NewSociRank Recognizing and Ranking Frequent News Topics Using Social Media Factors


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Article type :

Original Article

Author :

Harshitha H | Dr. Mohammed Rafi

Volume :

2

Issue :

4

Abstract :

Mass media sources such as news media used to inform us of daily events before. Now a day, unlike news media, social media services like Twitter provide a huge amount of user generated data, which contain informative news related content. For these resources to be useful, we need to find a way to filter the noise and capture only the content based on its similarity to the news media. However, even after noise is removed, information overload may still exist in the remaining data hence, it is convenient to prioritize it for consumption. To achieve prioritization, the information must be ranked in order of estimated importance considering three factors. First, the media focus MF of a topic, the temporal prevalence of a particular topic in the news media. Second, user attention UA , the temporal prevalence of the topic in social media. Last, the interaction between the social media users who mention this topic indicates the strength of the community discussing it, and can be regarded as the user interaction UI toward the topic. We propose an unsupervised frameworkNewSociRankwhich recognizes the news topics prevalent common in both social media and the news media, and then ranks them by relevance popularity using their degrees of MF, UA, and UI. Harshitha H | Dr. Mohammed Rafi "NewSociRank: Recognizing and Ranking Frequent News Topics Using Social Media Factors" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-2 | Issue-4 , June 2018, URL: https://www.ijtsrd.com/papers/ijtsrd12716.pdf Paper URL: http://www.ijtsrd.com/engineering/computer-engineering/12716/newsocirank-recognizing-and-ranking-frequent-news-topics-using-social-media-factors/harshitha-h

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