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Machine learning applications in genetics and genomics

机译:机器学习在遗传学和基因组学中的应用

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The field of machine learning, which aims to develop computer algorithms that improve with experience, holds promise to enable computers to assist humans in the analysis of large, complex data sets. Here, we provide an overview of machine learning applications for the analysis of genome sequencing data sets, including the annotation of sequence elements and epigenetic, proteomic or metabolomic data. We present considerations and recurrent challenges in the application of supervised, semi-supervised and unsupervised machine learning methods, as well as of generative and discriminative modelling approaches. We provide general guidelines to assist in the selection of these machine learning methods and their practical application for the analysis of genetic and genomic data sets.
机译:机器学习领域旨在开发能够随着经验而改进的计算机算法,它有望使计算机能够帮助人们分析大型,复杂的数据集。在这里,我们概述了用于分析基因组测序数据集的机器学习应用程序,包括注释序列元素和表观遗传学,蛋白质组学或代谢组学数据。我们提出了在有监督,半监督和无监督的机器学习方法以及生成和判别建模方法的应用中的考虑因素和经常遇到的挑战。我们提供一般准则,以协助选择这些机器学习方法及其在分析遗传和基因组数据集方面的实际应用。

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