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An Application of Fuzzy Logic with Desirability Functions to Multi-response Optimization in the Taguchi Method
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  • An Application of Fuzzy Logic with Desirability Functions to Multi-response Optimization in the Taguchi Method
  • An Application of Fuzzy Logic with Desirability Functions to Multi-response Optimization in the Taguchi Method
저자명
Kim. Seong-Jun
간행물명
International journal of fuzzy logic and intelligent systems
권/호정보
2005년|5권 3호|pp.183-188 (6 pages)
발행정보
한국지능시스템학회
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정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

Although it is widely used to find an optimum setting of manufacturing process parameters in a variety of engineering fields, the Taguchi method has a difficulty in dealing with multi-response situations in which several response variables should be considered at the same time. For example, electrode wear, surface roughness, and material removal rate are important process response variables in an electrical discharge machining (EDM) process. A simultaneous optimization should be accomplished. Many researches from various disciplines have been conducted for such multi-response optimizations. One of them is a fuzzy logic approach presented by Lin et al. [1]. They showed that two response characteristics are converted into a single performance index based upon fuzzy logic. However, it is pointed out that information regarding relative importance of response variables is not considered in that method. In order to overcome this problem, a desirability function can be adopted, which frequently appears in the statistical literature. In this paper, we propose a novel approach for the multi-response optimization by incorporating fuzzy logic into desirability function. The present method is illustrated by an EDM data of Lin and Lin [2].