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psAve

Model-Averaged Propensity Scores Selected by Prognostic-Score Balance

Constructs a model-averaged propensity score as a convex combination of candidate propensity score models, with mixing weights selected on a simplex grid to optimize covariate or prognostic-score balance, implementing the method of Kabata, Stuart and Shintani (2024) <doi:10.1186/s12874-024-02350-y>. Prognostic scores follow Hansen (2008) <doi:10.1093/biomet/asn004>: outcome models are fit on untreated units only. The resulting score is designed to be supplied directly to the matchit() function of 'MatchIt' as a distance measure or to the weightit() function of 'WeightIt' as a propensity score, with balance assessment via 'cobalt'.

Versions across snapshots

VersionRepositoryFileSize
1.0.1 rolling linux/jammy R-4.5 psAve_1.0.1.tar.gz 342.5 KiB
1.0.1 rolling linux/noble R-4.5 psAve_1.0.1.tar.gz 342.4 KiB
1.0.1 rolling source/ R- psAve_1.0.1.tar.gz 236.5 KiB
1.0.1 latest linux/jammy R-4.5 psAve_1.0.1.tar.gz 342.5 KiB
1.0.1 latest linux/noble R-4.5 psAve_1.0.1.tar.gz 342.4 KiB
1.0.1 latest source/ R- psAve_1.0.1.tar.gz 236.5 KiB
1.0.1 2026-04-23 source/ R- psAve_1.0.1.tar.gz 0 B

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