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首页> 外文期刊>Mathematical Biosciences: An International Journal >New algorithms for Luria-Delbruck fluctuation analysis
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New algorithms for Luria-Delbruck fluctuation analysis

机译:Luria-Delbruck波动分析的新算法

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摘要

Fluctuation analysis is the most widely used approach in estimating microbial mutation rates. Development of methods for point and interval estimation of mutation rates has long been hampered by lack of closed form expressions for the probability mass function of the number of mutants in a parallel culture. This paper uses sequence convolution to derive exact algorithms for computing the score function and observed Fisher information, leading to efficient computation of maximum likelihood estimates and profile likelihood based confidence intervals for the expected number of mutations occurring in a test tube. These algorithms and their implementation in SALVADOR 2.0 facilitate routine use of modern statistical techniques in fluctuation analysis by biologists engaged in mutation research. (c) 2005 Elsevier Inc. All rights reserved.
机译:波动分析是估计微生物突变率最广泛使用的方法。长期以来,由于缺乏平行培养中突变体数量的概率质量函数的封闭形式表达式,阻碍了突变率的点和区间估计方法的发展。本文使用序列卷积来得出用于计算得分函数和观察到的Fisher信息的精确算法,从而针对在试管中发生的预期突变数,针对最大似然估计和基于似然似然的置信区间进行有效计算。这些算法及其在SALVADOR 2.0中的实现,有助于从事突变研究的生物学家在波动分析中常规使用现代统计技术。 (c)2005 Elsevier Inc.保留所有权利。

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