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paper

Incorporating Both Distributional and Relational Semantics in Word Representations

arXiv:1412.4369

Abstract

We investigate the hypothesis that word representations ought to incorporate both distributional and relational semantics. To this end, we employ the Alternating Direction Method of Multipliers (ADMM), which flexibly optimizes a distributional objective on raw text and a relational objective on WordNet. Preliminary results on knowledge base completion, analogy tests, and parsing show that word representations trained on both objectives can give improvements in some cases.

This is the long version of a short paper accepted as a workshop contribution at ICLR2015