Estimating Component Cumulative Distribution Functions in Finite Mixture Models

We propose a method of estimating component distribution functions (cdfs) in finite mixture distributions without specifying a parametric form on the true underlying cdfs. As a result, we develop estimators of the component parameters based on these estimated cdfs. This method requires a vector of o...

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Published inCommunications in statistics. Theory and methods Vol. 33; no. 9; pp. 2075 - 2086
Main Authors Elmore, Ryan T., Hettmansperger, Thomas P., Thomas, Hoben
Format Journal Article
LanguageEnglish
Published Philadelphia, PA Taylor & Francis Group 31.12.2004
Taylor & Francis
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ISSN0361-0926
1532-415X
DOI10.1081/STA-200026574

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Abstract We propose a method of estimating component distribution functions (cdfs) in finite mixture distributions without specifying a parametric form on the true underlying cdfs. As a result, we develop estimators of the component parameters based on these estimated cdfs. This method requires a vector of observations on each subject and involves discretizing the original data into multinomial bins. This results in a mixture of multinomial distributions which has the same mixing proportions as the original mixture. The methods are illustrated on a data set from cognitive psychology.
AbstractList We propose a method of estimating component distribution functions (cdfs) in finite mixture distributions without specifying a parametric form on the true underlying cdfs. As a result, we develop estimators of the component parameters based on these estimated cdfs. This method requires a vector of observations on each subject and involves discretizing the original data into multinomial bins. This results in a mixture of multinomial distributions which has the same mixing proportions as the original mixture. The methods are illustrated on a data set from cognitive psychology.
Author Hettmansperger, Thomas P.
Thomas, Hoben
Elmore, Ryan T.
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Cites_doi 10.1214/aos/1046294462
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10.1111/1467-9868.00266
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Keywords Mixed distribution
Statistical method
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Multinomial distribution
Cognitive psychology
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Snippet We propose a method of estimating component distribution functions (cdfs) in finite mixture distributions without specifying a parametric form on the true...
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SubjectTerms Applications
Biology, psychology, social sciences
Cut-point model
Distribution theory
Empirical distribution function
Exact sciences and technology
Mathematics
Moment estimation
Multinomial mixture
Primary 62
Probability and statistics
Sciences and techniques of general use
Secondary 62G, 62G99
Statistics
Title Estimating Component Cumulative Distribution Functions in Finite Mixture Models
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