DocumentCode :
2805966
Title :
Mapping FrameNet and SUMO with WordNet Verb: Statistical Distribution of Lexical-Ontological Realization
Author :
Chow, Ian C. ; Webster, Jonathan J.
Author_Institution :
City University of Hong Kong, Hong Kong
fYear :
2006
fDate :
Nov. 2006
Firstpage :
262
Lastpage :
268
Abstract :
Automatic acquisition of lexical knowledge is critical to a wide range of natural language processing tasks. Verb knowledge is especially important in semantic parsing. Verbs denote relational information of lexicogrammar and semantically state the participants and event involved in the meaning construed. This paper describes a statistical distribution approach to reuse and integrate information from the Suggested Upper Merged Ontology (SUMO), WordNet and FrameNet. The mapping between word-meanings, frame-semantics and world concepts suggests a heuristic approach for linking WordNet verbs and FrameNet frames providing a knowledge base for Semantic Role Labeling(SRL), identifying the appropriate range of possible semantic roles with respect to the event evoked by verb. This is accomplished through the verbs covered by both FrameNet and WordNet, taking the shared lexical knowledge as learning data to map SUMO concepts with FrameNet frames. The exploitation of the mapping aims at automatic populating WordNet data to FrameNet frames constructing a knowledge base for semantic parsing.
Keywords :
Artificial intelligence; Databases; Indexing; Information retrieval; Joining processes; Labeling; Natural language processing; Natural languages; Ontologies; Statistical distributions;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Artificial Intelligence, 2006. MICAI '06. Fifth Mexican International Conference on
Conference_Location :
Mexico City, Mexico
Print_ISBN :
0-7695-2722-1
Type :
conf
DOI :
10.1109/MICAI.2006.28
Filename :
4022160
Link To Document :
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