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  1. Linguistic Resources for Natural Language Processing
    On the Necessity of Using Linguistic Methods to Develop NLP Software
    Contributor: Silberztein, Max (Herausgeber)
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham

    Hochschule Bielefeld – University of Applied Sciences and Arts, Hochschulbibliothek
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    Source: Union catalogues
    Contributor: Silberztein, Max (Herausgeber)
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9783031438110
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Natural language processing (Computer science); Computational linguistics; Artificial intelligence; Digital humanities
    Scope: 1 Online-Ressource (XXII, 217 p. 118 illus., 101 illus. in color)
  2. Linguistic Resources for Natural Language Processing
    On the Necessity of Using Linguistic Methods to Develop NLP Software
    Contributor: Silberztein, Max (Herausgeber)
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham ; Springer International Publishing AG

    Bibliothek der Hochschule Darmstadt, Zentralbibliothek
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    Source: Union catalogues
    Contributor: Silberztein, Max (Herausgeber)
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9783031438110; 3031438116
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Natural language processing (Computer science); Computational linguistics; Artificial intelligence; Digital humanities; Natural Language Processing (NLP); Computational Linguistics; Artificial Intelligence; Digital Humanities
    Scope: 1 Online-Ressource (XXII, 217 Seiten), 118 illus., 101 illus. in color.
  3. Machine Learning, Natural Language Processing, and Psychometrics
    Contributor: Jiao, Hong (HerausgeberIn); Lissitz, Robert W (HerausgeberIn)
    Published: 2024
    Publisher:  Information Age Publishing, [Erscheinungsort nicht ermittelbar]

    "With the exponential increase of digital assessment, different types of data in addition to item responses become available in the measurement process. One of the salient features in digital assessment is that process data can be easily collected.... more

     

    "With the exponential increase of digital assessment, different types of data in addition to item responses become available in the measurement process. One of the salient features in digital assessment is that process data can be easily collected. This non-conventional structured or unstructured data source may bring new perspectives to better understand the assessment products or accuracy and the process how an item product was attained. The analysis of the conventional and non-conventional assessment data calls for more methodology other than the latent trait modeling. Natural language processing (NLP) methods and machine learning algorithms have been successfully applied in automated scoring. It has been explored in providing diagnostic feedback to test-takers in writing assessment. Recently, machine learning algorithms have been explored for cheating detection and cognitive diagnosis. When the measurement field promote the use of assessment data to provide feedback to improve teaching and learning, it is the right time to explore new methodology and explore the value added from other data sources. This book presents the use cases of machine learning and NLP in improving the assessment theory and practices in high-stakes summative assessment, learning, and instruction. More specifically, experts from the field addressed the topics related to automated item generations, automated scoring, automated feedback in writing, explainability of automated scoring, equating, cheating and alarming response detection, adaptive testing, and applications in science assessment. This book demonstrates the utility of machine learning and NLP in assessment design and psychometric analysis"--

     

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  4. Machine Learning, Natural Language Processing, and Psychometrics
    Contributor: Jiao, Hong (HerausgeberIn); Lissitz, Robert W (HerausgeberIn)
    Published: 2024
    Publisher:  Information Age Publishing, [Erscheinungsort nicht ermittelbar]

    "With the exponential increase of digital assessment, different types of data in addition to item responses become available in the measurement process. One of the salient features in digital assessment is that process data can be easily collected.... more

     

