can use this book as a reference. It can also be helpful to statisticians in the field of statistical learning and applied mathematicians in the fields of manifolds and subspace analysis. Industry professionals, including applied engineers, data engineers, and engineers in various fields of science dealing with machine learning, can use this as a guidebook for feature extraction from their data, as the raw data in industry often require preprocessing.The book is grounded in theory but provides thorough explanations and diverseexamples to improve the reader's comprehension of the advanced topics. Advanced methods are explained in a step-by-step manner so that readers of all levels can follow the reasoning and come to a deep understanding of the concepts. This book does not assume advanced theoretical background in machine learning and provides necessary background, although an undergraduate-level background in linear algebra and calculus is recommended.

  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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    Da: Ria Christie Collections, Uxbridge, Regno UnitoRia Christie Collections

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    EUR 73,22

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  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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    Da: GreatBookPricesUK, Woodford Green, Regno UnitoGreatBookPricesUK

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    EUR 68,76

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  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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    Da: GreatBookPricesUK, Woodford Green, Regno UnitoGreatBookPricesUK

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    EUR 80,38

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    Condizione: As New. Unread book in perfect condition.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    Da: World of Books (was SecondSale), Montgomery, IL, U.S.A.World of Books (was SecondSale)

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    EUR 102,75

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    Condizione: Good. Item in good condition. Textbooks may not include supplemental items i.e. CDs, access codes etc.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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  • Lingua: Inglese

    Editore: Springer, 2024

    3031106040 / 9783031106040

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    Da: Books Puddle, New York, NY, U.S.A.Books Puddle

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    EUR 112,42

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    Condizione: New. 1st ed. 2023 edition NO-PA16APR2015-KAP.

  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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    Da: preigu, Osnabrück, Germaniapreigu

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    EUR 43,40

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    Taschenbuch. Condizione: Neu. Community Economic Development in Atlantic Canada | An Evaluation of the Relationship between Atlantic Canada Opportunities Agency and its Partnering Agents | Mark Fakhri | Taschenbuch | Einband - flex.(Paperback) | Englisch | 2010 | VDM Verlag Dr. Müller | EAN 9783639236620 | Verantwortliche Person für die EU: OmniScriptum GmbH & Co. KG, Bahnhofstr. 28, 66111 Saarbrücken, info[at]akademikerverlag[dot]de | Anbieter: preigu.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    Da: Ria Christie Collections, Uxbridge, Regno UnitoRia Christie Collections

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    EUR 103,93

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  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    EUR 115,49

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    Condizione: As New. Unread book in perfect condition.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    Da: GreatBookPricesUK, Woodford Green, Regno UnitoGreatBookPricesUK

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    EUR 103,92

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    Condizione: New.

  • Lingua: Inglese

    Editore: Springer-Nature New York Inc, 2024

    3031106040 / 9783031106040

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    Da: Revaluation Books, Exeter, Regno UnitoRevaluation Books

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    EUR 117,15

    EUR 14,56 spedizione 
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    Paperback. Condizione: Brand New. 634 pages. 9.26x6.11x1.28 inches. In Stock.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    EUR 116,09

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  • Lingua: Inglese

    Editore: Springer International Publishing AG, CH, 2023

    3031106016 / 9783031106019

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    Da: Rarewaves.com USA, London, LONDO, Regno UnitoRarewaves.com USA

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    EUR 139,25

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    Hardback. Condizione: New. 2023 ed. Dimensionality reduction, also known as manifold learning, is an area of machine learning used for extracting informative features from data for better representation of data or separation between classes. This book presents a cohesive review of linear and nonlinear dimensionality reduction and manifold learning. Three main aspects of dimensionality reduction are covered: spectral dimensionality reduction, probabilistic dimensionality reduction, and neural network-based dimensionality reduction, which have geometric, probabilistic, and information-theoretic points of view to dimensionality reduction, respectively. The necessary background and preliminaries on linear algebra, optimization, and kernels are also explained to ensure a comprehensive understanding of the algorithms.The tools introduced in this book can be applied to various applications involving feature extraction, image processing, computer vision, and signal processing. This book is applicable to a wide audience who would like to acquire a deep understanding of the various ways to extract, transform, and understand the structure of data. The intended audiences are academics, students, and industry professionals. Academic researchers and students can use this book as a textbook for machine learning and dimensionality reduction. Data scientists, machine learning scientists, computer vision scientists, and computer scientists can use this book as a reference. It can also be helpful to statisticians in the field of statistical learning and applied mathematicians in the fields of manifolds and subspace analysis. Industry professionals, including applied engineers, data engineers, and engineers in various fields of science dealing with machine learning, can use this as a guidebook for feature extraction from their data, as the raw data in industry often require preprocessing.The book is grounded in theory but provides thorough explanations and diverseexamples to improve the reader's comprehension of the advanced topics. Advanced methods are explained in a step-by-step manner so that readers of all levels can follow the reasoning and come to a deep understanding of the concepts. This book does not assume advanced theoretical background in machine learning and provides necessary background, although an undergraduate-level background in linear algebra and calculus is recommended.

