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Semisupervised Learning For Computational Linguistics

1ª Edição - 2007320 páginasCrc Presspt
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Sinopse

The rapid advancement in the theoretical understanding of statistical and machine learning methods for semisupervised learning has made it difficult for nonspecialists to keep up to date in the field. Providing a broad, accessible treatment of the theory as well as linguistic applications, Semisupervised Learning for Computational Linguistics offers self-contained coverage of semisupervised methods that includes background material on supervised and unsupervised learning. The book presents a brief history of semisupervised learning and its place in the spectrum of learning methods before moving on to discuss well-known natural language processing methods, such as self-training and co-training. It then centers on machine learning techniques, including the boundary-oriented methods of perceptrons, boosting, support vector machines (SVMs), and the null-category noise model. In addition, the book covers clustering, the expectation-maximization (EM) algorithm, related generative methods, and agreement methods. It concludes with the graph-based method of label propagation as well as a detailed discussion of spectral methods.

Detalhes do livro

Título
Semisupervised Learning For Computational Linguistics
Autor
Steven Abney
Editora
Crc Press
Ano
2026
Páginas
320 páginas
Idioma
PT
ISBN-13
9781584885597
Edição
1ª Edição - 2007
Formato
Hardcover

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