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Titlebook: Data Modeling for Metrology and Testing in Measurement Science; Franco Pavese,Alistair B. Forbes Book 2009 Birkh?user Boston 2009 Internet

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書目名稱Data Modeling for Metrology and Testing in Measurement Science
編輯Franco Pavese,Alistair B. Forbes
視頻videohttp://file.papertrans.cn/263/262979/262979.mp4
概述Takes the reader beyond mainstream methods described in standard texts on data and uncertainty analysis.Real-world applications in a variety of fields, including chemistry, software engineering, and m
叢書名稱Modeling and Simulation in Science, Engineering and Technology
圖書封面Titlebook: Data Modeling for Metrology and Testing in Measurement Science;  Franco Pavese,Alistair B. Forbes Book 2009 Birkh?user Boston 2009 Internet
描述The aim of this book is to provide, ?rstly, an introduction to probability and statistics especially directed to the metrology and testing ?elds and secondly, a comprehensive, newer set of modelling methods for data and uncertainty analysis that are generally not considered yet within mainstream methods. The book brings, for the ?rst time, a coherent account of these newer me- ods and their computational implementation. They are potentially important because they address problems in application ?elds where the usual hypot- ses that are at the basis of most of the traditional statistical and probabilistic methods, for example, relating to normality of the probability distributions, are frequently not ful?lled to such an extent that an accurate treatment of the calibration or test data using standard approaches is not possible. Additi- ally, the methods can represent alternative ways of data analysis, allowing a deeper understanding of complex situations in measurement. The book lends itself as a possible textbook for undergraduate or postgraduate study in an area where existing texts focus mainly on the most common and well-known methods that do not encompass modern approaches to ca
出版日期Book 2009
關鍵詞Internet; Mathematica; STATISTICA; Wavelet; calculus; data analysis; fuzzy; metrology; modeling; probability;
版次1
doihttps://doi.org/10.1007/978-0-8176-4804-6
isbn_ebook978-0-8176-4804-6Series ISSN 2164-3679 Series E-ISSN 2164-3725
issn_series 2164-3679
copyrightBirkh?user Boston 2009
The information of publication is updating

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Daniel C. O’Connell,Sabine Kowal measurement comparisons. Examples illustrate the power of the techniques in extending uncertainty analysis to cases where the applicability of the usual methods is in doubt, such as consistency testing using chi-squared-like statistical aggregates.
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Modelling of Measurements, System Theory and Uncertainty Evaluation, of disregarding nonlinearities and time-variant (dynamic) behaviour. The chapter demonstrates that, based on carefully analysing and understanding the measurement, it is possible to reach proper modelling of measurements and one may sufficiently describe the relevant effects of imperfect modelling.
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