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Gradient Learning Algorithms for Ontology Computing

Wei Gao, Linli Zhu

发表年份
2014
引用次数
41
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摘要

The gradient learning model has been raising great attention in view of its promising perspectives for applications in statistics, data dimensionality reducing, and other specific fields. In this paper, we raise a new gradient learning model for ontology similarity measuring and ontology mapping in multidividing setting. The sample error in this setting is given by virtue of the hypothesis space and the trick of ontology dividing operator. Finally, two experiments presented on plant and humanoid robotics field verify the efficiency of the new computation model for ontology similarity measure and ontology mapping applications in multidividing setting.

关键词

OntologyComputer scienceField (mathematics)Similarity (geometry)Artificial intelligenceCurse of dimensionalityOntology-based data integrationOntology alignmentProcess ontologyMachine learning

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