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SBdecomp

Estimation of the Proportion of SB Explained by Confounders

Uses parametric and nonparametric methods to quantify the proportion of the estimated selection bias (SB) explained by each observed confounder when estimating propensity score weighted treatment effects. Parast, L and Griffin, BA (2020). "Quantifying the Bias due to Observed Individual Confounders in Causal Treatment Effect Estimates". Statistics in Medicine, 39(18): 2447- 2476 <doi: 10.1002/sim.8549>.

Versions across snapshots

VersionRepositoryFileSize
1.2 rolling linux/jammy R-4.5 SBdecomp_1.2.tar.gz 68.3 KiB
1.2 rolling linux/noble R-4.5 SBdecomp_1.2.tar.gz 68.2 KiB
1.2 rolling source/ R- SBdecomp_1.2.tar.gz 33.4 KiB
1.2 latest linux/jammy R-4.5 SBdecomp_1.2.tar.gz 68.3 KiB
1.2 latest linux/noble R-4.5 SBdecomp_1.2.tar.gz 68.2 KiB
1.2 latest source/ R- SBdecomp_1.2.tar.gz 33.4 KiB
1.2 2026-04-26 source/ R- SBdecomp_1.2.tar.gz 33.4 KiB
1.2 2026-04-23 source/ R- SBdecomp_1.2.tar.gz 33.4 KiB
1.2 2026-04-09 windows/windows R-4.5 SBdecomp_1.2.zip 71.2 KiB
1.2 2025-04-20 source/ R- SBdecomp_1.2.tar.gz 33.4 KiB

Dependencies (latest)

Imports