Inductive Inference for Large Scale Text Classification

Inductive Inference for Large Scale Text Classification
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Kernel Approaches and Techniques
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Artikel-Nr:
9783642261343
Veröffentl:
2012
Einband:
Paperback
Erscheinungsdatum:
14.03.2012
Seiten:
176
Autor:
Bernadete Ribeiro
Gewicht:
277 g
Format:
235x155x10 mm
Serie:
255, Studies in Computational Intelligence
Sprache:
Englisch
Beschreibung:

Text classification is becoming a crucial task to analysts in different areas. In the last few decades, the production of textual documents in digital form has increased exponentially. Their applications range from web pages to scientific documents, including emails, news and books. Despite the widespread use of digital texts, handling them is inherently difficult - the large amount of data necessary to represent them and the subjectivity of classification complicate matters.

This book gives a concise view on how to use kernel approaches for inductive inference in large scale text classification; it presents a series of new techniques to enhance, scale and distribute text classification tasks. It is not intended to be a comprehensive survey of the state-of-the-art of the whole field of text classification. Its purpose is less ambitious and more practical: to explain and illustrate some of the important methods used in this field, in particular kernel approaches and techniques.

This book explains and illustrates key methods in inductive inference in large scale text classification, especially kernel approaches. It covers a series of new techniques to enhance, scale and distribute text classification tasks.
Presents recent research in inductive inference for Large Scale Text Classification
Fundamentals.- Background on Text Classification.- Kernel Machines for Text Classification.- Approaches and techniques.- Enhancing SVMs for Text Classification.- Scaling RVMs for Text Classification.- Distributing Text Classification in Grid Environments.- Framework for Text Classification.

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