Publication | Closed Access
Semantic Kernels for Text Classification Based on Topological Measures of Feature Similarity
67
Citations
8
References
2006
Year
EngineeringMachine LearningCorpus LinguisticsText MiningFeature SimilarityNatural Language ProcessingTerm SimilarityInformation RetrievalData ScienceData MiningPattern RecognitionDocument ClassificationTopological MeasuresText ClassificationSemantic KernelsAutomatic ClassificationSemantic LearningKnowledge DiscoveryIntelligent ClassificationComputer ScienceDistributional SemanticsSemantic Smoothing KernelsLinguisticsKernel MethodSemantic Similarity
In this paper we propose a new approach to the design of semantic smoothing kernels for text classification. These kernels implicitly encode a superconcept expansion in a semantic network using well-known measures of term similarity. The experimental evaluation on two different datasets indicates that our approach consistently improves performance in situations of little training data and data sparseness.
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