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Ellipse Fitting with Hyperaccuracy

机译:具有高精度的椭圆拟合

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摘要

For fitting an ellipse to a point sequence, ML (maximum likelihood) has been regarded as having the highest accuracy. In this paper, we demonstrate the existence of a "hyperaccurate" method which outperforms ML. This is made possible by error analysis of ML followed by subtraction of high-order bias terms. Since ML nearly achieves the theoretical accuracy bound (the KCR lower bound), the resulting improvement is very small. Nevertheless, our analysis has theoretical significance, illuminating the relationship between ML and the KCR lower bound.
机译:为了使椭圆适合点序列,已经认为ML(最大似然)具有最高的精度。在本文中,我们演示了优于ML的“超精确”方法的存在。通过对ML进行误差分析,然后减去高阶偏置项,可以实现这一点。由于ML几乎达到了理论上的精度界限(KCR下界),因此所得的改进非常小。尽管如此,我们的分析仍具有理论意义,阐明了ML和KCR下限之间的关系。

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