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      Distributional semantics beyond words: Supervised learning of analogy and paraphrase

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          Abstract

          There have been several efforts to extend distributional semantics beyond individual words, to measure the similarity of word pairs, phrases, and sentences (briefly, tuples; ordered sets of words, contiguous or noncontiguous). One way to extend beyond words is to compare two tuples using a function that combines pairwise similarities between the component words in the tuples. A strength of this approach is that it works with both relational similarity (analogy) and compositional similarity (paraphrase). However, past work required hand-coding the combination function for different tasks. The main contribution of this paper is that combination functions are generated by supervised learning. We achieve state-of-the-art results in measuring relational similarity between word pairs (SAT analogies and SemEval~2012 Task 2) and measuring compositional similarity between noun-modifier phrases and unigrams (multiple-choice paraphrase questions).

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          Similarity of Semantic Relations

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            Corpus-based Learning of Analogies and Semantic Relations

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              A uniform approach to analogies, synonyms, antonyms, and associations

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                Author and article information

                Journal
                18 October 2013
                Article
                1310.5042
                c32044aa-851b-4b2f-bfef-1c2bdd95b793

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                Transactions of the Association for Computational Linguistics (TACL), (2013), 1, 353-366
                cs.LG cs.AI cs.CL cs.IR

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