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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >ElliFit: An unconstrained, non-iterative, least squares based geometric Ellipse Fitting method
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ElliFit: An unconstrained, non-iterative, least squares based geometric Ellipse Fitting method

机译:ElliFit:一种无约束,无迭代,基于最小二乘的几何椭圆拟合方法

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摘要

A novel ellipse fitting method which is selective for digital and noisy elliptic curves is proposed in this paper. The method aims at fitting an ellipse only when the data points are highly likely belong to an ellipse. This is achieved using the geometric distances of the ellipse from the data points. The proposed method models the non-linear problem of ellipse fitting as a combination of two operators, with one being linear, numerically stable, and easily invertible, while the other being non-linear but unique and easily invertible operator. As a consequence, the proposed ellipse fitting method has several salient properties like unconstrained, stable, non-iterative, and computationally inexpensive. The efficacy of the method is compared against six contemporary and recent algorithms based on the least squares formulation using five experiments of diverse practical challenges, like digitization, incomplete ellipses, and Gaussian noise (up to 30%). Three of the experiments comprise of a total of 44,400 ellipses (positive test data) while the other two are tested on 320,000 non-elliptic conics (negative test data). The results show that the proposed method is quite selective to elliptic shapes only and provides accurate fitting results, indicating potential application in medical, robotics, object detection, and other image processing industrial applications.
机译:提出了一种新颖的椭圆拟合方法,该方法对数字和有噪声的椭圆曲线具有选择性。该方法旨在仅在数据点极有可能属于椭圆时才拟合椭圆。这是使用椭圆到数据点的几何距离来实现的。所提出的方法将椭圆拟合的非线性问题建模为两个算子的组合,一个算子是线性的,数值稳定的并且容易求逆的,而另一个算子是非线性的但唯一且容易求逆的算子。结果,所提出的椭圆拟合方法具有多个显着特性,例如不受约束,稳定,非迭代且计算上便宜。该方法的有效性与六种基于最小二乘公式的当代和最新算法进行了比较,并使用了五种面对各种实际挑战的实验,这些挑战包括数字化,不完全椭圆形和高斯噪声(最高30%)。其中三个实验总共包含44,400个椭圆(阳性测试数据),而另外两个则在320,000个非椭圆圆锥体上进行了测试(阴性测试数据)。结果表明,所提出的方法仅对椭圆形状具有很好的选择性,并提供精确的拟合结果,表明在医学,机器人技术,物体检测以及其他图像处理工业应用中的潜在应用。

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