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An investigation of ramie fiber cross-section image analysis methodology based on edge-enhanced image fusion

机译:基于边缘增强图像融合的苎麻纤维截面图像分析方法研究

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摘要

Usually the quality of cross sectional fiber image is affected by the slicing and imaging device, some image processing techniques could be used to solve this problem instead of hardware operation. In this paper, a series of edge detection and weighted average image fusion algorithms are used to enhance the ramie fiber image to improve the quality of fiber cross-section image obtained by the traditional section and optical microscope. The cross-section characteristic parameters of ramie fiber could be extracted after the image pre-processing including threshold segmentation, median filtering and corrosion. The experimental results show that this method can be used to solve the identification problem of low contrast ramie fiber cross-section images caused by background blur, improve the accuracy of image recognition and analysis, it provides an effective algorithm basis for the digital measurement of ramie fibers. (C) 2019 Elsevier Ltd. All rights reserved.
机译:通常,横截面光纤图像的质量受切片和成像装置的影响,可以使用一些图像处理技术来解决这个问题而不是硬件操作。 在本文中,使用一系列边缘检测和加权平均图像融合算法来增强苎麻光纤图像,以提高传统截面和光学显微镜获得的光纤横截面图像的质量。 在包括阈值分割,中值滤波和腐蚀的图像预处理之后可以提取苎麻光纤的横截面特征参数。 实验结果表明,该方法可用于解决背景模糊引起的低对比度苎麻纤维截面图像的识别问题,提高了图像识别和分析的准确性,为苎麻的数字测量提供了一种有效的算法基础 纤维。 (c)2019年elestvier有限公司保留所有权利。

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