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  1. The trouble with big data
    how datafication displaces cultural practices
    Published: 2021
    Publisher:  Bloomsbury Publishing, London

    Introduction -- Chapter 1: Data and language -- Chapter 2: Data and sensemaking -- Chapter 3: Data and invisibility -- Chapter 4: Big data and the abyss of aggregation -- Chapter 5: Data and power -- Conclusion. "This book is available as open access... more

    Access:
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    Verlag (kostenfrei)
    Max-Planck-Institut für Bildungsforschung, Bibliothek und wissenschaftliche Information
    Unlimited inter-library loan, copies and loan
    Staatsbibliothek zu Berlin - Preußischer Kulturbesitz, Haus Unter den Linden
    Unlimited inter-library loan, copies and loan
    Universität Potsdam, Universitätsbibliothek
    Unlimited inter-library loan, copies and loan

     

    Introduction -- Chapter 1: Data and language -- Chapter 2: Data and sensemaking -- Chapter 3: Data and invisibility -- Chapter 4: Big data and the abyss of aggregation -- Chapter 5: Data and power -- Conclusion. "This book is available as open access through the Bloomsbury Open programme and is available on www.bloomsburycollections.com. It is funded by Trinity College Dublin, DARIAH-EU and the European Commission. This book explores the challenges society faces with big data, through the lens of culture rather than social, political or economic trends, as demonstrated in the words we use, the values that underpin our interactions, the biases and assumptions that drive us. Focusing on areas such as data and language, data and sensemaking, data and power, data and invisibility, and big data aggregation, it demonstrates that humanities research, focusing on cultural rather than social, political or economic frames of reference for viewing technology, resists mass datafication for a reason, and that those very reasons can be instructive for the critical observation of big data research and innovation."--

     

    Export to reference management software   RIS file
      BibTeX file
    Source: Staatsbibliothek zu Berlin
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9781350239654; 9781350239630; 9781350239647
    Other identifier:
    Series: Bloomsbury Studies in Digital Cultures
    Subjects: Humanities; Culture; Digital humanities; Big data; Big data; Data analysis: general
    Scope: 1 Online-Ressource (1 online resource)
    Notes:

    Includes bibliographical references and index

    Also issued in print: Bloomsbury Academic, 2021.

  2. Text Analytics for Corpus Linguistics and Digital Humanities
    Simple R Scripts and Tools
    Published: 2024
    Publisher:  Bloomsbury Academic, London ; Bloomsbury Publishing (UK)

    Do you want to gain a deeper understanding of how big tech analyzes and exploits our text data, or investigate how political parties differ by analyzing textual styles, associations and trends in documents? Or create a map of a text collection and... more

    Access:
    Resolving-System (lizenzpflichtig)
    Staatsbibliothek zu Berlin - Preußischer Kulturbesitz, Haus Unter den Linden
    Unlimited inter-library loan, copies and loan
    Universität Potsdam, Universitätsbibliothek
    Unlimited inter-library loan, copies and loan

     

    Do you want to gain a deeper understanding of how big tech analyzes and exploits our text data, or investigate how political parties differ by analyzing textual styles, associations and trends in documents? Or create a map of a text collection and write a simple QA system yourself? This book explores how to apply state-of-the-art text analytics methods to detect and visualize phenomena in text data. Solidly based on methods from corpus linguistics, natural language processing, text analytics and digital humanities, this book shows readers how to conduct experiments with their own corpora and research questions, underpin their theories, quantify the differences and pinpoint characteristics. Case studies and experiments are detailed in every chapter using real-world and open access corpora from politics, World English, history, and literature. The results are interpreted and put into perspective, pitfalls are pointed out, and necessary pre-processing steps are demonstrated. This book also demonstrates how to use the programming language R, as well as simple alternatives and additions to R, to conduct experiments and employ visualisations by example, with extensible R-code, recipes, links to corpora, and a wide range of methods. The methods introduced can be used across texts of all disciplines, from history or literature to party manifestos and patient reports

