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  • 1
    UID:
    b3kat_BV037195517
    Format: 1 Online-Ressource (214 p.) , 13 b&w, 2 col.ill., ill., 16
    ISBN: 1847559670 , 9781847559678
    Note: This comprehensive book describes all aspects of the current sampling and analysis techniques for trace-level beryllium in the workplace, As the use of beryllium grows worldwide, the need for a single source of information on this important but toxic element is of increasing importance. This comprehensive book describes all aspects of the current sampling and analysis techniques for trace-level beryllium in the workplace. It offers both a historical perspective and a description of the state-of-the-art in a single place. It covers the challenges inherent in sampling procedures such as reproducibility, limited sample volume, surface sampling materials and collection efficiency. It also deals with the problems involved in analytical techniques including lower detection limits, identification and compensation for matrix interferences, greater sensitivity requirements and the need for more robust preparation techniques. Future trends, including development of real-time beryllium sampling and analysis equipment, are also explored. Readers will gain an understanding of sampling and analytical techniques best suited for sensitive and accurate analysis of beryllium at ultra-trace levels in environmental and workplace samples. Many "standard" sampling and analysis techniques have weaknesses that this book will help users avoid. Written by recognized experts in the field, the book provides a single point of reference for professionals in analytical chemistry, industrial hygiene, and environmental science
    Language: English
    Keywords: Beryllium ; Umweltprobe ; Chemische Analyse ; Beryllium ; Umweltprobe ; Probenahme ; Aufsatzsammlung
    URL: Volltext  (Deutschlandweit zugänglich)
    URL: Volltext  (Deutschlandweit zugänglich)
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  • 2
    Online Resource
    Online Resource
    Cambridge :Cambridge University Press,
    UID:
    almahu_9948234365702882
    Format: 1 online resource (xxii, 426 pages) : , digital, PDF file(s).
    ISBN: 9781316761380 (ebook)
    Content: The field of artificial intelligence (AI) and the law is on the cusp of a revolution that began with text analytic programs like IBM's Watson and Debater and the open-source information management architectures on which they are based. Today, new legal applications are beginning to appear and this book - designed to explain computational processes to non-programmers - describes how they will change the practice of law, specifically by connecting computational models of legal reasoning directly with legal text, generating arguments for and against particular outcomes, predicting outcomes and explaining these predictions with reasons that legal professionals will be able to evaluate for themselves. These legal applications will support conceptual legal information retrieval and allow cognitive computing, enabling a collaboration between humans and computers in which each does what it can do best. Anyone interested in how AI is changing the practice of law should read this illuminating work.
    Note: Title from publisher's bibliographic system (viewed on 17 Jul 2017).
    Additional Edition: Print version: ISBN 9781107171503
    Language: English
    Subjects: Computer Science , Law
    RVK:
    RVK:
    URL: Volltext  (URL des Erstveröffentlichers)
    URL: Volltext  (lizenzpflichtig)
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  • 3
    UID:
    almahu_9948564052602882
    Format: XVI, 259 p. 170 illus., 75 illus. in color. , online resource.
    Edition: 1st ed. 2020.
    ISBN: 9781484257722
    Content: Explore the world of using machine learning methods with deep computer vision, sensors and data in sports, health and fitness and other industries. Accompanied by practical step-by-step Python code samples and Jupyter notebooks, this comprehensive guide acts as a reference for a data scientist, machine learning practitioner or anyone interested in AI applications. These ML models and methods can be used to create solutions for AI enhanced coaching, judging, athletic performance improvement, movement analysis, simulations, in motion capture, gaming, cinema production and more. Packed with fun, practical applications for sports, machine learning models used in the book include supervised, unsupervised and cutting-edge reinforcement learning methods and models with popular tools like PyTorch, Tensorflow, Keras, OpenAI Gym and OpenCV. Author Kevin Ashley-who happens to be both a machine learning expert and a professional ski instructor-has written an insightful book that takes you on a journey of modern sport science and AI. Filled with thorough, engaging illustrations and dozens of real-life examples, this book is your next step to understanding the implementation of AI within the sports world and beyond. Whether you are a data scientist, a coach, an athlete, or simply a personal fitness enthusiast excited about connecting your findings with AI methods, the author's practical expertise in both tech and sports is an undeniable asset for your learning process. Today's data scientists are the future of athletics, and Applied Machine Learning for Health and Fitness hands you the knowledge you need to stay relevant in this rapidly growing space. You will: Use multiple data science tools and frameworks Apply deep computer vision and other machine learning methods for classification, semantic segmentation, and action recognition Build and train neural networks, reinforcement learning models and more Analyze multiple sporting activities with deep learning Use datasets available today for model training Use machine learning in the cloud to train and deploy models Apply best practices in machine learning and data science.
