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Sentence Extraction for Automatic Summarization and Notetaking Systems

  • Couverture cartonnée
  • 148 Nombre de pages
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In this book, we propose both automatic summarization and semi-automatic Notetaking systems as important tools that can engage stu... Lire la suite
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Description

In this book, we propose both automatic summarization and semi-automatic Notetaking systems as important tools that can engage students in learning activities and improve their learning, namely comprehending and recalling of the study materials. However, they can also be employed by lecturers to evaluate their students' understanding. Many current systems summarize texts by selecting sentences with important content using methods generally known as sentence extraction. To deal with the development of a new sentence extraction method, we delve into text analysis at three levels: word, sentence, and text level analysis. At the word level, we consider word similarity and word disambiguation based on WordNet to compute the value for semantic relatedness. This feature is exploited by the proposed method we have developed for text similarity. For the sentence level, we analyze for its similarity using vector correlation. For text similarity, a cognitive method is used to identify the most important sentence. Our proposed unsupervised sentence extraction method is then used to identify the most salient sentences to produce high quality summarization and notes.

Auteur

Hamed Khanpour was born in Babol, Iran, in 1977. He received the BSc degree in Telecommunication Engineering in 2001. He also obtained the MSc degree in Artificial Intelligence in 2009, by the University of Malaya (UM), Malaysia. Since 2011 he is doing his PhD in Artificial Intelligence.

Informations sur le produit

Titre: Sentence Extraction for Automatic Summarization and Notetaking Systems
Sous-titre: Applying Cognitive and Computational Linguistic Techniques to Improve Student's Learning Skills
Auteur:
Code EAN: 9783639329971
ISBN: 978-3-639-32997-1
Format: Couverture cartonnée
Editeur: VDM Verlag Dr. Müller
Genre: Informatique
nombre de pages: 148
Année: 2011