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2019 | OriginalPaper | Buchkapitel

Lexical Function Identification Using Word Embeddings and Deep Learning

verfasst von : Arturo Hernández-Miranda, Alexander Gelbukh, Olga Kolesnikova

Erschienen in: Advances in Soft Computing

Verlag: Springer International Publishing

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Abstract

In this work, we report the results of our experiments on the task of distinguishing the semantics of verb-noun collocations in a Spanish corpus. This semantics was represented by four lexical functions of the Meaning-Text Theory. Each lexical function specifies a certain universal semantic concept found in any natural language. Knowledge of collocation and its semantic content is important for natural language processing, as collocation comprises the restrictions on how words can be used together. We experimented with a combination of GloVe word embeddings as a recent and extended algorithm for vector representation of words and a deep neural architecture, in order to recover most of the context of verb-noun collocations in a meaningful way which could discriminate among lexical functions. Our corpus was a collection of 1,131 Excelsior newspaper issues. As our results showed, the proposed deep neural architecture outperformed state-of-the-art supervised learning methods.

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Metadaten
Titel
Lexical Function Identification Using Word Embeddings and Deep Learning
verfasst von
Arturo Hernández-Miranda
Alexander Gelbukh
Olga Kolesnikova
Copyright-Jahr
2019
DOI
https://doi.org/10.1007/978-3-030-33749-0_7