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Using Lexical Semantic Knowledge from Machine Readable Dictionaries for Domain Independent Language Modelling

Proceedings of the Second International Conference on Language Resources and Evaluation (LREC 2000)

DOI:10.63317/4o3o4tv324fw

Abstract

Machine Readable Dictionaries (MRDs) have been used in a variety of language processing tasks including word sense disambiguation, text segmentation, information retrieval and information extraction. In this paper we describe the utilization of semantic knowledge acquired from an MRD for language modelling tasks in relation to speech recognition applications. A semantic model of language has been derived using the dictionary definitions in order to compute the semantic association between the words. The model is capable of capturing phenomena of latent semantic dependencies between the words in texts and reducing the language ambiguity by a considerable factor. The results of experiments suggest that the semantic model can improve the word recognition rates in “noisy-channel” applications. This research provides evidence that limited or incomplete knowledge from lexical resources such as MRDs can be useful for domain independent language modelling.

Details

Paper ID
lrec2000-main-265
Pages
N/A
BibKey
demetriou-etal-2000-using
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
N/A
Conference
Second International Conference on Language Resources and Evaluation
Location
Athens, Greece
Date
31 May 2000 2 June 2000

Authors

  • GD

    George Demetriou

  • EA

    Eric Atwell

  • CS

    Clive Souter

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