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  • 1
    UID:
    almafu_BV047875466
    Format: 1 Online-Ressource.
    Edition: Second edition
    ISBN: 978-3-030-67024-5
    Series Statement: Cognitive technologies
    Additional Edition: Erscheint auch als Druck-Ausgabe, Hardcover ISBN 978-3-030-67023-8
    Language: English
    Subjects: Computer Science
    RVK:
    Keywords: Metalernen ; Metalernen ; Data Mining
    URL: Volltext  (kostenfrei)
    URL: Volltext  (kostenfrei)
    URL: Volltext  (kostenfrei)
    URL: Volltext  (kostenfrei)
    Author information: Brazdil, Pavel B.
    Library Location Call Number Volume/Issue/Year Availability
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  • 2
    UID:
    edoccha_(DE-604)BV047580470
    Format: 1 Online-Ressource : , Illustrationen, Diagramme.
    ISBN: 978-3-030-88942-5
    Series Statement: Lecture notes in computer science 12986
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 978-3-030-88941-8
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 978-3-030-88943-2
    Language: English
    Keywords: Wissensextraktion ; Data Mining ; Maschinelles Lernen ; Algorithmische Lerntheorie ; Konferenzschrift
    URL: Volltext  (URL des Erstveröffentlichers)
    Library Location Call Number Volume/Issue/Year Availability
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  • 3
    UID:
    almafu_BV022142073
    Format: XIII, 1029 S.
    ISBN: 3-540-17598-9
    Series Statement: NATO ASI series : ser.F 27
    Language: English
    Subjects: Engineering , Computer Science
    RVK:
    RVK:
    Keywords: CAD ; Konferenzschrift ; Konferenzschrift ; Konferenzschrift ; Konferenzschrift
    Library Location Call Number Volume/Issue/Year Availability
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  • 4
    Online Resource
    Online Resource
    Cham : Springer Nature | Cham :Springer International Publishing AG,
    UID:
    almafu_9960151483902883
    Format: 1 online resource (349 pages)
    Edition: 2nd ed.
    ISBN: 3-030-67024-4
    Series Statement: Cognitive Technologies
    Content: This open access book as one of the fastest-growing areas of research in machine learning, metalearning studies principled methods to obtain efficient models and solutions by adapting machine learning and data mining processes. This adaptation usually exploits information from past experience on other tasks and the adaptive processes can involve machine learning approaches. As a related area to metalearning and a hot topic currently, automated machine learning (AutoML) is concerned with automating the machine learning processes. Metalearning and AutoML can help AI learn to control the application of different learning methods and acquire new solutions faster without unnecessary interventions from the user. This book offers a comprehensive and thorough introduction to almost all aspects of metalearning and AutoML, covering the basic concepts and architecture, evaluation, datasets, hyperparameter optimization, ensembles and workflows, and also how this knowledge can be used to select, combine, compose, adapt and configure both algorithms and models to yield faster and better solutions to data mining and data science problems. It can thus help developers to develop systems that can improve themselves through experience. This book is a substantial update of the first edition published in 2009. It includes 18 chapters, more than twice as much as the previous version. This enabled the authors to cover the most relevant topics in more depth and incorporate the overview of recent research in the respective area. The book will be of interest to researchers and graduate students in the areas of machine learning, data mining, data science and artificial intelligence. ; Metalearning is the study of principled methods that exploit metaknowledge to obtain efficient models and solutions by adapting machine learning and data mining processes. While the variety of machine learning and data mining techniques now available can, in principle, provide good model solutions, a methodology is still needed to guide the search for the most appropriate model in an efficient way. Metalearning provides one such methodology that allows systems to become more effective through experience. This book discusses several approaches to obtaining knowledge concerning the performance of machine learning and data mining algorithms. It shows how this knowledge can be reused to select, combine, compose and adapt both algorithms and models to yield faster, more effective solutions to data mining problems. It can thus help developers improve their algorithms and also develop learning systems that can improve themselves. The book will be of interest to researchers and graduate students in the areas of machine learning, data mining and artificial intelligence.
    Note: English
    Additional Edition: ISBN 3-030-67023-6
    Language: English
    Keywords: Electronic books.
    Library Location Call Number Volume/Issue/Year Availability
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  • 5
    UID:
    edocfu_(DE-604)BV047580470
    Format: 1 Online-Ressource : , Illustrationen, Diagramme.
    ISBN: 978-3-030-88942-5
    Series Statement: Lecture notes in computer science 12986
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 978-3-030-88941-8
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 978-3-030-88943-2
    Language: English
    Keywords: Wissensextraktion ; Data Mining ; Maschinelles Lernen ; Algorithmische Lerntheorie ; Konferenzschrift
    URL: Volltext  (URL des Erstveröffentlichers)
    Library Location Call Number Volume/Issue/Year Availability
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  • 6
    UID:
    b3kat_BV035564033
    Format: 1 Online-Ressource (IX, 376 S.) , Ill., graph. Darst.
