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首页> 外文期刊>Fibres & textiles in Eastern Europe >Real-time Segmentation of Yarn Images Based on an FCM Algorithm and Intensity Gradient Analysis
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Real-time Segmentation of Yarn Images Based on an FCM Algorithm and Intensity Gradient Analysis

机译:基于FCM算法和强度梯度分析的纱线图像实时分割。

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摘要

This paper presents a new method for real-time segmentation of yarn images which are captured by a real-time image acquisition device. The first frame of the images is clustered by the local average intensity and entropy of the image based on the FCM (Fuzzy C-means) algorithm to obtain a segmentation threshold value. The pixels with an intensity below the threshold value in each column of the image are convolved with a convolve template to construct an intensity gradient curve. The points of maximum value and minimum value in the curve are considered as the upper and lower edge points of yarn. A robust real-time segmentation algorithm of yarn images is obtained for evaluating yarn diameter more precisely. Finally two indices of SE (Segmentation Error) in % and ADE (Average Diameter Error) in % are proposed to evaluate the segmentation method, which is then compared with the manual method.
机译:本文提出了一种实时分割纱线图像的新方法,该图像由实时图像采集设备捕获。基于FCM(模糊C均值)算法,通过图像的局部平均强度和熵对图像的第一帧进行聚类以获得分割阈值。在图像的每一列中具有低于阈值的强度的像素与卷积模板进行卷积以构建强度梯度曲线。曲线中的最大值和最小值的点被认为是纱线的上下边缘点。获得了鲁棒的实时纱线图像分割算法,可以更精确地评​​估纱线直径。最后,提出了以百分比表示的SE(细分误差)和以百分比表示的ADE(平均直径误差)的两个指标来评估分割方法,然后将其与手动方法进行比较。

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