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首页> 外文期刊>IEE Proceedings. Part K, Vision, image, and signal processing >Region-growing approach to colour segmentation using 3-D clustering and relaxation labelling
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Region-growing approach to colour segmentation using 3-D clustering and relaxation labelling

机译:使用3-D聚类和松弛标记的区域增长方法进行颜色分割

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摘要

The paper presents a new segmentation algorithm for colour images based on a series of region growing and merging processes. This algorithm starts with the region growing process, which groups pixels into homogeneous regions by combining the 3-D clustering and relaxation labelling techniques. Each resulting small region is then merged to the region which is the nearest to it in terms of colour similarity and spatial proximity. One problem with region growing is its inherent dependency on the selection of seed region, which can be avoided by using the relaxation labelling technique. Experimental results are presented to demonstrate the performance of the new method in terms of better segmentation and less sensitivity to noise, and in terms of computational efficiency. The segmentation results using the fuzzy c-means technique, the competitive learning neural network and a region growing and merging algorithm are also presented for comparison purposes.
机译:本文提出了一种基于一系列区域增长和融合过程的彩色图像分割算法。该算法从区域增长过程开始,该过程通过结合3-D聚类和松弛标记技术将像素分为均匀区域。然后将每个所得的小区域合并到就颜色相似性和空间接近性而言最接近该区域的区域。区域生长的一个问题是其对种子区域选择的内在依赖性,这可以通过使用松弛标记技术来避免。实验结果表明,该方法在更好的分割效果,对噪声的敏感度以及计算效率方面表现出了新的性能。还提出了使用模糊c均值技术,竞争学习神经网络和区域增长与合并算法的分割结果,以进行比较。

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