View source: R/tokenize_wordpiece.R
step_tokenize_wordpiece | R Documentation |
step_tokenize_wordpiece()
creates a specification of a recipe step that
will convert a character predictor into a token
variable
using WordPiece tokenization.
step_tokenize_wordpiece(
recipe,
...,
role = NA,
trained = FALSE,
columns = NULL,
vocab = wordpiece::wordpiece_vocab(),
unk_token = "[UNK]",
max_chars = 100,
skip = FALSE,
id = rand_id("tokenize_wordpiece")
)
recipe |
A recipe object. The step will be added to the sequence of operations for this recipe. |
... |
One or more selector functions to choose which
variables are affected by the step. See |
role |
Not used by this step since no new variables are created. |
trained |
A logical to indicate if the quantities for preprocessing have been estimated. |
columns |
A character string of variable names that will
be populated (eventually) by the |
vocab |
Character of Character vector of vocabulary tokens. Defaults to
|
unk_token |
Token to represent unknown words. Defaults to |
max_chars |
Integer, Maximum length of word recognized. Defaults to 100. |
skip |
A logical. Should the step be skipped when the
recipe is baked by |
id |
A character string that is unique to this step to identify it. |
An updated version of recipe
with the new step added
to the sequence of existing steps (if any).
When you tidy()
this step, a tibble with columns terms
(the selectors or variables selected).
The underlying operation does not allow for case weights.
step_untokenize()
to untokenize.
Other Steps for Tokenization:
step_tokenize_bpe()
,
step_tokenize_sentencepiece()
,
step_tokenize()
library(recipes)
library(modeldata)
data(tate_text)
tate_rec <- recipe(~., data = tate_text) %>%
step_tokenize_wordpiece(medium)
tate_obj <- tate_rec %>%
prep()
bake(tate_obj, new_data = NULL, medium) %>%
slice(1:2)
bake(tate_obj, new_data = NULL) %>%
slice(2) %>%
pull(medium)
tidy(tate_rec, number = 1)
tidy(tate_obj, number = 1)
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