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Multiview reconstruction of space curves

机译:空间曲线的多视图重建

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Is the real problem in resolving correspondence using current stereo algorithms the lack of the "right" matching criterion? In studying the related task of reconstructing three-dimensional space curves from their projections in multiple views, we suggest that the problem is more basic: matching and reconstruction are coupled, and so reconstruction algorithms should exploit this rather than assuming that matching can be successfully performed before reconstruction. To realize this coupling, a generative model of curves is introduced which has two key components: (i) a prior distribution of general space curves and (ii) an image formation model which describes how 3D curves are projected onto the image plane. A novel aspect of the image formation model is that it uses an exact description of the gradient field of a piecewise constant image. Based on this forward model, a fully automatic algorithm for solving the inverse problem is developed for an arbitrary number of views. The resulting algorithm is robust to partial occlusion, deficiencies in image curve extraction and it does not rely on photometric information. The relative motion of the cameras is assumed to be given. Several experiments are carried out on various realistic scenarios. In particular, we focus on scenes where traditional correlation-based methods would fail.
机译:是使用当前立体声算法解决对应关系的真正问题,缺少“右”匹配标准?在研究从他们的预测中重建三维空间曲线的相关任务,我们建议问题更为基本:匹配和重建是耦合的,因此重建算法应该利用这一点而不是假设可以成功执行匹配重建之前。为了实现该耦合,介绍了一种具有两个关键组件的曲线的生成模型:(i)通用空间曲线的先前分布和(ii)描述3D曲线如何将3D曲线投射到图像平面上的图像形成模型。图像形成模型的新颖方面是它使用分段恒定图像的梯度场的精确描述。基于该前向模型,开发了一种解决逆问题的全自动算法,用于任意数量的视图。结果算法是鲁棒的部分闭塞,图像曲线提取中的缺陷,它不依赖于光度信息。假设相机的相对运动被给出。在各种现实情景下进行了几个实验。特别是,我们专注于传统相关的方法将失败的场景。

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