    ISBN: 9783540890416 , 9783540890423
    Note: Literaturangaben
    Language: English
    Keywords: Schiff ; Produktentwicklung ; Sicherheitsgerechte Konstruktion ; Aufsatzsammlung
    Library Location Call Number Volume/Issue/Year Availability
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  • 7
    Online Resource
    Online Resource
    Basel : MDPI - Multidisciplinary Digital Publishing Institute
    UID:
    gbv_1869167945
    Format: 1 Online-Ressource (400 p.)
    ISBN: 9783036581064 , 9783036581071
    Content: The reprint presents a collection of contributions to various aspects of ship hydrodynamics and dynamics, a part of which was presented at the MARTECH2020 Conference, and all of which were published in a Special Issue of the journal, Marine Science and Engineering. The scope of the collection covers nearly all branches of ship hydrodynamics and dynamics, and so it may be of interest to all specialists in the field as well as for naval architects and applied mechanicians of various levels. The authors are recognized specialists from a number of countries, and to all of whom the Editors express their acknowledgement
    Note: English
    Language: Undetermined
    Library Location Call Number Volume/Issue/Year Availability
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  • 8
    UID:
    gbv_1832344940
    Format: 1 Online-Ressource (346 p.)
    ISBN: 9783030670245
    Series Statement: Cognitive Technologies
    Content: This open access book as one of the fastest-growing areas of research in machine learning, metalearning studies principled methods to obtain efficient models and solutions by adapting machine learning and data mining processes. This adaptation usually exploits information from past experience on other tasks and the adaptive processes can involve machine learning approaches. As a related area to metalearning and a hot topic currently, automated machine learning (AutoML) is concerned with automating the machine learning processes. Metalearning and AutoML can help AI learn to control the application of different learning methods and acquire new solutions faster without unnecessary interventions from the user. This book offers a comprehensive and thorough introduction to almost all aspects of metalearning and AutoML, covering the basic concepts and architecture, evaluation, datasets, hyperparameter optimization, ensembles and workflows, and also how this knowledge can be used to select, combine, compose, adapt and configure both algorithms and models to yield faster and better solutions to data mining and data science problems. It can thus help developers to develop systems that can improve themselves through experience. This book is a substantial update of the first edition published in 2009. It includes 18 chapters, more than twice as much as the previous version. This enabled the authors to cover the most relevant topics in more depth and incorporate the overview of recent research in the respective area. The book will be of interest to researchers and graduate students in the areas of machine learning, data mining, data science and artificial intelligence. ; Metalearning is the study of principled methods that exploit metaknowledge to obtain efficient models and solutions by adapting machine learning and data mining processes. While the variety of machine learning and data mining techniques now available can, in principle, provide good model solutions, a methodology is still needed to guide the search for the most appropriate model in an efficient way. Metalearning provides one such methodology that allows systems to become more effective through experience. This book discusses several approaches to obtaining knowledge concerning the performance of machine learning and data mining algorithms. It shows how this knowledge can be reused to select, combine, compose and adapt both algorithms and models to yield faster, more effective solutions to data mining problems. It can thus help developers improve their algorithms and also develop learning systems that can improve themselves. The book will be of interest to researchers and graduate students in the areas of machine learning, data mining and artificial intelligence
    Note: English
    Language: Undetermined
    Library Location Call Number Volume/Issue/Year Availability
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  • 9
    Online Resource
    Online Resource
    Basel : MDPI - Multidisciplinary Digital Publishing Institute
    UID:
    gbv_1841152226
    Format: 1 Online-Ressource (332 p.)
    ISBN: 9783036564159 , 9783036564142
    Content: This reprint is a printed edition of the Special Issue on Maritime Autonomous Vessels that was published in the Journal of Marine Science and Engineering. It contains an editorial and 17 peer-reviewed research studies in the field of Maritime Autonomous Surface Ships (MASS), Unmanned Surface Vessels (USVs), Autonomous Underwater Vehicles (AUVs), and underwater gliders, to name a few. The main goal of this reprint is to address key challenges, thereby promoting research on marine autonomous ships. There are many topics on autonomous vessels involved in this reprint, for instance, automatic control, manoeuvrability, collision avoidance, ship target identification, motion planning, and buckling analysis
    Note: English
    Language: Undetermined
    Library Location Call Number Volume/Issue/Year Availability
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  • 10
    Online Resource
    Online Resource
    Basel, Switzerland : MDPI - Multidisciplinary Digital Publishing Institute
    UID:
    gbv_1778437141
    Format: 1 Online-Ressource (222 p.)
    ISBN: 9783039362929 , 9783039362936
    Content: Concerns relating to energy supply and climate change have driven renewable energy targets around the world. Marine renewable energy could make a significant contribution to reducing greenhouse gas emissions and mitigating the consequences of climate change, while providing a high-technology industry. The conversion of wave and tidal energy into electricity has many advantages. Individual tidal and wave energy devices have been installed and proven, with commercial arrays planned throughout the world. The wave and tidal energy industry has developed rapidly in the past few years; therefore, it seems timely to review current research and map future challenges. Methods to improve understanding of the resource and interactions (between energy extraction, the resource and the environment) are considered, such as resource characterisation (including electricity output), design considerations (e.g., extreme and fatigue loadings) and environmental impacts, at all timescales (ranging from turbulence to decadal) and all spatial scales (from device and array scales to shelf sea scales)
    Note: English
    Language: English
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