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FT-IR microspectroscopic imaging of prostate tissue sections

机译:前列腺组织切片的FT-IR微型光谱成像

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Different cluster image reassembling methodologies have been used to generate infrared maps from FT-IR microspectra of human prostate tissue sections. Spectra were collected in transmission mode with high spatial resolution by the use of a HgCdTe focal plane array detector imaging system. While univariate imaging techniques such as chemical mapping often give unsatisfactory classification results, unsupervised multivariate data analysis techniques such as agglomerative hierarchical clustering, fuzzy C-means, or k-means clustering confirmed standard histopathological techniques and turned out to be helpful to identify and to discriminate tissues structures. The use of any of the clustering algorithms dramatically increased the information content of the IR images, as compared to chemical mapping. Among the cluster imaging methods, agglomerative hierarchical clustering (Ward's algorithm) turned out to be the best method in terms of tissue structure differentiation.
机译:不同的群集图像重新组装方法已被用于从人前列腺组织部分的FT-IR MicroSpecta生成红外地图。通过使用HGCDTE焦平面阵列检测器成像系统,以高空间分辨率在传输模式中收集光谱。虽然单变量成像技术如化学映射通常提供不令人满意的分类结果,但无监督的多变量数据分析技术,例如附聚层次聚类,模糊C-is或K-means聚类确认了标准的组织病理学技术,并证明有助于识别和歧视组织结构。与化学映射相比,任何聚类算法的使用显着增加了IR图像的信息内容。在簇成像方法中,附聚层次聚类(病房的算法)原来是组织结构分化方面的最佳方法。

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