Integrating Know-How into the Linked Data Cloud
April 15, 2016 Β· Declared Dead Β· π International Conference Knowledge Engineering and Knowledge Management
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Authors
Paolo Pareti, Benoit Testu, Ryutaro Ichise, Ewan Klein, Adam Barker
arXiv ID
1604.04506
Category
cs.AI: Artificial Intelligence
Citations
80
Venue
International Conference Knowledge Engineering and Knowledge Management
Last Checked
3 months ago
Abstract
This paper presents the first framework for integrating procedural knowledge, or "know-how", into the Linked Data Cloud. Know-how available on the Web, such as step-by-step instructions, is largely unstructured and isolated from other sources of online knowledge. To overcome these limitations, we propose extending to procedural knowledge the benefits that Linked Data has already brought to representing, retrieving and reusing declarative knowledge. We describe a framework for representing generic know-how as Linked Data and for automatically acquiring this representation from existing resources on the Web. This system also allows the automatic generation of links between different know-how resources, and between those resources and other online knowledge bases, such as DBpedia. We discuss the results of applying this framework to a real-world scenario and we show how it outperforms existing manual community-driven integration efforts.
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