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Accurate object localization in gray level images using the center of gravity measure: accuracy versus precision

机译:使用重心测量在灰度图像中进行精确的对象定位:精度与精度

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摘要

A widely used subpixel precision estimate of an object center is the weighted center of gravity (COG). We derive three maximum-likelihood estimators for the variance of the two-dimensional (2-D) COG as a function of the noise in the image. We assume that the noise is additive, Gaussian distributed and independent between neighboring pixels. Repeated experiments using 2500 generated 2-D bell-shaped markers superimposed with an increasing amount of Gaussian noise were performed, to compare the three approximations. The error of the most exact approximative variance estimate with respect to true variance was always less than 5% of the latter. This deviation decreases with increasing signal-to-noise ratio. Our second approximation to the variance estimate performed better than the third approximation, which was originally presented by Oron et al. by up to a factor /spl ap/10. The difference in performance between these two approximations increased with an increasing misplacement of the window in which the COG was calculated with respect to the real COG.
机译:物体中心广泛使用的子像素精度估计是加权重心(COG)。对于二维(2-D)COG的方差,我们得出了三个最大似然估计器,这些估计是图像中噪声的函数。我们假设噪声是加性的,高斯分布并且在相邻像素之间独立。进行了重复实验,使用了2500个生成的2-D钟形标记并叠加了越来越多的高斯噪声,以比较这三个近似值。关于真实方差,最精确的近似方差估计值的误差始终小于后者的5%。该偏差随着信噪比的增加而减小。我们对方差估计的第二次逼近比最初由Oron等人提出的第三次逼近表现更好。最高可达/ spl ap / 10。这两个近似值之间的性能差异随计算COG的窗口相对于实际COG的错位增加而增加。

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