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Construction of a prediction model for body dimensions used in garment pattern making based on anthropometric data learning

机译:基于人体测量数据学习的服装图案制作中人体尺寸预测模型的构建

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摘要

Using artificial intelligence to predict body dimensions rather than measuring them physically is a new research direction in apparel industry. If implemented, this technology can reduce costs and improve efficiency. In this paper, we proposed a back propagation artificial neural network (BP-ANN) model to predict pattern making-related body dimensions by inputting few key human body dimensions. In order to construct the proposed model, anthropometric measurements of 120 young females from the northeastern region of China were collected. The data were then used for training and the proposed model. The results showed that the prediction of the developed BP-ANN model is more accurate and stable than that of linear regression (LR) model. As great as the LR model was at pattern making, the BP-ANN model is even better. In the future, the precision of the proposed model can be further improved if the size of the learning data increases. The proposed method can be especially useful in making garment pattern for form-fitting clothing.
机译:使用人工智能来预测身体尺寸而不是对其进行物理测量是服装行业的新研究方向。如果实施,该技术可以降低成本并提高效率。在本文中,我们提出了一种反向传播人工神经网络(BP-ANN)模型,通过输入很少的关键人体尺寸来预测与图案制作相关的人体尺寸。为了构建所提出的模型,收集了来自中国东北地区的120名年轻女性的人体测量数据。然后将数据用于训练和提出的模型。结果表明,所开发的BP-ANN模型的预测比线性回归(LR)模型的预测更为准确和稳定。就像LR模型在制图上一样出色,BP-ANN模型甚至更好。将来,如果学习数据的大小增加,则可以进一步提高所提出模型的精度。所提出的方法在制造用于合身服装的服装图案中尤其有用。

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