다목적 유전 알고리즘을 이용한 쌍대반응표면최적화Dual Response Surface Optimization using Multiple Objective Genetic Algorithms
- Other Titles
- Dual Response Surface Optimization using Multiple Objective Genetic Algorithms
- Authors
- 이동희; 김보라; 양진경; 오선혜
- Issue Date
- Jun-2017
- Publisher
- 대한산업공학회
- Keywords
- Response Surface Methodology; Dual Response Surface Optimization; Multiple Objective Genetic Algorithm; Posterior Preference Articulation Approach
- Citation
- 대한산업공학회지, v.43, no.3, pp 164 - 175
- Pages
- 12
- Indexed
- KCI
- Journal Title
- 대한산업공학회지
- Volume
- 43
- Number
- 3
- Start Page
- 164
- End Page
- 175
- URI
- https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/203535
- DOI
- 10.7232/JKIIE.2017.43.3.164
- ISSN
- 1225-0988
2234-6457
- Abstract
- Dual response surface optimization (DRSO) attempts to optimize mean and variability of a process response variable using a response surface methodology. In general, mean and variability of the response variable are often in conflict. In such a case, the process engineer need to understand the tradeoffs between the mean and variability in order to obtain a satisfactory solution. Recently, a Posterior preference articulation approach to DRSO (P-DRSO) has been proposed. P-DRSO generates a number of non-dominated solutions and allows the process engineer to select the most preferred solution. By observing the non-dominated solutions, the DM can explore and better understand the trade-offs between the mean and variability. However, the non-dominated solutions generated by the existing P-DRSO is often incomprehensive and unevenly distributed which limits the practicability of the method. In this regard, we propose a modified P-DRSO using multiple objective genetic algorithms. The proposed method has an advantage in that it generates comprehensive and evenly distributed non-dominated solutions.
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