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J. H. B. Kemperman | Akateeminen Kirjakauppa

COMPARISONS OF STOCHASTIC MATRICES WITH APPLICATIONS IN INFORMATION THEORY, STATISTICS, ECONOMICS AND POPULATION SCIENCES

Comparisons of Stochastic Matrices with Applications in Information Theory, Statistics, Economics and Population Sciences
Joel E. Cohen; J. H. B. Kemperman; Gheorghe Zbăganu
Birkhauser Boston Inc (1998)
Kovakantinen kirja
97,90
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ostoskoriin kpl
Siirry koriin
Comparisons of Stochastic Matrices with Applications in Information Theory, Statistics, Economics and Population Sciences
97,90 €
Birkhauser Boston Inc
Sivumäärä: 158 sivua
Asu: Kovakantinen kirja
Painos: 1998
Julkaisuvuosi: 1998, 29.09.1998 (lisätietoa)
Kieli: Englanti
The focus of this monograph is on generalizing the notion of variation in a set of numbers to variation in a set of probability distributions.  The authors collect some known ways of comparing stochastic matrices in the context of information theory, statistics, economics, and population sciences.  They then generalize these comparisons, introduce new comparisons, and establish the relations of implication or equivalence among sixteen of these comparisons.  Some of the possible implications among these comparisons remain open questions.  The results in this book establish a new field of investigation for both mathematicians and scientific users interested in the variations among multiple probability distributions.
The work is divided into two parts.  The first deals with finite stochastic matrices, which may be interpreted as collections of discrete probability distributions.  The first part is presented in a fairly elementary mathematical setting. The introduction provides sketches of applications of concepts and methods to discrete memory-less channels in information theory, to the design and comparison of experiments in statistics, to the measurement of inequality in economics, and to various analytical problems in population genetics, ecology, and demography.  Part two is more general and entails more difficult analysis involving Markov kernels.  Here, many results of the first part are placed in a more general setting, as required in more sophisticated applications.
A great strength of this text is the resulting connections among ideas from diverse fields: mathematics, statistics, economics, and population biology.  In providing this array of new tools and concepts, the work will appeal to the practitioner.  At the same time, it will serve as an excellent resource for self-study of for a graduate seminar course, as well as a stimulus to further research.

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Tilaustuote | Arvioimme, että tuote lähetetään meiltä noin 4-5 viikossa | Tilaa jouluksi viimeistään 27.11.2024
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Comparisons of Stochastic Matrices with Applications in Information Theory, Statistics, Economics and Population Scienceszoom
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