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Can I read Model Selection and Inference : A Practical Information-Theoretic Approach on EtoBox?
Model Selection and Inference : A Practical Information-Theoretic Approach by Kenneth P. Burnham, David R. Anderson (auth.) is a nonfiction available to read on EtoBox.
What is Model Selection and Inference : A Practical Information-Theoretic Approach about?
We wrote this book to introduce graduate students and research workers in var ious scientific disciplines to the use of information-theoretic approaches in the analysis of empirical data. In its fully developed form, the information-theoretic approach allows inference based on more than one model (including estimates of unconditional precision); in its initial form, it is useful in selecting a "best" model and ranking the remaining models. We believe that often the critical issue in data analysis is the selection of a good approximating model that best represents the inference supported by the data (an estimated "best approximating model"). In formation theory includes the well-known Kullback-Leibler "distance" between two models (actually, probability distributions), and this represents a fundamental quantity in science. In 1973, Hirotugu Akaike derived an estimator of the (relative) Kullback-Leibler distance based on Fisher's maximized log-likelihood. His mea sure, now called Akaike 's information criterion (AIC), provided a new paradigm for model selection in the analysis of empirical data. His approach, with a funda mental link to information theory, is relatively simple an
Who reads Model Selection and Inference : A Practical Information-Theoretic Approach?
It is typically read by self-directed learners exploring a subject in depth.
Common subject areas: history, science, philosophy, social sciences.
- Author
- Kenneth P. Burnham, David R. Anderson (auth.)
- Publisher
- Springer New York : Imprint : Springer
- Published
- 1998
- Language
- EN
- ISBN
- 9781475729191
- Category
- nonfiction
- Subjects
- Mathematics, Science, Biology
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