Emergent user behavior on Twitter modelled by a stochastic differential equation

February 11, 2015 Β· Declared Dead Β· πŸ› PLoS ONE

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Authors Anders Mollgaard, Joachim Mathiesen arXiv ID 1502.03224 Category physics.soc-ph Cross-listed cs.SI Citations 14 Venue PLoS ONE Last Checked 3 months ago
Abstract
Data from the social-media site, Twitter, is used to study the fluctuations in tweet rates of brand names. The tweet rates are the result of a strongly correlated user behavior, which leads to bursty collective dynamics with a characteristic 1/f noise. Here we use the aggregated "user interest" in a brand name to model collective human dynamics by a stochastic differential equation with multiplicative noise. The model is supported by a detailed analysis of the tweet rate fluctuations and it reproduces both the exact bursty dynamics found in the data and the 1/f noise.
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