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  • 1
    UID:
    almahu_9949301410302882
    Format: 1 online resource (277 pages)
    ISBN: 9789811680441
    Series Statement: Intelligent Control and Learning Systems Ser. ; v.3
    Additional Edition: Print version: Wang, Jing Data-Driven Fault Detection and Reasoning for Industrial Monitoring Singapore : Springer,c2022 ISBN 9789811680434
    Language: English
    Keywords: Electronic books.
    URL: Volltext  (kostenfrei)
    URL: Volltext  (kostenfrei)
    Library Location Call Number Volume/Issue/Year Availability
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  • 2
    UID:
    gbv_1794566015
    Format: 1 Online-Ressource (264 p.)
    ISBN: 9789811680441
    Series Statement: Intelligent Control and Learning Systems
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications. This is an open access book
    Note: English
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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  • 3
    UID:
    gbv_1758391316
    Format: 364 Seiten , 图片, 地图
    Edition: 第1版
    Original writing title: 芳林新叶 : 历史考古青年论集 : 第二辑
    Original writing publisher: 上海 : 上海古籍出版社
    ISBN: 9787532593286
    Note: 本书得到中国人民大学科学研究基金资助
    Language: Chinese
    Library Location Call Number Volume/Issue/Year Availability
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  • 4
    Book
    Book
    Shang hai
    UID:
    gbv_1883399629
    Format: 341 Seiten , 图片, 照片
    Edition: 第1版
    Original writing title: 罗布泊考古研究
    Original writing person/organisation: 陈晓露
    Original writing publisher: 上海 : 上海古籍出版社
    ISBN: 9787573201645
    Note: 中国人民大学科学研究基金(中央高校基本科研业务费专项资金支持)项目成果(15XNL019)
    Language: Chinese
    Library Location Call Number Volume/Issue/Year Availability
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  • 5
    UID:
    almahu_9949226783902882
    Format: XVII, 264 p. 134 illus., 115 illus. in color. , online resource.
    Edition: 1st ed. 2022.
    ISBN: 9789811680441
    Series Statement: Intelligent Control and Learning Systems, 3
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications.
    Note: Introduction -- Basic Statistical Fault Detection Problems -- Principal Component Analysis -- Canonical Variate Analysis -- Partial Least Squares Regression -- Fisher Discriminant Analysis -- Canonical Variate Analysis -- Fault Classification based on Local Linear Embedding -- Fault Classification based on Fisher Discriminant Analysis -- Quality-Related Global-Local Partial Least Square Projection Monitoring -- Locality-Preserving Partial Least-Squares Statistical Quality Monitoring -- Locally Linear Embedding Orthogonal Projection to Latent Structure (LLEPLS) -- Bayesian Causal Network for Discrete Systems -- Probability Causal Network for Continuous Systems -- Dual Robustness Projection to Latent Structure Method based on the L_1 Norm.
    In: Springer Nature eBook
    Additional Edition: Printed edition: ISBN 9789811680434
    Additional Edition: Printed edition: ISBN 9789811680458
    Additional Edition: Printed edition: ISBN 9789811680465
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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  • 6
    Online Resource
    Online Resource
    Springer Nature | Singapore :Springer Singapore Pte. Limited,
    UID:
    edoccha_9960110303502883
    Format: 1 online resource (277 pages)
    ISBN: 981-16-8044-2
    Series Statement: Intelligent Control and Learning Systems ; v.3
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications. This is an open access book.
    Note: English
    Additional Edition: ISBN 981-16-8043-4
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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  • 7
    UID:
    kobvindex_INTEBC6840160
    Format: 1 online resource (277 pages)
    ISBN: 9789811680441
    Series Statement: Intelligent Control and Learning Systems Ser. v.3
    Additional Edition: Print version Wang, Jing Data-Driven Fault Detection and Reasoning for Industrial Monitoring Singapore : Springer,c2022 ISBN 9789811680434
    Language: English
    Keywords: Electronic books.
    URL: FULL  ((Currently Only Available on Campus))
    Library Location Call Number Volume/Issue/Year Availability
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  • 8
    UID:
    kobvindex_HPB1292353116
    Format: 1 online resource (277 pages) : , illustrations (chiefly color).
    ISBN: 9789811680441 , 9811680442
    Series Statement: Intelligent control and learning systems ; volume 3
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications.
    Note: Introduction -- Basic Statistical Fault Detection Problems -- Principal Component Analysis -- Canonical Variate Analysis -- Partial Least Squares Regression -- Fisher Discriminant Analysis -- Canonical Variate Analysis -- Fault Classification based on Local Linear Embedding -- Fault Classification based on Fisher Discriminant Analysis -- Quality-Related Global-Local Partial Least Square Projection Monitoring -- Locality-Preserving Partial Least-Squares Statistical Quality Monitoring -- Locally Linear Embedding Orthogonal Projection to Latent Structure (LLEPLS) -- Bayesian Causal Network for Discrete Systems -- Probability Causal Network for Continuous Systems -- Dual Robustness Projection to Latent Structure Method based on the L_1 Norm.
    Additional Edition: Print version: Wang, Jing Data-Driven Fault Detection and Reasoning for Industrial Monitoring Singapore : Springer Singapore Pte. Limited,c2022 9789811680434
    Language: English
    Keywords: Electronic books. ; Electronic books.
    Library Location Call Number Volume/Issue/Year Availability
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  • 9
    Online Resource
    Online Resource
    Springer Nature | Singapore :Springer Singapore Pte. Limited,
    UID:
    almahu_9949281564002882
    Format: 1 online resource (277 pages)
    ISBN: 981-16-8044-2
    Series Statement: Intelligent Control and Learning Systems ; v.3
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications. This is an open access book.
    Note: English
    Additional Edition: ISBN 981-16-8043-4
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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  • 10
    Online Resource
    Online Resource
    Springer Nature | Singapore :Springer Singapore Pte. Limited,
    UID:
    edocfu_9960110303502883
    Format: 1 online resource (277 pages)
    ISBN: 981-16-8044-2
    Series Statement: Intelligent Control and Learning Systems ; v.3
    Content: This open access book assesses the potential of data-driven methods in industrial process monitoring engineering. The process modeling, fault detection, classification, isolation, and reasoning are studied in detail. These methods can be used to improve the safety and reliability of industrial processes. Fault diagnosis, including fault detection and reasoning, has attracted engineers and scientists from various fields such as control, machinery, mathematics, and automation engineering. Combining the diagnosis algorithms and application cases, this book establishes a basic framework for this topic and implements various statistical analysis methods for process monitoring. This book is intended for senior undergraduate and graduate students who are interested in fault diagnosis technology, researchers investigating automation and industrial security, professional practitioners and engineers working on engineering modeling and data processing applications. This is an open access book.
    Note: English
    Additional Edition: ISBN 981-16-8043-4
    Language: English
    Library Location Call Number Volume/Issue/Year Availability
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