    "With the exponential increase of digital assessment, different types of data in addition to item responses become available in the measurement process. One of the salient features in digital assessment is that process data can be easily collected. This non-conventional structured or unstructured data source may bring new perspectives to better understand the assessment products or accuracy and the process how an item product was attained. The analysis of the conventional and non-conventional assessment data calls for more methodology other than the latent trait modeling. Natural language processing (NLP) methods and machine learning algorithms have been successfully applied in automated scoring. It has been explored in providing diagnostic feedback to test-takers in writing assessment. Recently, machine learning algorithms have been explored for cheating detection and cognitive diagnosis. When the measurement field promote the use of assessment data to provide feedback to improve teaching and learning, it is the right time to explore new methodology and explore the value added from other data sources. This book presents the use cases of machine learning and NLP in improving the assessment theory and practices in high-stakes summative assessment, learning, and instruction. More specifically, experts from the field addressed the topics related to automated item generations, automated scoring, automated feedback in writing, explainability of automated scoring, equating, cheating and alarming response detection, adaptive testing, and applications in science assessment. This book demonstrates the utility of machine learning and NLP in assessment design and psychometric analysis"--

     

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  5. Ways to use ChatGPT to improve your writing
    Contributor: Taulli, Tom (MitwirkendeR)
    Published: [2024]
    Publisher:  O'Reilly Media, Inc., [Sebastopol, California]

    Whether you're a developer, a creative writer, or business manager, these shortcuts will help you get the most from ChatGPT. Topics include generating content and artwork, developing software code, and building custom GPTs. Each video contains... more

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    Technische Universität Chemnitz, Universitätsbibliothek
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    Hochschule Furtwangen University. Informatik, Technik, Wirtschaft, Medien. Campus Furtwangen, Bibliothek
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    Max-Planck-Institut für ethnologische Forschung, Bibliothek
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    Whether you're a developer, a creative writer, or business manager, these shortcuts will help you get the most from ChatGPT. Topics include generating content and artwork, developing software code, and building custom GPTs. Each video contains practical tips to help you leverage ChatGPT.

     

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    Source: Union catalogues
    Contributor: Taulli, Tom (MitwirkendeR)
    Language: English
    Media type: Book
    Format: Online
    Edition: [First edition].
    Series: Shortcuts
    Subjects: Creative writing; Business writing; Natural language processing (Computer science); Artificial intelligence; Style commercial ; Logiciels; Traitement automatique des langues naturelles; Intelligence artificielle ; Logiciels; Instructional films; Nonfiction films; Internet videos; Films de formation; Films autres que de fiction; Vidéos sur Internet
    Scope: 1 online resource (1 video file (4 min.)), sound, color.
    Notes:

    Online resource; title from title details screen (O’Reilly, viewed June 18, 2024)

  6. ChatGPT und Co.
    wie du KI richtig nutzt - schreiben, recherchieren, Bilder erstellen, programmieren
    Published: 2024
    Publisher:  Rheinwerk Verlag, Bonn

    Intro -- 1 KI-Bots - der Produktivitäts- und Kreativitätsschub -- 1.1 Hallo Bot-Welt! -- 1.1.1 Startschuss und Hype -- 1.1.2 Die Ahnengalerie der modernen Chatbots -- 1.2 Dein Fahrplan in eine produktive, kreative Zukunft -- 1.3 ChatGPT - First... more

