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FABRA: French Aggregator-Based Readability Assessment toolkit

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

DOI:10.63317/4btrgqxz5qbj

Abstract

In this paper, we present the FABRA: readability toolkit based on the aggregation of a large number of readability predictor variables. The toolkit is implemented as a service-oriented architecture, which obviates the need for installation, and simplifies its integration into other projects. We also perform a set of experiments to show which features are most predictive on two different corpora, and how the use of aggregators improves performance over standard feature-based readability prediction. Our experiments show that, for the explored corpora, the most important predictors for native texts are measures of lexical diversity, dependency counts and text coherence, while the most important predictors for foreign texts are syntactic variables illustrating language development, as well as features linked to lexical sophistication. FABRA: have the potential to support new research on readability assessment for French.

Details

Paper ID
lrec2022-main-130
Pages
pp. 1217-1233
BibKey
wilkens-etal-2022-fabra
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

  • RW

    Rodrigo Wilkens

  • DA

    David Alfter

  • XW

    Xiaoou Wang

  • AP

    Alice Pintard

  • AT

    Anaïs Tack

  • KY

    Kevin P. Yancey

  • TF

    Thomas François

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