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  5. Reasoning with Large Scale Ontologies in Fuzzy pD* Using MapReduce

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Article
English
2012

Reasoning with Large Scale Ontologies in Fuzzy pD* Using MapReduce

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English
2012
IEEE Computational Intelligence Magazine
Vol 7 (2)
DOI: 10.1109/mci.2012.2188589

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Haofen Wang
Haofen Wang

Tongji University

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Chang Liu
Guilin Qi
Haofen Wang
+1 more

Abstract

The MapReduce framework has proved to be very efficient for data-intensive tasks. Earlier work has successfully applied MapReduce for large scale RDFS/OWL reasoning. In this paper, we move a step forward by considering scalable reasoning on semantic data under fuzzy pD* semantics (i.e., an extension of OWL pD* semantics with fuzzy vagueness). To the best of our knowledge, this is the first work to investigate how MapReduce can be applied to solve the scalability issue of fuzzy reasoning in OWL. While most of the optimizations considered by the existing MapReduce framework for pD* semantics are also applicable for fuzzy pD* semantics, unique challenges arise when we handle the fuzzy information. Key challenges are identified with solution proposed for each of these challenges. Furthermore, a prototype system is implemented for the evaluation purpose. The experimental results show that the running time of our system is comparable with that of WebPIE, the state-of-the-art inference engine for scalable reasoning in pD* semantics.

How to cite this publication

Chang Liu, Guilin Qi, Haofen Wang, Yong Yu (2012). Reasoning with Large Scale Ontologies in Fuzzy pD* Using MapReduce. IEEE Computational Intelligence Magazine, 7(2), pp. 54-66, DOI: 10.1109/mci.2012.2188589.

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Publication Details

Type

Article

Year

2012

Authors

4

Datasets

0

Total Files

0

Language

English

Journal

IEEE Computational Intelligence Magazine

DOI

10.1109/mci.2012.2188589

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