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用于处理响应数据存在非忽略性缺失情况的估计方程。

Estimating equations with nonignorably missing response data.

作者信息

Wang Y G

机构信息

Department of Biostatistics, Harvard School of Public Health, Boston, Massachusetts 02115, USA.

出版信息

Biometrics. 1999 Sep;55(3):984-9. doi: 10.1111/j.0006-341x.1999.00984.x.

Abstract

Troxel, Lipsitz, and Brennan (1997, Biometrics 53, 857-869) considered parameter estimation from survey data with nonignorable nonresponse and proposed weighted estimating equations to remove the biases in the complete-case analysis that ignores missing observations. This paper suggests two alternative modifications for unbiased estimation of regression parameters when a binary outcome is potentially observed at successive time points. The weighting approach of Robins, Rotnitzky, and Zhao (1995, Journal of the American Statistical Association 90, 106-121) is also modified to obtain unbiased estimating functions. The suggested estimating functions are unbiased only when the missingness probability is correctly specified, and misspecification of the missingness model will result in biases in the estimates. Simulation studies are carried out to assess the performance of different methods when the covariate is binary or normal. For the simulation models used, the relative efficiency of the two new methods to the weighting methods is about 3.0 for the slope parameter and about 2.0 for the intercept parameter when the covariate is continuous and the missingness probability is correctly specified. All methods produce substantial biases in the estimates when the missingness model is misspecified or underspecified. Analysis of data from a medical survey illustrates the use and possible differences of these estimating functions.

摘要

特罗克塞尔、利普西茨和布伦南(1997年,《生物统计学》第53卷,第857 - 869页)考虑了来自具有不可忽略的无应答的调查数据的参数估计,并提出了加权估计方程,以消除在忽略缺失观测值的完全病例分析中的偏差。本文针对在连续时间点可能观察到二元结果时回归参数的无偏估计提出了两种替代修正方法。罗宾斯、罗特尼茨基和赵(1995年,《美国统计协会杂志》第90卷,第106 - 121页)的加权方法也进行了修正,以获得无偏估计函数。所建议的估计函数仅在缺失概率被正确指定时才是无偏的,而缺失模型的错误指定将导致估计中的偏差。当协变量为二元或正态时,进行了模拟研究以评估不同方法的性能。对于所使用的模拟模型,当协变量是连续的且缺失概率被正确指定时,两种新方法相对于加权方法的斜率参数的相对效率约为3.0,截距参数的相对效率约为2.0。当缺失模型被错误指定或指定不充分时,所有方法在估计中都会产生实质性偏差。对一项医学调查数据的分析说明了这些估计函数的用途和可能存在的差异。

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