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README.md
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This model based on BERTweet-base has been finetuned on the Semeval 2018 Task 3 dataset for Irony Detection in English.
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However, we do not use the original labels, as we have provided more finegrained labels and annotated the tweets without irony-related hashtags.
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These specific models are based on
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DISCLAIMER: WORK IN PROGRESS >> WILL BE UPDATED WITH MORE INFORMATION
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This model based on BERTweet-base has been finetuned on the Semeval 2018 Task 3 dataset for Irony Detection in English.
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However, we do not use the original labels, as we have provided more finegrained labels and annotated the tweets without irony-related hashtags.
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These specific models are based on a new paper accepted at the Joint LREC-COLING main conference.
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This model was trained on 4,592 samples (not the standard benchmark dataset) to be evaluated on 200 tweets labelled by three different annotators.
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A model with the same parameters was also evaluated on the complete dataset through 10-fold CV.
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TODO: add the scores once the paper is published.
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REFERENCE TO THE PAPER WILL BE INCLUDED ONCE IT IS PUBLISHED.
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