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Bringing together what belongs together Fridolin Wild1), Xavier Ochoa2), Nina Heinze3), Raquel Crespo4), Kevin Quick1)1) The Open University, UK, 2) ESPOL, Ecuador3) KMRC, Germany, 4) UC3M, Spain
The Idea:  Spot unwanted fragmentation recommend a flashmeeting The Data: ECTEL, flashmeeting The Method(s) First results Evaluation Outline
Beforewebegin…
(96dpi) Knowledgecouldbethedeltaatthereceiver(apaper,ahuman,alibrary). Informationcouldbethequalityofacertainsignal. Informationcouldbealogicalabstractor. Sciencecouldbeaboutsystematicallygivingbirthtoinformationinordertocreateknowledge Science,Information,Knowledge
Researchers(people,artefacts,andtools)invariouslocationswithheterogeneousaffiliations,purposes,styles,objectives,etc. Networkeffectsmakethenetworkexponentiallymorevaluablewithgrowingsize Todevelopasharedunderstandingispartoftheresearchworkbecauselanguageunderspecifiesmeaning:future‘cloud’researchwillbuildonit Andatthesametime:linguisticrelativity(Sapir-Whorfhypothesis):languageculturerestrictsourthinking Scienceismadeinnetworks
TheIdea
The goal of developing a recommender for flashmeeting is to use meta‐data to support researchers by pointing out other projects, researchers, or related topics they may not be aware of yet and that are closely related to their field of interest. Spot unwanted fragmentation!
TheData
ECTEL Meta-Data
Meeting data is open (xml!) Complex database behind we use rather small subset Flashmeeting
TheMethod(s)
Closenesshowclosetoallothers DegreeCentralitynumberof(in/out)connectionstoothers Betweennesshowoftenintermediary Componentse.g.kmeanscluster(k=3) (Social)NetworkAnalysis(S/NA)
MeaningfulInteractionAnalysis(MIA) Making sense of latent-semantic networks.
Pattern: from the co‐authorship network and the co‐citations therein, a recommender can identify when authors are working on the same topic (=keywords) but with different co‐authors and different literature.  Intervention: propose to hold a ’get to know each other' Flashmeeting that may initiate desired defragmentation.  The Defragmenter (1)
Pattern: Communitiesarefarfromhomogeneous.Sub-groupscanemerge,particularlyinbigcommunities,whichareconnectedbyasmallset(twoorthree)ofmembersactingasbridgebuildersbetweenotherwisedisconnectedcomponentsintheinteractiongraph. Intervetion: Alertsaboutsuchstructuraldysfunctionsincludingtheprovisionofsolutionssuchasjointvirtualmeetingscanhelptomendthemandimproveeffectivecollaborationinsidetheglobalcommunity. The Defragmenter (2)
FirstResults
Spot unwanted fragmentation e.g. two authors work on the same topic, but with different collaborator groups and with different literature Intervention Instrument: automatically recommend to hold a flashmeeting Defrag meeting recommender
Communities are often not very dense, i.e. not resilient With key persons withdrawing, the network can fragment Recommend to build additional links, cutting out the middleman Creating cohesion:defragment two groups
Group proposal recommendation: existing cliques can be discovered from graph components, recommending their members to form a group for supporting the management of joint meetings.  Group closing recommendation: lack of activity in a group may indicate that it no longer exists as such. Confirming group disappearance would be necessary for keeping the server tidy and an accurate map of existing active communities.  Group access recommender: when raising awareness about existing groups for a given individual, the participation of his/her contacts in a certain group is a strong indicator about the interest of the group for such a person. Recommendations for joining a given group based on contacts’ membership can help to avoid missing information.  Meeting invitation recommender: awareness of community specific events can also be improved. Based on the known participants in the event as well as their contact relations, recommendations can be made for potential attendants.  More! FM Recommenders
Evaluation
The social network structure evolves in time Compare recommendations based on historical network data with links actually established (for a certain instant) CONS: lack of awareness (insteadof non-relevance) can explain recommended connections not appearing in the real network  PROS: evaluation based on objective data Evolution-based evaluation
User-based evaluation Ask the user about the quality of the recommendations explicitly Questionnaire Quantitative data (evaluation metric) Qualitative data (justification) Sample Depends on actual recommendations
User-based evaluation PROS:  More accurate rewarding of recommendations rising awareness  Deeper insight thanks to qualitative information  CONS:  Missed links to recommend Subjective information (may be affected by other factors) Data gathering Statistical significance (sample size)
Structure-based evaluation Delete a sample of direct links and check if the system is able to rebuild the network, suggesting them as recommended collaborations. ,[object Object]
Based on objective data
CONS:
Deletions affect the network structure,[object Object]
Conclusion

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Bringing together what belongs together