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Random Forest Classification of Etiologies for an Orphan Disease

机译:孤儿病因的随机森林病因分类

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摘要

Classification of objects into pre-defined groups based on known information is a fundamental problem in the field of statistics. Though approaches for solving this problem exist, finding an accurate classification method can be challenging in an orphan disease setting, where data are minimal and often not normally distributed. The purpose of this paper is to illustrate the application of the random forest (RF) classification procedure in a real clinical setting and discuss typical questions that arise in the general classification framework as well as offer interpretations of RF results. This paper includes methods for assessing predictive performance, importance of predictor variables, and observation-specific information.
机译:基于已知信息将对象分类为预定义的组是统计领域中的基本问题。尽管存在解决此问题的方法,但是在数据极少且通常不呈正态分布的孤儿疾病环境中,寻找准确的分类方法可能会面临挑战。本文的目的是说明随机森林(RF)分类程序在实际临床环境中的应用,并讨论一般分类框架中出现的典型问题,并提供RF结果的解释。本文包括评估预测性能的方法,预测变量的重要性以及特定于观察的信息。

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