Using Information Content to Evaluate Semantic Similarity in a Taxonomy

Computer Science – Computation and Language

Scientific paper

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6 pages, 2 postscript figures, uses ijcai95.sty

Scientific paper

This paper presents a new measure of semantic similarity in an IS-A taxonomy, based on the notion of information content. Experimental evaluation suggests that the measure performs encouragingly well (a correlation of r = 0.79 with a benchmark set of human similarity judgments, with an upper bound of r = 0.90 for human subjects performing the same task), and significantly better than the traditional edge counting approach (r = 0.66).

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