{Learning Formal Definitions for Snomed CT from Text}

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{Learning Formal Definitions for Snomed CT from Text}

Yue MaYue Ma,  Felix DistelFelix Distel
Yue Ma, Felix Distel
{Learning Formal Definitions for Snomed CT from Text}
Technical Report, Chair of Automata Theory, Institute of Theoretical Computer Science, Technische Universität Dresden, volume 13-03, 2013. LTCS-Report
  • KurzfassungAbstract
    Snomed CT is a widely used medical ontology which is formally expressed in a
     fragment of the Description Logic EL++. The underlying logics allow for
     expressive querying, yet make it costly to maintain and extend the ontology. Existing approaches for ontology generation mostly focus on learning superclass or subclass relations
    and therefore fail to be used to generate Snomed CT  definitions. 
    

    In this paper, we present an approach for the extraction of Snomed CT

     definitions from natural language texts, based on the distance relation extraction approach. By benefiting from a relatively large amount of textual data for the medical domain 
    

    and the rich content of Snomed CT, such an approach comes with the benefit that no manually labelled corpus is required. We also show that the type information for Snomed CT concept is an important feature to be examined for such a system. We test and evaluate the approach

     using two types of texts. Experimental results show that the proposed approach is promising to assist Snomed CT 
    
    development.
  • Bemerkung: Note: See http://lat.inf.tu-dresden.de/research/reports.html.
  • Forschungsgruppe:Research Group: AutomatentheorieAutomata Theory
@techreport{ MaDi-LTCS-13-03,
  address = {Dresden, Germany},
  author = {Yue {Ma} and Felix {Distel}},
  institution = {Chair of Automata Theory, Institute of Theoretical Computer Science, Technische Universit{\"a}t Dresden},
  note = {See http://lat.inf.tu-dresden.de/research/reports.html.},
  number = {13-03},
  title = {{Learning Formal Definitions for Snomed CT from Text}},
  type = {LTCS-Report},
  year = {2013},
}