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    ALL 2024
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    Intro -- 1 KI-Bots - der Produktivitäts- und Kreativitätsschub -- 1.1 Hallo Bot-Welt! -- 1.1.1 Startschuss und Hype -- 1.1.2 Die Ahnengalerie der modernen Chatbots -- 1.2 Dein Fahrplan in eine produktive, kreative Zukunft -- 1.3 ChatGPT - First Contact -- 1.3.1 Einen Account bei OpenAI anlegen -- 1.3.2 Erste Schritte mit ChatGPT -- 1.3.3 Was darf es kosten? -- 1.3.4 Wir müssen leider draußen bleiben … -- 1.4 Ein Zoo voller Bots -- 1.4.1 DeepL -- 1.4.2 DeepL Write -- 1.4.3 DALL-E -- 1.4.4 Midjourney -- 1.4.5 Unendliche Weiten … -- 1.4.6 Der Beipackzettel: Warnung vor (zu) großen Erwartungen und Gefahren -- 2 Intelligente Textverarbeitung -- 2.1 Der KI-Sekretär -- 2.1.1 E-Mails beantworten -- 2.1.2 Formelle Schreiben -- 2.1.3 Erörterungen und Entscheidungsfindung -- 2.1.4 Gutachten und Dokumentationen -- 2.1.5 Ansprachen und Festreden -- 2.2 Rechtschreib- und Formulierungshilfen -- 2.2.1 Eine Bewerbung schreiben -- 2.2.2 Einen eigenen Text bezüglich Rechtschreibung, Grammatik und Ausdruck prüfen und korrigieren -- 2.2.3 Einen Text aus Fragmenten erstellen -- 2.3 KI für Medienprofis -- 2.3.1 Erzeugen journalistischer Texte -- 2.3.2 Einen Blogartikel schreiben (lassen) -- 2.3.3 Die Anmoderation für einen Podcast erstellen -- 2.3.4 Ein Skript für ein YouTube Video erstellen -- 2.3.5 Besser gefunden werden mit KI-SEO -- 2.4 KI für Literaten -- 2.4.1 Ganze Bücher zusammenfassen -- 2.4.2 Informationen aus Artikeln und Webseiten extrahieren -- 2.4.3 Eigene literarische Texte verfassen -- 2.4.4 Gedichte schreiben lassen -- 2.5 Der KI-Babelfisch -- 2.5.1 ChatGPT als Simultanübersetzer -- 2.5.2 DeepL - der Perfektionist -- 2.5.3 LanguageTool - das Schweizer Taschenmesser für Rechtschreib-, Grammatik und Stilprüfung -- 2.6 KI-Tools im Job einsetzen -- 2.6.1 Daten extrahieren -- 2.6.2 Präsentationen erstellen (lassen) -- 2.6.3 Eine Marketingstrategie erstellen.

     

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    Source: Union catalogues
    Language: German
    Media type: Ebook
    Format: Online
    ISBN: 9783836297356
    RVK Categories: ST 300 ; AN 96400 ; AK 39950
    Edition: 1. Auflage
    Subjects: Natural language processing (Computer science); Artificial intelligence-Computer programs
    Scope: 1 Online-Ressource (360 Seiten), Illustrationen
  7. Empowering Low-Resource Languages With NLP Solutions
    Published: 2024
    Publisher:  IGI Global, Hershey

    Tackles head-on the challenges that low-resource languages face in the realm of Natural Language Processing. Through real-world case studies, expert insights, and a comprehensive array of topics, this book presents the the tools, strategies, and... more

     

    Tackles head-on the challenges that low-resource languages face in the realm of Natural Language Processing. Through real-world case studies, expert insights, and a comprehensive array of topics, this book presents the the tools, strategies, and ethical considerations needed to address the crisis facing low-resource languages "The book aims to fill the gap in the existing literature and shed light on the unique challenges, opportunities, and potential solutions for applying NLP techniques to low-resource languages"--

     

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  8. Quick start guide to large language models
    strategies and best practices for using ChatGPT and other LLMs
    Published: [2024]; © 2024
    Publisher:  Addison-Wesley, Hoboken, New Jersey

    The Practical, Step-by-Step Guide to Using LLMs at Scale in Projects and Products Large Language Models (LLMs) like ChatGPT are demonstrating breathtaking capabilities, but their size and complexity have deterred many practitioners from applying... more

