首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >A fuzzy distance metric for measuring the dissimilarity of planar chromatographic profiles with application to denaturing gradient gel electrophoresis data from human skin microbes: demonstration of an individual and gender-based fingerprint
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A fuzzy distance metric for measuring the dissimilarity of planar chromatographic profiles with application to denaturing gradient gel electrophoresis data from human skin microbes: demonstration of an individual and gender-based fingerprint

机译:一种用于测量平面色谱图谱相异性的模糊距离度量,并应用于变性人皮肤微生物的梯度凝胶电泳数据:展示基于个体和性别的指纹

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摘要

A newly devised fuzzy metric for measuring the dissimilarity between two planar chromatographic profiles is proposed in this paper. It does not require an accurately assigned sample-feature matrix and can cope with slight imprecision of the positional information. This makes it very suitable for 1-D techniques which do not have a second spectroscopic dimension to aid variable assignment. The usefulness of this metric has been demonstrated on a large data set consisting of nearly 400 samples from Denaturing Gradient Gel Electrophoresis (DGGE) analysis of microbes on human skin. The pattern revealed by this dissimilarity metric was compared with the one represented by a sample-feature matrix and highly consistent results were obtained. Several pattern recognition techniques have been applied on the dissimilarity matrix based on this dissimilarity metric. According to rank analysis, within-individual variation is significantly less than between-individual variation, suggesting a unique individual microbial fingerprint. Principal Coordinates Analysis (PCO) suggests that there is a considerable separation between genders. These results suggest that there are specific microbial colonies characteristic of individuals.
机译:本文提出了一种新设计的模糊度量,用于测量两个平面色谱图轮廓之间的差异。它不需要精确分配的样本特征矩阵,并且可以处理位置信息的不精确性。这使得它非常适合于一维技术,该技术没有第二个光谱维度来帮助变量分配。该度量标准的有用性已在一个大型数据集上得到证实,该数据集由人体皮肤上微生物的变性梯度凝胶电泳(DGGE)分析中的近400个样本组成。将这种相异性度量揭示的模式与样本特征矩阵所表示的模式进行了比较,并获得了高度一致的结果。基于这种相异性度量,已将几种模式识别技术应用于相异性矩阵。根据等级分析,个体内部差异显着小于个体间差异,表明独特的个体微生物指纹。主坐标分析(PCO)表明,性别之间存在相当大的距离。这些结果表明,个体具有特定的微生物菌落特征。

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