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Maximum-Likelihood Estimation of Allelic Dropout and False Allele Error Rates From Microsatellite Genotypes in the Absence of Reference Data

机译:在没有参考数据的情况下微卫星基因型的等位基因缺失和错误等位基因错误率的最大似然估计

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摘要

The importance of quantifying and accounting for stochastic genotyping errors when analyzing microsatellite data is increasingly being recognized. This awareness is motivating the development of data analysis methods that not only take errors into consideration but also recognize the difference between two distinct classes of error, allelic dropout and false alleles. Currently methods to estimate rates of allelic dropout and false alleles depend upon the availability of error-free reference genotypes or reliable pedigree data, which are often not available. We have developed a maximum-likelihood-based method for estimating these error rates from a single replication of a sample of genotypes. Simulations show it to be both accurate and robust to modest violations of its underlying assumptions. We have applied the method to estimating error rates in two microsatellite data sets. It is implemented in a computer program, Pedant, which estimates allelic dropout and false allele error rates with 95% confidence regions from microsatellite genotype data and performs power analysis. Pedant is freely available at .
机译:在分析微卫星数据时,量化和考虑随机基因分型错误的重要性日益得到认可。这种意识正在激发数据分析方法的发展,这些方法不仅要考虑错误,还要认识到错误的两个不同类别(等位基因缺失和假等位基因)之间的差异。目前,估计等位基因缺失和假等位基因发生率的方法取决于无错参考基因型或可靠谱系数据的可用性,而后者通常是不可用的。我们已经开发了一种基于最大似然法的方法,用于从基因型样本的一次复制中估算这些错误率。仿真表明,对于适度违反其基本假设的情况,它既准确又健壮。我们已将该方法应用于估计两个微卫星数据集中的错误率。它在计算机程序Pedant中实现,该程序可从微卫星基因型数据估计具有95%置信区的等位基因缺失和错误等位基因错误率,并执行功效分析。可以在上免费获取Pedant。

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