Unlock the Stock: User Topic Modeling for Stock Market Analysis

Patrick Siehndel, Ujwal Gadiraju · 2016

The increasing use of Twitter as a medium for sharing news related to various topics, facilitates methods for automatic news creation or event detection and prediction. However, these methods are hin-dered by users posting and propagating incorrect or irrelevant con-tent. Choosing the right users is crucial in order to sample down the tweets to be analyzed, and preserve the quality of the predicted events or generated news. In this paper, we present an effective method for identifying expert users in defined areas related to the stock market. For each user we generate a model based on the con-tent of their posts. The model represents the domains the user talks about, and allows a selection of users for various tasks. We show the effectiveness of the proposed approach by performing a series of experiments using large Twitter datasets related to Stock Market Companies.

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