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dc.contributor.advisor Dias, G
dc.contributor.author Hettiarachchi, IA
dc.date.accessioned 2011-02-25T03:38:46Z
dc.date.available 2011-02-25T03:38:46Z
dc.identifier.citation Hettiarachchi, I.A. (2008). Context-aware Reputation Framework (CaRF) [Master's theses, University of Moratuwa]. Institutional Repository University of Moratuwa. http://dl.lib.mrt.ac.lk/handle/123/146
dc.identifier.uri http://dl.lib.mrt.ac.lk/handle/123/146
dc.description A Dissertation submitted to the Department of Computer Science and Engineering for the MSc in Computer Science en_US
dc.description.abstract Reputation a key factor in day-to-day decision making is making inroads to computer systems as well. While computer systems are becoming more and more interconnected and 'social networking' become more and more promising digital reputation gains high attention. Context is an important aspect of reputation which is widely and conveniently ignored in reputation systems. But without context, reputation will be single faceted and of less use. This dissertation proposes a reputation framework which incorporates context into the reputation and supports upcoming Semantic Web concepts. It also proposes the usage of Subjective Logic as the mechanism to calculate reputation as it resembles the o human nature closely. The discussion of this work is on a minimal implementation of such a framework which would serve the basis for future enhancements. Ill
dc.language.iso en en_US
dc.subject COMPUTER SCIENCE AND ENGINEERING - Dissertation
dc.subject COMPUTER SCIENCE - Dissertation
dc.subject SOCIAL NETWORKING
dc.subject SEMANTIC WEB
dc.title Context-aware Reputation Framework (CaRF)
dc.type Thesis-Abstract
dc.identifier.faculty Engineering en_US
dc.identifier.degree MSc en_US
dc.identifier.department Department of Computer Science and Engineering en_US
dc.identifier.accno 93377 en_US


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