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This article presents a measure of semantic similarity in an IS-A taxonomy based on the notion of shared information content. Experimental evaluation against a benchmark set of human similarity judgments demonstrates that the measure performs better than the traditional edge-counting approach. The article presents algorithms that take advantage of taxonomic similarity in resolving syntactic and semantic ambiguity, along with experimental results demonstrating their effectiveness.
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Philip Resnik
Center for Applied Linguistics
Journal of Artificial Intelligence Research
University of Maryland, College Park
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Philip Resnik (Thu,) studied this question.
synapsesocial.com/papers/69ff7d2e64548b97a42d6a4b — DOI: https://doi.org/10.1613/jair.514