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Dynamic Meta-Embeddings for Improved Sentence Representations

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Abstract

While one of the first steps in many NLP systems is selecting what pre-trained word embeddings to use, we argue that such a step is better left for neural networks to figure out by themselves. To that end, we introduce dynamic meta-embeddings, a simple yet effective method for the supervised learning of embedding ensembles, which leads to stateof-the-art performance within the same model class on a variety of tasks. We subsequently show how the technique can be used to shed new light on the usage of word embeddings in NLP systems.

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Publication details

DOI
10.18653/v1/d18-1176
OpenAlex
W2963680249
Document type
conference-paper
Language
EN
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