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Extracting Space Situational Awareness Events from News Text

Proceedings of the Thirteenth International Conference on Language Resources and Evaluation (LREC 2022)

DOI:10.63317/2feay8efgzhm

Abstract

Space situational awareness typically makes use of physical measurements from radar, telescopes, and other assets to monitor satellites and other spacecraft for operational, navigational, and defense purposes. In this work we explore using textual input for the space situational awareness task. We construct a corpus of 48.5k news articles spanning all known active satellites between 2009 and 2020. Using a dependency-rule-based extraction system designed to target three high-impact events – spacecraft launches, failures, and decommissionings, we identify 1,787 space-event sentences that are then annotated by humans with 15.9k labels for event slots. We empirically demonstrate a state-of-the-art neural extraction system achieves an overall F1 between 53 and 91 per slot for event extraction in this low-resource, high-impact domain.

Details

Paper ID
lrec2022-main-653
Pages
pp. 6077-6082
BibKey
xie-etal-2022-extracting
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
79-10-95546-38-2
Conference
Thirteenth Language Resources and Evaluation Conference
Location
Marseille, France
Date
20 June 2022 25 June 2022

Authors

  • ZX

    Zhengnan Xie

  • AK

    Alice Saebom Kwak

  • EG

    Enfa George

  • LD

    Laura W. Dozal

  • HV

    Hoang Van

  • MJ

    Moriba Jah

  • RF

    Roberto Furfaro

  • PJ

    Peter Jansen

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