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Sparse-low rank matrix decomposition framework for identifying potential biomarkers for inflammatory bowel disease

机译:稀疏低秩矩阵分解框架,用于鉴定炎症性肠病的潜在生物标记

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Inflammatory bowel disease (IBD) is a class of uncured chronic diseases which causes severe discomfort and in some cases could lead to life-threatening complications. Recent studies suggest a relationship between IBD and the gut microbiota. These findings reveal potential for identifying bacterial biomarkers for IBD to enable the detection and further investigation into unknown aspects of the disease. This work presents a novel method for identifying microbial biomarkers using robust principal component analysis (RPCA). Our method uses matrix decomposition to separate bacteria exhibiting a difference in abundance between healthy and diseased samples from the bacteria that have not undergone substantial change in abundance. Our method then ranks and identifies the top bacteria to be used as biomarkers. We contrast the proposed method with three well used state-of-the-art bacterial biomarker detection approaches over two datasets in relation to IBD. Our method outperforms the competing methods on the different evaluation cases.
机译:炎症性肠病(IBD)是一类未治愈的慢性疾病,会引起严重的不适,在某些情况下可能会导致危及生命的并发症。最近的研究表明IBD和肠道菌群之间的关系。这些发现揭示了鉴定IBD细菌生物标志物的潜力,从而能够检测和进一步研究疾病的未知方面。这项工作提出了一种使用稳健的主成分分析(RPCA)识别微生物生物标志物的新颖方法。我们的方法使用基质分解来分离健康样本和患病样本中丰度差异的细菌与未发生丰度实质性变化的细菌。然后,我们的方法对排名最高的细菌进行排名和鉴定,以用作生物标记。我们将所提出的方法与关于IBD的两个数据集的三种最常用的最新细菌生物标志物检测方法进行了对比。在不同的评估案例中,我们的方法优于竞争方法。

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