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A robust hybrid image-based modeling system

机译:鲁棒的基于混合图像的建模系统

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This paper presents a new robust image-based modeling system for creating high-quality 3D models of complex objects from a sequence of unconstrained photographs. The images can be acquired by a video camera or hand-held digital camera without the need of camera calibration. In contrast to previous methods, we integrate correspondence-based and silhouette-based approaches, which significantly enhances the reconstruction of objects with few visual features (e.g., uni-colored objects) and improves surface smoothness. Our solution uses a mesh segmentation and charting approach in order to create a low-distortion mesh parameterization suitable for objects of arbitrary genus. A high-quality texture is produced by first parameterizing the reconstructed objects using a segmentation and charting approach, projecting suitable sections of input images onto the model, and combining them using a graph-cut technique. Holes in the texture due to surface patches without projecting input images are filled using a novel exemplar-based inpainting method which exploits appearance space attributes to improve patch search, and blends patches using Poisson-guided interpolation. We analyzed the effect of different algorithm parameters, and compared our system with a laser scanning-based reconstruction and existing commercial systems. Our results indicate that our system is robust, superior to other image-based modeling techniques, and can achieve a reconstruction quality visually not discernible from that of a laser scanner.
机译:本文提出了一种新的基于鲁棒性的基于图像的建模系统,用于从一系列不受约束的照片中创建复杂对象的高质量3D模型。可以通过摄像机或手持数码相机获取图像,而无需进行相机校准。与以前的方法相比,我们集成了基于对应关系和基于轮廓的方法,这大大增强了具有很少视觉特征的对象(例如单色对象)的重建并提高了表面平滑度。我们的解决方案使用网格分割和制图方法来创建适用于任意属类对象的低失真网格参数化。首先使用分割和制图方法对重建的对象进行参数化,然后将输入图像的合适部分投影到模型上,然后使用图形切割技术对其进行组合,从而生成高质量的纹理。使用新颖的基于示例的修补方法填充由于表面补丁而导致的纹理中的孔,而无需投影输入图像,该方法利用外观空间属性来改进补丁搜索,并使用泊松引导插值来混合补丁。我们分析了不同算法参数的影响,并将我们的系统与基于激光扫描的重建和现有的商业系统进行了比较。我们的结果表明,我们的系统强大,优于其他基于图像的建模技术,并且可以实现视觉上无法从激光扫描仪上分辨出来的重建质量。

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