Simultaneous Inference of View and Body Pose using Torus Manifolds

Chan-Su Lee, A. Elgammal
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引用次数: 38

Abstract

Inferring 3D body pose as well as viewpoint from a single silhouette image is a challenging problem. We present a new generative model to represent shape deformations according to view and body configuration changes on a two dimensional manifold. We model the two continuous states by a product space (different configurations times different views) embedded on a conceptual two dimensional torus manifold. We learn a nonlinear mapping between torus manifold embedding and visual input (silhouettes) using empirical kernel mapping. Since every view and body pose has a corresponding embedding point on the torus manifold, inferring view and body pose from a given image becomes estimating the embedding point from a given input. As the shape varies in different people even in the same view and body pose, we extend our model to be adaptive to different people by decomposing person dependent style factors. Experimental results with real data as well as synthetic data show simultaneous estimation of view and body configuration from given silhouettes from unknown people
基于环面流形的视角和身体姿态的同步推断
从单个轮廓图像推断三维人体姿态和视角是一个具有挑战性的问题。我们提出了一种新的生成模型来表示二维流形上根据视图和体形变化而产生的形状变形。我们通过嵌入在概念二维环面流形上的积空间(不同构型乘以不同视图)对两个连续状态进行建模。我们使用经验核映射学习环面流形嵌入和视觉输入(轮廓)之间的非线性映射。由于每个视图和身体姿态在环面流形上都有一个相应的嵌入点,因此从给定图像推断视图和身体姿态就变成了从给定输入估计嵌入点。由于不同的人,即使在相同的视角和身体姿势下,形状也是不同的,我们通过分解人依赖的风格因素,扩展我们的模型以适应不同的人。真实数据和合成数据的实验结果表明,从给定的未知人物的轮廓中同时估计视图和身体构型
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