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The Gibbs and split-merge sampler for population mixture analysis from genetic data with incomplete baselines

机译:Gibbs和拆分合并采样器,用于从基线不完整的遗传数据中进行人口混合物分析

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摘要

Although population mixtures often include contributions from novel populations as well as from baseline populations previously sampled, unlabeled mixture individuals can be separated to their sources from genetic data. A Gibbs and split-merge Markovchain Monte Carlo sampler is described for successively partitioning a genetic mixture sample into plausible subsets of individuals from each of the baseline and extra-baseline populations present. The subsets are selected to satisfy the Hardy-Weinberg and linkage equilibrium conditions expected for large, panmictic populations. The number of populations present can be inferred from the distribution for counts of subsets per partition drawn by the sampler. To further summarize the sampler's output, co-assignment probabilities of mixture individuals to the same subsets are computed from the partitions and are used to construct a binary tree of their relatedness. The tree graphically displays the clusters of mixture individuals together with a quantitative measure of the evidence supporting their various separate and common sources. The methodology is applied to several simulated and real data sets to illustrate its use and demonstrate the sampler's superior performance.
机译:尽管人口混合物通常包括新种群以及先前采样的基准种群的贡献,但可以从遗传数据中将未标记的混合物个体与其来源分离。描述了一种Gibbs和分裂合并的Markovchain蒙特卡洛采样器,用于将遗传混合物样本依次划分为来自存在的每个基线和基线外种群的合理的个体子集。选择这些子集以满足大的恐慌种群预期的Hardy-Weinberg和连锁平衡条件。可以从采样器绘制的每个分区的子集计数分布中推断出存在的种群数量。为了进一步总结采样器的输出,从分区中计算出混合物个体对同一子集的共分配概率,并用于构建它们的相关性的二叉树。该树以图形方式显示了混合个体的群集,以及支持他们各种单独和共同来源的证据的定量度量。该方法已应用于几个模拟和真实数据集,以说明其用法并展示采样器的卓越性能。

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