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3D Body Shapes Estimation from Dressed-Human Silhouettes

机译:穿戴式人体轮廓的3D身体形状估计

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摘要

Estimation of 3D body shapes from dressed-human photos is an important but challenging problem in virtual fitting. We propose a novel automatic framework to efficiently estimate 3D body shapes under clothes. We construct a database of 3D naked and dressed body pairs, based on which we learn how to predict 3D positions of body landmarks (which further constrain a parametric human body model) automatically according to dressed-human silhouettes. Critical vertices are selected on 3D registered human bodies as landmarks to represent body shapes, so as to avoid the time-consuming vertices correspondences finding process for parametric body reconstruction. Our method can estimate 3D body shapes from dressed-human silhouettes within 4 seconds, while the fastest method reported previously need 1 minute. In addition, our estimation error is within the size tolerance for clothing industry. We dress 6042 naked bodies with 3 sets of common clothes by physically based cloth simulation technique. To the best of our knowledge, We are the first to construct such a database containing 3D naked and dressed body pairs and our database may contribute to the areas of human body shapes estimation and cloth simulation.
机译:从穿着人体的照片估计3D人体形状是虚拟拟合中一个重要但具有挑战性的问题。我们提出了一种新颖的自动框架来有效估计衣服下的3D身体形状。我们构建了一个3D裸露和穿戴式身体对的数据库,在此基础上,我们学习了如何根据穿戴式人体轮廓自动预测身体标志的3D位置(这进一步约束了参数化人体模型)。在3D注册的人体上选择关键顶点作为界标来表示身体形状,从而避免了耗时的顶点对应关系查找过程以进行参数化人体重建。我们的方法可以在4秒钟内从穿着得体的人体轮廓估计3D身体形状,而以前报道的最快方法需要1分钟。此外,我们的估计误差在服装行业的尺寸公差范围内。通过基于物理的布料模拟技术,我们为6042个裸身穿上3套普通衣服。据我们所知,我们是第一个构建包含3D裸露和穿戴的人体对的数据库的数据库,我们的数据库可能有助于人体形状估计和衣服模拟领域。

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