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JCDL
2011
ACM

CollabSeer: a search engine for collaboration discovery

12 years 7 months ago
CollabSeer: a search engine for collaboration discovery
Collaborative research has been increasingly popular and important in academic circles. However, there is no open platform available for scholars or scientists to effectively discover potential collaborators. This paper discusses CollabSeer, an open system to recommend potential research collaborators for scholars and scientists. CollabSeer discovers collaborators based on the structure of the coauthor network and a user’s research interests. Currently, three different network structure analysis methods that use vertex similarity are supported in CollabSeer: Jaccard similarity, cosine similarity, and our relation strength similarity measure. Users can also request a recommendation by selecting a topic of interest. The topic of interest list is determined by CollabSeer’s lexical analysis module, which analyzes the key phrases of previous publications. The CollabSeer system is highly modularized making it easy to add or replace the network analysis module or users’ topic of inter...
Hung-Hsuan Chen, Liang Gou, Xiaolong Zhang, Clyde
Added 15 Sep 2011
Updated 15 Sep 2011
Type Journal
Year 2011
Where JCDL
Authors Hung-Hsuan Chen, Liang Gou, Xiaolong Zhang, Clyde Lee Giles
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