DocumentCode
1908879
Title
Towards Shallow Semantics: The OntoNotes Project
Author
Hovy, Eduard
Author_Institution
Inf. Sci. Inst., Univ. of Southern California, Los Angeles, CA
fYear
2007
fDate
Aug. 30 2007-Sept. 1 2007
Firstpage
2
Lastpage
3
Abstract
Summary form only given. Many natural language processing (NLP) applications could benefit from a richer model of text meaning than the bag-of-words and n-gram models that currently predominate. Despite theoretical interest since the 1960s, however, no large-scale model exists; in fact, it is not even clear what such a model should minimally include. However, the introduction of large-scale public resources such as the Penn TreeBank and WordNet have generated a great deal of progress in the NLP community, and so it seems increasingly important to create some kind of meaning-oriented model and build a corresponding corpus that is large enough to support adequate machine learning. This talk argues for the necessity of (even shallow) semantics-based NLP, describes the contents and operation of the OntoNotes project, and in so doing introduces and explains the general issues facing annotation projects. Our hope is that other people not only try to use the OntoNotes corpus in their own work, but also create their own annotations on the same material, so that more layers of shallow semantics can be included into OntoNotes.
Keywords
computational linguistics; learning (artificial intelligence); natural language processing; text analysis; OntoNotes annotation corpus project; Penn TreeBank; WordNet; bag-of-words model; machine learning; meaning-oriented model; n-gram model; semantics-based natural language processing; shallow semantics; text meaning; Broadcasting; Intersymbol interference; Large-scale systems; Machine learning; Natural language processing; Ontologies;
fLanguage
English
Publisher
ieee
Conference_Titel
Natural Language Processing and Knowledge Engineering, 2007. NLP-KE 2007. International Conference on
Conference_Location
Beijing
Print_ISBN
978-1-4244-1610-3
Electronic_ISBN
978-1-4244-1611-0
Type
conf
DOI
10.1109/NLPKE.2007.4367998
Filename
4367998
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