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A Multichannel Watershed-Based Segmentation Method for Multispectral Chromosome Classification

机译:基于多流域分水岭的多光谱染色体分类方法

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Multiplex fluorescent in situ hybridization M-FISH is a recently developed chromosome imaging technique where each chromosome class appears to have a distinct color. This technique not only facilitates the detection of subtle chromosomal aberrations but also makes the analysis of chromosome images easier; both for human inspection and computerized analysis. In this paper, a novel method for segmentation and classification of M-FISH chromosome images is presented. The segmentation is based on the multichannel watershed transform in order to define regions of similar spatial and spectral characteristics. Then, a Bayes classifier, task-specific on region classification, is applied. Our method consists of four basic steps: 1 computation of the gradient magnitude of the image, 2 application of the watershed transform to decompose the image into a set of homogenous regions, 3 classification of each region, and 4 merging of similar adjacent regions. The method is evaluated using a publicly available chromosome image database and the obtained overall accuracy is 82.4%. By introducing the classification of each watershed region, the proposed method achieves substantially better results compared to other methods at a lower computational cost. The combination of the multichannel segmentation and the region-based classification is found to improve the overall classification accuracy compared to pixel-by-pixel approaches.
机译:多重荧光原位杂交M-FISH是最近开发的染色体成像技术,其中每个染色体类别似乎都有不同的颜色。该技术不仅有助于检测微小的染色体畸变,而且使染色体图像的分析更加容易。用于人工检查和计算机分析。本文提出了一种新的M-FISH染色体图像分割与分类方法。分割基于多通道分水岭变换,以定义具有相似空间和光谱特征的区域。然后,应用特定于区域分类的任务的贝叶斯分类器。我们的方法包括四个基本步骤:1计算图像的梯度幅度; 2应用分水岭变换将图像分解为一组均匀区域; 3每个区域进行分类; 4合并相似的相邻区域。使用公开的染色体图像数据库对该方法进行了评估,获得的总体准确性为82.4%。通过引入每个流域区域的分类,与其他方法相比,所提出的方法以较低的计算成本获得了更好的结果。与逐像素方法相比,发现多通道分割和基于区域的分类的组合可以提高整体分类的准确性。

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