Datasets:
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README.md
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### Dataset Summary
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The CA-FR Parallel Corpus is a Catalan-French dataset of **
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Machine Translation.
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### Supported Tasks and Leaderboards
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Two separated txt files are provided with the sentences sorted in the same order:
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### Data Splits
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All corpora were collected from [Opus](https://opus.nlpl.eu/).
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The remaining **XXX** sentences are synthetic parallel data created from a random sampling of the Spanish-French corpora available on [Opus](https://opus.nlpl.eu/) and translated into Catalan using the [PlanTL es-ca](https://huggingface.co/PlanTL-GOB-ES/mt-plantl-es-ca) model.
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### Data preparation
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All datasets are deduplicated and filtered to remove any sentence pairs with a cosine similarity of less than 0.75.
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This is done using sentence embeddings calculated using [LaBSE](https://huggingface.co/sentence-transformers/LaBSE).
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The filtered datasets are then concatenated to form a final corpus of **
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### Personal and Sensitive Information
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### Dataset Summary
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The CA-FR Parallel Corpus is a Catalan-French dataset of **18.634.844** parallel sentences. The dataset was created to support Catalan NLP tasks, e.g.,
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Machine Translation.
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### Supported Tasks and Leaderboards
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Two separated txt files are provided with the sentences sorted in the same order:
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- ca-fr_corpus.ca: contains 18.634.844 Catalan sentences.
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- ca-fr_corpus.fr: contains 18.634.844 French sentences.
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### Data Splits
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All corpora were collected from [Opus](https://opus.nlpl.eu/).
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### Data preparation
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All datasets are deduplicated and filtered to remove any sentence pairs with a cosine similarity of less than 0.75.
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This is done using sentence embeddings calculated using [LaBSE](https://huggingface.co/sentence-transformers/LaBSE).
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The filtered datasets are then concatenated to form a final corpus of **18.634.844** parallel sentences and before training the punctuation is normalized using a modified version of the join-single-file.py script from [SoftCatalà](https://github.com/Softcatala/nmt-models/blob/master/data-processing-tools/join-single-file.py).
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### Personal and Sensitive Information
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