Semisupervised Learning for Computational Linguistics: Chapman & Hall/CRC Computer Science & Data Analysis
Autor Steven Abneyen Limba Engleză Hardback – 17 sep 2007
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.
Taking an intuitive approach to the material, this lucid book facilitates the application of semisupervised learning methods to natural language processing and provides the framework and motivation for a more systematic study of machine learning.
| Toate formatele și edițiile | Preț | Express |
|---|---|---|
| Paperback (1) | 480.57 lei 6-8 săpt. | |
| CRC Press – 25 sep 2019 | 480.57 lei 6-8 săpt. | |
| Hardback (1) | 1123.24 lei 6-8 săpt. | |
| CRC Press – 17 sep 2007 | 1123.24 lei 6-8 săpt. |
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Specificații
ISBN-13: 9781584885597
ISBN-10: 1584885599
Pagini: 322
Ilustrații: 97 Illustrations, black and white
Dimensiuni: 156 x 234 x 24 mm
Greutate: 0.6 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Computer Science & Data Analysis
ISBN-10: 1584885599
Pagini: 322
Ilustrații: 97 Illustrations, black and white
Dimensiuni: 156 x 234 x 24 mm
Greutate: 0.6 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Computer Science & Data Analysis
Public țintă
Researchers, developers, and students in computational linguistics, machine learning, data mining, statistics, bioinformatics, and security assessment.Cuprins
Introduction. Self-Training and Co-Training. Applications of Self-Training and Co-Training. Classification. Mathematics for Boundary-Oriented Methods. Boundary-Oriented Methods. Clustering. Generative Models. Agreement Constraints. Propagation Methods. Mathematics for Spectral Methods. Spectral Methods. Bibliography.
Index.
Index.
Descriere
This book provides a broad, accessible treatment of the theory and linguistic applications of semisupervised methods. It presents a brief history of the field 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, SVMs, and the null-category noise model. In addition, the book covers clustering, the 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.