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bs_mean(),
bca_ci(), studentized_ci() for confidence
intervalswild_boot_lm() for
heteroscedastic linear models with Rademacher and Mammen weightsmoving_block_boot()
and stationary_boot() for dependent time series dataperm_test_2sample()
for two-sample inferenceperm_maxT() for controlling family-wise error rateauto_select_method() intelligently recommends resampling
approach based on data structurecompare_methods_sim() for benchmarking different resampling
methodsfuture package parallelization (user-controlled)bs_mean() — Nonparametric bootstrap confidence interval
for the mean (percentile method)bca_ci() — Bias-corrected and accelerated (BCa)
bootstrap confidence intervalstudentized_ci() — Studentized bootstrap confidence
interval for quantilesmoving_block_boot() — Moving block bootstrap for time
seriesstationary_boot() — Stationary bootstrap (Politis &
Romano, 1994)wild_boot_lm() — Wild bootstrap for linear regression
with heteroscedasticityperm_test_2sample() — Two-sample permutation testperm_maxT() — Permutation maxT for multiple hypothesis
testing with FWER controlauto_select_method() — Automatic resampling method
selectioncompare_methods_sim() — Simulation comparison of
bootstrap methodscheck_numeric_vector(),
.safe_sample()vignette("method-selection")stats, utils,
boot, future, future.applytestthat, covr,
pkgdown, knitr, rmarkdown,
rhubtests/testthat/bs_mean() and
perm_test_2sample()These binaries (installable software) and packages are in development.
They may not be fully stable and should be used with caution. We make no claims about them.
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