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Semisupervised Learning for Computational Linguistics (Chapman & Hall/CRC Computer Science & Data Analysis) [Hardcover]

Steven Abney (Author)
4.5 out of 5 stars  See all reviews (2 customer reviews)

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Book Description

September 17, 2007 1584885599 978-1584885597 1
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.

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.

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About the Author

University of Michigan, Ann Arbor, USA

Product Details

  • Hardcover: 320 pages
  • Publisher: Chapman and Hall/CRC; 1 edition (September 17, 2007)
  • Language: English
  • ISBN-10: 1584885599
  • ISBN-13: 978-1584885597
  • Product Dimensions: 9.6 x 6.4 x 0.9 inches
  • Shipping Weight: 1.3 pounds (View shipping rates and policies)
  • Average Customer Review: 4.5 out of 5 stars  See all reviews (2 customer reviews)
  • Amazon Best Sellers Rank: #503,440 in Books (See Top 100 in Books)

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3 of 3 people found the following review helpful:
5.0 out of 5 stars A resource every NLP Analyst should own., May 7, 2009
This review is from: Semisupervised Learning for Computational Linguistics (Chapman & Hall/CRC Computer Science & Data Analysis) (Hardcover)
We're finally getting to the point where Computational Linguistics will start to see their titles in the titles. In the past one would have to piggyback off of another discipline to get the information they needed. This book is a must for anyone learning anything statistical in the NLP field. I took a class which covered nearly all of the topics in this book just months before the book came out. I struggled through some of the concepts and spent many a sleepless night going over an academic paper at least one more time getting those concepts down. On the last day of class the professor suggested this new title. I went and bought and most of the hard stuff I had struggled with solidified in my mind. A great feeling! I wish it was the textbook.

About the book itself; it does assume the reader is pretty math savvy. Some sections claim they are not breaking down a proof even though the only thing on the page are equations. But on the flip side, Abney does a fantastic job of grounding the terminology before launching into that. The first few chapters are very informative and patient with the reader. It is also excellent if you just need a refresher on any of these topics.
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1 of 1 people found the following review helpful:
4.0 out of 5 stars Not only for NLP domain, July 27, 2011
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This review is from: Semisupervised Learning for Computational Linguistics (Chapman & Hall/CRC Computer Science & Data Analysis) (Hardcover)
The book is about introduction to semi-supervised methods from machine learning applied on text processing. Author did a great job introducing the topics of machine learning and goes chapter by chapter to the goal - the need and motivation for semi-supervised learning.

A nice thing is that much of mathematical rigor is removed but instead replaced by (quite lengthy) explanations. Many machine learning concepts are introduced on the fly which is great for students new to the field.

Unsupervised and Supervised methods are presented gently and in a clear way such that for somebody with not so strong linear algebra will be still able to grasp.

On the downside, his english is bit hard to read. I am used to reading scientific publications and general english texts, but his language sometimes forced me to re-read his sentences two or three times to understand his explanations.
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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
spectral methods, seed classifier, guessing detector, transductive learner, conditional accuracy, semisupervised learning, label propagation algorithm, semisupervised case, unlabeled training data, unlabeled instances, semisupervised setting, whitened space, slack points, unlabeled data, voting classifier, minimizing divergence, disagreement rate, linear separator, taxonomic inference, pseudo relevance feedback, unlabeled nodes, averaging property, transductive learning, initial classifier, agreement constraints
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Naive Bayes, Boundary-Oriented Methods, Propagation Methods, Generative Models, Hidden Markov Models, Support Vector Machines
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Front Cover | Table of Contents | First Pages | Index | Back Cover | Surprise Me!
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