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Modeling customer satisfaction with new product design using a flexible fuzzy regression-data envelopment analysis algorithm

机译:使用灵活的模糊回归数据包络分析算法对新产品设计的客户满意度进行建模

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摘要

The success of new products depends greatly on customer satisfaction and meeting the customer needs is vital for new product development. By incorporating customer needs in the design and development process, organizations can improve productivity for their new products and reduce the risks associated with new product markets. Hence, design teams require methods to model customer satisfaction when setting the associated product design attributes. Thus, different approaches have been developed for modeling the relationship between customer satisfaction and product design parameters. In this study, 16 well-known fuzzy regression (FR) models are considered to understand the relationship between customer satisfaction and new product design. The design of FR models is based on the 4Ps marketing mix (product, price, place, and promotion) concept in fuzzy environments. A flexible algorithm is then presented based on the index of confidence, error measures, and data envelopment analysis for selecting the best FR model. The applicability and usefulness of the proposed algorithm is demonstrated experimentally based on an actual case study, where the flexible algorithm is employed to predict customer satisfaction with a new product design in the freezer/refrigerator industry.
机译:新产品的成功很大程度上取决于客户的满意度,满足客户需求对于新产品开发至关重要。通过将客户需求纳入设计和开发过程中,组织可以提高其新产品的生产率并降低与新产品市场相关的风险。因此,设计团队需要在设置相关产品设计属性时建模客户满意度的方法。因此,已经开发出不同的方法来对顾客满意度和产品设计参数之间的关系进行建模。在这项研究中,考虑了16个著名的模糊回归(FR)模型以了解客户满意度和新产品设计之间的关系。 FR模型的设计基于模糊环境中的4Ps营销组合(产品,价格,位置和促销)概念。然后根据置信度指标,误差度量和数据包络分析提出一种灵活的算法,以选择最佳的FR模型。在实际案例研究的基础上,通过实验证明了所提算法的适用性和实用性,其中采用了灵活的算法来预测客户对冷冻/冷藏行业新产品设计的满意度。

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