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The determination of the twist level of the Chenille yarn using novel image processing methods: Extraction of axial grey-level characteristic and multi-step gradient based thresholding

机译:使用新型图像处理方法确定雪尼尔纱的捻度:基于轴向灰度特征的提取和基于多步梯度的阈值

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摘要

This paper presents, a new and fast image analysis based method, namely extraction of axial grey-level characteristic (EAGLC), for directly determining the dimensions of a local structural texture, as observed on the axis of the Chenille yarn. The EAGLC signal, obtained from the texture composed by the helically wrapped core yarns, allows identifying the twist level and its variations. Additionally, a novel indirect method, namely multi-step gradient based thresholding (MSGBT), including parametric equation of the elliptical cross-section helical yarn is developed to obtain the twist level using algorithmic thresholding process. Hough Transform method (HT) allows to verify the twist and twist orientation values obtained by the MSGBT method. Consequently, the EAGLC method can be used for the weak local texture compared with grey-level projection method used for strong periodic patterns as are the case in warp and weft yarns in fabric. A yarn inspection system, including optoelectronic sensor, is developed in conjunction with computer vision unit to assess the signal changes corresponding to the image regions where the twist level is determined.
机译:本文提出了一种基于图像分析的快速新方法,即提取轴向灰度特征(EAGLC),用于直接确定局部结构织构的尺寸,如在雪尼尔纱的轴上观察到的。 EAGLC信号由螺旋缠绕的包芯纱组成的织构获得,可以识别捻度及其变化。此外,还开发了一种新颖的间接方法,即基于椭圆曲线的横截面螺旋线的参数方程的基于多步梯度的阈值化(MSGBT),以使用算法阈值化处理来获得捻度。霍夫变换方法(HT)可以验证通过MSGBT方法获得的扭曲和扭曲方向值。因此,与织物的经纱和纬纱的情况相比,与用于强周期图案的灰度投影方法相比,EAGLC方法可以用于较弱的局部纹理。与计算机视觉单元一起开发了包括光电传感器在内的纱线检查系统,以评估与确定捻度水平的图像区域相对应的信号变化。

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