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A Statistical Image-Based Shape Model for Visual Hull Reconstruction and 3D Structure Inference

机译:基于统计图像的视觉船体重建与三维结构推理形状模型

摘要

We present a statistical image-based shape + structure model for Bayesian visual hull reconstruction and 3D structure inference. The 3D shape of a class of objects is represented by sets of contours from silhouette views simultaneously observed from multiple calibrated cameras. Bayesian reconstructions of new shapes are then estimated using a prior density constructed with a mixture model and probabilistic principal components analysis. We show how the use of a class-specific prior in a visual hull reconstruction can reduce the effect of segmentation errors from the silhouette extraction process. The proposed method is applied to a data set of pedestrian images, and improvements in the approximate 3D models under various noise conditions are shown. We further augment the shape model to incorporate structural features of interest; unknown structural parameters for a novel set of contours are then inferred via the Bayesian reconstruction process. Model matching and parameter inference are done entirely in the image domain and require no explicit 3D construction. Our shape model enables accurate estimation of structure despite segmentation errors or missing views in the input silhouettes, and works even with only a single input view. Using a data set of thousands of pedestrian images generated from a synthetic model, we can accurately infer the 3D locations of 19 joints on the body based on observed silhouette contours from real images.
机译:我们为贝叶斯视觉船体重构和3D结构推断提供基于统计图像的形状+结构模型。一类对象的3D形状由同时从多个校准摄像机观察到的轮廓视图中的轮廓集表示。然后,使用使用混合模型和概率主成分分析构建的先验密度来估计新形状的贝叶斯重构。我们展示了在视觉船体重建中使用特定于类的先验如何减少轮廓提取过程中分割错误的影响。所提出的方法被应用于行人图像的数据集,并且示出了在各种噪声条件下的近似3D模型的改进。我们进一步扩展形状模型以合并感兴趣的结构特征;然后通过贝叶斯重建过程推断出一组新颖轮廓的未知结构参数。模型匹配和参数推断完全在图像域中完成,不需要明确的3D构造。我们的形状模型即使在输入轮廓中存在分割错误或缺少视图的情况下,也可以准确估计结构,并且即使只有一个输入视图也可以使用。使用从合成模型生成的成千上万个行人图像的数据集,我们可以根据从真实图像中观察到的轮廓轮廓准确地推断出人体19个关节的3D位置。

著录项

  • 作者

    Grauman Kristen;

  • 作者单位
  • 年度 2003
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类

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