     

    Export to reference management software   RIS file
      BibTeX file
    Source: Staatsbibliothek zu Berlin
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9781350370852
    Other identifier:
    Edition: 1st ed
    Series: Language, Data Science and Digital Humanities
    Subjects: Corpora (Linguistics); Digital humanities; R (Computer program language); Computational linguistics; Data analysis: general; linguistics
    Scope: 1 Online-Ressource (224 pages)
    Notes:

    Includes bibliographical references and index

    List of Figures List of Tables Acknowledgements 1. Introduction 2. Spikes of Frequencies and First Steps in UNIX 3. Frequency Lists and First Steps in R 4. Overuse and Keywords and Using R Libraries 5. Document Classification and Supervised ML in LightSide and R 6. Topic Modelling and Unsupervised ML with Mallet and R 7. Kernel Density Estimation for Conceptual Maps 8. Distributional Semantics 9. BERT Models 10. Conclusions References Index

  3. The trouble with big data
    how datafication displaces cultural practices
    Published: 2021
    Publisher:  Bloomsbury Publishing, London

    Introduction -- Chapter 1: Data and language -- Chapter 2: Data and sensemaking -- Chapter 3: Data and invisibility -- Chapter 4: Big data and the abyss of aggregation -- Chapter 5: Data and power -- Conclusion. "This book is available as open access... more

    Access:
    Resolving-System (kostenfrei)
    Max-Planck-Institut für Bildungsforschung, Bibliothek und wissenschaftliche Information
    No inter-library loan
    Staatsbibliothek zu Berlin - Preußischer Kulturbesitz, Haus Potsdamer Straße
    No inter-library loan
    Staats- und Universitätsbibliothek Bremen
    No inter-library loan
    Universitätsbibliothek Clausthal
    No inter-library loan
    Hochschule für Bildende Künste Dresden, Bibliothek
    No inter-library loan
    Universitätsbibliothek Erfurt / Forschungsbibliothek Gotha, Universitätsbibliothek Erfurt
    No inter-library loan
    Evangelische Hochschule Freiburg, Hochschulbibliothek
    No inter-library loan
    Zeppelin Universität gGmbH, Bibliothek
    No inter-library loan
    Niedersächsische Staats- und Universitätsbibliothek Göttingen
    No inter-library loan
    Universitäts- und Landesbibliothek Sachsen-Anhalt / Zentrale
    No inter-library loan
    Helmut-Schmidt-Universität, Universität der Bundeswehr Hamburg, Universitätsbibliothek
    No inter-library loan
    Technische Informationsbibliothek (TIB) / Leibniz-Informationszentrum Technik und Naturwissenschaften und Universitätsbibliothek
    No inter-library loan
    Thüringer Universitäts- und Landesbibliothek
    No inter-library loan
    Universitätsbibliothek Kiel, Zentralbibliothek
    No inter-library loan
    Hochschule Anhalt , Hochschulbibliothek
    No inter-library loan
    Hochschule für Technik, Wirtschaft und Kultur Leipzig, Hochschulbibliothek
    No inter-library loan
    Leuphana Universität Lüneburg, Medien- und Informationszentrum, Universitätsbibliothek
    No inter-library loan
    Staatliche Hochschule für Musik und Darstellende Kunst Mannheim, Bibliothek
    Unlimited inter-library loan, copies and loan
    Bibliotheks-und Informationssystem der Carl von Ossietzky Universität Oldenburg (BIS)
    No inter-library loan
    Universität Potsdam, Universitätsbibliothek
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    Universität Ulm, Kommunikations- und Informationszentrum, Bibliotheksservices
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    Universitätsbibliothek Vechta
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    Introduction -- Chapter 1: Data and language -- Chapter 2: Data and sensemaking -- Chapter 3: Data and invisibility -- Chapter 4: Big data and the abyss of aggregation -- Chapter 5: Data and power -- Conclusion. "This book is available as open access through the Bloomsbury Open programme and is available on www.bloomsburycollections.com. It is funded by Trinity College Dublin, DARIAH-EU and the European Commission. This book explores the challenges society faces with big data, through the lens of culture rather than social, political or economic trends, as demonstrated in the words we use, the values that underpin our interactions, the biases and assumptions that drive us. Focusing on areas such as data and language, data and sensemaking, data and power, data and invisibility, and big data aggregation, it demonstrates that humanities research, focusing on cultural rather than social, political or economic frames of reference for viewing technology, resists mass datafication for a reason, and that those very reasons can be instructive for the critical observation of big data research and innovation."--

