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Extraction of Semantic Clusters for Terminological Information Retrieval from MRDs
Proceedings of the Second International Conference on Language Resources and Evaluation (LREC 2000)
Abstract
This paper describes a semantic clustering method for data extracted from machine readable dictionaries (MRDs) in order to build a terminological information retrieval system that finds terms from descriptions of concepts. We first examine approaches based on ontologies and statistics, before introducing our analogy-based approach that lets us extract semantic clusters by aligning definitions from two dictionaries. Evaluation of the final set of clusters for a small set of definitions demonstrates the utility of our approach.