TUbilio (Technical University of Darmstadt) · 2013 · 11 citations · 18 references
EngineeringSemanticsSemantic WebCorpus LinguisticsWord Sense InductionText MiningApplied LinguisticsNatural Language ProcessingInformation RetrievalData ScienceComputational LinguisticsLanguage EngineeringLanguage StudiesMachine TranslationEntity DisambiguationNlp TaskKnowledge DiscoveryTerminology ExtractionDistributional SemanticsDkpro WsdSense InventoryLinguisticsWord-sense DisambiguationSemantic Representation
Implementations of word sense disambiguation (WSD) algorithms tend to be tied to a particular test corpus format and sense inventory. This makes it difficult to test their performance on new data sets, or to compare them against past algorithms implemented for different data sets. In this paper we present DKPro WSD, a freely licensed, general-purpose framework for WSD which is both modular and extensible. DKPro WSD abstracts the WSD process in such a way that test corpora, sense inventories, and algorithms can be freely swapped. Its UIMA-based architecture makes it easy to add support for new resources and algorithms. Related tasks such as word sense induction and entity linking are also supported.
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