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dc.contributor.authorNimmagadda, Shastri
dc.contributor.authorDreher, Heinz
dc.contributor.authorCardona Mora, P.
dc.contributor.authorLobo, A.
dc.contributor.editorLuis Gomes
dc.contributor.editorMichael Huebner
dc.date.accessioned2017-01-30T13:06:47Z
dc.date.available2017-01-30T13:06:47Z
dc.date.created2014-03-18T20:00:53Z
dc.date.issued2013
dc.identifier.citationNimmagadda, Shastri L. and Dreher, Heinz and Cardona Mora, Paola Andrea and Lobo, Adriano. 2013. Ontology based multidimensional data warehousing and mining of heterogeneous unconventional-reservoir ecosystems, in Gomes, L. and Huebner, M. (ed), 11th International Conference on Industrual Informatics (INDIN), Jul 29-31 2013, pp. 535-540. Bochum, Germany: IEEE.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/28718
dc.identifier.doi10.1109/INDIN.2013.6622941
dc.description.abstract

A full understanding of many unconventional hydrocarbon resources is not possible because either there are no datasets or only incomplete or unevaluated. Some resources do not even have datasets from wells that have been drilled for exploration purposes. Specifically, unevaluated information on coal, tight gas, shale gas and gas hydrates, is delaying use of technologies that are in place in the market on a commercial scale. In addition, lack of knowledge makes the environmental impact of exploiting an unconventional resource, unpredictable. As a result of the unknowns involving exploration and development risks, productibility and recovery costs, the development of these global resources is being delayed. Evaluation and organization of data on these unconventional resources are needed for any analysis of petroleum ecosystems. As a solution, we propose a robust data-warehousing and mining approach, supported by ontology. Data from unconventional data need to be gathered in a proactive and systematic way. These multidimensional heterogeneous data can be integrated to explore unknown multiple connections among attributes of multiple dimensions of unconventional resources (from different geographic, geological and production regimes).This paper presents an attempt to make use of ontologies written for multiple dimensions to facilitate connections among unconventional petroleum ecosystems. Fine-grained data assist the data-mining procedures for forecasting, in competent and turbulent markets. Sweet spots may have been hidden in databases. The proposed methodology is robust and may be able to resolve issues associated with mining of sweet spots and uncover them from unconventional resource data warehouses and to help adapt technologies for tapping these sweet spots. If the proposed methodology is successful, it can be applied in any basin for all unconventional reservoir ecosystems present.

dc.publisherIEEEXplore
dc.relation.urihttp://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6622941
dc.subjectdata mining
dc.subjectunconventional resources
dc.subjectmultidimensionsal
dc.subjectontology
dc.subjectData warehousing
dc.titleOntology based multidimensional data warehousing and mining of heterogeneous unconventional-reservoir ecosystems
dc.typeConference Paper
dcterms.source.startPage535
dcterms.source.endPage540
dcterms.source.titleProceedings 2013 11th IEEE International Conference on Industrial Informatics
dcterms.source.seriesProceedings 2013 11th IEEE International Conference on Industrial Informatics
dcterms.source.isbn9781479907526
dcterms.source.conferenceINDIN 2013
dcterms.source.conference-start-dateJul 29 2013
dcterms.source.conferencelocationBochum, Germany
dcterms.source.placeUSA
curtin.department
curtin.accessStatusFulltext not available


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