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HunSum-1: an Abstractive Summarization Dataset for Hungarian

Authors :
Barta, Botond
Lakatos, Dorina
Nagy, Attila
Nyist, Milán Konor
Ács, Judit
Publication Year :
2023

Abstract

We introduce HunSum-1: a dataset for Hungarian abstractive summarization, consisting of 1.14M news articles. The dataset is built by collecting, cleaning and deduplicating data from 9 major Hungarian news sites through CommonCrawl. Using this dataset, we build abstractive summarizer models based on huBERT and mT5. We demonstrate the value of the created dataset by performing a quantitative and qualitative analysis on the models' results. The HunSum-1 dataset, all models used in our experiments and our code are available open source.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2302.00455
Document Type :
Working Paper