    Note: Part I: Getting Started -- Chapter 1: Machine Learning in Sports 101 -- Chapter 2: Physics of Sports -- Chapter 3: Data Scientist's Toolbox -- Chapter 4: 3D Neutral Networks -- Chapter 5: Sensors -- Part 2: Applied Machine Learning -- Chapter 6: Deep Computer Learning -- Chapter 7: 2D Body Pose Estimation -- Chapter 8: 3D Pose Estimation -- Chapter 9: Video Action Recognition -- Chapter 10: Reinforcement Learning in Sports -- Chapter 11: Machine Learning in the Cloud -- Chapter 12: Automating and Consuming Machine Learning.
    In: Springer Nature eBook
    Additional Edition: Printed edition: ISBN 9781484257715
    Additional Edition: Printed edition: ISBN 9781484257739
    Language: English
    URL: Volltext  (URL des Erstveröffentlichers)
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  • 4
    Book
    Book
    Cambridge, Mass. [u.a.] :MIT Press,
    UID:
    almahu_BV006593126
    Format: X, 329 S.
    ISBN: 0-262-01114-X
    Series Statement: Artificial intelligence and legal reasoning
    Note: Zugl.: Amherst, Mass., Univ. of Massachusetts, Diss.
    Language: English
    Subjects: Law
    RVK:
    Keywords: Rechtsinformatik ; Künstliche Intelligenz ; Rechtswissenschaft ; Juristische Argumentation ; Künstliche Intelligenz ; Hochschulschrift ; Hochschulschrift
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  • 5
    Book
    Book
    Deventer [u.a.] :Kluwer Law and Taxation Publ.,
    UID:
    almafu_BV002610932
    Format: XII, 260 S.
    ISBN: 90-6544-391-6
    Series Statement: Computer-law series 3
    Language: English
    Subjects: Law
    RVK:
    Keywords: Informationstechnik ; Recht ; Rechtsinformatik ; Aufsatzsammlung ; Aufsatzsammlung
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  • 6
    UID:
    b3kat_BV046204578
    ISBN: 978-3-96443-725-9
    In: pages:1-17
    In: Formalising jurisprudence / Erich Schweighofer/Michał Araszkiewicz/Friedrich Lachmayer/Marijan Pavčnik (eds.), Bern, 2019, Seite 1-17, 978-3-96443-725-9
    Language: English
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  • 7
    UID:
    kobvindex_ZLB13507778
    Format: XV, 723 Seiten , Ill., graph. Darst. , 24 cm
    ISBN: 3540404333
    Series Statement: Lecture notes in computer science 2689
    Note: Literaturangaben , Text engl.
    Language: English
    Keywords: Fallbasiertes Schließen ; Kongress ; Trondheim 〈2003〉 ; Kongress ; Konferenzschrift
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  • 8
    UID:
    almahu_9948621570302882
    Format: XV, 734 p. , online resource.
    Edition: 1st ed. 2003.
