Mining Social Relationship Types in an Organization using Communication Patterns

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Our goal is to show that it is possible to automatically infer social relationship types among people who stay together in an organization by analyzing communication patterns. We collected indoor co-location data and instant messenger data from 22 participants for one month. Based on the data, we designed and explored several indicators which are considered to be useful for mining social relationship types. We applied machine learning techniques using the indicators and found that it is possible to develop an intelligent method to infer social relationship types.
Publisher
ACM Special Interest Group on Computer-Human Interaction (SIGCHI)
Issue Date
2013-02
Language
English
Citation

The 16th ACM Conference on Computer Supported Cooperative Work and Social Computing, pp.295 - 301

DOI
10.1145/2441776.2441811
URI
http://hdl.handle.net/10203/172820
Appears in Collection
CS-Conference Papers(학술회의논문)
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