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Learning ontology relations by combining corpus-based techniques and reasoning on data from semantic web sources

Wohlgenannt, Gerhard - Nama Orang

The manual construction of formal domain conceptualizations (ontologies) is labor-intensive. Ontology learning, by contrast, provides (semi-)automatic ontology generation from input data such as domain text. This thesis proposes a novel approach for learning labels of non-taxonomic ontology relations. It combines corpus-based techniques with reasoning on Semantic Web data. Corpus-based methods apply vector space similarity of verbs co-occurring with labeled and unlabeled relations to calculate relation label suggestions from a set of candidates. A meta ontology in combination with Semantic Web sources such as DBpedia and OpenCyc allows reasoning to improve the suggested labels. An extensive formal evaluation demonstrates the superior accuracy of the presented hybrid approach.

Additional Information
Penerbit
Bern, Switzerland : Peter Lang International Academic Publishers
GMD ( General Material Designation )
Electronic Resource
No. Panggil
004.678
WOH
l
004.678 WOH l
ISBN/ISSN9783631606513
Klasifikasi
004.678
Deskripsi Fisik
221 p.
Bahasa
English
Edisi
-
Subjek
Semantics
Pernyataan Tanggungjawab
Info Detail Spesifik
-
GMD
Electronic Resource
Tipe Isi
text
Tipe Media
computer
Tipe Pembawa
online resource

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