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Risk estimation and risk prediction using machine-learning methods

机译:使用机器学习方法进行风险估计和风险预测

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After an association between genetic variants and a phenotype has been established, further study goals comprise the classification of patients according to disease risk or the estimation of disease probability. To accomplish this, different statistical methods are required, and specifically machine-learning approaches may offer advantages over classical techniques. In this paper, we describe methods for the construction and evaluation of classification and probability estimation rules. We review the use of machine-learning approaches in this context and explain some of the machine-learning algorithms in detail. Finally, we illustrate the methodology through application to a genome-wide association analysis on rheumatoid arthritis.
机译:在遗传变异与表型之间建立联系后,进一步的研究目标包括根据疾病风险或疾病概率估计对患者进行分类。为此,需要不同的统计方法,特别是机器学习方法可能比传统技术更具优势。在本文中,我们描述了分类和概率估计规则的构建和评估方法。我们在这种情况下回顾了机器学习方法的使用,并详细解释了一些机器学习算法。最后,我们通过应用于类风湿关节炎的全基因组关联分析来说明该方法。

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