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Extractive Summarization under Strict Length Constraints

Proceedings of the Tenth International Conference on Language Resources and Evaluation (LREC 2016)

DOI:10.63317/3j2ayh5onbpp

Abstract

In this paper we report a comparison of various techniques for single-document extractive summarization under strict length budgets, which is a common commercial use case (e.g. summarization of news articles by news aggregators). We show that, evaluated using ROUGE, numerous algorithms from the literature fail to beat a simple lead-based baseline for this task. However, a supervised approach with lightweight and efficient features improves over the lead-based baseline. Additional human evaluation demonstrates that the supervised approach also performs competitively with a commercial system that uses more sophisticated features.

Details

Paper ID
lrec2016-main-493
Pages
pp. 3089-3093
BibKey
mehdad-etal-2016-extractive
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
978-2-9517408-9-1
Conference
Tenth International Conference on Language Resources and Evaluation
Location
Portorož, Slovenia
Date
23 May 2016 28 May 2016

Authors

  • YM

    Yashar Mehdad

  • AS

    Amanda Stent

  • KT

    Kapil Thadani

  • DR

    Dragomir Radev

  • YB

    Youssef Billawala

  • KB

    Karolina Buchner

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