X-Tag:灵活准确的束调整基准标签

Tolga Birdal, Ievgeniia Dobryden, Slobodan Ilic
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引用次数: 18

摘要

本文设计了一种新型平面二维基准标记,并开发了一种快速检测算法,旨在通过束平差实现标记位置的简单摄像机标定和精确三维重建。尽管在各种任务中已经制作并使用了大量的平面基准标记,但它们都不具备解决上述任务所需的属性。我们的标记,X-tag,具有新颖的设计,加上非常高效和强大的检测方案,从而减少了误报的数量。这是通过在图像域中构造具有随机圆形特征的标记并使用两个真正的透视不变量:交叉比率和相交保存约束对它们进行编码来实现的。为了检测标记,我们开发了一种有效的搜索方案,类似于几何哈希和霍夫投票,其中标记解码被视为检索问题。我们将该系统应用于摄像机标定和束平差任务。通过定性和定量实验,我们证明了x标签在模糊、噪声、透视和径向畸变下的鲁棒性和准确性,并展示了相机校准、束调整和来自精确外部相机姿态的深度数据的三维融合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
X-Tag: A Fiducial Tag for Flexible and Accurate Bundle Adjustment
In this paper we design a novel planar 2D fiducial marker and develop fast detection algorithm aiming easy camera calibration and precise 3D reconstruction at the marker locations via the bundle adjustment. Even though an abundance of planar fiducial markers have been made and used in various tasks, none of them has properties necessary to solve the aforementioned tasks. Our marker, X-tag, enjoys a novel design, coupled with very efficient and robust detection scheme, resulting in a reduced number of false positives. This is achieved by constructing markers with random circular features in the image domain and encoding them using two true perspective invariants: cross-ratios and intersection preservation constraints. To detect the markers, we developed an effective search scheme, similar to Geometric Hashing and Hough Voting, in which the marker decoding is cast as a retrieval problem. We apply our system to the task of camera calibration and bundle adjustment. With qualitative and quantitative experiments, we demonstrate the robustness and accuracy of X-tag in spite of blur, noise, perspective and radial distortions, and showcase camera calibration, bundle adjustment and 3d fusion of depth data from precise extrinsic camera poses.
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