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首页> 外文期刊>Journal of Computational Methods in Sciences and Engineering >A new image edge detection algorithm based on improved Canny
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A new image edge detection algorithm based on improved Canny

机译:一种基于改进Canny的新图像边缘检测算法

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摘要

Due to the filter and threshold setting method, the traditional Canny algorithm has the disadvantages of limited denoising ability and poor adaptive ability. Focusing on the filtering part and the threshold setting part, a new image edge detection algorithm based on improved Canny was proposed. In the new algorithm, the Gaussian filtering algorithm is replaced by an improved filtering algorithm, in which the filtering method, weighting method and the size of the filtering window are adaptively selected according to the noise density. In addition, the OTSU algorithm is used to figure out the upper threshold. And an evalution function based on the gradient magnitude histogram and intra-class variance minimization is introduced to help determine the lower threshold The Lena images with differernt pepper and salt noise density were taken as the experiment object. Both the subjective and objective evalution were carried out to verify that the algorithm proposed in this paper has good denoising ability and detail retention ability and that when pepper and salt noise density grows, the new algorithm has more advantages over the adaptive median filtering Canny algorithm and the adaptive weighting median filtering Canny algorithm.
机译:由于过滤器和阈值设置方法,传统的罐装算法具有有限的去噪能力和适应性差的缺点。专注于滤波部分和阈值设置部分,提出了一种基于改进罐的新的图像边缘检测算法。在新的算法中,通过改进的滤波算法代替高斯滤波算法,其中根据噪声密度自适应地选择过滤方法,加权方法和滤波窗的大小。此外,OTSU算法用于弄清楚上阈值。引入基于梯度幅度直方图和阶级方差最小化的评估功能,以帮助确定具有不同辣椒和盐噪声密度作为实验对象的较低阈值。进行主观和客观评估,以验证本文提出的算法具有良好的去噪能力和细节保留能力,并且当辣椒和盐噪声密度增长时,新算法对自适应中值滤波罐头算法具有更多优势自适应加权中值滤波罐算法。

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