Starting from the theory of D and T-optimality criteria, the algorithm links the sequential approach which is typical of a T-optimal design and the combined-array procedure through statistical modeling. The final goal is the achievement of the optimal solution in terms of location and dispersion effects, i.e. by minimizing the dispersion together with the adjustment to the target value, defined as the expected value of the response. The full procedure is illustrated through a simulated numerical case study deriving from an actual industrial engine process.

An algorithm for performing robust design optimization via use of observational data / Rossella Berni. - STAMPA. - 1:(2013), pp. 299-305. (Intervento presentato al convegno 7th Conference on Design of Experiments (DoE) in Engine Development tenutosi a Berlino nel 18-19 Giugno 2013).

An algorithm for performing robust design optimization via use of observational data

BERNI, ROSSELLA
2013

Abstract

Starting from the theory of D and T-optimality criteria, the algorithm links the sequential approach which is typical of a T-optimal design and the combined-array procedure through statistical modeling. The final goal is the achievement of the optimal solution in terms of location and dispersion effects, i.e. by minimizing the dispersion together with the adjustment to the target value, defined as the expected value of the response. The full procedure is illustrated through a simulated numerical case study deriving from an actual industrial engine process.
2013
Design of Experiment (DoE) in Engine Development
7th Conference on Design of Experiments (DoE) in Engine Development
Berlino
18-19 Giugno 2013
Rossella Berni
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/807271
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