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rsimsum
plays nice with the tidyverse.
library(rsimsum)
library(dplyr)
#>
#> Attaching package: 'dplyr'
#> The following objects are masked from 'package:stats':
#>
#> filter, lag
#> The following objects are masked from 'package:base':
#>
#> intersect, setdiff, setequal, union
library(ggplot2)
library(knitr)
For instance, it is possible to chain functions using the piping
operator %>%
to obtain tables and plots with a single
call:
data("MIsim", package = "rsimsum")
MIsim %>%
simsum(estvarname = "b", se = "se", methodvar = "method", true = 0.5) %>%
summary() %>%
tidy() %>%
kable()
#> 'ref' method was not specified, CC set as the reference
stat | est | mcse | method | lower | upper |
---|---|---|---|---|---|
nsim | 1000.0000000 | NA | CC | NA | NA |
thetamean | 0.5167662 | NA | CC | NA | NA |
thetamedian | 0.5069935 | NA | CC | NA | NA |
se2mean | 0.0216373 | NA | CC | NA | NA |
se2median | 0.0211425 | NA | CC | NA | NA |
bias | 0.0167662 | 0.0047787 | CC | 0.0074001 | 0.0261322 |
rbias | 0.0335323 | 0.0095574 | CC | 0.0148003 | 0.0522644 |
empse | 0.1511150 | 0.0033807 | CC | 0.1444889 | 0.1577411 |
mse | 0.0230940 | 0.0011338 | CC | 0.0208717 | 0.0253163 |
relprec | 0.0000000 | 0.0000000 | CC | 0.0000000 | 0.0000000 |
modelse | 0.1470963 | 0.0005274 | CC | 0.1460626 | 0.1481300 |
relerror | -2.6593842 | 2.2054817 | CC | -6.9820490 | 1.6632806 |
cover | 0.9430000 | 0.0073315 | CC | 0.9286305 | 0.9573695 |
becover | 0.9400000 | 0.0075100 | CC | 0.9252807 | 0.9547193 |
power | 0.9460000 | 0.0071473 | CC | 0.9319915 | 0.9600085 |
nsim | 1000.0000000 | NA | MI_LOGT | NA | NA |
thetamean | 0.5009231 | NA | MI_LOGT | NA | NA |
thetamedian | 0.4969223 | NA | MI_LOGT | NA | NA |
se2mean | 0.0182091 | NA | MI_LOGT | NA | NA |
se2median | 0.0172157 | NA | MI_LOGT | NA | NA |
bias | 0.0009231 | 0.0041744 | MI_LOGT | -0.0072586 | 0.0091048 |
rbias | 0.0018462 | 0.0083488 | MI_LOGT | -0.0145172 | 0.0182096 |
empse | 0.1320064 | 0.0029532 | MI_LOGT | 0.1262182 | 0.1377947 |
mse | 0.0174091 | 0.0008813 | MI_LOGT | 0.0156818 | 0.0191364 |
relprec | 31.0463410 | 3.9374726 | MI_LOGT | 23.3290364 | 38.7636456 |
modelse | 0.1349413 | 0.0006046 | MI_LOGT | 0.1337563 | 0.1361263 |
relerror | 2.2232593 | 2.3323382 | MI_LOGT | -2.3480396 | 6.7945582 |
cover | 0.9490000 | 0.0069569 | MI_LOGT | 0.9353647 | 0.9626353 |
becover | 0.9490000 | 0.0069569 | MI_LOGT | 0.9353647 | 0.9626353 |
power | 0.9690000 | 0.0054808 | MI_LOGT | 0.9582579 | 0.9797421 |
nsim | 1000.0000000 | NA | MI_T | NA | NA |
thetamean | 0.4988092 | NA | MI_T | NA | NA |
thetamedian | 0.4939111 | NA | MI_T | NA | NA |
se2mean | 0.0179117 | NA | MI_T | NA | NA |
se2median | 0.0169319 | NA | MI_T | NA | NA |
bias | -0.0011908 | 0.0042510 | MI_T | -0.0095226 | 0.0071409 |
rbias | -0.0023817 | 0.0085020 | MI_T | -0.0190452 | 0.0142819 |
empse | 0.1344277 | 0.0030074 | MI_T | 0.1285333 | 0.1403221 |
mse | 0.0180542 | 0.0009112 | MI_T | 0.0162682 | 0.0198401 |
relprec | 26.3681613 | 3.8423791 | MI_T | 18.8372366 | 33.8990859 |
modelse | 0.1338346 | 0.0005856 | MI_T | 0.1326867 | 0.1349824 |
relerror | -0.4412233 | 2.2695216 | MI_T | -4.8894038 | 4.0069573 |
cover | 0.9430000 | 0.0073315 | MI_T | 0.9286305 | 0.9573695 |
becover | 0.9430000 | 0.0073315 | MI_T | 0.9286305 | 0.9573695 |
power | 0.9630000 | 0.0059692 | MI_T | 0.9513006 | 0.9746994 |
MIsim %>%
simsum(estvarname = "b", se = "se", methodvar = "method", true = 0.5) %>%
summary() %>%
tidy(stats = "bias") %>%
ggplot(aes(x = method, y = est, ymin = lower, ymax = upper)) +
geom_hline(yintercept = 0, color = "red", lty = "dashed") +
geom_point() +
geom_errorbar(width = 1 / 3) +
theme_bw() +
labs(x = "Method", y = "Bias")
#> 'ref' method was not specified, CC set as the reference
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.