Methods for tbl_regression
Most regression models are handled by tbl_regression.default()
,
which uses broom::tidy()
to perform initial tidying of results. There are,
however, some model types that have modified default printing behavior.
Those methods are listed below.
## S3 method for class 'survreg' tbl_regression( x, tidy_fun = function(x, ...) broom::tidy(x, ...) %>% dplyr::filter(.data$term != "Log(scale)"), ... ) ## S3 method for class 'mira' tbl_regression(x, tidy_fun = pool_and_tidy_mice, ...) ## S3 method for class 'mipo' tbl_regression(x, ...) ## S3 method for class 'lmerMod' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'glmerMod' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'glmmTMB' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'glmmadmb' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'stanreg' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'brmsfit' tbl_regression( x, tidy_fun = function(x, ...) broom.mixed::tidy(x, ..., effects = "fixed"), ... ) ## S3 method for class 'gam' tbl_regression(x, tidy_fun = tidy_gam, ...) ## S3 method for class 'multinom' tbl_regression(x, ...)
x |
Regression model object |
tidy_fun |
Option to specify a particular tidier function if the
model. Default is to use |
... |
arguments passed to |
The default method for tbl_regression()
model summary uses broom::tidy(x)
to perform the initial tidying of the model object. There are, however,
a few models that use modifications.
"survreg"
: The scale parameter is removed, broom::tidy(x) %>% dplyr::filter(term != "Log(scale)")
"multinom"
: This multinomial outcome is complex, with one line per covariate per outcome (less the reference group)
"gam"
: Uses the internal tidier tidy_gam()
to print both parametric and smooth terms.
"lmerMod"
, "glmerMod"
, "glmmTMB"
, "glmmadmb"
, "stanreg"
, "brmsfit"
: These mixed effects
models use broom.mixed::tidy(x, effects = "fixed")
. Specify tidy_fun = broom.mixed::tidy
to print the random components.
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