@inproceedings{hurriyetoglu-etal-2020-automated,
title = "Automated Extraction of Socio-political Events from News ({AESPEN}): Workshop and Shared Task Report",
author = {H{\"u}rriyeto{\u{g}}lu, Ali and
Zavarella, Vanni and
Tanev, Hristo and
Y{\"o}r{\"u}k, Erdem and
Safaya, Ali and
Mutlu, Osman},
editor = {H{\"u}rriyeto{\u{g}}lu, Ali and
Y{\"o}r{\"u}k, Erdem and
Zavarella, Vanni and
Tanev, Hristo},
booktitle = "Proceedings of the Workshop on Automated Extraction of Socio-political Events from News 2020",
month = may,
year = "2020",
address = "Marseille, France",
publisher = "European Language Resources Association (ELRA)",
url = "https://aclanthology.org/2020.aespen-1.1",
pages = "1--6",
abstract = "We describe our effort on automated extraction of socio-political events from news in the scope of a workshop and a shared task we organized at Language Resources and Evaluation Conference (LREC 2020). We believe the event extraction studies in computational linguistics and social and political sciences should further support each other in order to enable large scale socio-political event information collection across sources, countries, and languages. The event consists of regular research papers and a shared task, which is about event sentence coreference identification (ESCI), tracks. All submissions were reviewed by five members of the program committee. The workshop attracted research papers related to evaluation of machine learning methodologies, language resources, material conflict forecasting, and a shared task participation report in the scope of socio-political event information collection. It has shown us the volume and variety of both the data sources and event information collection approaches related to socio-political events and the need to fill the gap between automated text processing techniques and requirements of social and political sciences.",
language = "English",
ISBN = "979-10-95546-50-4",
}
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%0 Conference Proceedings
%T Automated Extraction of Socio-political Events from News (AESPEN): Workshop and Shared Task Report
%A Hürriyetoğlu, Ali
%A Zavarella, Vanni
%A Tanev, Hristo
%A Yörük, Erdem
%A Safaya, Ali
%A Mutlu, Osman
%Y Hürriyetoğlu, Ali
%Y Yörük, Erdem
%Y Zavarella, Vanni
%Y Tanev, Hristo
%S Proceedings of the Workshop on Automated Extraction of Socio-political Events from News 2020
%D 2020
%8 May
%I European Language Resources Association (ELRA)
%C Marseille, France
%@ 979-10-95546-50-4
%G English
%F hurriyetoglu-etal-2020-automated
%X We describe our effort on automated extraction of socio-political events from news in the scope of a workshop and a shared task we organized at Language Resources and Evaluation Conference (LREC 2020). We believe the event extraction studies in computational linguistics and social and political sciences should further support each other in order to enable large scale socio-political event information collection across sources, countries, and languages. The event consists of regular research papers and a shared task, which is about event sentence coreference identification (ESCI), tracks. All submissions were reviewed by five members of the program committee. The workshop attracted research papers related to evaluation of machine learning methodologies, language resources, material conflict forecasting, and a shared task participation report in the scope of socio-political event information collection. It has shown us the volume and variety of both the data sources and event information collection approaches related to socio-political events and the need to fill the gap between automated text processing techniques and requirements of social and political sciences.
%U https://aclanthology.org/2020.aespen-1.1
%P 1-6
Markdown (Informal)
[Automated Extraction of Socio-political Events from News (AESPEN): Workshop and Shared Task Report](https://aclanthology.org/2020.aespen-1.1) (Hürriyetoğlu et al., AESPEN 2020)
ACL