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A Dense 3D Reconstruction Approach from Uncalibrated Video Sequences

机译:来自未校准视频序列的密集3D重建方法

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摘要

Current approaches for 3D reconstruction from feature points of images are classed as sparse and dense techniques. However, the sparse approaches are insufficient for surface reconstruction since only sparsely distributed feature points are presented. Further, existing dense reconstruction approaches require pre-calibrated camera orientation, which limits the applicability and flexibility. This paper proposes a one-stop 3D reconstruction solution that reconstructs a highly dense surface from an uncalibrated video sequence, the camera orientations and surface reconstruction are simultaneously computed from new dense point features using an approach motivated by Structure from Motion (SfM) techniques. Further, this paper presents a flexible automatic method with the simple interface of 'videos to 3D model'. These improvements are essential to practical applications in 3D modeling and visualization. The reliability of the proposed algorithm has been tested on various data sets and the accuracy and performance are compared with both sparse and dense reconstruction benchmark algorithms.
机译:从图像的特征点进行3D重建的当前方法被归类为稀疏和密集技术。但是,稀疏方法不足以进行曲面重建,因为仅显示了稀疏分布的特征点。此外,现有的密集重建方法需要预先校准的摄像机方向,这限制了其适用性和灵活性。本文提出了一种一站式3D重建解决方案,该解决方案从未经校准的视频序列中重建高密度表面,并使用“运动结构(SfM)”技术驱动的方法,根据新的密集点特征同时计算相机方向和表面重建。此外,本文提出了一种具有“视频到3D模型”简单界面的灵活自动方法。这些改进对于3D建模和可视化的实际应用至关重要。在各种数据集上测试了该算法的可靠性,并与稀疏和密集重构基准算法进行了比较。

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