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Multivariate comparison of reverse osmosis and nanofiltration membranes through tree cluster analysis

机译:通过树木聚类分析对反渗透和纳滤膜的多变量比较

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Experimental trials are usually needed to integrate information reported on data sheets in order to properly drive membrane choice. It results in data-sets where each membrane is characterised by several performance descriptors. Multivariate data-mining (i.e. chemometrics) effectiveness in analysing such data-sets has been demonstrated through the comparison of seven commercial membranes. Each membrane was represented as an object described by 15 features got from trials with different single-component test solutions. Tree cluster analysis based on Ward amalgamation method was employed for multivariate data mining. The algorithm progressively grouped the membranes in clusters, adopting the Euclidean distance in the 15-dimensional feature space as a measure of similarity. Thus, a graphical output consisting into a similarity tree representing the membrane taxonomy was obtained. A restricted number of membranes, selected as representatives of each identified cluster, underwent to further experiments devoted to a systematic study on boron removal at various pH values.
机译:通常需要实验试验来整合在数据表上报告的信息,以便适当地推动膜选择。它导致数据集,其中每个膜的特征在于几个性能描述符。通过比较七种商业膜来证明了分析这种数据集的多变量数据挖掘(即化学测定学)的有效性。每个膜都表示为从具有不同单组分测试溶液的试验中描述的15个特征的物体。基于病房合并方法的树木聚类分析用于多变量数据挖掘。该算法逐渐地将膜中的膜分组,采用15维特征空间中的欧几里德距离作为相似性的量度。因此,获得了代表膜分类学的相似性树的图形输出。被局限的膜的膜,被选为每个鉴定的簇的代表,介绍致力于在各种pH值下对硼去除的系统研究的进一步实验。

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