Uncertainty quantifications of Pareto optima in multiobjective problems
Design is a multi-objective decision-making process considering manufacturing, cost, aesthetics, usability among many other product attributes. The set of optimal solutions, the Pareto set, indicates the trade-offs between objectives. Decision-makers generally select their own optima from the Pareto...
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Published in | Journal of intelligent manufacturing Vol. 24; no. 2; pp. 385 - 395 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
Boston
Springer US
01.04.2013
Springer Nature B.V |
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Abstract | Design is a multi-objective decision-making process considering manufacturing, cost, aesthetics, usability among many other product attributes. The set of optimal solutions, the Pareto set, indicates the trade-offs between objectives. Decision-makers generally select their own optima from the Pareto set based on personal preferences or other judgements. However, uncertainties from manufacturing processes and from operating conditions will change the performances of the Pareto optima. Evaluating the impacts of uncertainties on Pareto optima requires a large amount of data and resources. Comparing multiple Pareto solutions under uncertainty are also very costly. In this work, local Pareto set approximation is integrated with uncertainty propagation technique to quantify design variations in the objective space. An optimality influence range is proposed using linear combinations of objective functions that creates a more accurate polygon objective variation subspace. A set of ‘virtual samples’ is then generated to form two quantifications of the objective variation subspace, namely an influence noise to indicate how a design remains optimal, and an influence range that quantifies the overall variations of a design. In most engineering practices, a Pareto optimum with a smaller influence noise and a smaller influence range is preferred. We also extend the influence noise/range concept to nonlinear Pareto set with the second-order approximation. The quadratic local Pareto approximation method in the literature is also extended in this work to solve multi-objective engineering problems with black-box functions. The usefulness of the proposed quantification method is demonstrated using a numerical example as well as using an engineering problem in structural design. |
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AbstractList | Design is a multi-objective decision-making process considering manufacturing, cost, aesthetics, usability among many other product attributes. The set of optimal solutions, the Pareto set, indicates the trade-offs between objectives. Decision-makers generally select their own optima from the Pareto set based on personal preferences or other judgements. However, uncertainties from manufacturing processes and from operating conditions will change the performances of the Pareto optima. Evaluating the impacts of uncertainties on Pareto optima requires a large amount of data and resources. Comparing multiple Pareto solutions under uncertainty are also very costly. In this work, local Pareto set approximation is integrated with uncertainty propagation technique to quantify design variations in the objective space. An optimality influence range is proposed using linear combinations of objective functions that creates a more accurate polygon objective variation subspace. A set of ‘virtual samples’ is then generated to form two quantifications of the objective variation subspace, namely an influence noise to indicate how a design remains optimal, and an influence range that quantifies the overall variations of a design. In most engineering practices, a Pareto optimum with a smaller influence noise and a smaller influence range is preferred. We also extend the influence noise/range concept to nonlinear Pareto set with the second-order approximation. The quadratic local Pareto approximation method in the literature is also extended in this work to solve multi-objective engineering problems with black-box functions. The usefulness of the proposed quantification method is demonstrated using a numerical example as well as using an engineering problem in structural design. Design is a multi-objective decision-making process considering manufacturing, cost, aesthetics, usability among many other product attributes. The set of optimal solutions, the Pareto set, indicates the trade-offs between objectives. Decision-makers generally select their own optima from the Pareto set based on personal preferences or other judgements. However, uncertainties from manufacturing processes and from operating conditions will change the performances of the Pareto optima. Evaluating the impacts of uncertainties on Pareto optima requires a large amount of data and resources. Comparing multiple Pareto solutions under uncertainty are also very costly. In this work, local Pareto set approximation is integrated with uncertainty propagation technique to quantify design variations in the objective space. An optimality influence range is proposed using linear combinations of objective functions that creates a more accurate polygon objective variation subspace. A set of â[euro] virtual samplesâ[euro](TM) is then generated to form two quantifications of the objective variation subspace, namely an influence noise to indicate how a design remains optimal, and an influence range that quantifies the overall variations of a design. In most engineering practices, a Pareto optimum with a smaller influence noise and a smaller influence range is preferred. We also extend the influence noise/range concept to nonlinear Pareto set with the second-order approximation. The quadratic local Pareto approximation method in the literature is also extended in this work to solve multi-objective engineering problems with black-box functions. The usefulness of the proposed quantification method is demonstrated using a numerical example as well as using an engineering problem in structural design.[PUBLICATION ABSTRACT] |
Author | Chan, Kuei-Yuan Hung, Tzu-Chieh |
Author_xml | – sequence: 1 givenname: Tzu-Chieh surname: Hung fullname: Hung, Tzu-Chieh organization: Department of Mechanical Engineering, National Cheng Kung University – sequence: 2 givenname: Kuei-Yuan surname: Chan fullname: Chan, Kuei-Yuan email: chanky@mail.ncku.edu.tw organization: Department of Mechanical Engineering, National Cheng Kung University |
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CitedBy_id | crossref_primary_10_1016_j_ensm_2020_06_033 crossref_primary_10_1007_s10845_014_1014_4 crossref_primary_10_1115_1_4028755 crossref_primary_10_1007_s10845_012_0712_z crossref_primary_10_1002_aenm_202102678 crossref_primary_10_1007_s10845_014_0988_2 crossref_primary_10_1142_S0219876218410037 crossref_primary_10_1186_s13362_020_0070_y crossref_primary_10_1016_j_cej_2022_140151 crossref_primary_10_1016_j_neucom_2018_01_071 |
Cites_doi | 10.1177/1063293X9700500305 10.1080/03052150802086714 10.1007/s00158-004-0417-9 10.1016/S0045-7949(00)00117-6 10.1023/B:OPTE.0000048538.35456.45 10.1002/nme.383 10.2514/2.1681 10.1115/1.2936898 10.1016/0167-4730(94)90039-6 10.1115/1.2747632 10.1016/j.cma.2003.12.055 10.1115/1.2826362 10.1007/s10845-011-0608-3 |
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SubjectTerms | Advanced manufacturing technologies Approximation Approximation method Business and Management Control Decision making Design Design optimization Engineering Industrial engineering Machines Manufacturing Manufacturing industry Mechatronics Noise Numerical analysis Objectives Pareto optimum Processes Production Robotics Structural engineering Studies |
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