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Industrial Data Analytics for Diagnosis and Prognosis
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Industrial Data Analytics for Diagnosis and Prognosis : A Random Effects Modelling Approach

Book Details

Format Hardback or Cased Book
ISBN-10 1119666287
ISBN-13 9781119666288
Publisher John Wiley & Sons Inc
Imprint John Wiley & Sons Inc
Country of Manufacture US
Country of Publication GB
Publication Date Aug 24th, 2021
Print length 352 Pages
Weight 636 grams
Dimensions 26.80 x 66.00 x 2.50 cms
Product Classification: Mechanical engineering & materials
Ksh 20,350.00
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Discover data analytics methodologies for the diagnosis and prognosis of industrial systems under a unified random effects model   In Industrial Data Analytics for Diagnosis and Prognosis - A Random Effects Modelling Approach, distinguished engineers Shiyu Zhou and Yong Chen deliver a rigorous and practical introduction to the random effects modeling approach for industrial system diagnosis and prognosis. In the book’s two parts, general statistical concepts and useful theory are described and explained, as are industrial diagnosis and prognosis methods. The accomplished authors describe and model fixed effects, random effects, and variation in univariate and multivariate datasets and cover the application of the random effects approach to diagnosis of variation sources in industrial processes. They offer a detailed performance comparison of different diagnosis methods before moving on to the application of the random effects approach to failure prognosis in industrial processes and systems.  In addition to presenting the joint prognosis model, which integrates the survival regression model with the mixed effects regression model, the book also offers readers:  A thorough introduction to describing variation of industrial data, including univariate and multivariate random variables and probability distributions Rigorous treatments of the diagnosis of variation sources using PCA pattern matching and the random effects modelAn exploration of extended mixed effects model, including mixture prior and Kalman filtering approach, for real time prognosisA detailed presentation of Gaussian process model as a flexible approach for the prediction of temporal degradation signals Ideal for senior year undergraduate students and postgraduate students in industrial, manufacturing, mechanical, and electrical engineering, Industrial Data Analytics for Diagnosis and Prognosis is also an indispensable guide for researchers and engineers interested in data analytics methods for system diagnosis and prognosis. 

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