Extracting News Events from Microblogs
June 20, 2018 ยท Declared Dead ยท ๐ Journal of Statistics & Management Systems
"No code URL or promise found in abstract"
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Authors
รystein Repp, Heri Ramampiaro
arXiv ID
1806.07573
Category
cs.CL: Computation & Language
Cross-listed
cs.IR,
cs.SI
Citations
17
Venue
Journal of Statistics & Management Systems
Last Checked
4 months ago
Abstract
Twitter stream has become a large source of information for many people, but the magnitude of tweets and the noisy nature of its content have made harvesting the knowledge from Twitter a challenging task for researchers for a long time. Aiming at overcoming some of the main challenges of extracting the hidden information from tweet streams, this work proposes a new approach for real-time detection of news events from the Twitter stream. We divide our approach into three steps. The first step is to use a neural network or deep learning to detect news-relevant tweets from the stream. The second step is to apply a novel streaming data clustering algorithm to the detected news tweets to form news events. The third and final step is to rank the detected events based on the size of the event clusters and growth speed of the tweet frequencies. We evaluate the proposed system on a large, publicly available corpus of annotated news events from Twitter. As part of the evaluation, we compare our approach with a related state-of-the-art solution. Overall, our experiments and user-based evaluation show that our approach on detecting current (real) news events delivers a state-of-the-art performance.
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