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An improved iterative stochastic multi-objective acceptability analysis method for robust alternative selection in new product development
Affiliation:1. School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai, China;2. School of Economics and Management, Southeast University, Nanjing, Jiangsu, China;3. Department of Mechanical and Manufacturing Engineering, University of Calgary, Calgary, Alberta, Canada;1. Dept. of Civil and Architectural Engineering, Sultan Qaboos University, Muscat, Oman;2. Dept. of Civil and Environmental Engineering, Univ. of Alberta, Edmonton, AB T6G 2G2, Canada;1. School of Mechanical & Aerospace Engineering, Nanyang Technological University, Singapore 639798, Singapore;2. Donlinks School of Economics and Management, University of Science & Technology Beijing, Beijing 100083, China
Abstract:Alternative selection in new product development (NPD) is a multi-criteria decision-making (MCDM) problem. It usually starts with incomplete, imprecise or even partially missing information. Currently, most existing methods in dealing with this problem cannot work well if required information is incomplete or missing. It is acknowledged that stochastic multi-objective acceptability analysis (SMAA) can be applied to address MCDM problem with incomplete preference information and uncertain criteria measurements. In SMAA, alternatives are evaluated based on SMAA measurements (acceptability index, central weight vector and confidence factor). The discriminability of SMAA for the optimum alternative heavily depends on differences of SMAA measurements among different alternatives. Usually, a large number of alternatives and high level of uncertainty are involved in alternative selection in NPD. In this situation, the differences among SMAA measurements are not obvious, and therefore SMAA cannot deal with such problem very well. To this end, this paper proposes an improved SMAA method called Iterative-SMAA (I-SMAA) for alternative selection in NPD. In the I-SMAA, an iterative multi-step decision-making process is suggested to improve differences of SMAA measurements among different alternatives, and thus assist decision makers (DMs) to positively discern from the most preferred alternative. To enhance the decision-making efficiency, sensitive criteria are acquired in each iteration by ranking sensitivity analysis. DMs are guided to provide partial preference information and give more accurate criteria measurements for sensitive criteria rather than all criteria. Eventually, to verify the proposed method, a numerical example of the existing literature is solved with the method, and the results are compared. And then, a practical example of a preparation equipment for coal samples is further employed to verify the practicability of the proposed I-SMAA.
Keywords:Alternative selection in NPD  Multi-criteria decision-making  Stochastic multi-objective acceptability analysis  Ranking sensitivity analysis
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