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Proposal for using NLP interchange format for question answering in organizations
dc.contributor.author | Latifi, Majid |
dc.date.accessioned | 2014-07-14T09:36:24Z |
dc.date.available | 2014-07-14T09:36:24Z |
dc.date.created | 2014 |
dc.date.issued | 2014 |
dc.identifier.citation | Latifi, M. Proposal for using NLP interchange format for question answering in organizations. A: RuleML Doctoral Consortium. "Rule Challenge, Human Language Technology and Doctoral Consortium @ RuleML 2013: Joint Proceedings of the 7th International Rule Challenge, the Special Track on Human Language Technology and the 3rd RuleML Doctoral Consortium, hosted at the 8th International Symposium on Rules (RuleML2013), Seattle, USA, July 11 -13, 2013". Seattle: CEUR Workshop Proceedings, 2014, p. 1-10. |
dc.identifier.isbn | 1613-0073 |
dc.identifier.uri | http://hdl.handle.net/2117/23491 |
dc.description.abstract | The growth of technology and sciences has greatly influenced the area of management and decision-making procedures, and has dramatically changed the decision-making processes in different levels, both quantitatively and qualitatively. Knowledge management plays a vital role in supporting enterprise learning, since it facilitates the effective collective intellect of the enterprise. Different methods for user-friendly knowledge access have been developed previously. The most sophisticated ones provide a simple text box for a query which takes Natural Language (NL) queries as input. Question Answering (QA) system is playing an important role in current search engine optimization. Natural language processing technique is mostly implemented in QA system for asking user's question and several steps are also followed for conversion of questions to query form for getting an exact answer. Query languages have complex syntax, requiring a good understanding of the representation schema, including knowledge of details like namespaces, class and property names. In this research we proposed an model to implement Conceptual Question Answering and Automatic Information Inferences for the enterprise's operational knowledge management in ontology-based learning organization. |
dc.format.extent | 10 p. |
dc.language.iso | eng |
dc.publisher | CEUR Workshop Proceedings |
dc.subject | Àrees temàtiques de la UPC::Informàtica::Intel·ligència artificial::Llenguatge natural |
dc.subject.lcsh | Information storage and retrieval systems |
dc.subject.other | Enterprise ontology |
dc.subject.other | Information Inference |
dc.subject.other | Learning organization |
dc.subject.other | NLP |
dc.subject.other | Question answering(QA) |
dc.title | Proposal for using NLP interchange format for question answering in organizations |
dc.type | Conference report |
dc.subject.lemac | Informació--Sistemes d'emmagatzematge i recuperació |
dc.description.peerreviewed | Peer Reviewed |
dc.relation.publisherversion | http://ceur-ws.org/Vol-1004/paper1.pdf |
dc.rights.access | Open Access |
local.identifier.drac | 14896256 |
dc.description.version | Postprint (published version) |
local.citation.author | Latifi, M. |
local.citation.contributor | RuleML Doctoral Consortium |
local.citation.pubplace | Seattle |
local.citation.publicationName | Rule Challenge, Human Language Technology and Doctoral Consortium @ RuleML 2013: Joint Proceedings of the 7th International Rule Challenge, the Special Track on Human Language Technology and the 3rd RuleML Doctoral Consortium, hosted at the 8th International Symposium on Rules (RuleML2013), Seattle, USA, July 11 -13, 2013 |
local.citation.startingPage | 1 |
local.citation.endingPage | 10 |