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光折射对水下运动分析中相机校准和重建精度的影响。

Effects of light refraction on the accuracy of camera calibration and reconstruction in underwater motion analysis.

作者信息

Kwon Young-Hoo, Casebolt Jeffrey B

机构信息

Biomechanics Laboratory, Texas Woman's University, Denton, USA.

出版信息

Sports Biomech. 2006 Jan;5(1):95-120. doi: 10.1080/14763141.2006.9628227.

Abstract

One of the most serious obstacles to accurate quantification of the underwater motion of a swimmer's body is image deformation caused by refraction. Refraction occurs at the water-air interface plane (glass) owing to the density difference. Camera calibration-reconstruction algorithms commonly used in aquatic research do not have the capability to correct this refraction-induced nonlinear image deformation and produce large reconstruction errors. The aim of this paper is to provide a through review of: the nature of the refraction-induced image deformation and its behaviour in underwater object-space plane reconstruction; the intrinsic shortcomings of the Direct Linear Transformation (DLT) method in underwater motion analysis; experimental conditions that interact with refraction; and alternative algorithms and strategies that can be used to improve the calibration-reconstruction accuracy. Although it is impossible to remove the refraction error completely in conventional camera calibration-reconstruction methods, it is possible to improve the accuracy to some extent by manipulating experimental conditions or calibration frame characteristics. Alternative algorithms, such as the localized DLT and the double-plane method are also available for error reduction. The ultimate solution for the refraction problem is to develop underwater camera calibration and reconstruction algorithms that have the capability to correct refraction.

摘要

精确量化游泳者身体水下运动的最严重障碍之一是由折射引起的图像变形。由于密度差异,折射发生在水 - 空气界面平面(玻璃)处。水生研究中常用的相机校准 - 重建算法没有能力校正这种由折射引起的非线性图像变形,从而产生较大的重建误差。本文的目的是全面综述:折射引起的图像变形的本质及其在水下物体空间平面重建中的表现;直接线性变换(DLT)方法在水下运动分析中的固有缺点;与折射相互作用的实验条件;以及可用于提高校准 - 重建精度的替代算法和策略。虽然在传统的相机校准 - 重建方法中不可能完全消除折射误差,但通过控制实验条件或校准框架特征,有可能在一定程度上提高精度。也可以使用替代算法,如局部DLT和双平面方法来减少误差。解决折射问题的最终方案是开发具有校正折射能力的水下相机校准和重建算法。

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