     

    Export to reference management software   RIS file
      BibTeX file
    Source: Staatsbibliothek zu Berlin
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9781350239654; 9781350239630; 9781350239647
    Other identifier:
    Series: Bloomsbury Studies in Digital Cultures
    Subjects: Humanities; Culture; Digital humanities; Big data; Big data; Data analysis: general
    Scope: 1 Online-Ressource (1 online resource)
    Notes:

    Includes bibliographical references and index

    Also issued in print: Bloomsbury Academic, 2021.

  4. Text Analytics for Corpus Linguistics and Digital Humanities
    Simple R Scripts and Tools
    Published: 2024
    Publisher:  Bloomsbury Academic, London ; Bloomsbury Publishing (UK)

    Do you want to gain a deeper understanding of how big tech analyzes and exploits our text data, or investigate how political parties differ by analyzing textual styles, associations and trends in documents? Or create a map of a text collection and... more

    Access:
    Resolving-System (lizenzpflichtig)
    Staatsbibliothek zu Berlin - Preußischer Kulturbesitz, Haus Potsdamer Straße
    No inter-library loan
    Universitäts- und Landesbibliothek Sachsen-Anhalt / Zentrale
    No inter-library loan
    Universität Potsdam, Universitätsbibliothek
    No inter-library loan

     

    Do you want to gain a deeper understanding of how big tech analyzes and exploits our text data, or investigate how political parties differ by analyzing textual styles, associations and trends in documents? Or create a map of a text collection and write a simple QA system yourself? This book explores how to apply state-of-the-art text analytics methods to detect and visualize phenomena in text data. Solidly based on methods from corpus linguistics, natural language processing, text analytics and digital humanities, this book shows readers how to conduct experiments with their own corpora and research questions, underpin their theories, quantify the differences and pinpoint characteristics. Case studies and experiments are detailed in every chapter using real-world and open access corpora from politics, World English, history, and literature. The results are interpreted and put into perspective, pitfalls are pointed out, and necessary pre-processing steps are demonstrated. This book also demonstrates how to use the programming language R, as well as simple alternatives and additions to R, to conduct experiments and employ visualisations by example, with extensible R-code, recipes, links to corpora, and a wide range of methods. The methods introduced can be used across texts of all disciplines, from history or literature to party manifestos and patient reports

     

    Export to reference management software   RIS file
      BibTeX file
    Source: Staatsbibliothek zu Berlin
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9781350370852
    Other identifier:
    Edition: 1st ed
    Series: Language, Data Science and Digital Humanities
    Subjects: Corpora (Linguistics); Digital humanities; R (Computer program language); Computational linguistics; Data analysis: general; linguistics
    Scope: 1 Online-Ressource (224 pages)
    Notes:

    Includes bibliographical references and index

    List of Figures List of Tables Acknowledgements 1. Introduction 2. Spikes of Frequencies and First Steps in UNIX 3. Frequency Lists and First Steps in R 4. Overuse and Keywords and Using R Libraries 5. Document Classification and Supervised ML in LightSide and R 6. Topic Modelling and Unsupervised ML with Mallet and R 7. Kernel Density Estimation for Conceptual Maps 8. Distributional Semantics 9. BERT Models 10. Conclusions References Index