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A Systematic Approach for the Parameterisation of the Kernel-Based Hough Transform Using a Human-Generated Ground Truth

机译:使用人类产生的地面真相对基于内核的霍夫变换进行参数化的系统方法

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Lines are one of the basic features that are used to characterise the content of an image and to detect objects. Unlike edges or segmented blobs, lines are not only an accumulation of certain feature pixels but can also be described in an easy and exact mathematical way. Besides a lot of different detection methods, the Hough transform has gained much attention in recent years. With increasing processing power and continuous development, computer vision algorithms get more powerful with respect to speed, robustness and accuracy. But there still arise problems when searching for the best parameters for an algorithm or when characterising and evaluating the results of feature detection tasks. It is often difficult to estimate the accuracy of an algorithm and the influences of the parameter selection. Highly interdependent parameters and preprocessing steps continually lead to only hardly comprehensible results. Therefore, instead of pure trial and error and subjective ratings, a systematic assessment with a hard, numerical evaluation criterion is suggested. The paper at hand deals with the latter ones by using a human-generated ground truth to approach the problem. Thereby, the accuracy of the surveyed Kernel-based Hough transform algorithm was improved by a factor of three. These results are used for the tracking of cylindrical markers and to reconstruct their spatial arrangement for a biomedical research application.
机译:线条是用于表征图像内容和检测物体的基本特征之一。与边缘或分段斑点不同,线条不仅是某些特征像素的积累,而且还可以通过简单而精确的数学方式来描述。除了许多不同的检测方法外,近年来,霍夫变换也引起了很多关注。随着处理能力的提高和不断发展,计算机视觉算法在速度,鲁棒性和准确性方面越来越强大。但是,在为算法搜索最佳参数或表征和评估特征检测任务的结果时,仍然会出现问题。通常很难估计算法的准确性以及参数选择的影响。高度相互依赖的参数和预处理步骤只会持续产生难以理解的结果。因此,建议使用纯硬的数字评估标准来进行系统评估,而不是单纯的尝试和错误以及主观评分。眼前的论文通过使用人类产生的地面事实来解决该问题,从而解决了后者。因此,被调查的基于核的霍夫变换算法的精度提高了三倍。这些结果用于跟踪圆柱形标记并重建其空间排列,以用于生物医学研究应用。

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