Tutorial in biostatistics: data‐driven subgroup identification and analysis in clinical trials

生物统计学 鉴定(生物学) 计算机科学 子群分析 临床试验 医学 数据挖掘 医学物理学 数据科学 荟萃分析 流行病学 内科学 植物 生物
作者
Ilya Lipkovich,Alex Dmitrienko,Benjamin James Ralph
出处
期刊:Statistics in Medicine [Wiley]
卷期号:36 (1): 136-196 被引量:295
标识
DOI:10.1002/sim.7064
摘要

It is well known that both the direction and magnitude of the treatment effect in clinical trials are often affected by baseline patient characteristics (generally referred to as biomarkers). Characterization of treatment effect heterogeneity plays a central role in the field of personalized medicine and facilitates the development of tailored therapies. This tutorial focuses on a general class of problems arising in data-driven subgroup analysis, namely, identification of biomarkers with strong predictive properties and patient subgroups with desirable characteristics such as improved benefit and/or safety. Limitations of ad-hoc approaches to biomarker exploration and subgroup identification in clinical trials are discussed, and the ad-hoc approaches are contrasted with principled approaches to exploratory subgroup analysis based on recent advances in machine learning and data mining. A general framework for evaluating predictive biomarkers and identification of associated subgroups is introduced. The tutorial provides a review of a broad class of statistical methods used in subgroup discovery, including global outcome modeling methods, global treatment effect modeling methods, optimal treatment regimes, and local modeling methods. Commonly used subgroup identification methods are illustrated using two case studies based on clinical trials with binary and survival endpoints. Copyright © 2016 John Wiley & Sons, Ltd.
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