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RATIONALE AND APPLICATIONS OF SURVIVAL TREE AND SURVIVAL ENSEMBLE METHODS

机译:生存树和生存包容性方法的合理性和应用

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摘要

Classification and Regression Trees (CART), and their successors—bagging and random forests, are statistical learning tools that are receiving increasing attention. However, due to characteristics of censored data collection, standard CART algorithms are not immediately transferable to the context of survival analysis. Questions about the occurrence and timing of events arise throughout psychological and behavioral sciences, especially in longitudinal studies. The prediction power and other key features of tree-based methods are promising in studies where an event occurrence is the outcome of interest. This article reviews existing tree algorithms designed specifically for censored responses as well as recently developed survival ensemble methods, and introduces available computer software. Through simulations and a practical example, merits and limitations of these methods are discussed. Suggestions are provided for practical use.
机译:分类和回归树(CART)及其后继者-套袋和随机森林是统计学习工具,受到越来越多的关注。但是,由于审查数据收集的特点,标准的CART算法不能立即转移到生存分析的环境中。有关事件发生和时间安排的问题贯穿整个心理学和行为科学,尤其是在纵向研究中。基于树的方法的预测能力和其他关键特征在事件发生是令人感兴趣的结果的研究中很有希望。本文介绍了专门为审查响应设计的现有树算法以及最近开发的生存集成方法,并介绍了可用的计算机软件。通过仿真和实例,讨论了这些方法的优缺点。提供了一些实用建议。

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