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Child body shape measurement using depth cameras and a statistical body shape model

机译:使用深度相机和统计身体形状模型进行儿童身体形状测量

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摘要

We present a new method for rapidly measuring child body shapes from noisy, incomplete data captured from low-cost depth cameras. This method fits the data using a statistical body shape model (SBSM) to find a complete avatar in the realistic body shape space. The method also predicts a set of standard anthropometric data for a specific subject without measuring dimensions directly from the fitted model. Since the SBSM was developed using principal component (PC) analysis, we formulate an optimisation problem to fit the model in which the degrees of freedom are defined in PC-score space. The mean unsigned distance between the fitted-model based on depth-camera data and the high-resolution laser scan data was 9.4 mm with a standard deviation (SD) of 5.1 mm. For the torso, the mean distance was 2.9 mm (SD 1.4 mm). The correlations between standard anthropometric dimensions predicted by the SBSM and manually measured dimensions exceeded 0.9.
机译:我们提出了一种新方法,可以从低成本的深度相机捕获的嘈杂,不完整的数据中快速测量儿童的身体形状。此方法使用统计的身体形状模型(SBSM)拟合数据,以在现实的身体形状空间中找到完整的化身。该方法还可以预测特定对象的一组标准人体测量数据,而无需直接从拟合模型中测量尺寸。由于SBSM是使用主成分(PC)分析开发的,因此我们提出了一个优化问题,以适应其中PC得分空间中定义了自由度的模型。基于深度相机数据的拟合模型与高分辨率激光扫描数据之间的平均无符号距离为9.4 mm,标准差(SD)为5.1 mm。对于躯干,平均距离为2.9毫米(SD为1.4毫米)。 SBSM预测的标准人体测量尺寸与手动测量尺寸之间的相关性超过0.9。

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