株式会社極東書店トップ商品一覧Statistical Models Based on Counting Processes. 1st ed. 1993. Corr. 3rd printing 1995.

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Statistical Models Based on Counting Processes.

Statistical Models Based on Counting Processes. 1st ed. 1993. Corr. 3rd printing 1995.

・ISBN 978-0-387-94519-4 paper EUR 179.99

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お気に入り
著者・編者Andersen, Per K. / Borgan, Ornulf / Gill, Richard D. / Keiding, Niels,
シリーズSpringer Series in Statistics
出版社(Springer-Verlag New York Inc., US)
出版年月1995
ページ数784 pp.
言語ENG
ニュース番号<M25-18250>

解説

Modern survival analysis and more general event history analysis may be effectively handled in the mathematical framework of counting processes, stochastic integration, martingale central limit theory and product integration. This book presents this theory, which has been the subject of an intense research activity during the past one-and-a- half decades. The exposition of the theory is integrated with careful presentation of many practical examples, almost exclusively from the authors' own experience, with detailed numerical and graphical illustrations. Statistical Models Based on Counting Processes may be viewed as a research monograph for mathematical statisticians and biostatisticians, although almost all methods are given in concrete detail to be used in practice by other mathematically oriented researchers studying event histories (demographers, econometricians, epidemiologists, actuarial mathematicians, reliabilty engineers and biologists). Much of the material has so far only been available in the journal literature (if at all), and so a wide variety of researchers will find this an invaluable survey of the subject.
"This book is a masterful account of the counting process approach...is certain to be the standard reference for the area, and should be on the bookshelf of anyone interested in event-history analysis." International Statistical Institute Short Book Reviews "...this impressive reference, which contains a a wealth of powerful mathematics, practical examples, and analytic insights, as well as a complete integration of historical developments and recent advances in event history analysis." Journal of the American Statistical Association