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Efficient clustering approach for adaptive unsupervised colour image segmentation

机译:适应性无监督彩色图像分割的高效聚类方法

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This study proposes a clustering-based colour image segmentation approach consisting of a novel initialisation technique. Colour image segmentation transforms image pixels into regions and a prerequisite for image analysis and computer vision applications. Therefore, colour image segmentation is considered one of the most important processes in image understanding and pattern recognition. This study presents an efficient and adaptive unsupervised approach based on bottom-up red-green-blue (RGB) colour histogram search approach to achieve colour image segmentation. Firstly, the RGB histogram is processed through a double-scan procedure to determine significant modes in each histogram. In the next step, each mode is processed through a bottom-up histogram search approach, completing RGB triplet. The RGB triplets are utilised as the cluster centroids, clustering the pixels into regions and producing the final segmented image. The authors proposed method was compared with several other unsupervised image segmentation algorithms with an extensive experiment performed on various image segmentation evaluation benchmarks. Experimental results show that the proposed algorithm outperforms state-of-the-art algorithms both in terms of features integrity and execution speed.
机译:本研究提出了一种基于聚类的彩色图像分割方法,包括一种新颖的初始化技术。彩色图像分割将图像像素变换为区域和图像分析和计算机视觉应用的先决条件。因此,彩色图像分割被认为是图像理解和模式识别中最重要的过程之一。本研究提出了一种基于自下而上的红绿蓝(RGB)颜色直方图搜索方法的有效和自适应无监督的方法,以实现彩色图像分割。首先,通过双扫描过程处理RGB直方图,以确定每个直方图中的重要模式。在下一步中,通过自下而上的直方图搜索方法处理每个模式,完成RGB三重态。 RGB三元组用作集群质心,将像素聚集到区域中并产生最终分段图像。将作者提出的方法与几种其他无监督的图像分割算法进行了比较,具有对各种图像分割评估基准进行的广泛实验。实验结果表明,该算法在特征完整性和执行速度方面占据了最先进的算法。

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