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通过案例研究对具有检测限的纵向数据方法进行比较调查。

A comparative investigation of methods for longitudinal data with limits of detection through a case study.

作者信息

Fu P, Hughes J, Zeng G, Hanook S, Orem J, Mwanda O W, Remick S C

机构信息

Case Western Reserve University School of Medicine, Comprehensive Cancer Center, Cleveland, Ohio, USA

University of Washington, School of Public health, Seattle, Washington, USA.

出版信息

Stat Methods Med Res. 2016 Feb;25(1):153-66. doi: 10.1177/0962280212444800. Epub 2012 Apr 13.

Abstract

The statistical analysis of continuous longitudinal data may be complicated since quantitative levels of bioassay cannot always be determined. Values beyond the limits of detection (LOD) in the assays may not be observed and thus censored, rendering complexity to the analysis of such data. This article examines how both left-censoring and right censoring of HIV-1 plasma RNA measurements, collected for the study on AIDS-related Non-Hodgkin's lymphoma (AR-NHL) in East Africa, affects the quantification of viral load and explores the natural history of viral load measurements over time in AR-NHL patients receiving anticancer chemotherapy. Data analyses using Monte Carlo EM algorithm (MCEM) are compared to analyses where the LOD or LOD/2 (left censoring) value is substituted for the censored observations, and also to other methods such as multiple imputation, and maximum likelihood estimation for censored data (generalized Tobit regression). Simulations are used to explore the sensitivity of the results to changes in the model parameters. In conclusion, the antiretroviral treatment was associated with a significant decrease in viral load after controlling the effects of other covariates. A simulation study with finite sample size shows MCEM is the least biased method and the estimates are least sensitive to the censoring mechanism.

摘要

连续纵向数据的统计分析可能会很复杂,因为生物测定的定量水平并非总能确定。测定中超出检测限(LOD)的值可能无法观察到,因此被截尾,这使得此类数据的分析变得复杂。本文研究了为东非艾滋病相关非霍奇金淋巴瘤(AR-NHL)研究收集的HIV-1血浆RNA测量值的左截尾和右截尾如何影响病毒载量的量化,并探讨了接受抗癌化疗的AR-NHL患者病毒载量测量值随时间的自然史。将使用蒙特卡罗期望最大化算法(MCEM)的数据分析与用LOD或LOD/2(左截尾)值替代截尾观测值的分析进行比较,也与其他方法(如多重填补和截尾数据的最大似然估计(广义 Tobit 回归))进行比较。使用模拟来探索结果对模型参数变化的敏感性。总之,在控制其他协变量的影响后,抗逆转录病毒治疗与病毒载量的显著降低相关。有限样本量的模拟研究表明,MCEM是偏差最小的方法,其估计值对截尾机制最不敏感。

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