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A geometry-based error estimation for cross-ratios

机译:跨比例的基于几何的误差估计

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摘要

For choosing specific cross-ratios as 2D projective coordinates in various computer vision applications, a reasonable error analysis model is usually required. This investigation adopts the assumption of normal distribution for positioning errors of point features in an image to formulate the error variances of cross-ratios. Based on a geometry-based error analysis, a straightforward way of identifying the cross-ratios with minimum error variances is proposed. Simulation results show that the proposed approach. as well as a further simplified alternative, yield much better estimations of minimum error variances in terms of accuracy, cost, and stability compared with some other methods, e.g., the one based on the rule given by Georis et al. (IEEE Trans. Pattern Anal. Mach. Intell. 20 (4) (1998) 366). Some causes of the performance differences in the estimations are explained using a special configuration of point features. (C) 2001 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 21]
机译:为了在各种计算机视觉应用中选择特定的交叉比例作为2D投影坐标,通常需要合理的误差分析模型。本研究采用正态分布的假设来表示图像中点特征的位置误差,以表示交叉比例的误差方差。基于基于几何的误差分析,提出了一种识别误差最小的交叉比例的简单方法。仿真结果表明了该方法的有效性。以及进一步简化的替代方法,与其他一些方法(例如,基于Georis等人给出的规则的方法)相比,可以在准确性,成本和稳定性方面更好地估计最小误差方差。 (IEEE Trans.Pattern Anal.Mach.Intell.20(4)(1998)366)。使用点要素的特殊配置说明了估算中性能差异的一些原因。 (C)2001模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:21]

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