Publication | Closed Access
Large knowledge collider
33
Citations
17
References
2011
Year
Unknown Venue
Artificial IntelligenceEngineeringSemantic TechnologySemantic Web CommunitySemantic Web DataSemantic WebInformation RetrievalData ScienceKnowledge EngineeringData IntegrationData ManagementSemantic IntegrationKnowledge DiscoveryRestricted SubsetsLarge Knowledge ColliderSemantic Web TechniqueComputer ScienceKnowledge BasePilot ImplementationAutomated ReasoningBusinessKnowledge IntegrationBig DataSemantic Interoperability
Recent advances in the Semantic Web community have yielded a variety of reasoning methods used to process and exploit semantically annotated data. However, most of those methods have only been approved for small, closed, trustworthy, consistent, and static domains. Still, there is a deep mismatch between the requirements for reasoning on a Web scale and the existing efficient reasoning algorithms over restricted subsets. This paper describes the pilot implementation of LarKC -- the Large Knowledge Collider, a platform, which focuses on supporting large-scale reasoning over billions of structured data in heterogeneous data sets. The architecture of LarKC allows for an effective combination of techniques coming from different Semantic Web domains by following a service-oriented approach, supplied by sustainable infrastructure solutions.
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