基于周期性光照光流估计和多视点光度立体的动态形状捕获

Ying Fu, Yebin Liu, Qionghai Dai
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引用次数: 6

摘要

在静态物体的形状恢复方面,多视点测光立体已经得到了很好的应用。然而,在不同的光照条件下对运动图像进行对齐,从而对动态物体进行光度立体重建是困难的。为了解决这一问题,本文提出了一种在周期性光照变化下工作的光流估计方法,并与光度立体成像相结合,实现了动态物体的高质量三维重建。首先,利用多摄像机多光系统在周期性变化的照度下捕获运动目标的多视角图像;然后,估计光流,合成每个视点不同照度下的图像。最后,采用多视点测光立体技术,得到每个时刻的高精度三维模型。在运动对象上的实验结果表明,该方法可以有效地对不同光照下的时间连续图像进行配准,从而实现对运动物体的精确光度重建。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Shape Capture via Periodical-Illumination Optical Flow Estimation and Multi-view Photometric Stereo
Multi-view photometric stereo is well established for the shape recovery of static objects. However, it is difficult to align motion images under varying illumination so as to perform photometric stereo reconstruction for dynamic objects. To tackle this issue, this paper presents an optical flow estimation approach which works under periodically varying illuminations, and in cooperation with photometric stereo, enables high-quality 3D reconstruction of dynamic objects. Firstly, multi-view images of the moving object are captured under periodically varying illumination by the multi-camera multi-light system. Then, the optical flow is estimated to synthesize images under different illuminations for each viewpoint. Finally, the multi-view photometric stereo technique is employed to get a high accurate 3D model for each time instant. Experimental results on motion actors demonstrate that temporal successive images under varying illuminations are effectively registered, permitting accurate photometric reconstruction for moving objects.
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