基于预测聚类树的人体形状预测与分析

P. Xi, Hongyu Guo, Chang Shu
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引用次数: 8

摘要

预测建模的目的是构建模型,根据对象的描述来预测其目标属性。在数字人体建模中,它可以应用于从图像、测量或描述性特征预测人体形状。虽然图像和测量值可以转换为数值,但很难将数值分配给描述性特征,因此无法应用基于回归的方法。在这项工作中,我们提出使用预测聚类树(PCT)从人口统计信息中预测人体形状。我们使用人口统计属性和体型描述符的数据集构建pct。我们通过经验证明,基于pct的方法与使用身体测量的数值方法具有相似的预测能力。pct还揭示了训练数据集的有趣结构,并从人口统计学属性的角度提供了体型变化的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Human Body Shape Prediction and Analysis Using Predictive Clustering Tree
Predictive modeling aims at constructing models that predict a target property of an object based on its descriptions. In digital human modeling, it can be applied to predicting human body shape from images, measurements, or descriptive features. While images and measurements can be converted to numerical values, it is difficult to assign numerical values to descriptive features and therefore regression based methods cannot be applied. In this work, we propose to use Predictive Clustering Trees (PCT) to predict human body shapes from demographic information. We build PCTs using a dataset of demographic attributes and body shape descriptors. We demonstrate empirically that the PCT-based method has similar predicting power as the numerical approaches using body measurements. The PCTs also reveal interesting structures of the training dataset and provide interpretations of the body shape variations from the perspective of the demographic attributes.
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