Publication | Open Access
Learning alignments and leveraging natural logic
96
Citations
6
References
2007
Year
Unknown Venue
EngineeringTextual InferenceNatural LogicEntailment (Linguistics)Textual EntailmentSemantic WebCorpus LinguisticsText MiningNatural Language ProcessingData ScienceComputational LinguisticsLanguage StudiesDeeper Semantic AlignmentsMachine TranslationNlp TaskKnowledge DiscoveryComputer ScienceSymbolic Machine LearningInductive Logic ProgrammingSemantic ParsingAutomated ReasoningLinguisticsSemantic Representation
We describe an approach to textual inference that improves alignments at both the typed dependency level and at a deeper semantic level. We present a machine learning approach to alignment scoring, a stochastic search procedure, and a new tool that finds deeper semantic alignments, allowing rapid development of semantic features over the aligned graphs. Further, we describe a complementary semantic component based on natural logic, which shows an added gain of 3.13% accuracy on the RTE3 test set.
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