Text Mining

Text Mining

EnglishEbook
Weiss, Sholom M.
Springer New York
EAN: 9780387345550
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Detailed information

Data mining is a mature technology. The prediction problem, looking for predictive patterns in data, has been widely studied. Strong me- ods are available to the practitioner. These methods process structured numerical information, where uniform measurements are taken over a sample of data. Text is often described as unstructured information. So, it would seem, text and numerical data are different, requiring different methods. Or are they? In our view, a prediction problem can be solved by the same methods, whether the data are structured - merical measurements or unstructured text. Text and documents can be transformed into measured values, such as the presence or absence of words, and the same methods that have proven successful for pred- tive data mining can be applied to text. Yet, there are key differences. Evaluation techniques must be adapted to the chronological order of publication and to alternative measures of error. Because the data are documents, more specialized analytical methods may be preferred for text. Moreover, the methods must be modi?ed to accommodate very high dimensions: tens of thousands of words and documents. Still, the central themes are similar.
EAN 9780387345550
ISBN 0387345558
Binding Ebook
Publisher Springer New York
Publication date January 8, 2010
Language English
Country Uruguay
Authors Damerau, Fred; Indurkhya, Nitin; Weiss, Sholom M.; Zhang, Tong
Series Computer Science
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