Description Usage Arguments Details Value Examples
View source: R/modeltime_wfs_bestmodel.R
get best workflows generated from the modeltime_wfs_fit()
function output.
1 2 3 4 5 6 | modeltime_wfs_bestmodel(
.wfs_results,
.model = NULL,
.metric = "rmse",
.minimize = TRUE
)
|
.wfs_results |
a tibble generated from the |
.model |
string or number, It can be supplied as follows: “top n,” “Top n” or “tOp n”, where n is the number of best models to select; n, where n is the number of best models to select; name of the workflow or workflows to select. |
.metric |
metric to get best model from ('mae', 'mape','mase','smape','rmse','rsq') |
.minimize |
a boolean indicating whether to minimize (TRUE) or maximize (FALSE) the metric. |
the best model is selected based on a specific metric ('mae', 'mape','mase','smape','rmse','rsq'). The default is to minimize the metric. However, if the model is being selected based on rsq minimize should be FALSE.
a tibble containing the best model based on the selected metric.
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 | library(dplyr)
library(earth)
data <- sknifedatar::data_avellaneda %>% mutate(date=as.Date(date)) %>% filter(date<'2012-06-01')
recipe_date <- recipes::recipe(value ~ ., data = data) %>%
recipes::step_date(date, features = c('dow','doy','week','month','year'))
mars <- parsnip::mars(mode = 'regression') %>%
parsnip::set_engine('earth')
wfsets <- workflowsets::workflow_set(
preproc = list(
R_date = recipe_date),
models = list(M_mars = mars),
cross = TRUE)
wffits <- sknifedatar::modeltime_wfs_fit(.wfsets = wfsets,
.split_prop = 0.8,
.serie=data)
sknifedatar::modeltime_wfs_bestmodel(.wfs_results = wffits,
.metric='rsq',
.minimize = FALSE)
|
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