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Entity based sentiment analysis of electronic news

By: Contributor(s): Material type: TextPublication details: Nawabshah: QUEST, 2019.Description: 37p
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Cover image Item type Current library Home library Collection Shelving location Call number Materials specified Vol info URL Copy number Status Notes Date due Barcode Item holds Item hold queue priority Course reserves
Thesis and Dissertation Research Section R/IMS-19 (Browse shelf(Opens below)) Available MP/53-652
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ABSTRACT

News articles and electronic media provide us massive unstructured bulk information about day by day events. Every day millions of news and articles are published in newspapers. The news and articles give some information regarding physical or virtual entities. In the news or articles three categories of views are given. The view may be positive, negative or neutral. The view portrays by the news or articles is important for improving the performance of an entity. The aim of this research is to find the entity based sentiment analysis of the news. With the help of sentiment analysis polarity (Positive. Negative. Neutral) of any entity can be get. For this research a data crawler tool is developed in java language and sentiment analysis is done by using Stanford CoreNLP. For testing purpose the articles for taken from website of dawn newspaper. For sample data, news were downloaded continuously for seven weeks regarding some entities.

Keywords: Entity Based Sentiment Analysis, NLP (Natural Language Processing) Data Crawling, Electronic News articles, Stanford CoreNLP .

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