    Universitätsbibliothek Clausthal
    2024 A 87
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    Staats- und Universitätsbibliothek Hamburg Carl von Ossietzky
    ST 306 O99 89715
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    Deutsche Universität für Verwaltungswissenschaften Speyer, Universitätsbibliothek
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    The Practical, Step-by-Step Guide to Using LLMs at Scale in Projects and Products Large Language Models (LLMs) like ChatGPT are demonstrating breathtaking capabilities, but their size and complexity have deterred many practitioners from applying them. In Quick Start Guide to Large Language Models, pioneering data scientist and AI entrepreneur Sinan Ozdemir clears away those obstacles and provides a guide to working with, integrating, and deploying LLMs to solve practical problems. Ozdemir brings together all you need to get started, even if you have no direct experience with LLMs: step-by-step instructions, best practices, real-world case studies, hands-on exercises, and more. Along the way, he shares insights into LLMs' inner workings to help you optimize model choice, data formats, parameters, and performance. You'll find even more resources on the companion website, including sample datasets and code for working with open- and closed-source LLMs such as those from OpenAI (GPT-4 and ChatGPT), Google (BERT, T5, and Bard), EleutherAI (GPT-J and GPT-Neo), Cohere (the Command family), and Meta (BART and the LLaMA family). Learn key concepts: pre-training, transfer learning, fine-tuning, attention, embeddings, tokenization, and moreUse APIs and Python to fine-tune and customize LLMs for your requirementsBuild a complete neural/semantic information retrieval system and attach to conversational LLMs for retrieval-augmented generationMaster advanced prompt engineering techniques like output structuring, chain-ofthought, and semantic few-shot promptingCustomize LLM embeddings to build a complete recommendation engine from scratch with user dataConstruct and fine-tune multimodal Transformer architectures using opensource LLMsAlign LLMs using Reinforcement Learning from Human and AI Feedback (RLHF/RLAIF)Deploy prompts and custom fine-tuned LLMs to the cloud with scalability and evaluation pipelines in mind "By balancing the potential of both open- and closed-source models, Quick Start Guide to Large Language Models stands as a comprehensive guide to understanding and using LLMs, bridging the gap between theoretical concepts and practical application."--Giada Pistilli, Principal Ethicist at HuggingFace "A refreshing and inspiring resource. Jam-packed with practical guidance and clear explanations that leave you smarter about this incredible new field."--Pete Huang, author of The Neuron Register your book for convenient access to downloads, updates, and/or corrections as they become available. See inside book for details "The advancement of Large Language Models (LLMs) has revolutionized the field of Natural Language Processsing (NLP) in recent years. Models like BERT, T5, and ChatGPT have demonstrated unprecedented performance on a wide range of NLP tasks, from text classification to machine translation. Despite their impressive performance, the use of LLMs remains challenging for many practitioners. The sheer size of these models, combined with the lack of understanding of their inner workings, has made it difficult for practitioners to effectively use and optimize these models for their specific needs. This book is a practical guide to the use of LLMs in NLP. It provides an overview of the key concepts and techniques used in LLMs and explains how these models work and how they can be used for various NLP tasks. The book also covers advanced topics, such as fine-tuning, alignment, and information retrieval while providing practical tips and tricks for training and optimizing LLMs for specific NLP tasks. This book addresses a wide range of topics in the field of LLMs, including the basics, launching an application with proprietary models, fine-tuning GPT3 with custom examples, prompt engineering, building a recommendation engine, combining Transformers, and deploying custom LLMs to the cloud." --

     

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  9. New advances in translation technology
    applications and pedagogy
    Contributor: Peng, Yuhong (Publisher); Huang, Huihui (Publisher); Li, Defeng (Publisher)
    Published: [2024]; © 2024
    Publisher:  Springer, Singapore, Singapore

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    Volltext (URL des Erstveröffentlichers)
    Source: Union catalogues
    Contributor: Peng, Yuhong (Publisher); Huang, Huihui (Publisher); Li, Defeng (Publisher)
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9789819729586
    Other identifier:
    Series: New frontiers in translation studies
    Subjects: Language Translation; Natural Language Processing (NLP); Computational Linguistics; Artificial Intelligence; Translating and interpreting; Natural language processing (Computer science); Computational linguistics; Artificial intelligence
    Scope: 1 Online-Ressource (vi, 282 Seiten, C1), Illustrationen, Diagramme
    Notes:

