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We provide top-k word-to-word translations across all available pairs
from OpenSubtitles2018.
This amounts to a total of 3,564 language pairs across 62 unique languages.
Our approach computes top-k word translations based on
the co-occurrence statistics between cross-lingual word pairs in a parallel corpus.
We additionally introduce a correction term that controls for any confounding effect
coming from other source words within the same sentence.
The resulting method is an efficient and scalable approach that allows us to
construct large bilingual dictionaries from any given parallel corpus.
For more details, see the Methodology section of our paper.
Building a Bilingual Lexicon on a Custom Parallel Corpus
The word2word package also provides interface for
building a custom bilingual lexicon using a different parallel corpus.
Here, we show an example of building one from
the Medline English-French dataset:
In both the Python interface and the command line interface,
make uses multiprocessing with 16 CPUs by default.
The number of CPU workers can be adjusted by setting
num_workers=N (Python) or --num_workers N (command line).
References
If you use word2word for research, please cite our paper:
@inproceedings{choe2020word2word,
author = {Yo Joong Choe and Kyubyong Park and Dongwoo Kim},
title = {word2word: A Collection of Bilingual Lexicons for 3,564 Language Pairs},
booktitle = {Proceedings of the 12th International Conference on Language Resources and Evaluation (LREC 2020)},
year = {2020}
}
All of our pre-computed bilingual lexicons were constructed from the publicly available
OpenSubtitles2018 dataset:
@inproceedings{lison-etal-2018-opensubtitles2018,
title = "{O}pen{S}ubtitles2018: Statistical Rescoring of Sentence Alignments in Large, Noisy Parallel Corpora",
author = {Lison, Pierre and Tiedemann, J{\"o}rg and Kouylekov, Milen},
booktitle = "Proceedings of the Eleventh International Conference on Language Resources and Evaluation ({LREC} 2018)",
month = may,
year = "2018",
address = "Miyazaki, Japan",
publisher = "European Language Resources Association (ELRA)",
url = "https://www.aclweb.org/anthology/L18-1275",
}