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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Regression-based quantitative trait loci mapping: robust, efficient and effective
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Regression-based quantitative trait loci mapping: robust, efficient and effective

机译:基于回归的定量性状基因座定位:稳健,高效和有效

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摘要

Regression has always been an important tool for quantitative geneticists. The use of maximum likelihood (ML) has been advocated for the detection of quantitative trait loci (QTL) through linkage with molecular markers, and this approach can be very effective. However, linear regression models have also been proposed which perform similarly to ML, while retaining the many beneficial features of regression and, hence, can be more tractable and versatile than ML in some circumstances. Here, the use of linear regression to detect QTL in structured outbred populations is reviewed and its perceived shortfalls are revisited. It is argued that the approach is valuable now and will remain so in the future.
机译:回归一直是定量遗传学家的重要工具。提倡使用最大似然(ML)通过与分子标记的链接来检测数量性状基因座(QTL),这种方法可能非常有效。但是,还提出了线性回归模型,该模型的性能与ML相似,同时保留了回归的许多有益功能,因此在某些情况下比ML更易于处理和通用。在这里,审查了使用线性回归检测结构性近交人群的QTL,并重新审视了其感知的不足。有人认为这种方法现在很有价值,将来还会如此。

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