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Genomic Similarity and Kernel Methods I: Advancements by Building on Mathematical and Statistical Foundations.

机译:基因组相似性和内核方法I:在数学和统计学基础上的进步。

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Measures of genomic similarity are the basis of many statistical analytic methods. We review the mathematical and statistical basis of similarity methods, particularly based on kernel methods. A kernel function converts information for a pair of subjects to a quantitative value representing either similarity (larger values meaning more similar) or distance (smaller values meaning more similar), with the requirement that it must create a positive semidefinite matrix when applied to all pairs of subjects. This review emphasizes the wide range of statistical methods and software that can be used when similarity is based on kernel methods, such as nonparametric regression, linear mixed models and generalized linear mixed models, hierarchical models, score statistics, and support vector machines. The mathematical rigor for these methods is summarized, as is the mathematical framework for making kernels. This review provides a framework to move from intuitive and heuristic approaches to define genomic similarities to more rigorous methods that can take advantage of powerful statistical modeling and existing software. A companion paper reviews novel approaches to creating kernels that might be useful for genomic analyses, providing insights with examples [1].
机译:基因组相似性的度量是许多统计分析方法的基础。我们回顾了相似性方法的数学和统计基础,特别是基于核方法。核函数将一对对象的信息转换为表示相似性(较大的值表示更多相似性)或距离(较小的值表示更多相似性)的定量值,要求将其应用于所有对时都必须创建一个正半定矩阵的主题。这篇综述着重介绍了当相似性基于核方法时可以使用的广泛统计方法和软件,例如非参数回归,线性混合模型和广义线性混合模型,层次模型,得分统计和支持向量机。总结了这些方法的数学严谨性以及用于制作内核的数学框架。这篇综述提供了一个框架,可以从直观和启发式的方法定义基因组相似性转变为可以利用强大的统计建模和现有软件的更严格的方法。伴随论文回顾了创建内核的新颖方法,这些方法可能对基因组分析有用,并提供了实例的见解[1]。

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