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2018 | OriginalPaper | Buchkapitel

Scoring Summaries Using Recurrent Neural Networks

verfasst von : Stefan Ruseti, Mihai Dascalu, Amy M. Johnson, Danielle S. McNamara, Renu Balyan, Kathryn S. McCarthy, Stefan Trausan-Matu

Erschienen in: Intelligent Tutoring Systems

Verlag: Springer International Publishing

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Abstract

Summarization enhances comprehension and is considered an effective strategy to promote and enhance learning and deep understanding of texts. However, summarization is seldom implemented by teachers in classrooms because the manual evaluation requires a lot of effort and time. Although the need for automated support is stringent, there are only a few shallow systems available, most of which rely on basic word/n-gram overlaps. In this paper, we introduce a hybrid model that uses state-of-the-art recurrent neural networks and textual complexity indices to score summaries. Our best model achieves over 55% accuracy for a 3-way classification that measures the degree to which the main ideas from the original text are covered by the summary . Our experiments show that the writing style, represented by the textual complexity indices, together with the semantic content grasped within the summary are the best predictors, when combined. To the best of our knowledge, this is the first work of its kind that uses RNNs for scoring and evaluating summaries.

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Metadaten
Titel
Scoring Summaries Using Recurrent Neural Networks
verfasst von
Stefan Ruseti
Mihai Dascalu
Amy M. Johnson
Danielle S. McNamara
Renu Balyan
Kathryn S. McCarthy
Stefan Trausan-Matu
Copyright-Jahr
2018
DOI
https://doi.org/10.1007/978-3-319-91464-0_19