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基于案例推理的等离子体蛋白质组特征等级加权分类。

A rank weighted classification for plasma proteomic profiles based on case-based reasoning.

机构信息

Big Data Science, Division of Economics & Statistics, College of Public Policy, Korea University, Sejong, Korea.

出版信息

BMC Med Inform Decis Mak. 2018 May 31;18(1):34. doi: 10.1186/s12911-018-0610-1.

Abstract

BACKGROUND

It is a challenge to precisely classify plasma proteomic profiles into their clinical status based solely on their patterns even though distinct patterns of plasma proteomic profiles are regarded as potential to be a biomarker because the profiles have large within-subject variances.

METHODS

The present study proposes a rank-based weighted CBR classifier (RWCBR). We hypothesized that a CBR classifier is advantageous when individual patterns are specific and do not follow the general patterns like proteomic profiles, and robust feature weights can enhance the performance of the CBR classifier. To validate RWCBR, we conducted numerical experiments, which predict the clinical status of the 70 subjects using plasma proteomic profiles by comparing the performances to previous approaches.

RESULTS

According to the numerical experiment, SVM maintained the highest minimum values of Precision and Recall, but RWCBR showed highest average value in all information indices, and it maintained the smallest standard deviation in F-1 score and G-measure.

CONCLUSIONS

RWCBR approach showed potential as a robust classifier in predicting the clinical status of the subjects for plasma proteomic profiles.

摘要

背景

即使不同的血浆蛋白质组学图谱被认为是潜在的生物标志物,因为这些图谱具有较大的个体内变异性,所以仅根据图谱模式将血浆蛋白质组学图谱精确分类为其临床状态仍然是一项挑战。

方法

本研究提出了一种基于排名的加权 CBR 分类器(RWCBR)。我们假设,当个体模式具有特异性且不遵循蛋白质组学图谱等一般模式时,CBR 分类器具有优势,并且稳健的特征权重可以增强 CBR 分类器的性能。为了验证 RWCBR,我们进行了数值实验,通过与以前的方法相比,使用血浆蛋白质组学图谱预测 70 个受试者的临床状态,比较了性能。

结果

根据数值实验,SVM 保持了最高的精度和召回率的最小值,但 RWCBR 在所有信息指标中均显示出最高的平均值,并且在 F-1 得分和 G 度量中保持了最小的标准偏差。

结论

RWCBR 方法在预测血浆蛋白质组学图谱中受试者的临床状态方面显示出作为稳健分类器的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66f3/5984454/3c2d6ae570ec/12911_2018_610_Fig1_HTML.jpg

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