    Enthält Literaturangaben nach den Beiträgen

  10. Centaur Art
    The Future of Art in the Age of Generative AI
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham ; Imprint: Springer

    Generative AI is transforming the landscape of numerous industries, and the creative fields are no exception. As the figurative arts become a focal point in the ongoing debate, this book explores hybrid and centauric intelligence—an integration of... more

     

    Generative AI is transforming the landscape of numerous industries, and the creative fields are no exception. As the figurative arts become a focal point in the ongoing debate, this book explores hybrid and centauric intelligence—an integration of human and artificial intelligence. Through parallel and complementary directions, it investigates the general concept of this hybrid intelligence and its specific application in the artistic realm, highlighting the unprecedented creativity and innovation that can emerge from this synergy. Additionally, it addresses the economic tensions and legal disputes, particularly around copyright, that arise from the impact of new technologies in the creative sector. The result is a comprehensive overview of the hybridization paradigm by analyzing the operational and creative methods of artists and creators who have embraced generative AI. The author examines the implications of the recent developments, offering readers an understanding of how AI can support human creativity rather than replace it. Thus, a compelling vision of the future unfolds, one in which artists and AI collaborate, pushing the boundaries of what is artistically achievable. Whether you are a seasoned professional looking to incorporate AI into your creative process or a curious reader intrigued by the convergence of art and technology, the book will provide valuable insights and inspire you to explore the fascinating intersection of human creativity and artificial intelligence and the future it heralds for the art world

     

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    Source: Union catalogues
    Language: English
    Media type: Ebook; Data medium
    Format: Online
    ISBN: 9783031690631
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Artificial intelligence; Digital humanities; Natural language processing (Computer science); Image processing; Artificial Intelligence; Intelligence Augmentation; Digital Humanities; Natural Language Processing (NLP); Image Processing
    Scope: 1 Online-Ressource (XVI, 88 Seiten), 38 Illustrationen, 33 Illustrationen
    Notes:

    Preface -- Acknowledgements -- 1. The Rise of Centauric Systems -- 2. Art and Artificial Intelligence between Past, Present and Future -- 3. AI for Games and Art -- 4. The Art of Turning Prompts into Art -- 5. Art as an Open System -- 6. From ‘On-life’ to ‘On-art’ and ‘Beyond-life’

  11. Linguistic Resources for Natural Language Processing
    On the Necessity of Using Linguistic Methods to Develop NLP Software
    Contributor: Silberztein, Max (Publisher)
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham ; Imprint: Springer

    Empirical — data-driven, neural network-based, probabilistic, and statistical — methods seem to be the modern trend. Recently, OpenAI’s ChatGPT, Google’s Bard and Microsoft’s Sydney chatbots have been garnering a lot of attention for their detailed... more

     

    Empirical — data-driven, neural network-based, probabilistic, and statistical — methods seem to be the modern trend. Recently, OpenAI’s ChatGPT, Google’s Bard and Microsoft’s Sydney chatbots have been garnering a lot of attention for their detailed answers across many knowledge domains. In consequence, most AI researchers are no longer interested in trying to understand what common intelligence is or how intelligent agents construct scenarios to solve various problems. Instead, they now develop systems that extract solutions from massive databases used as cheat sheets. In the same manner, Natural Language Processing (NLP) software that uses training corpora associated with empirical methods are trendy, as most researchers in NLP today use large training corpora, always to the detriment of the development of formalized dictionaries and grammars. Not questioning the intrinsic value of many software applications based on empirical methods, this volume aims at rehabilitating the linguistic approach to NLP. In an introduction, the editor uncovers several limitations and flaws of using training corpora to develop NLP applications, even the simplest ones, such as automatic taggers. The first part of the volume is dedicated to showing how carefully handcrafted linguistic resources could be successfully used to enhance current NLP software applications. The second part presents two representative cases where data-driven approaches cannot be implemented simply because there is not enough data available for low-resource languages. The third part addresses the problem of how to treat multiword units in NLP software, which is arguably the weakest point of NLP applications today but has a simple and elegant linguistic solution. It is the editor's belief that readers interested in Natural Language Processing will appreciate the importance of this volume, both for its questioning of the training corpus-based approaches and for the intrinsic value of the linguistic formalization and the underlying methodology presented

