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  • © 2012

Entropy Guided Transformation Learning: Algorithms and Applications

  • Detailed explanation of the Entropy Guided Transformation Learning algorithm
  • Detailed explanation of how to create ensembles of ETL classifiers
  • Explains how to apply ETL to four NLP problems
  • Includes supplementary material: sn.pub/extras

Part of the book series: SpringerBriefs in Computer Science (BRIEFSCOMPUTER)

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Table of contents (9 chapters)

  1. Front Matter

    Pages i-xiii
  2. Entropy Guided Transformation Learning: Algorithms

    1. Front Matter

      Pages 1-1
    2. Introduction

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 3-8
    3. Entropy Guided Transformation Learning

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 9-21
    4. ETL Committee

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 23-28
  3. Entropy Guided Transformation Learing: Applications

    1. Front Matter

      Pages 29-29
    2. General ETL Modeling for NLP Tasks

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 31-34
    3. Part-of-Speech Tagging

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 35-41
    4. Phrase Chunking

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 43-49
    5. Named Entity Recognition

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 51-58
    6. Semantic Role Labeling

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 59-69
    7. Conclusions

      • Cícero Nogueira dos Santos, Ruy Luiz Milidiú
      Pages 71-73
  4. Back Matter

    Pages 75-78

About this book

Entropy Guided Transformation Learning: Algorithms and Applications (ETL) presents a machine learning algorithm for classification tasks. ETL generalizes Transformation Based Learning (TBL) by solving the TBL bottleneck: the construction of good template sets. ETL automatically generates templates using Decision Tree decomposition.

The authors describe ETL Committee, an ensemble method that uses ETL as the base learner. Experimental results show that ETL Committee improves the effectiveness of ETL classifiers. The application of ETL is presented to four Natural Language Processing (NLP) tasks: part-of-speech tagging, phrase chunking, named entity recognition and semantic role labeling. Extensive experimental results demonstrate that ETL is an effective way to learn accurate transformation rules, and shows better results than TBL with handcrafted templates for the four tasks. By avoiding the use of handcrafted templates, ETL enables the use of transformation rules to a greater range of tasks.

Suitable for both advanced undergraduate and graduate courses, Entropy Guided Transformation Learning: Algorithms and Applications provides a comprehensive introduction to ETL and its NLP applications.

Authors and Affiliations

  • Universidade de Fortaleza, Fortaleza, Brazil

    Cícero Nogueira Santos

  • Departamento de Informática, Pontifícia Universidade Católica do Rio, Rio de Janeiro, Brazil

    Ruy Luiz Milidiú

Bibliographic Information

Buy it now

Buying options

eBook USD 39.99
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book USD 54.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Other ways to access