From body measurements to body shape perception: an intelligent tool for garment design

Lichuan Wang, Xianyi Zeng, L. Koehl, Yan Chen
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引用次数: 2

Abstract

This paper presents a model characterising the relation between emotional descriptive keywords describing human body shapes and concrete body measurements. Three procedures have been proposed for building this model. In the first procedure, the experts generate a list of emotional descriptors describing human body shapes and then evaluate a set of virtual human bodies of different shapes using these descriptors. Next, two algorithms of decision tree (CART and fuzzy-ID3) have been applied for modelling the relation between each emotional descriptor and the ratios of relevant body measurements. In the second procedure, the experts evaluate the relationship between these concrete emotional descriptors and a number of abstract fashion themes such as ‘sporty’ and ‘attractive’ without taking into account any specific human body shape. This conceptual relationship given by different experts is modelled using a fuzzy cognitive map. In the third procedure, the two previous models are combined using the fuzzy relation operations. Using this combined model, garment designers can quickly identify personalised and variable body shapes, expressed by a set of concrete and abstract keywords, from human body measurements. These keywords will be further integrated into an expert knowledge base of garment design for developing personalised new products.
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从身材测量到体型感知:服装设计的智能工具
本文提出了描述人体形状的情绪性描述性关键词与具体身体尺寸之间关系的模型。为了建立这个模型,提出了三个步骤。在第一个过程中,专家生成一个描述人体形状的情感描述符列表,然后使用这些描述符评估一组不同形状的虚拟人体。接下来,应用两种决策树算法(CART和fuzzy-ID3)对每个情绪描述符与相关身体测量比例之间的关系进行建模。在第二步中,专家们评估这些具体的情感描述与一些抽象的时尚主题(如“运动”和“吸引人”)之间的关系,而不考虑任何具体的人体形状。不同专家给出的概念关系使用模糊认知图建模。第三步,利用模糊关系运算将两个模型结合起来。利用这个组合模型,服装设计师可以从人体测量中快速识别出个性化和可变的体型,并通过一组具体和抽象的关键词来表达。这些关键词将进一步整合到服装设计的专家知识库中,用于开发个性化的新产品。
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