Multiple imputation for multivariate data with missing and below-threshold measurements: Time-series concentrations of pollutants in the Arctic

被引:93
作者
Hopke, PK [1 ]
Liu, CH
Rubin, DB
机构
[1] Clarkson Univ, Dept Chem, Potsdam, NY 13699 USA
[2] Lucent Technol, Bell Labs, Murray Hill, NJ 07974 USA
[3] Harvard Univ, Dept Stat, Cambridge, MA 02138 USA
关键词
Bayesian methods; coarsened data; data-augmentation algorithm; Gibbs sampler; incomplete data; Markov chain Monte Carlo; missing data; multivariate integrated moving average; multivariate normal; seasonal effects;
D O I
10.1111/j.0006-341X.2001.00022.x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Many chemical and environmental data sets are complicated by the existence of fully missing values or censored values known to lie below detection thresholds. For example, week-long samples of airborne particulate matter were obtained at Alert, NWT, Canada, between 1980 and 1991, where some of the concentrations of 24 particulate constituents were coarsened in the sense of being either fully missing or below detection limits. To facilitate scientific analysis, it is appealing to create complete data. by filling in missing values so that standard complete-data methods can be applied. We briefly review commonly used strategies for handling missing values and focus on the multiple-imputation approach, which generally leads to valid inferences when faced with missing data. Three statistical models are developed for multiply imputing the missing values of airborne particulate matter. We expect that these models are useful for creating multiple imputations in a variety of incomplete multivariate time series data sets.
引用
收藏
页码:22 / 33
页数:12
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