Machine Learning Granular Computing (34 results)

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    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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      hardcover. Condition: Sehr gut. 128 Seiten; 9783319700571.2 Gewicht in Gramm: 500.

    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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      Condition: New. In English.

    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer International Publishing, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer International Publishing, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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    • Language: English

      Published by Springer, Berlin, Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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      Buch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book explores the significant role of granular computing in advancing machine learning towards in-depth processing of big data. It begins by introducing the main characteristics of big data, i.e., the five Vs-Volume, Velocity, Variety, Veracity and Variability. The book explores granular computing as a response to the fact that learning tasks have become increasingly more complex due to the vast and rapid increase in the size of data, and that traditional machine learning has proven too shallow to adequately deal with big data. Some popular types of traditional machine learning are presented in terms of their key features and limitations in the context of big data. Further, the book discusses why granular-computing-based machine learning is called for, and demonstrates how granular computing concepts can be used in different ways to advance machine learning for big data processing. Several case studies involving big data are presented by using biomedical data and sentiment data, in order to show the advances in big data processing through the shift from traditional machine learning to granular-computing-based machine learning. Finally, the book stresses the theoretical significance, practical importance, methodological impact and philosophical aspects of granular-computing-based machine learning, and suggests several further directions for advancing machine learning to fit the needs of modern industries.This book is aimed at PhD students, postdoctoral researchers and academics who are actively involved in fundamental research on machine learning or applied research on data mining and knowledge discovery, sentiment analysis, pattern recognition, image processing, computer vision and big data analytics. It will also benefit a broader audience of researchers and practitioners who are actively engaged in the research and development of intelligent systems.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover

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      Condition: New. pp. 132.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover

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      Taschenbuch. Condition: Neu. Granular Computing Based Machine Learning | A Big Data Processing Approach | Han Liu (u. a.) | Taschenbuch | Studies in Big Data | xv | Englisch | 2018 | Springer | EAN 9783319888842 | 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, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

      • Hardcover

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      Hardcover. Condition: Brand New. 113 pages. 9.50x6.25x0.75 inches. In Stock.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover

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      Taschenbuch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book explores the significant role of granular computing in advancing machine learning towards in-depth processing of big data. It begins by introducing the main characteristics of big data, i.e., the five Vs-Volume, Velocity, Variety, Veracity and Variability. The book explores granular computing as a response to the fact that learning tasks have become increasingly more complex due to the vast and rapid increase in the size of data, and that traditional machine learning has proven too shallow to adequately deal with big data. Some popular types of traditional machine learning are presented in terms of their key features and limitations in the context of big data. Further, the book discusses why granular-computing-based machine learning is called for, and demonstrates how granular computing concepts can be used in different ways to advance machine learning for big data processing. Several case studies involving big data are presented by using biomedical data and sentiment data, in order to show the advances in big data processing through the shift from traditional machine learning to granular-computing-based machine learning. Finally, the book stresses the theoretical significance, practical importance, methodological impact and philosophical aspects of granular-computing-based machine learning, and suggests several further directions for advancing machine learning to fit the needs of modern industries.This book is aimed at PhD students, postdoctoral researchers and academics who are actively involved in fundamental research on machine learning or applied research on data mining and knowledge discovery, sentiment analysis, pattern recognition, image processing, computer vision and big data analytics. It will also benefit a broader audience of researchers and practitioners who are actively engaged in the research and development of intelligent systems.

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      Condition: gut. 2017. Granular Computing Based Machine Learning: A Big Data Processing Approach (Studies in Big Data, 35, Band 35) In deutscher Sprache. pages.

    • Language: English

      Published by Springer, 2025

      3031668448 / 9783031668449

      • Softcover

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      Taschenbuch. Condition: Neu. Machine Learning and Granular Computing: A Synergistic Design Environment | Witold Pedrycz (u. a.) | Taschenbuch | Studies in Big Data | viii | Englisch | 2025 | Springer | EAN 9783031668449 | 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, 2024

      3031668413 / 9783031668418

      • Hardcover

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      Condition: New. 2024th edition NO-PA16APR2015-KAP.

    • Language: English

      Published by Springer, 2025

      3031668448 / 9783031668449

      • Softcover

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

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      Taschenbuch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This volume provides the reader with a comprehensive and up-to-date treatise positioned at the junction of the areas of Machine Learning (ML) and Granular Computing (GrC). ML offers a wealth of architectures and learning methods. Granular Computing addresses useful aspects of abstraction and knowledge representation that are of importance in the advanced design of ML architectures. In unison, ML and GrC support advances of the fundamental learning paradigm. As built upon synergy, this unified environment focuses on a spectrum of methodological and algorithmic issues, discusses implementations and elaborates on applications. The chapters bring forward recent developments showing ways of designing synergistic and coherently structured ML-GrC environment. The book will be of interest to a broad audience including researchers and practitioners active in the area of ML or GrC and interested in following its timely trends and new pursuits.

    • Language: English

      Published by Springer, 2024

      3031668413 / 9783031668418

      • Hardcover

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      Buch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - This volume provides the reader with a comprehensive and up-to-date treatise positioned at the junction of the areas of Machine Learning (ML) and Granular Computing (GrC). ML offers a wealth of architectures and learning methods. Granular Computing addresses useful aspects of abstraction and knowledge representation that are of importance in the advanced design of ML architectures. In unison, ML and GrC support advances of the fundamental learning paradigm. As built upon synergy, this unified environment focuses on a spectrum of methodological and algorithmic issues, discusses implementations and elaborates on applications. The chapters bring forward recent developments showing ways of designing synergistic and coherently structured ML-GrC environment. The book will be of interest to a broad audience including researchers and practitioners active in the area of ML or GrC and interested in following its timely trends and new pursuits.

