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Communication Dans Un Congrès Année : 2014

TempoWordNet for Sentence Time Tagging

Résumé

In this paper, we propose to build a temporal ontology, which may contribute to the success of time-related applications. Temporal classifiers are learned from a set of time-sensitive synsets and then applied to the whole WordNet to give rise to TempoWordNet. So, each synset is augmented with its intrinsic temporal value. To evaluate TempoWordNet, we use a semantic vector space representation for sentence temporal classification, which shows that improvements may be achieved with the time-augmented knowledge base against a bag-of-ngrams representation.
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Dates et versions

hal-01074964 , version 1 (23-10-2014)

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Gaël Dias, Mohammed Hasanuzzaman, Stéphane Ferrari, Yann Mathet. TempoWordNet for Sentence Time Tagging. 23rd international conference on World wide web companion, Apr 2014, Seoul, South Korea. pp.Pages 833-838, ⟨10.1145/2567948.2579042⟩. ⟨hal-01074964⟩
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