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Extracting Meronymy Relationships from Domain-Specific, Textual Corporate Databases.

Authors :
Ittoo, Ashwin
Bouma, Gosse
Maruster, Laura
Wortmann, Hans
Source :
Natural Language Processing & Information Systems (9783642138805); 2010, p48-59, 12p
Publication Year :
2010

Abstract

Various techniques for learning meronymy relationships from opendomain corpora exist. However, extracting meronymy relationships from domain-specific, textual corporate databases has been overlooked, despite numerous application opportunities particularly in domains like product development and/or customer service. These domains also pose new scientific challenges, such as the absence of elaborate knowledge resources, compromising the performance of supervised meronymy-learning algorithms. Furthermore, the domain-specific terminology of corporate texts makes it difficult to select appropriate seeds for minimally-supervised meronymy-learning algorithms. To address these issues, we develop and present a principled approach to extract accurate meronymy relationships from textual databases of product development and/or customer service organizations by leveraging on reliable meronymy lexico-syntactic patterns harvested from an open-domain corpus. Evaluations on real-life corporate databases indicate that our technique extracts precise meronymy relationships that provide valuable operational insights on causes of product failures and customer dissatisfaction. Our results also reveal that the types of some of the domain-specific meronymy relationships, extracted from the corporate data, cannot be conclusively and unambiguously classified under wellknown taxonomies of relationships. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISBNs :
9783642138805
Database :
Complementary Index
Journal :
Natural Language Processing & Information Systems (9783642138805)
Publication Type :
Book
Accession number :
76753189
Full Text :
https://doi.org/10.1007/978-3-642-13881-2_5