Prediction of Bust and Waist Size Based on Two-dimensional Images

Lu-sha Zhang, Wen-hui Zhang, Zheng-dong Liu

Journal of Fiber and Bioengineering and Informatics ›› 2024, Vol. 17 ›› Issue (1) : 1-11.

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Journal of Fiber and Bioengineering and Informatics ›› 2024, Vol. 17 ›› Issue (1) : 1-11. DOI: 10.3993/jfbim03191

Prediction of Bust and Waist Size Based on Two-dimensional Images

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Abstract

Human body measurement based on two-dimensional images has been widely applied in the clothing industry due to its cost and operational advantages. However, the current accuracy of human body circumference measurement is low. This article aims to propose a high-precision method for measuring human body circumference, taking bust circumference and waist circumference as examples, and based on 120 virtual simulations of human bodies, proposes a method to extract human body bust circumference size from front and side angles images. Using the feature value pixel size to calculate the trapezoid perimeter and the ellipse perimeter, and comparing them with the difference of bust circumference and waist circumference sizes, machine learning is applied to build a size prediction model, thus obtaining the values of bust circumference and waist circumference. The experimental results show that the average prediction errors of bust girth and waist girth by the proposed method are 0.26 cm and 0.24 cm, respectively, indicating good prediction performance and applicability for practical production. The proposed method effectively reduces the measurement errors of girth dimensions in image measurement and provides methods and ideas for non-contact human body measurement research.

Key words

Anthropometric dimension / Girth measurement / Neural network / Linear regression

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Lu-sha Zhang, Wen-hui Zhang, Zheng-dong Liu. Prediction of Bust and Waist Size Based on Two-dimensional Images[J]. Journal of Fiber and Bioengineering and Informatics, 2024, 17(1): 1-11 https://doi.org/10.3993/jfbim03191

Funding

Project supported by Beijing Higher Education Undergraduate Teaching Reform and Innovation Project; Teacher Team Building Development and Application of Digital Twin Platform for Clothing Products; Beijing Institute of Fashion Technology “Fashion Studies” Emerging Interdisciplinary Platform; Classi?ed Development of Municipal Colleges and Universities - the Project of Constructing the Emerging Interdisciplinary Platform Based on “Clothing Science” of Beijing Institute of Fashion Technology.

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