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Statistical Models for Exploring Individual Email Communication Behavior
2012
Journal of machine learning research
As digital communication devices play an increasingly prominent role in our daily lives, the ability to analyze and understand our communication patterns becomes more important. In this paper, we investigate a latent variable modeling approach for extracting information from individual email histories, focusing in particular on understanding how an individual communicates over time with recipients in their social network. The proposed model consists of latent groups of recipients, each of which
dblp:journals/jmlr/NavaroliDS12
fatcat:us6xbdtgyfblhc3sdfzxabjkgy