首页> 外文会议>2011 Fifth International Conference on Genetic and Evolutionary Computing >Robust Color Image Segmentation by Karhunen-Loeve Transform Based Otsu Multi-thresholding and K-means Clustering
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Robust Color Image Segmentation by Karhunen-Loeve Transform Based Otsu Multi-thresholding and K-means Clustering

机译:基于Karhunen-Loeve变换的Otsu多阈值和K-means聚类鲁棒彩色图像分割

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In this paper, a novel fast approach is proposed to achieve image segmentation in color image. This method helps to refine the foreground regions and achieves the goal of robust color image segmentation throw the following four steps. First, modified Karhunen-Loeve transform is performed to reduce the redundant component, thus selecting the most important part of the color images. Second, a multi-threshold Otsu method is carried out to select the best thresholds from image histogram. Thereby, the conventional Otsu method has been extended from gray level to color level. Third, improved Sobel edge detection is added to enhance the weight of edge detail of the foreground image. Finally, a K-Means Clustering is used to merge the over-segmented regions. Experimental results prove that this method has a good performance even when the color image has a complicated structure in the background.
机译:本文提出了一种新颖的快速方法来实现彩色图像的图像分割。该方法有助于精炼前景区域,并实现了可靠的彩色图像分割的目标,可分为以下四个步骤。首先,执行改进的Karhunen-Loeve变换以减少冗余分量,从而选择彩色图像中最重要的部分。其次,采用多阈值Otsu方法从图像直方图中选择最佳阈值。从而,常规的大津方法已经从灰度级扩展到彩色级。第三,增加了改进的Sobel边缘检测以增强前景图像边缘细节的权重。最后,使用K均值聚类来合并过度分割的区域。实验结果证明,即使彩色图像在背景中具有复杂的结构,该方法也具有良好的性能。

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