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A novel fuzzy clustering algorithm for the analysis of axillary lymph node tissue sections

机译:一种分析腋窝淋巴结组织切片的新型模糊聚类算法

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Recently Fourier Transform Infrared (FTIR) spectroscopic imaging has been used as a tool to detect the changes in cellular composition that may reflect the onset of a disease. This approach has been investigated as a mean of monitoring the change of the biochemical composition of cells and providing a diagnostic tool for various human cancers and other diseases. The discrimination between different types of tissue based upon spectroscopic data is often achieved using various multivariate clustering techniques. However, the number of clusters is a common unknown feature for the clustering methods, such as hierarchical cluster analysis, k-means and fuzzy c-means. In this study, we apply a FCM based clustering algorithm to obtain the best number of clusters as given by the minimum validity index value. This often results in an excessive number of clusters being created due to the complexity of this biochemical system. A novel method to automatically merge clusters was developed to try to address this problem. Three lymph node tissue sections were examined to evaluate our new method. These results showed that this approach can merge the clusters which have similar biochemistry. Consequently, the overall algorithm automatically identifies clusters that accurately match the main tissue types that are independently determined by the clinician.
机译:最近,傅里叶变换红外(FTIR)光谱成像已用作检测可能反映疾病发作的细胞组成变化的工具。已经研究了该方法,作为监测细胞生化成分变化并为各种人类癌症和其他疾病提供诊断工具的手段。通常使用各种多元聚类技术来实现基于光谱数据的不同类型组织之间的区分。但是,聚类的数量是聚类方法(例如层次聚类分析,k均值和模糊c均值)的常见未知功能。在这项研究中,我们应用了基于FCM的聚类算法,以通过最小有效性指标值给出最佳聚类数。由于该生化系统的复杂性,通常会导致产生过多的簇。为了解决此问题,开发了一种自动合并群集的新颖方法。检查了三个淋巴结组织切片,以评估我们的新方法。这些结果表明,该方法可以合并具有相似生物化学的簇。因此,整个算法会自动识别与临床医生独立确定的主要组织类型精确匹配的簇。

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