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"""Transforms for PyTorch datasets."""
from pathlib import Path
from typing import Optional, Union, Sequence
from torch import Tensor
from text_recognizer.data.mappings import WordPieceMapping
class WordPiece:
"""Converts EMNIST indices to Word Piece indices."""
def __init__(
self,
num_features: int = 1000,
tokens: str = "iamdb_1kwp_tokens_1000.txt",
lexicon: str = "iamdb_1kwp_lex_1000.txt",
data_dir: Optional[Union[str, Path]] = None,
use_words: bool = False,
prepend_wordsep: bool = False,
special_tokens: Sequence[str] = ("<s>", "<e>", "<p>"),
extra_symbols: Optional[Sequence[str]] = ("\n",),
max_len: int = 192,
) -> None:
self.mapping = WordPieceMapping(
num_features,
tokens,
lexicon,
data_dir,
use_words,
prepend_wordsep,
special_tokens,
extra_symbols,
)
self.max_len = max_len
def __call__(self, x: Tensor) -> Tensor:
return self.mapping.emnist_to_wordpiece_indices(x)[: self.max_len]
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