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线结构光焊接图像去噪方法
引用本文:马增强,钱荣威,许丹丹,杜巍.线结构光焊接图像去噪方法[J].焊接学报,2021,42(2):8-15.
作者姓名:马增强  钱荣威  许丹丹  杜巍
作者单位:石家庄铁道大学,石家庄,050043;石家庄铁道大学,省部级交通工程结构力学行为与体系国家重点实验室,石家庄,050043;石家庄铁道大学,石家庄,050043
基金项目:国家自然科学基金资助项目(12072207);河北省高等学校科学技术研究项目青年基金项目(QN2020155);河北省研究生专业学位教学案例库项目(KCJSZ2019057).
摘    要:为了滤除焊接过程中大量散射及飞溅焊渣等噪声,提出了一种基于自适应顶帽变换(adaptive Top-Hat transform)的线结构光焊接图像去噪方法.将噪声图像进行一定范围结构元尺寸的Top-Hat变换处理,提出了一种评价指标互相关系数(cross-correlation coefficient of image...

关 键 词:顶帽变换  焊接图像去噪  互相关系数  Otsu算法  结构相似度
收稿时间:2020-05-19

Denoising of line structured light welded seams image based on adaptive top-hat transform
Affiliation:1.Shijiazhuang Tiedao University, Shijiazhuang, 050043, China2.State Key Laboratory of Mechanical Behavior and System Safety of Traffic Engineering Structures, Shijiazhuang Tiedao University, Shijiazhuang, 050043, China
Abstract:Due to the scattering of the welding material, surface shape and laser line, the brightness distribution of the line structure is uneven and there are a lot of scattering noise around it, which affects the subsequent feature point extraction. In order to filter out the noise of the weld image of line structured light, a denoising model of weld image based on adaptive Top-Hat transformation is proposed. First, the noise image is transformed to a certain range of structural element size by Top-hat transform, and then an evaluation index was proposed, cross-correlation coefficient of image histogram (CCIH), and the optimal structural element size L is selected. Second, on the premise of the optimal structural element size L, the noise image is processed by the top-hat transform with a certain range of iterations times, a new model based on Otsu proposed SSIM model is proposed to select the optimal iterations time I from the evaluation index, Ratio of Structural Similarity Index to Average Brightness (RSB). Experimental results show that, compared with the method of Median Filter (MF), the method of Total Variation (TV), and the method combining Non-Subsampled Contourlet Transform with Total Variation (NSCT-TV), the proposed method has a great improvement in the aspects of subjective visual effect, entropy (EN), peak signal-to-noise ratio (PSNR) and mean-square error (MSE). Noise is suppressed more effectively and the line structured light area is preserved better in the image.
Keywords:
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