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Gentle Introduction to the Statistical Foundations of False Discovery Rate in Quantitative Proteomics

机译:定量蛋白质组学中虚假发现率统计基础的温和介绍

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摘要

The vocabulary of theoretical statistics can be difficult to embrace from the viewpoint of computational proteomics research, even though the notions it conveys are essential to publication guidelines. For example, “adjusted p -values”, “ q -values”, and “false discovery rates” are essentially similar concepts, whereas “false discovery rate” and “false discovery proportion” must not be confused, even though “rate” and “proportion” are related in everyday language. In the interdisciplinary context of proteomics, such subtleties may cause misunderstandings. This article aims to provide an easy-to-understand explanation of these four notions (and a few other related ones). Their statistical foundations are dealt with from a perspective that largely relies on intuition, addressing mainly protein quantification but also, to some extent, peptide identification. In addition, a clear distinction is made between concepts that define an individual property (i.e., related to a peptide or a protein) and those that define a set property (i.e., related to a list of peptides or proteins).
机译:从计算蛋白质组学研究的观点来看,理论统计的词汇可能难以从计算蛋白质组学研究的角度掩盖,即使它传达的概念对公开指南至关重要。例如,“调整的P -Values”,“Q -Values”和“假发现率”是基本相似的概念,而“假发现率”和“假发现比例”一定不能混淆,即使“速率”和“比例”在日常语言中是相关的。在蛋白质组学的跨学科背景下,这种微妙之处可能导致误解。本文旨在提供对这四个概念的易于理解的解释(以及其他一些相关的相关人员)。他们的统计基础是从一个很大程度上依赖于直觉,主要涉及蛋白质量化的角度来处理它们的统计基础,同时肽鉴定。此外,在限定单个性质的概念(与肽或蛋白质相关)的概念之间进行明确的区别,以及限定设定特性的那些(即,与肽或蛋白质列表相关)。

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