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Color Line Detection

机译:色线检测

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摘要

Color line extraction is an important part of the segmentation process. The proposed method is the generalization of the Gradient Line Detector (GLD) to color images. The method relies on the computation of a color gradient field. Existing color gradient are not "oriented": the gradient vector direction is defined up to π, and not up to 2π as it is for a grey-level image. An oriented color gradient which makes use of an ordering of colors is proposed. Although this ordering is arbitrary, the color gradient orientation changes from one to the other side of a line; this change is captured by the GLD. The oriented color gradient is derived from a generalization from scalar to vector: the components of the gradient are defined as a "signed" distance between weighted average colors, the sign being related to their respective order. An efficient averaging method inspired by the Gaussian gradient brings a scale parameter to the line detector. For the distance, the simplest choice is the Euclidean distance, but the best choice depends on the application. As for any feature extraction process, a post-processing is necessary: local maxima should be extracted and linked into curvilinear segments. Some preliminary results using the Euclidean distance are shown on a few images.
机译:色线提取是分割过程的重要组成部分。所提出的方法是将梯度线检测器(GLD)推广到彩色图像。该方法依赖于颜色梯度场的计算。现有的颜色梯度不是“定向的”:梯度矢量方向的最大定义为π,而不是灰度图像的最大2π。提出了一种利用颜色顺序的定向的颜色梯度。尽管该顺序是任意的,但是颜色梯度的方向从一条线的另一侧改变到另一条线。 GLD捕获了此更改。定向的颜色渐变是从对标量到矢量的概括得出的:渐变的分量定义为加权平均颜色之间的“有符号”距离,该符号与它们各自的顺序有关。受高斯梯度启发的高效平均方法为行检测器带来了比例参数。对于距离,最简单的选择是欧几里得距离,但是最佳选择取决于应用程序。对于任何特征提取过程,都必须进行后处理:应该提取局部最大值并将其链接到曲线段中。一些图像显示了使用欧几里德距离的一些初步结果。

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