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This book shows the usefulness of counting processes and marked poit processes when dealing with non-parametric and semi-parametric statistical problems.

Produktbeschreibung
This book shows the usefulness of counting processes and marked poit processes when dealing with non-parametric and semi-parametric statistical problems.

Dieser Download kann aus rechtlichen Gründen nur mit Rechnungsadresse in A, B, BG, CY, CZ, D, DK, EW, E, FIN, F, GR, HR, H, IRL, I, LT, L, LR, M, NL, PL, P, R, S, SLO, SK ausgeliefert werden.

Autorenporträt
Torben Martinussen, Royal Veterinary and Agricultural University, Frederiksberg, Denmark / Thomas Scheike, University of Copenhagen, Denmark
Rezensionen
From the reviews: "This book is a welcome addition to the literature on survival analysis for several reasons. The coverage of both multiplicative and, especially, additive models with time-varying covariates is well beyond that found in other books. There is also more emphasis on model checking than in most books. ... the book is enjoyable to read. ... This book is an important resource for anyone with an interest in survival or event history analysis." (J. F. Lawless, Short Book Reviews, Vol. 26 (2), 2006) "'Dynamic regression models' ... are able to capture time-varying dynamics of covariate effects. ... this book provides a timely summary of the results for topics which are important to practical applications. The readers who are interested in further research in these areas will find the detailed derivations of mathematical results helpful. ... The rich exercises at the end of each chapter make this book an excellent choice as a textbook for an advanced survival analysis course." (Dongsheng Tu, Zentrablatt MATH, Vol. 1096 (22), 2006) "Survival data analysis has been a very active research field for several decades. An important contribution that stimulated the entire field was the counting process formulation ... . that is also used in this monograph. ... There are exercises at the end of each chapter ... . The practical aspects of survival analysis are illustrated with a set of worked out examples using R. ... The book is primarily aimed at the biostatistical community ... . It is well written ... ." (Rainer Schlittgen, Statistical Papers, Vol. 48 (3), 2007) "The book under review is a welcome addition to existing excellent books on survival analysis ... . It should be a useful reference to both applied as well as theoretical bio-statisticians. Perhaps it could also be used as a text for a graduate level course in survival analysis." (Subhash C. Kochar, Mathematical Reviews, Issue 2007 b) "This book is aimed at advanced graduate students and statistical researchers in statistics/biostatistics departments. ... The inspiration and influence of Andersen et al. (1993) on the presentation style, terminology, and approach to the subject are very visible in many parts of the book. ... In summary, this book definitely deserves a place in the collection of any serious survival analyst. It is also recommended to theoretically sound data analysts interested in dynamic and semiparametric survival models beyond the class of multiplicative models." (Debajyoti Sinha, Journal of the American Statistical Association, Vol. 102 (480), 2007)…mehr