Inflo: News Categorization and Keyphrase Extraction for Implementation in an Aggregation System

December 10, 2018 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Pranav A, Nick Sukiennik, Pan Hui arXiv ID 1812.03781 Category cs.IR: Information Retrieval Cross-listed cs.CL Citations 2 Venue arXiv.org Last Checked 4 months ago
Abstract
The work herein describes a system for automatic news category and keyphrase labeling, presented in the context of our motivation to improve the speed at which a user can find relevant and interesting content within an aggregation platform. A set of 12 discrete categories were applied to over 500,000 news articles for training a neural network, to be used to facilitate the more in-depth task of extracting the most significant keyphrases. The latter was done using three methods: statistical, graphical and numerical, using the pre-identified category label to improve relevance of extracted phrases. The results are presented in a demo in which the articles are pre-populated via News API, and upon being selected, the category and keyphrase labels will be computed via the methods explained herein.
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