    • Language: English

      Published by Springer, 2024

      3031668413 / 9783031668418

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      Hardcover. Condition: gut. 2024. Machine Learning and Granular Computing: A Synergistic Design Environment In deutscher Sprache. pages.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover
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    • Language: English

      Published by Springer, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

      • Hardcover
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    • Language: English

      Published by Berlin Springer International Publishing Springer Nov 2017, 2017

      331970057X / 9783319700571

      Series: Book 28 of 95 - Studies in Big Data

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      Buch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book explores the significant role of granular computing in advancing machine learning towards in-depth processing of big data. It begins by introducing the main characteristics of big data, i.e., the five Vs-Volume, Velocity, Variety, Veracity and Variability. The book explores granular computing as a response to the fact that learning tasks have become increasingly more complex due to the vast and rapid increase in the size of data, and that traditional machine learning has proven too shallow to adequately deal with big data. Some popular types of traditional machine learning are presented in terms of their key features and limitations in the context of big data. Further, the book discusses why granular-computing-based machine learning is called for, and demonstrates how granular computing concepts can be used in different ways to advance machine learning for big data processing. Several case studies involving big data are presented by using biomedical data and sentiment data, in order to show the advances in big data processing through the shift from traditional machine learning to granular-computing-based machine learning. Finally, the book stresses the theoretical significance, practical importance, methodological impact and philosophical aspects of granular-computing-based machine learning, and suggests several further directions for advancing machine learning to fit the needs of modern industries.This book is aimed at PhD students, postdoctoral researchers and academics who are actively involved in fundamental research on machine learning or applied research on data mining and knowledge discovery, sentiment analysis, pattern recognition, image processing, computer vision and big data analytics. It will also benefit a broader audience of researchers and practitioners who are actively engaged in the research and development of intelligent systems. 113 pp. Englisch.

    • Language: English

      Published by Springer International Publishing Sep 2018, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover
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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 explores the significant role of granular computing in advancing machine learning towards in-depth processing of big data. It begins by introducing the main characteristics of big data, i.e., the five Vs-Volume, Velocity, Variety, Veracity and Variability. The book explores granular computing as a response to the fact that learning tasks have become increasingly more complex due to the vast and rapid increase in the size of data, and that traditional machine learning has proven too shallow to adequately deal with big data. Some popular types of traditional machine learning are presented in terms of their key features and limitations in the context of big data. Further, the book discusses why granular-computing-based machine learning is called for, and demonstrates how granular computing concepts can be used in different ways to advance machine learning for big data processing. Several case studies involving big data are presented by using biomedical data and sentiment data, in order to show the advances in big data processing through the shift from traditional machine learning to granular-computing-based machine learning. Finally, the book stresses the theoretical significance, practical importance, methodological impact and philosophical aspects of granular-computing-based machine learning, and suggests several further directions for advancing machine learning to fit the needs of modern industries.This book is aimed at PhD students, postdoctoral researchers and academics who are actively involved in fundamental research on machine learning or applied research on data mining and knowledge discovery, sentiment analysis, pattern recognition, image processing, computer vision and big data analytics. It will also benefit a broader audience of researchers and practitioners who are actively engaged in the research and development of intelligent systems. 132 pp. Englisch.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

      • Softcover
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      Condition: New. Print on Demand pp. 132.

    • Language: English

      Published by Springer, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

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      Condition: New. PRINT ON DEMAND pp. 132.

    • Language: English

      Published by Springer, Birkhäuser Sep 2018, 2018

      3319888846 / 9783319888842

      Series: Book 28 of 95 - Studies in Big Data

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      Taschenbuch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -Explores how granular computing plays a significant role in advancing machine learning towards in-depth processing of big dataIntroduces the main characteristics of big data, i.e. the five Vs-Volume, Velocity, Variety, Veracity, and VariabilityPresents popular types of traditional machine learning in terms of their key features and limitations in the context of big dataDiscusses the need for and different uses of granular computing based machine learningPresents several case studies of big data by using biomedical data and sentiment data, demonstrating recent advancesStresses the theoretical significance, practical importance, methodological impact, and philosophical aspectsSpringer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 132 pp. Englisch.

    • Language: English

      Published by Springer, 2024

      3031668413 / 9783031668418

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    • Language: English

      Published by Springer, Berlin|Springer Nature Switzerland|Springer, 2024

      3031668413 / 9783031668418

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      Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. This volume provides the reader with a comprehensive and up-to-date treatise positioned at the junction of the areas of Machine Learning (ML) and Granular Computing (GrC). ML offers a wealth of architectures and learning methods. Granular Computing addre.

    • Language: English

      Published by Springer Sep 2025, 2025

      3031668448 / 9783031668449

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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 360 pp. Englisch.

    • Language: English

      Published by Springer, Springer Sep 2024, 2024

      3031668413 / 9783031668418

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      Buch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This volume provides the reader with a comprehensive and up-to-date treatise positioned at the junction of the areas of Machine Learning (ML) and Granular Computing (GrC). ML offers a wealth of architectures and learning methods. Granular Computing addresses useful aspects of abstraction and knowledge representation that are of importance in the advanced design of ML architectures. In unison, ML and GrC support advances of the fundamental learning paradigm. As built upon synergy, this unified environment focuses on a spectrum of methodological and algorithmic issues, discusses implementations and elaborates on applications. The chapters bring forward recent developments showing ways of designing synergistic and coherently structured ML-GrC environment. The book will be of interest to a broad audience including researchers and practitioners active in the area of ML or GrC and interested in following its timely trends and new pursuits. 360 pp. Englisch.