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  • Verlag: Springer, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: Books From California, Simi Valley, CA, USA

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    EUR 28,54

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    hardcover. Zustand: Very Good.

  • Verlag: Springer, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: Books From California, Simi Valley, CA, USA

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    EUR 28,54

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    hardcover. Zustand: Good. Book is bent.

  • Liu, Zhiyuan; Lin, Yankai; Sun, Maosong

    Verlag: Springer (edition 1st ed. 2020), 2020

    ISBN 10: 9811555729 ISBN 13: 9789811555725

    Sprache: Englisch

    Anbieter: BooksRun, Philadelphia, PA, USA

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    EUR 39,14

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    Hardcover. Zustand: Very Good. 1st ed. 2020. 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.

  • Liu, Zhiyuan/ Lin, Yankai/ Sun, Maosong

    Verlag: Springer-Nature New York Inc, 2023

    ISBN 10: 981991602X ISBN 13: 9789819916023

    Sprache: Englisch

    Anbieter: Revaluation Books, Exeter, Vereinigtes Königreich

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    EUR 75,48

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    In den Warenkorb

    Paperback. Zustand: Brand New. 2nd edition. 541 pages. 9.25x6.10x1.10 inches. In Stock.

  • Zhiyuan Liu

    Verlag: Springer Nature Singapore, Springer Nature Singapore Aug 2023, 2023

    ISBN 10: 981991602X ISBN 13: 9789819916023

    Sprache: Englisch

    Anbieter: buchversandmimpf2000, Emtmannsberg, BAYE, Deutschland

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    EUR 42,79

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    Taschenbuch. Zustand: Neu. Neuware -This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition.This is an open access book.Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 544 pp. Englisch.

  • Liu, Zhiyuan/ Lin, Yankai/ Sun, Maosong

    Verlag: Springer-Nature New York Inc, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: Revaluation Books, Exeter, Vereinigtes Königreich

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    EUR 90,93

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    Anzahl: 2 verfügbar

    In den Warenkorb

    Hardcover. Zustand: Brand New. 2nd edition. 541 pages. 9.25x6.10x1.34 inches. In Stock.

  • Zhiyuan Liu

    Verlag: Springer, Springer Nature Singapore, 2023

    ISBN 10: 981991602X ISBN 13: 9789819916023

    Sprache: Englisch

    Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland

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    EUR 48,53

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    Anzahl: 1 verfügbar

    In den Warenkorb

    Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition. This is an open access book.

  • Zhiyuan Liu (u. a.)

    Verlag: Springer, 2023

    ISBN 10: 981991602X ISBN 13: 9789819916023

    Sprache: Englisch

    Anbieter: preigu, Osnabrück, Deutschland

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    EUR 41,85

    EUR 70,00 shipping
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    Anzahl: 5 verfügbar

    In den Warenkorb

    Taschenbuch. Zustand: Neu. Representation Learning for Natural Language Processing | Zhiyuan Liu (u. a.) | Taschenbuch | xx | Englisch | 2023 | Springer | EAN 9789819916023 | Verantwortliche Person für die EU: Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg, juergen[dot]hartmann[at]springer[dot]com | Anbieter: preigu.

  • Zhiyuan Liu

    Verlag: Springer Nature Singapore, Springer Nature Singapore Aug 2023, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: buchversandmimpf2000, Emtmannsberg, BAYE, Deutschland

    Verkäuferbewertung 5 von 5 Sternen 5 Sterne, Erfahren Sie mehr über Verkäufer-Bewertungen

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    Erstausgabe

    EUR 53,49

    EUR 60,00 shipping
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    Anzahl: 2 verfügbar

    In den Warenkorb

    Buch. Zustand: Neu. Neuware -This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition.This is an open access book.Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 544 pp. Englisch.

  • Unbekannt

    Verlag: Springer Nature Singapore, 2023

    ISBN 10: 981991602X ISBN 13: 9789819916023

    Sprache: Englisch

    Anbieter: Buchpark, Trebbin, Deutschland

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    EUR 20,33

    EUR 105,00 shipping
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    Anzahl: 1 verfügbar

    In den Warenkorb

    Zustand: Hervorragend. Zustand: Hervorragend | Seiten: 544 | Sprache: Englisch | Produktart: Bücher | This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition. This is an open access book.

  • Zhiyuan Liu

    Verlag: Springer Nature Singapore, Springer Nature Singapore, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland

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    EUR 61,18

    EUR 64,88 shipping
    Ships from Deutschland to USA

    Anzahl: 1 verfügbar

    In den Warenkorb

    Buch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition. This is an open access book.

  • Unbekannt

    Verlag: Springer Nature Singapore, 2023

    ISBN 10: 9819915996 ISBN 13: 9789819915996

    Sprache: Englisch

    Anbieter: Buchpark, Trebbin, Deutschland

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    EUR 24,87

    EUR 105,00 shipping
    Ships from Deutschland to USA

    Anzahl: 4 verfügbar

    In den Warenkorb

    Zustand: Hervorragend. Zustand: Hervorragend | Seiten: 544 | Sprache: Englisch | Produktart: Bücher | This book provides an overview of the recent advances in representation learning theory, algorithms, and applications for natural language processing (NLP), ranging from word embeddings to pre-trained language models. It is divided into four parts. Part I presents the representation learning techniques for multiple language entries, including words, sentences and documents, as well as pre-training techniques. Part II then introduces the related representation techniques to NLP, including graphs, cross-modal entries, and robustness. Part III then introduces the representation techniques for the knowledge that are closely related to NLP, including entity-based world knowledge, sememe-based linguistic knowledge, legal domain knowledge and biomedical domain knowledge. Lastly, Part IV discusses the remaining challenges and future research directions.The theories and algorithms of representation learning presented can also benefit other related domains such as machine learning, socialnetwork analysis, semantic Web, information retrieval, data mining and computational biology. This book is intended for advanced undergraduate and graduate students, post-doctoral fellows, researchers, lecturers, and industrial engineers, as well as anyone interested in representation learning and natural language processing.As compared to the first edition, the second edition (1) provides a more detailed introduction to representation learning in Chapter 1; (2) adds four new chapters to introduce pre-trained language models, robust representation learning, legal knowledge representation learning and biomedical knowledge representation learning; (3) updates recent advances in representation learning in all chapters; and (4) corrects some errors in the first edition. The new contents will be approximately 50%+ compared to the first edition. This is an open access book.