  • Lingua: Inglese

    Editore: Springer, 2023

    3031106016 / 9783031106019

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    Da: Books Puddle, New York, NY, U.S.A.Books Puddle

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    EUR 151,67

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    Quantità: 4 disponibili

    Condizione: New.

  • Lingua: Inglese

    Editore: Springer International Publishing AG, CH, 2024

    3031106040 / 9783031106040

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    Da: Rarewaves.com UK, London, Regno UnitoRarewaves.com UK

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    EUR 83,13

    EUR 75,70 spedizione 
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    Paperback. Condizione: New. 2023 ed. Dimensionality reduction, also known as manifold learning, is an area of machine learning used for extracting informative features from data for better representation of data or separation between classes. This book presents a cohesive review of linear and nonlinear dimensionality reduction and manifold learning. Three main aspects of dimensionality reduction are covered: spectral dimensionality reduction, probabilistic dimensionality reduction, and neural network-based dimensionality reduction, which have geometric, probabilistic, and information-theoretic points of view to dimensionality reduction, respectively. The necessary background and preliminaries on linear algebra, optimization, and kernels are also explained to ensure a comprehensive understanding of the algorithms.The tools introduced in this book can be applied to various applications involving feature extraction, image processing, computer vision, and signal processing. This book is applicable to a wide audience who would like to acquire a deep understanding of the various ways to extract, transform, and understand the structure of data. The intended audiences are academics, students, and industry professionals. Academic researchers and students can use this book as a textbook for machine learning and dimensionality reduction. Data scientists, machine learning scientists, computer vision scientists, and computer scientists can use this book as a reference. It can also be helpful to statisticians in the field of statistical learning and applied mathematicians in the fields of manifolds and subspace analysis. Industry professionals, including applied engineers, data engineers, and engineers in various fields of science dealing with machine learning, can use this as a guidebook for feature extraction from their data, as the raw data in industry often require preprocessing.The book is grounded in theory but provides thorough explanations and diverseexamples to improve the reader's comprehension of the advanced topics. Advanced methods are explained in a step-by-step manner so that readers of all levels can follow the reasoning and come to a deep understanding of the concepts. This book does not assume advanced theoretical background in machine learning and provides necessary background, although an undergraduate-level background in linear algebra and calculus is recommended.

  • Lingua: Inglese

    Editore: Springer-Nature New York Inc, 2023

    3031106016 / 9783031106019

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    Da: Revaluation Books, Exeter, Regno UnitoRevaluation Books

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    EUR 159,44

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    Hardcover. Condizione: Brand New. 634 pages. 9.25x6.10x1.38 inches. In Stock.

  • Lingua: Inglese

    Editore: Springer International Publishing AG, CH, 2023

    3031106016 / 9783031106019

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    Da: Rarewaves.com UK, London, Regno UnitoRarewaves.com UK

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    EUR 136,06

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    Hardback. Condizione: New. 2023 ed. Dimensionality reduction, also known as manifold learning, is an area of machine learning used for extracting informative features from data for better representation of data or separation between classes. This book presents a cohesive review of linear and nonlinear dimensionality reduction and manifold learning. Three main aspects of dimensionality reduction are covered: spectral dimensionality reduction, probabilistic dimensionality reduction, and neural network-based dimensionality reduction, which have geometric, probabilistic, and information-theoretic points of view to dimensionality reduction, respectively. The necessary background and preliminaries on linear algebra, optimization, and kernels are also explained to ensure a comprehensive understanding of the algorithms.The tools introduced in this book can be applied to various applications involving feature extraction, image processing, computer vision, and signal processing. This book is applicable to a wide audience who would like to acquire a deep understanding of the various ways to extract, transform, and understand the structure of data. The intended audiences are academics, students, and industry professionals. Academic researchers and students can use this book as a textbook for machine learning and dimensionality reduction. Data scientists, machine learning scientists, computer vision scientists, and computer scientists can use this book as a reference. It can also be helpful to statisticians in the field of statistical learning and applied mathematicians in the fields of manifolds and subspace analysis. Industry professionals, including applied engineers, data engineers, and engineers in various fields of science dealing with machine learning, can use this as a guidebook for feature extraction from their data, as the raw data in industry often require preprocessing.The book is grounded in theory but provides thorough explanations and diverseexamples to improve the reader's comprehension of the advanced topics. Advanced methods are explained in a step-by-step manner so that readers of all levels can follow the reasoning and come to a deep understanding of the concepts. This book does not assume advanced theoretical background in machine learning and provides necessary background, although an undergraduate-level background in linear algebra and calculus is recommended.

  • Lingua: Inglese

    Editore: VDM Verlag Dr. Müller, 2010

    3639236629 / 9783639236620

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    • Print on Demand

    Da: PBShop.store US, Wood Dale, IL, U.S.A.PBShop.store US

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    PAP. Condizione: New. New Book. Shipped from UK. THIS BOOK IS PRINTED ON DEMAND. Established seller since 2000.