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accmv

Python implementation of inverse-probability-weighted (IPW), regression-adjustment (RA), and multiply-robust (MR) inference under the available complete-case missing value assumption.

from accmv import estimate_single

fit = estimate_single(x, y, method="mr", n_boot=499, random_state=1)
print(fit.estimate, fit.conf_int)

For the paper's marginal linear model:

from accmv import fit_ipw_regression

# Shared with R: response/predictors use one-based y-column indices.
fit = fit_ipw_regression(x, y, response=2, predictors=(1,))
print(fit.coefficients)

If you use this software, please cite Cheng, Chen, Smith, and Zhao, “Handling Nonmonotone Missing Data with Available Complete-Case Missing Value Assumption” (paper).

Release files for accmv 0.1.1

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Source distribution for accmv 0.1.1
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