Abstract
Micro-blogging services such as Twitter can develop into valuable sources of up-to-date information provided the spam problem is overcome. Thus, separating the most relevant users from the spammers is a highly pertinent question for which graph centrality methods can provide an answer. In this paper we examine the vulnerability of five different algorithms to linking malpractice in Twitter and propose a first step towards ―desensitizing‖ them against such abusive behavior.
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CITATION STYLE
Gayo-Avello, D., & Brenes, D. J. (2010). Overcoming Spammers in Twitter–A Tale of Five Algorithms. Iriiuames, (Ceri), 31. Retrieved from http://ir.ii.uam.es/ceri2010/papers/ceri2010-gayo-avello.pdf
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