Function reference
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initial_split()
initial_time_split()
training()
testing()
group_initial_split()
- Simple Training/Test Set Splitting
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initial_validation_split()
initial_validation_time_split()
group_initial_validation_split()
training(<initial_validation_split>)
testing(<initial_validation_split>)
validation()
- Create an Initial Train/Validation/Test Split
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validation_set()
analysis(<val_split>)
assessment(<val_split>)
training(<val_split>)
validation(<val_split>)
testing(<val_split>)
- Create a Validation Split for Tuning
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bootstraps()
- Bootstrap Sampling
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group_bootstraps()
- Group Bootstraps
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vfold_cv()
- V-Fold Cross-Validation
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group_vfold_cv()
- Group V-Fold Cross-Validation
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mc_cv()
- Monte Carlo Cross-Validation
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group_mc_cv()
- Group Monte Carlo Cross-Validation
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clustering_cv()
- Cluster Cross-Validation
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nested_cv()
- Nested or Double Resampling
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loo_cv()
- Leave-One-Out Cross-Validation
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rolling_origin()
- Rolling Origin Forecast Resampling
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sliding_window()
sliding_index()
sliding_period()
- Time-based Resampling
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apparent()
- Sampling for the Apparent Error Rate
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permutations()
- Permutation sampling
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manual_rset()
- Manual resampling
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int_pctl()
int_t()
int_bca()
- Bootstrap confidence intervals
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reg_intervals()
- A convenience function for confidence intervals with linear-ish parametric models
-
.get_fingerprint()
- Obtain a identifier for the resamples
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as.data.frame(<rsplit>)
analysis()
assessment()
- Convert an
rsplit
object to a data frame
-
add_resample_id()
- Augment a data set with resampling identifiers
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complement()
- Determine the Assessment Samples
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form_pred()
- Extract Predictor Names from Formula or Terms
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get_rsplit()
- Retrieve individual rsplits objects from an rset
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labels(<rset>)
labels(<vfold_cv>)
- Find Labels from rset Object
-
labels(<rsplit>)
- Find Labels from rsplit Object
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make_splits()
- Constructors for split objects
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make_strata()
- Create or Modify Stratification Variables
-
populate()
- Add Assessment Indices
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reshuffle_rset()
- "Reshuffle" an rset to re-generate a new rset with the same parameters
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reverse_splits()
- Reverse the analysis and assessment sets
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rsample2caret()
caret2rsample()
- Convert Resampling Objects to Other Formats
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rset_reconstruct()
- Extending rsample with new rset subclasses
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tidy(<rsplit>)
tidy(<rset>)
tidy(<vfold_cv>)
tidy(<nested_cv>)
- Tidy Resampling Object
-
rsample-dplyr
- Compatibility with dplyr