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Minimal aspect distortion (MAD) mosaicing of long scenes

机译:长景的最小长宽比(MAD)马赛克

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摘要

Long scenes can be imaged by mosaicing multiple images from cameras scanning the scene. We address the case of a video camera scanning a scene while moving in a long path, e.g. scanning a city street from a driving car, or scanning a terrain from a low flying aircraft. A robust approach to this task is presented, which is applied successfully to sequences having thousands of frames even when using a hand-held camera. Examples are given on a few challenging sequences. The proposed system consists of two components: (i) Motion and depth computation. (ii) Mosaic rendering. In the first part a "direct" method is presented for computing motion and dense depth. Robustness of motion computation has been increased by limiting the motion model for the scanning camera. An iterative graph-cuts approach, with planar labels and a flexible similarity measure, allows the computation of a dense depth for the entire sequence. In the second part a new minimal aspect distortion (MAD) mosaicing uses depth to minimize the geometrical distortions of long panoramic images. In addition to MAD mosaicing, interactive visualization using X-Slits is also demonstrated.
机译:可以通过从扫描场景的相机中拼接多个图像来拍摄长景。我们解决了摄像机在长距离移动时扫描场景的情况。从驾驶汽车扫描城市街道,或从低空飞行的飞机扫描地形。提出了一种可靠的方法来完成此任务,即使使用手持摄像机,该方法也可以成功应用于具有数千帧的序列。给出了一些具有挑战性的序列示例。所提出的系统包括两个部分:(i)运动和深度计算。 (ii)马赛克渲染。在第一部分中,提出了一种“直接”方法来计算运动和密集深度。通过限制扫描相机的运动模型,提高了运动计算的鲁棒性。带有平面标签和灵活相似性度量的迭代图割方法允许计算整个序列的密集深度。在第二部分中,新的最小纵横比失真(MAD)镶嵌使用深度来最小化长全景图像的几何失真。除了MAD镶嵌以外,还演示了使用X缝的交互式可视化。

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