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Danish-summarisation/DanSumT5-base
DanSumT5-base is a summarization model from Danish-summarisation. Use it when you need a shorter version of a longer text. It is set up for transformers. The card lists the license as apache-2.0.
Google's mT5 for summarisation downstream task.
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From the Hugging Face model README
Google's mT5 for summarisation downstream task.
This repository contains a model for Danish abstractive summarisation of news articles. The summariser is based on a language-specific mT5-base.
The model is fine-tuned using an abstractive subset of the DaNewsroom dataset (Varab & Schluter, 2020), according to the binned density categories employed in Newsroom (Grusky et al., 2019).
Grusky, M., Naaman, M., & Artzi, Y. (2018). Newsroom: A Dataset of 1.3 Million Summaries with Diverse Extractive Strategies. ArXiv:1804.11283 [Cs]. http://arxiv.org/abs/1804.11283
Varab, D., & Schluter, N. (2020). DaNewsroom: A Large-scale Danish Summarisation Dataset. Proceedings of the 12th Language Resources and Evaluation Conference, 6731–6739. https://aclanthology.org/2020.lrec-1.831