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A Systematic Method for Selecting Critical Product Form Features Regarding Consumers' Image Perceptions

机译:选择关于消费者图像看法的关键产品形式特征的系统方法

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摘要

This study proposes a product form feature (PFF) selection method based on a numerical definition-based approach (NDA) and the consumers' image perceptions (CIPs). In the proposed approach, NDA is used to generate an explicit numerical definition of the product form design and the corresponding CIPs are determined by means of a semantic differential experiment. A CIP prediction model is constructed using support vector regression (SVR) techniques. Finally, the feature selection method, namely SVR with support vector machine recursive feature elimination (SVM-RFE), is used to identify the critical form features. The validity of the feature selection method is demonstrated using a knife design for illustration purposes. The result shows that the proposed method provides product designers with a powerful tool for systematically selecting the critical form features and evaluating their respective effects on the consumers' image perceptions.
机译:本研究提出了一种基于基于数值定义的方法(NDA)和消费者图像感知(CIP)的产品形式特征(PFF)选择方法。在所提出的方法中,NDA用于生成产品形式设计的明确数值定义,并且相应的CIP通过语义差异实验确定。使用支持向量回归(SVR)技术构建CIP预测模型。最后,使用具有支持向量机递归特征消除(SVM-RFE)的特征选择方法,即SVR,用于识别关键表单特征。使用刀具设计来证明特征选择方法的有效性以用于说明目的。结果表明,该方法提供了具有强大工具的产品设计人员,用于系统地选择关键形式特征,并评估它们对消费者的图像看法的各自影响。

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