Probabilistic Design for Optimization and Robustness:
The methods presented can be applied to a wide range of disciplines such as mechanics, electrics, chemistry, aerospace, industry and engineering. This text is supported by an accompanying website featuring videos, interactive animations to aid the readers understanding.
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BRYAN DODSON, Executive Engineer, SKF, USA
PATRICK C. HAMMETT, Lead Faculty Six Sigma Program, Integrative Systems & Design, College of Engineering, University of Michigan, Ann Arbor, USA
RENÉ KLERX, Principal Statistician, SKF, The Netherlands
PROBABILISTIC DESIGN FOR OPTIMIZATION AND ROBUSTNESS FOR ENGINEERS
How to apply robust design to engineering design problems
Unlike the Taguchi approach to robustness, which requires experimentation, the approach described in this book takes advantage of engineering knowledge to create models for system variation. Probabilistic Design for Optimization and Robustness for Engineers illustrates how to use these variation models to optimize total system cost, including component cost, manufacturing cost, re-work cost, and scrap cost. The text begins with simple, single output systems, and proceeds to complex systems with multiple outputs and many inputs. This methodology works equally well for engineering designs, or process design, or process improvement.
This book:
Probabilistic Design for Optimization and Robustness for Engineers is useful for practising engineers faced with the challenge of variation in design as well as senior and graduate level engineering and statistics students studying systems engineering or multi-disciplinary design. Simulations are also featured on the book's companion website, providing an excellent tool for instructors to use during lectures.
PROBABILISTIC DESIGN FOR OPTIMIZATION AND ROBUSTNESS FOR ENGINEERS
How to apply robust design to engineering design problems
Unlike the Taguchi approach to robustness, which requires experimentation, the approach described in this book takes advantage of engineering knowledge to create models for system variation. Probabilistic Design for Optimization and Robustness for Engineers illustrates how to use these variation models to optimize total system cost, including component cost, manufacturing cost, re-work cost, and scrap cost. The text begins with simple, single output systems, and proceeds to complex systems with multiple outputs and many inputs. This methodology works equally well for engineering designs, or process design, or process improvement.
This book:
Probabilistic Design for Optimization and Robustness for Engineers is useful for practising engineers faced with the challenge of variation in design as well as senior and graduate level engineering and statistics students studying systems engineering or multi-disciplinary design. Simulations are also featured on the book's companion website, providing an excellent tool for instructors to use during lectures.
"About this title" may belong to another edition of this title.
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Hardcover. Condition: new. Hardcover. Probabilistic Design for Optimization and Robustness: Presents the theory of modeling with variation using physical models and methods for practical applications on designs more insensitive to variation.Provides a comprehensive guide to optimization and robustness for probabilistic design.Features examples, case studies and exercises throughout. The methods presented can be applied to a wide range of disciplines such as mechanics, electrics, chemistry, aerospace, industry and engineering. This text is supported by an accompanying website featuring videos, interactive animations to aid the readers understanding. Probabilistic Design for Optimization and Robustness: * Presents the theory of modeling with variation using physical models and methods for practical applications on designs more insensitive to variation. * Provides a comprehensive guide to optimization and robustness for probabilistic design. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Seller Inventory # 9781118796191
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