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Projective Reconstruction from Multiple Views with Minimization of 2D Reprojection Error

机译:从多个视图进行投影重构,并将二维投影误差降至最低

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摘要

The problem of projective reconstruction by minimization of the 2D reprojection error in multiple images is considered. Although bundle adjustment techniques can be used to minimize the 2D reprojection error, these methods being based on nonlinear optimization algorithms require a good starting point. Quasi-linear algorithms with better global convergence properties can be used to generate an initial solution before submitting it to bundle adjustment for refinement. In this paper, we propose a factorization-based method to integrate the initial search as well as the bundle adjustment into a single algorithm consisting of a sequence of weighted least-squares problems, in which a control parameter is initially set to a relaxed state to allow the search of a good initial solution, and subsequently tightened up to force the final solution to approach a minimum point of the 2D reprojection error. The proposed algorithm is guaranteed to converge. Our method readily handles images with missing points.
机译:考虑了通过最小化多个图像中的2D重投影误差进行投影重建的问题。尽管可以使用束调整技术来最小化2D重投影误差,但是这些基于非线性优化算法的方法需要一个良好的起点。具有更好的全局收敛性的拟线性算法可用于生成初始解,然后再将其提交给束调整以进行细化。在本文中,我们提出了一种基于因式分解的方法,将初始搜索和包调整整合到一个由一系列加权最小二乘问题组成的单一算法中,该算法最初将控制参数设置为松弛状态,从而允许寻找一个好的初始解,然后加紧以迫使最终解接近2D重投影误差的最小点。所提出的算法可以保证收敛。我们的方法可以轻松处理缺少点的图像。

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