spaCy/spacy/lang/pt/norm_exceptions.py

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# coding: utf8
from __future__ import unicode_literals
# These exceptions are used to add NORM values based on a token's ORTH value.
# Individual languages can also add their own exceptions and overwrite them -
# for example, British vs. American spelling in English.
# Norms are only set if no alternative is provided in the tokenizer exceptions.
# Note that this does not change any other token attributes. Its main purpose
# is to normalise the word representations so that equivalent tokens receive
# similar representations. For example: $ and € are very different, but they're
# both currency symbols. By normalising currency symbols to $, all symbols are
# seen as similar, no matter how common they are in the training data.
NORM_EXCEPTIONS = {
"R$": "$", # Real
"r$": "$", # Real
"Cz$": "$", # Cruzado
"cz$": "$", # Cruzado
"NCz$": "$", # Cruzado Novo
"ncz$": "$" # Cruzado Novo
}