Abstract
In this paper, we present an evolution of a novel approach for evaluating semantic similarity in a taxonomy, based on the well-known notion of information content. Such an approach takes into account not only the generic sense of a concept but also its intended sense in a given context. In this work semantic similarity is evaluated according to a refined relatedness measure between the generic sense and the intended sense of a concept, leading to higher correlation values with human judgment with respect to the original proposal.
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Formica, A., & Taglino, F. (2023). SEMANTIC SIMILARITY IN A TAXONOMY BY REFINING THE RELATEDNESS OF CONCEPT INTENDED SENSES. Computing and Informatics, 42(1), 191–209. https://doi.org/10.31577/cai_2023_1_191
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