Structured regression for categorical data
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Author
Publication
2011 - Cambridge University Press, Cambridge, England
Language
English
Word Count
140,250 words, Guess
Page Count
561 pages
Identifiers
- ISBN-139781107009653
- ISBN-101107009650
- Library of Congress Control Number2011000390
- OCLC Control Number700468349
- Better World Books9781107009653
and 1 more
- Open LibraryOL25076742M
Classifications
- DDC519.5/36
- LCCQA278.2 .T88 2011
- LCCQA278.2 .T88 2012
Description
"Categorical data play an important role in many statistical analyses. They appear whenever the outcomes of one or more categorical variables are observed. A categorical variable can be seen as a variable for which the possible values form a set of categories, which can be finite or, in the case of count data, infinite. These categories can be records of answers (yes/no) in a questionnaire, diagnoses like normal/abnormal resulting from a medical examination or choices of brands in consumer behaviour. Data of this type are common in all sciences that use quantitative research tools, for example social sciences, economics, biology, genetics and medicine, but also engineering and agriculture. In some applications all of the observed variables are categorical and the resulting data can be summarized in contingency tables which contain the counts for combinations of possible outcomes. In other applications categorical data are collected together with continuous variables and one wants to investigate the dependence of one or more categorical variables on continuous and/or categorical variables"--
Subjects
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