     

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    Source: Union catalogues
    Contributor: Silberztein, Max (Publisher)
    Language: English
    Media type: Ebook; Data medium
    Format: Online
    ISBN: 9783031438110
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Natural language processing (Computer science); Computational linguistics; Artificial intelligence; Digital humanities; Natural Language Processing (NLP); Computational Linguistics; Artificial Intelligence; Digital Humanities
    Scope: 1 Online-Ressource (XXII, 217 Seiten), 118 Illustrationen, 101 Illustrationen
    Notes:

    In honor of Peter -- Foreword. - Preface -- About this book. Part 1. Introduction -- 1. The Limitations of Corpus-based Methods in NLP -- Part 2 -- 2. Developing Linguistic-based NLP Software -- 3. Linguistic Resources for the Automatic Generation of Texts in Natural Language -- 4. Towards a More Efficient Arabic-French Translation -- 5. Linguistic Resources and Methods and Algorithms for Belarusian Natural Language Processing -- Part 3 -- Linguistic Resources for Low-resource Languages -- 6. A New Set of Linguistic Resources for Ukrainian -- 7. Formalization of the Quechua Morphology -- 8. The Challenging Task of Translating the Language of Tango -- 9. A Polylectal Linguistic Resource for Rromani -- Part 4. Processing Multiword Units: The Linguistic Approach -- 10. Using Linguistic Criteria to Define Multiword Units -- 11. A Linguistic Approach to English Phrasal Verbs -- 12. Analysis of Indonesian Multiword Expressions: Linguistic vs Data-driven Approach

  12. Centaur Art
    The Future of Art in the Age of Generative AI
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham ; Springer

    Hochschule für Technik und Wirtschaft Berlin, Hochschulbibliothek
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    Technische Hochschule Brandenburg, Hochschulbibliothek
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    Brandenburgische Technische Universität Cottbus - Senftenberg, Universitätsbibliothek
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    Volltext (URL des Erstveröffentlichers)
    Source: Union catalogues
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9783031690631
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Artificial Intelligence; Intelligence Augmentation; Digital Humanities; Natural Language Processing (NLP); Image Processing; Artificial intelligence; Digital humanities; Natural language processing (Computer science); Image processing
    Scope: 1 Online-Ressource (XVI, 88 p. 38 illus., 33 illus. in color)
  13. Linguistic Resources for Natural Language Processing
    On the Necessity of Using Linguistic Methods to Develop NLP Software
    Contributor: Silberztein, Max (Publisher)
    Published: 2024
    Publisher:  Springer Nature Switzerland, Cham ; Springer

    Hochschule für Technik und Wirtschaft Berlin, Hochschulbibliothek
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    Technische Hochschule Brandenburg, Hochschulbibliothek
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    Brandenburgische Technische Universität Cottbus - Senftenberg, Universitätsbibliothek
    Unlimited inter-library loan, copies and loan
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    Content information
    Volltext (URL des Erstveröffentlichers)
    Source: Union catalogues
    Contributor: Silberztein, Max (Publisher)
    Language: English
    Media type: Ebook
    Format: Online
    ISBN: 9783031438110
    Other identifier:
    Edition: 1st ed. 2024
    Subjects: Natural Language Processing (NLP); Computational Linguistics; Artificial Intelligence; Digital Humanities; Natural language processing (Computer science); Computational linguistics; Artificial intelligence; Digital humanities
    Scope: 1 Online-Ressource (XXII, 217 p. 118 illus., 101 illus. in color)