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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Active Camera Relocalization from a Single Reference Image without Hand-Eye Calibration
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Active Camera Relocalization from a Single Reference Image without Hand-Eye Calibration

机译:从单个参考图像进行主动摄像机重新定位,无需进行手眼校准

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摘要

This paper studies active relocalization of 6D camera pose from a single reference image, a new and challenging problem in computer vision and robotics. Straightforward active camera relocalization (ACR) is a tricky and expensive task that requires elaborate hand-eye calibration on precision robotic platforms. In this paper, we show that high-quality camera relocalization can be achieved in an active and much easier way. We propose a hand-eye calibration free approach to actively relocating the camera to the same 6D pose that produces the input reference image. We theoretically prove that, given bounded unknown hand-eye pose displacement, this approach is able to rapidly reduce both 3D relative rotational and translational pose between current camera and the reference one to an identical matrix and a zero vector, respectively. Based on these findings, we develop an effective ACR algorithm with fast convergence rate, reliable accuracy and robustness. Extensive experiments validate the effectiveness and feasibility of our approach on both laboratory tests and challenging real-world applications in fine-grained change monitoring of cultural heritages.
机译:本文从单一参考图像研究6D相机姿态的主动重新定位,这是计算机视觉和机器人技术中一个新的且具有挑战性的问题。主动式主动摄像机重新定位(ACR)是一项棘手且昂贵的任务,需要在精密机器人平台上进行精心的手眼校准。在本文中,我们展示了可以以一种主动且容易得多的方式实现高质量的相机重新定位。我们提出了一种无需手眼校准的方法来主动将摄像机重新定位到产生输入参考图像的相同6D姿势。我们从理论上证明,在给定有限的手眼姿势位移的情况下,该方法能够将当前摄像机和参考点之间的3D相对旋转和平移姿势迅速降低到相同的矩阵和零矢量。基于这些发现,我们开发了一种有效的ACR算法,具有快速收敛速度,可靠的准确性和鲁棒性。广泛的实验验证了我们的方法在实验室测试和具有挑战性的实际应用中对文化遗产进行细粒度变化监控的有效性和可行性。

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