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Computational Terminology : Exploring Bilingual and Monolingual Term Extraction

Foo, Jody, 1979- (author)
Linköpings universitet,NLPLAB - Laboratoriet för databehandling av naturligt språk,Tekniska högskolan
Merkel, Magnus, Docent (thesis advisor)
Linköpings universitet,NLPLAB - Laboratoriet för databehandling av naturligt språk,Tekniska högskolan
Ahrenberg, Lars, Docent (thesis advisor)
Linköpings universitet,NLPLAB - Laboratoriet för databehandling av naturligt språk,Tekniska högskolan
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Kokkinakis, Dimitrios, Docent (opponent)
Department of Swedish, Gothenburg University
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 (creator_code:org_t)
ISBN 9789175199443
Linköping : Linköping University Electronic Press, 2012
English 68 s.
Series: Linköping Studies in Science and Technology. Thesis, 0280-7971 ; 1523
  • Licentiate thesis (other academic/artistic)
Abstract Subject headings
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  • Terminologies are becoming more important to modern day society as technology and science continue to grow at an accelerating rate in a globalized environment. Agreeing upon which terms should be used to represent which concepts and how those terms should be translated into different languages is important if we wish to be able to communicate with as little confusion and misunderstandings as possible.Since the 1990s, an increasing amount of terminology research has been devoted to facilitating and augmenting terminology-related tasks by using computers and computational methods. One focus for this research is Automatic Term Extraction (ATE).In this compilation thesis, studies on both bilingual and monolingual ATE are presented. First, two publications reporting on how bilingual ATE using the align-extract approach can be used to extract patent terms. The result in this case was 181,000 manually validated English-Swedish patent terms which were to be used in a machine translation system for patent documents. A critical component of the method used is the Q-value metric, presented in the third paper, which can be used to rank extracted term candidates (TC) in an order that correlates with TC precision. The use of Machine Learning (ML) in monolingual ATE is the topic of the two final contributions. The first ML-related publication shows that rule induction based ML can be used to generate linguistic term selection patterns, and in the second ML-related publication, contrastive n-gram language models are used in conjunction with SVM ML to improve the precision of term candidates selected using linguistic patterns.

Subject headings

NATURVETENSKAP  -- Data- och informationsvetenskap -- Språkteknologi (hsv//swe)
NATURAL SCIENCES  -- Computer and Information Sciences -- Language Technology (hsv//eng)

Keyword

terminology
automatic term extraction
automatic term recognition
computational terminology
terminology management

Publication and Content Type

vet (subject category)
lic (subject category)

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