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Shape from Selfies: Human Body Shape Estimation Using CCA Regression Forests

机译:来自自拍的形状:使用CCA回归森林的人体形状估计

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In this work, we revise the problem of human body shape estimation from monocular imagery. Starting from a statistical human shape model that describes a body shape with shape parameters, we describe a novel approach to automatically estimate these parameters from a single input shape silhouette using semi-supervised learning. By utilizing silhouette features that encode local and global properties robust to noise, pose and view changes, and projecting them to lower dimensional spaces obtained through multi-view learning with canonical correlation analysis, we show how regression forests can be used to compute an accurate mapping from the silhouette to the shape parameter space. This results in a very fast, robust and automatic system under mild self-occlusion assumptions. We extensively evaluate our method on thousands of synthetic and real data and compare it to the state-of-art approaches that operate under more restrictive assumptions.
机译:在这项工作中,我们修改了单眼图像的人体形状估计问题。从描述具有形状参数的体形的统计人形模型开始,我们描述了一种使用半监督学习从单个输入形状剪影自动估计这些参数的新方法。通过利用编码本地和全局属性的剪影功能,对噪声,构成和视图更改,并将其投影到通过多视图学习获得的较低的尺寸空间,通过规范相关性分析,我们展示了回归森林如何用于计算准确的映射从轮廓到形状参数空间。这导致在轻度自闭锁假设下具有非常快速,鲁棒和自动的系统。我们广泛地评估了我数千种合成和实际数据的方法,并将其与在更严格的假设下运行的最先进的方法进行比较。

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