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3D Reconstruction of Dynamic Textures in Crowd Sourced Data

机译:人群源数据中动态纹理的3D重建

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We propose a framework to automatically build 3D models for scenes containing structures not amenable for photo-consistency based reconstruction due to having dynamic appearance. We analyze the dynamic appearance elements of a given scene by leveraging the imagery contained in Internet image photo-collections and online video sharing websites. Our approach combines large scale crowd sourced SfM techniques with image content segmentation and shape from silhouette techniques to build an iterative framework for 3D shape estimation. The developed system not only enables more complete and robust 3D modeling, but it also enables more realistic visualizations through the identification of dynamic scene elements amenable to dynamic texture mapping. Experiments on crowd sourced image and video datasets illustrate the effectiveness of our automated data-driven approach.
机译:我们提出了一种框架,该框架可针对包含因动态外观而不适用于基于照片一致性的重建的结构的场景自动构建3D模型。我们通过利用Internet图像照片集和在线视频共享网站中包含的图像来分析给定场景的动态外观元素。我们的方法将大规模人群来源的SfM技术与图像内容分割和轮廓技术中的形状相结合,以构建用于3D形状估计的迭代框架。所开发的系统不仅可以实现更完整,更强大的3D建模,而且还可以通过识别适合于动态纹理贴图的动态场景元素来实现更逼真的可视化效果。对来自人群的图像和视频数据集进行的实验说明了我们自动数据驱动方法的有效性。

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