    ISBN: 9783540450061
    Series Statement: Lecture Notes in Artificial Intelligence ; 2689
    Note: Invited Talks -- Human-Centered CBR: Integrating Case-Based Reasoning with Knowledge Construction and Extension -- On the Role of the Cases in Case-Based Planning -- From Manual Knowledge Engineering to Bootstrapping: Progress in Information Extraction and NLP -- Scientific Papers -- SOFT-CBR: A Self-Optimizing Fuzzy Tool for Case-Based Reasoning -- Extracting Performers' Behaviors to Annotate Cases in a CBR System for Musical Tempo Transformations -- Case-Based Ranking for Decision Support Systems -- Analogical Reasoning for Reuse of Object-Oriented Specifications -- Combining Case-Based and Model-Based Reasoning for Predicting the Outcome of Legal Cases -- Measuring the Similarity of Labeled Graphs -- Global Grade Selector: A Recommender System for Supporting the Sale of Plastic Resin -- Maximum Likelihood Hebbian Learning Based Retrieval Method for CBR Systems -- An Evaluation of the Usefulness of Case-Based Explanation -- Adaptation Guided Retrieval Based on Formal Concept Analysis -- Club ? (Trèfle): A Use Trace Model -- Case-Based Plan Recognition in Computer Games -- Solution Verification in Software Design: A CBR Approach -- Evaluation of Case-Based Maintenance Strategies in Software Design -- Optimal Case-Based Refinement of Adaptation Rule Bases for Engineering Design -- Detecting Outliers Using Rule-Based Modeling for Improving CBR-Based Software Quality Classification Models -- An Empirical Analysis of Linear Adaptation Techniques for Case-Based Prediction -- A Framework for Historical Case-Based Reasoning -- An Investigation of Generalized Cases -- On the Role of Diversity in Conversational Recommender Systems -- Similarity and Compromise -- The General Motors Variation-Reduction Adviser: Evolution of a CBR System -- Diversity-Conscious Retrieval from Generalized Cases: A Branch and Bound Algorithm -- Assessing Elaborated Hypotheses: An Interpretive Case-Based Reasoning Approach -- Soft Interchangeability for Case Adaptation -- Supporting the IT Security of eServices with CBR-Based Experience Management -- Improving Similarity Assessment with Entropy-Based Local Weighting -- Collaborative Case Retention Strategies for CBR Agents -- Efficient Real Time Maintenance of Retrieval Knowledge in Case-Based Reasoning -- Incremental Learning of Retrieval Knowledge in a Case-Based Reasoning System -- Case Base Management for Analog Circuits Diagnosis Improvement -- Empirical Analysis of Case-Based Reasoning and Other Prediction Methods in a Social Science Domain: Repeat Criminal Victimization -- A Hybrid System with Multivariate Data Validation and Case Base Reasoning for an Efficient and Realistic Product Formulation -- Product Recommendation with Interactive Query Management and Twofold Similarity -- Unifying Weighting and Case Reduction Methods Based on Rough Sets to Improve Retrieval -- A Knowledge Representation Format for Virtual IP Marketplaces -- Managing Experience for Process Improvement in Manufacturing -- Using Evolution Programs to Learn Local Similarity Measures -- Playing Mozart Phrase by Phrase -- Using Genetic Algorithms to Discover Selection Criteria for Contradictory Solutions Retrieved by CBR -- Using Case-Based Reasoning to Overcome High Computing Cost Interactive Simulations -- Predicting Software Development Project Outcomes -- An SQL-Based Approach to Similarity Assessment within a Relational Database -- Knowledge Capture and Reuse for Geo-spatial Imagery Tasks -- Index Driven Selective Sampling for CBR -- Case Base Reduction Using Solution-Space Metrics -- CBM-Gen+: An Algorithm for Reducing Case Base Inconsistencies in Hierarchical and Incomplete Domains -- Maintaining Consistency in Project Planning Reuse -- Case Mining from Large Databases -- Case Base Maintenance for Improving Prediction Quality -- Context-Awareness in User Modelling: Requirements Analysis for a Case-Based Reasoning Application.
    In: Springer Nature eBook
    Additional Edition: Printed edition: ISBN 9783662203750
    Additional Edition: Printed edition: ISBN 9783540404330
    Language: English
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  • 9
    UID:
    almahu_9947363933602882
    Format: XXVIII, 1016 p. , online resource.
    ISBN: 9783540351603
    Series Statement: Lecture Notes in Computer Science, 4053
    Note: Assessment -- Authoring Tools -- Bayesian Reasoning and Decision-Theoretic Approaches -- Case-Based and Analogical Reasoning -- Cognitive Models -- Collaborative Learning -- eLearning and Web-Based Intelligent Tutoring Systems -- Error Detection and Handling -- Feedback -- Gaming Behavior -- Learner Models -- Motivation -- Natural Language Techniques for Intelligent Tutoring Systems -- Scaffolding -- Simulation -- Tutorial Dialogue and Narrative -- Poster Papers -- Keynotes.
    In: Springer eBooks
    Additional Edition: Printed edition: ISBN 9783540351597
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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  • 10
    UID:
    almahu_9947920717902882
    Format: XV, 734 p. , online resource.
