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An improved SUSAN corner detection algorithm based on adaptive threshold

机译:一种改进的基于自适应阈值的SUSAN角点检测算法

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The SUSAN operator needs to adjust similarity threshold manually time after time in order to achieve a good corner detection results, and it can't detect some corners with special or complex shape. In view of this, the SLiSAN operator is improved by the authors of this paper. Firstly, an adaptive threshold selection method based on iterative operation is proposed, and then a discrete ring-shaped mask is added within the SUSAN's circular mask so as to overcome the deficiency of the SUSAN operator. The experimental results show that the improved SUSAN ajgorithm can not only greatly improve the automation of program operation by releasing the programmers of adjusting threshold manually, but also obtain a good detection result for various types of corners.
机译:SUSAN操作人员需要一次又一次地手动调整相似性阈值,以实现良好的拐角检测结果,并且无法检测到某些形状特殊或复杂的拐角。有鉴于此,本文的作者改进了SLiSAN运算符。首先,提出了一种基于迭代运算的自适应阈值选择方法,然后在SUSAN的圆形掩模内增加了离散的环形掩模,以克服SUSAN算子的不足。实验结果表明,改进的SUSAN算法不仅可以通过释放手动调节阈值的编程器来大大提高程序运行的自动化程度,而且对于各种类型的拐角都能获得良好的检测结果。

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