An optimization approach for making causal inferences

被引:15
作者
Cho, Wendy K. Tam [1 ,2 ,3 ]
Sauppe, Jason J. [4 ]
Nikolaev, Alexander G. [5 ]
Jacobson, Sheldon H. [4 ]
Sewell, Edward C. [6 ]
机构
[1] Univ Illinois, Dept Polit Sci, Urbana, IL 61801 USA
[2] Univ Illinois, Dept Stat, Urbana, IL USA
[3] Univ Illinois, Natl Ctr Supercomput Applicat, Urbana, IL USA
[4] Univ Illinois, Dept Comp Sci, Urbana, IL USA
[5] SUNY Buffalo, Dept Ind & Syst Engn, Buffalo, NY 14260 USA
[6] So Illinois Univ, Dept Math & Stat, Edwardsville, IL 62026 USA
基金
美国国家科学基金会;
关键词
causal inference; matching; optimization; subset selection; MULTIVARIATE MATCHING METHODS; PROPENSITY-SCORE; TRAINING-PROGRAMS;
D O I
10.1111/stan.12004
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
To make causal inferences from observational data, researchers have often turned to matching methods. These methods are variably successful. We address issues with matching methods by redefining the matching problem as a subset selection problem. Given a set of covariates, we seek to find two subsets, a control group and a treatment group, so that we obtain optimal balance, or, in other words, the minimum discrepancy between the distributions of these covariates in the control and treatment groups. Our formulation captures the key elements of the Rubin causal model and translates nicely into a discrete optimization framework.
引用
收藏
页码:211 / 226
页数:16
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