    ISBN: 9783540450061
    Series Statement: Lecture Notes in Computer Science, 2689
    Note: Invited Talks -- Human-Centered CBR: Integrating Case-Based Reasoning with Knowledge Construction and Extension -- On the Role of the Cases in Case-Based Planning -- From Manual Knowledge Engineering to Bootstrapping: Progress in Information Extraction and NLP -- Scientific Papers -- SOFT-CBR: A Self-Optimizing Fuzzy Tool for Case-Based Reasoning -- Extracting Performers’ Behaviors to Annotate Cases in a CBR System for Musical Tempo Transformations -- Case-Based Ranking for Decision Support Systems -- Analogical Reasoning for Reuse of Object-Oriented Specifications -- Combining Case-Based and Model-Based Reasoning for Predicting the Outcome of Legal Cases -- Measuring the Similarity of Labeled Graphs -- Global Grade Selector: A Recommender System for Supporting the Sale of Plastic Resin -- Maximum Likelihood Hebbian Learning Based Retrieval Method for CBR Systems -- An Evaluation of the Usefulness of Case-Based Explanation -- Adaptation Guided Retrieval Based on Formal Concept Analysis -- Club ? (Trèfle): A Use Trace Model -- Case-Based Plan Recognition in Computer Games -- Solution Verification in Software Design: A CBR Approach -- Evaluation of Case-Based Maintenance Strategies in Software Design -- Optimal Case-Based Refinement of Adaptation Rule Bases for Engineering Design -- Detecting Outliers Using Rule-Based Modeling for Improving CBR-Based Software Quality Classification Models -- An Empirical Analysis of Linear Adaptation Techniques for Case-Based Prediction -- A Framework for Historical Case-Based Reasoning -- An Investigation of Generalized Cases -- On the Role of Diversity in Conversational Recommender Systems -- Similarity and Compromise -- The General Motors Variation-Reduction Adviser: Evolution of a CBR System -- Diversity-Conscious Retrieval from Generalized Cases: A Branch and Bound Algorithm -- Assessing Elaborated Hypotheses: An Interpretive Case-Based Reasoning Approach -- Soft Interchangeability for Case Adaptation -- Supporting the IT Security of eServices with CBR-Based Experience Management -- Improving Similarity Assessment with Entropy-Based Local Weighting -- Collaborative Case Retention Strategies for CBR Agents -- Efficient Real Time Maintenance of Retrieval Knowledge in Case-Based Reasoning -- Incremental Learning of Retrieval Knowledge in a Case-Based Reasoning System -- Case Base Management for Analog Circuits Diagnosis Improvement -- Empirical Analysis of Case-Based Reasoning and Other Prediction Methods in a Social Science Domain: Repeat Criminal Victimization -- A Hybrid System with Multivariate Data Validation and Case Base Reasoning for an Efficient and Realistic Product Formulation -- Product Recommendation with Interactive Query Management and Twofold Similarity -- Unifying Weighting and Case Reduction Methods Based on Rough Sets to Improve Retrieval -- A Knowledge Representation Format for Virtual IP Marketplaces -- Managing Experience for Process Improvement in Manufacturing -- Using Evolution Programs to Learn Local Similarity Measures -- Playing Mozart Phrase by Phrase -- Using Genetic Algorithms to Discover Selection Criteria for Contradictory Solutions Retrieved by CBR -- Using Case-Based Reasoning to Overcome High Computing Cost Interactive Simulations -- Predicting Software Development Project Outcomes -- An SQL-Based Approach to Similarity Assessment within a Relational Database -- Knowledge Capture and Reuse for Geo-spatial Imagery Tasks -- Index Driven Selective Sampling for CBR -- Case Base Reduction Using Solution-Space Metrics -- CBM-Gen+: An Algorithm for Reducing Case Base Inconsistencies in Hierarchical and Incomplete Domains -- Maintaining Consistency in Project Planning Reuse -- Case Mining from Large Databases -- Case Base Maintenance for Improving Prediction Quality -- Context-Awareness in User Modelling: Requirements Analysis for a Case-Based Reasoning Application.
    In: Springer eBooks
    Additional Edition: Printed edition: ISBN 9783540404330
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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