JOURNAL ARTICLE

Multi-Document Abstractive Summarization using Recursive Neural Network

D Naga SudhaY. Madhavee Latha

Year: 2020 Journal:   International Journal of Innovative Technology and Exploring Engineering Vol: 9 (7)Pages: 364-370   Publisher: Blue Eyes Intelligence Engineering and Sciences Publication

Abstract

Text summarization is an area of research with a goal to provide short text from huge text documents. Extractive text summarization methods have been extensively studied by many researchers. There are various type of multi document ranging from different formats to domains and topic specific. With the application of neural networks for text generation, interest for research in abstractive text summarization has increased significantly. This approach has been attempted for English and Telugu languages in this article. Recurrent neural networks are a subtype of recursive neural networks which try to predict the next sequence based on the current state and considering the information from previous states. The use of neural networks allows generation of summaries for long text sentences as well. The work implements semantic based filtering using a similarity matrix while keeping all stop-words. The similarity is calculated using semantic concepts and Jiang Similarity and making use of a Recurrent Neural Network (RNN) with an attention mechanism to generate summary. ROUGE score is used for measuring the performance of the applied method on Telugu and English langauges

Keywords:
Automatic summarization Computer science Recurrent neural network Telugu Artificial intelligence Similarity (geometry) Natural language processing Artificial neural network Information retrieval

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Topics

Topic Modeling
Physical Sciences →  Computer Science →  Artificial Intelligence
Natural Language Processing Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Advanced Text Analysis Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence

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