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Bayesian Analysis In Natural Language Processing eBook

de Shay Cohen
idioma: inglês
Editor: Springer International Publishing, novembro de 2022 ‧
119,24€
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Ebook para ADE

Natural language processing (NLP) went through a profound transformation in the mid-1980s when it shifted to make heavy use of corpora and data-driven techniques to analyze language. Since then, the use of statistical techniques in NLP has evolved in several ways. One such example of evolution took place in the late 1990s or early 2000s, when full-fledged Bayesian machinery was introduced to NLP. This Bayesian approach to NLP has come to accommodate for various shortcomings in the frequentist approach and to enrich it, especially in the unsupervised setting, where statistical learning is done without target prediction examples.

We cover the methods and algorithms that are needed to fluently read Bayesian learning papers in NLP and to do research in the area. These methods and algorithms are partially borrowed from both machine learning and statistics and are partially developed "in-house" in NLP. We cover inference techniques such as Markov chain Monte Carlo sampling and variational inference, Bayesian estimation, and nonparametric modeling. We also cover fundamental concepts in Bayesian statistics such as prior distributions, conjugacy, and generative modeling. Finally, we cover some of the fundamental modeling techniques in NLP, such as grammar modeling and their use with Bayesian analysis.

Bayesian Analysis In Natural Language Processing

de Shay Cohen

Propriedade Descrição
ISBN: 9783031021619
Editor: Springer International Publishing
Data de Lançamento: novembro de 2022
Idioma: Inglês
Tipo de produto: eBook
Formato e Compatibilidade: PDF para ADE
Coleção: Synthesis Lectures On Human Language Technologies
Classificação Temática: eBooks em Inglês > Informática > Outras Aplicações
eBooks em Inglês > Literatura > Linguística e Filologia
EAN: 9783031021619

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