Please use this identifier to cite or link to this item: http://hdl.handle.net/10071/28158
Author(s): Ribeiro, R.
Matos, D. M. de.
Editor: Bandyopadhyay, S., Poibeau, T., Saggion, H., and Yangarber, R.
Date: 2008
Title: Mixed-source multi-document speech-to-text summarization
Book title/volume: Coling 2008: Proceedings of the 2nd workshop on Multi-source, Multilingual Information Extraction and Summarization
Pages: 33 - 40
Event title: 2nd workshop on Multi-source, Multilingual Information Extraction and Summarization
Reference: Ribeiro, R., & Matos, D. M. de. (2008). Mixed-source multi-document speech-to-text summarization. In S. Bandyopadhyay, T. Poibeau, H. Saggion, & R. Yangarber (Eds.), Coling 2008: Proceedings of the 2nd workshop on Multi-source, Multilingual Information Extraction and Summarization (pp. 33-40). Coling 2008 Organizing Committee. https://aclanthology.org/W08-1406
ISBN: 978-1-905593-51-4
Abstract: Speech-to-text summarization systems usually take as input the output of an automatic speech recognition (ASR) system that is affected by issues like speech recognition errors, disfluencies, or difficulties in the accurate identification of sentence boundaries. We propose the inclusion of related, solid background information to cope with the difficulties of summarizing spoken language and the use of multi-document summarization techniques in single document speech- to-text summarization. In this work, we explore the possibilities offered by pho- netic information to select the background information and conduct a perceptual evaluation to better assess the relevance of the inclusion of that information. Results show that summaries generated using this approach are considerably better than those produced by an up-to-date latent semantic analysis (LSA) summarization method and suggest that humans prefer summaries restricted to the information conveyed in the input source.
Peerreviewed: yes
Access type: Open Access
Appears in Collections:IT-CRI - Comunicações a conferências internacionais

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