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Constructing a hybrid Kansei engineering system based on multiple affective responses: Application to product form design

机译:基于多种情感反应的混合型Kansei工程系统的构建:在产品表单设计中的应用

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This study proposes an expert system, which is called hybrid Kansei engineering system (HKES) based on multiple affective responses (MARs), to facilitate the development of product form design. HKES is consists of two sub-systems, namely forward Kansei engineering system (FKES) and backward Kansei engineering system (BKES). FKES is utilized to generate product alternatives and BKES is utilized to predict affective response of new product designs. Although the idea of HKES and similar hybrid systems have already been applied in various fields, such as product design, engineering design, and system optimization, most of existing methodologies are limited by searching optimal design solutions using single-objective optimization (SOO), instead of multi-objective optimization (MOO). Hence the applicability of HKES is limited while adapting to real-world problems, such as product form design discussed in this paper. To overcome this shortcoming, this study integrates the methodologies of support vector regression (SVR) and multi-objective genetic algorithm (MOGA) into the scheme of HEKS. BKES was constructed by training SVR prediction model of every single affective response (SAR). The form features of these product samples were treated as input data while the average utility scores obtained from all the consumers were used as output values. FKES generates optimal design alternatives using the MOGA-based searching method according to MARs specified by a product designer as the system supervisor. A case study of mobile phone design was given to demonstrate the analysis results. The proposed HKES based on MARs can be applied to a wide variety of product design problems, as well as other MOO problems involving with subjective human perceptions.
机译:这项研究提出了一个专家系统,它被称为基于多重情感反应(MAR)的混合Kansei工程系统(HKES),以促进产品形式设计的发展。 HKES由两个子系统组成,即正向Kansei工程系统(FKES)和向后Kansei工程系统(BKES)。 FKES用于生成产品替代方案,BKES用于预测新产品设计的情感响应。尽管HKES和类似的混合系统的思想已被应用于各个领域,例如产品设计,工程设计和系统优化,但是大多数现有方法都受到限制,因为使用单目标优化(SOO)来搜索最佳设计解决方案多目标优化(MOO)的概念。因此,在适应实际问题(如本文中讨论的产品形式设计)时,HKES的适用性受到限制。为了克服这一缺点,本研究将支持向量回归(SVR)和多目标遗传算法(MOGA)的方法整合到HEKS方案中。通过训练每个单个情感反应(SAR)的SVR预测模型来构建BKES。这些产品样本的形式特征被视为输入数据,而从所有消费者那里获得的平均效用得分被用作输出值。 FKES根据产品设计师指定为系统主管的MAR,使用基于MOGA的搜索方法来生成最佳设计替代方案。以手机设计为例,说明分析结果。拟议的基于MARs的HKES可以应用于各种各样的产品设计问题,以及与人的主观感知有关的其他MOO问题。

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