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A fully unsupervised color textured image segmentation algorithm using weighted mean histograms features - Springer

机译:使用加权平均直方图特征的完全无监督的彩色纹理图像分割算法-Springer

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摘要

A new integrated feature distribution-based color textured image segmentation algorithm has been proposed. Two novel histogram-based inherent color texture feature extraction methods have been presented. From the histogram features, mean color texture histogram is calculated. Instead of concatenating the feature channels, a multichannel nonparametric Bayesean clustering is employed for primary segmentation. A region homogeneity-based merging algorithm is used for final segmentation. The proposed feature extraction techniques inherently combine color texture features rather then explicitly extracting it. Use of nonparametric Bayesean clustering makes the segmentation framework fully unsupervised where no a priori knowledge about the number of color texture regions is required. The feasibility and effectiveness of the proposed method have been demonstrated by various experiments using color textured and natural images. The experimental results reveal that superior segmentation results can be obtained through the proposed unsupervised segmentation framework.
机译:提出了一种新的基于集成特征分布的彩色纹理图像分割算法。提出了两种新颖的基于直方图的固有颜色纹理特征提取方法。根据直方图特征,计算平均颜色纹理直方图。代替级联特征通道,将多通道非参数贝叶斯聚类用于主要分割。基于区域同质性的合并算法用于最终分割。提出的特征提取技术固有地组合了颜色纹理特征,而不是显式地提取它。使用非参数贝叶斯聚类可以使分割框架完全不受监督,而无需先验知识即可了解颜色纹理区域的数量。该方法的可行性和有效性已通过使用彩色纹理和自然图像的各种实验得到证明。实验结果表明,通过提出的无监督分割框架可以获得更好的分割结果。

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