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A comparison of methods for estimating survival probabilities in two stage phase III randomized clinical trials.

机译:在两个阶段的III期随机临床试验中比较评估生存概率的方法。

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摘要

As two stage randomized study designs gain increased recognition and popularity for oncology studies it remains a challenge to analyze and interpret clinical outcomes due to lack of sufficient research. In this study we investigated existing methodologies and explored novel means to estimate survival probabilities using this study design. First a Naive Approach was formulated and studied under the extended notion of Intent-to-Treat (ITT) analysis pertinent to two stage design. Secondly a bootstrap variance estimate was proposed for Inverse Probability Weighted (IPW) Estimator to simplify and improve the variance estimate. Thirdly we developed a Bootstrap Approach by creatively using a "hybrid" bootstrap process to handle artificial "dropouts" due to late stage randomization. Finally we conducted power analysis for a global test statistic based on log transformation.;Simulation results reveal that the Naive Estimator is prone to bias for ITT analysis. The IPW variance estimate underestimates the true variance of the estimator by 20-50% where a bootstrap variance provides a nearly unbiased estimate. Both the survival probability estimate and variance estimates using the Bootstrap Approach are nearly unbiased with comparable Mean Square Error (MSE) to IPW Estimator.;The application to two previously published Children's Oncology Group (COG) studies demonstrates that analytical results using proposed method are consistent with clinical findings. Finally the proposed global test has sufficient power for detecting heterogeneity due to late treatment or qualitative interaction.;KEYWORDS: Two stage design; Bootstrap process; Survival analysis; Randomized clinical trial; Induction therapy; Maintenance therapy; Oncology; Phase III; COG; IPW; Missing data
机译:随着两阶段随机研究设计在肿瘤学研究中获得越来越多的认可和普及,由于缺乏足够的研究,分析和解释临床结果仍然是一个挑战。在这项研究中,我们调查了现有方法,并探索了使用该研究设计估算生存概率的新颖方法。首先,在与两阶段设计相关的意向性治疗(ITT)分析的扩展概念下,制定了天真的方法并进行了研究。其次,针对逆概率加权(IPW)估计器提出了自举方差估计,以简化和改进方差估计。第三,我们开发了一种Bootstrap方法,该方法创造性地使用“混合”引导程序来处理由于后期随机化而导致的人工“辍学”。最后,我们基于对数变换对全局检验统计量进行了功效分析。仿真结果表明,朴素的估算器在ITT分析中容易产生偏差。在自举方差提供几乎无偏的估计的情况下,IPW方差估计低估了估计器的真实方差20-50%。使用Bootstrap方法的生存概率估计值和方差估计值几乎与IPW估计器的均方误差(MSE)均无偏倚。;对两项先前发表的儿童肿瘤学组(COG)研究的应用表明,使用提出的方法得出的分析结果是一致的有临床发现。最终,提出的全局测试具有足够的能力来检测由于后期处理或定性相互作用引起的异质性。引导程序;生存分析;随机临床试验;诱导疗法;维持疗法;肿瘤学第三阶段; COG; IPW;缺失数据

著录项

  • 作者

    Wang, Ying.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Biology Biostatistics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物数学方法;
  • 关键词

  • 入库时间 2022-08-17 11:37:56

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