Advanced Multiresponse Process Optimisation An Intelligent and Integrated Approach

This book presents an intelligent, integrated, problem-independent method for multiresponse process optimization. In contrast to traditional approaches, the idea of this method is to provide a unique model for the optimization of various processes, without imposition of assumptions relating to the t...

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Bibliographic Details
Main Authors: Šibalija, Tatjana V., Majstorović, Vidosav D. (Author)
Format: eBook
Language:English
Published: Cham Springer International Publishing 2016, 2016
Edition:1st ed. 2016
Subjects:
Online Access:
Collection: Springer eBooks 2005- - Collection details see MPG.ReNa
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100 1 |a Šibalija, Tatjana V. 
245 0 0 |a Advanced Multiresponse Process Optimisation  |h Elektronische Ressource  |b An Intelligent and Integrated Approach  |c by Tatjana V. Šibalija, Vidosav D. Majstorović 
250 |a 1st ed. 2016 
260 |a Cham  |b Springer International Publishing  |c 2016, 2016 
300 |a XVII, 298 p. 70 illus., 6 illus. in color  |b online resource 
505 0 |a Introduction -- Review of multiresponse optimisation approaches -- An intelligent, integrated, problem-independent method for multiresponse process optimisation -- Implementation of an intelligent, integrated, problem-independent method to multiresponse process optimisation -- Case studies -- Conclusion 
653 |a Operations research 
653 |a Control, Robotics, Automation 
653 |a Computational intelligence 
653 |a Artificial Intelligence 
653 |a Machines, Tools, Processes 
653 |a Manufactures 
653 |a Computational Intelligence 
653 |a Control engineering 
653 |a Artificial intelligence 
653 |a Robotics 
653 |a Automation 
653 |a Operations Research and Decision Theory 
700 1 |a Majstorović, Vidosav D.  |e [author] 
041 0 7 |a eng  |2 ISO 639-2 
989 |b Springer  |a Springer eBooks 2005- 
028 5 0 |a 10.1007/978-3-319-19255-0 
856 4 0 |u https://doi.org/10.1007/978-3-319-19255-0?nosfx=y  |x Verlag  |3 Volltext 
082 0 |a 670 
520 |a This book presents an intelligent, integrated, problem-independent method for multiresponse process optimization. In contrast to traditional approaches, the idea of this method is to provide a unique model for the optimization of various processes, without imposition of assumptions relating to the type of process, the type and number of process parameters and responses, or interdependences among them. The presented method for experimental design of processes with multiple correlated responses is composed of three modules: an expert system that selects the experimental plan based on the orthogonal arrays; the factor effects approach, which performs processing of experimental data based on Taguchi’s quality loss function and multivariate statistical methods; and process modeling and optimization based on artificial neural networks and metaheuristic optimization algorithms. The implementation is demonstrated using four case studies relating to high-tech industries and advanced, non-conventional processes