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首页> 外文期刊>International Journal of Vehicle Design >A neural network-based computer aided design tool for automotive form design
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A neural network-based computer aided design tool for automotive form design

机译:用于汽车表格设计的基于神经网络的计算机辅助设计工具

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摘要

Although the functionality and performance are both important aspects in vehicle design, an automotive form is a crucial factor in determining a consumer's image perception and purchase decision. Hence, an effective tool for designing successful automotive form was suggested. Based on Kansei Engineering principles, the relationship between the profile characteristics and the consumer's image perception is established using a Back-Propagation Neural (BPN) network. A Computer Aided Design (CAD) tool, which uses the trained BPN to predict the consumer perception of an automotive profile expressed in the form of a numerical definition, is constructed using Visual Basic software. The performance of the CAD prototype tool is verified by comparing its predictions to the actual consumer perception evaluations. A good similarity is identified between the two sets of results. Therefore, the developed tool provides designers with powerful means of creating automotive designs from a consumer's image perception perspective.
机译:尽管功能和性能都是车辆设计中的重要方面,但汽车形式是决定消费者的图像感知和购买决策的关键因素。因此,提出了一种用于设计成功的汽车形式的有效工具。根据Kansei Engineering原理,使用反向传播神经(BPN)网络建立了轮廓特征与消费者的图像感知之间的关系。使用Visual Basic软件构造了计算机辅助设计(CAD)工具,该工具使用受过训练的BPN来预测消费者对以数字定义形式表示的汽车轮廓的感知。通过将其预测与实际的消费者感知评估进行比较,可以验证CAD原型工具的性能。两组结果之间具有良好的相似性。因此,开发的工具为设计人员提供了从消费者的图像感知角度进行汽车设计的强大方法。

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