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Regression Methods in Biostatistics: Linear, Logistic, Survival, and Repeated Measures Models

181,48 
181,48 
2025-07-31 181.4800 InStock
Nemokamas pristatymas į paštomatus per 18-22 darbo dienų užsakymams nuo 19,00 

Knygos aprašymas

This new book provides a unified, in-depth, readable introduction to the multipredictor regression methods most widely used in biostatistics: linear models for continuous outcomes, logistic models for binary outcomes, the Cox model for right-censored survival times, repeated-measures models for longitudinal and hierarchical outcomes, and generalized linear models for counts and other outcomes. Treating these topics together takes advantage of all they have in common. The authors point out the many-shared elements in the methods they present for selecting, estimating, checking, and interpreting each of these models. They also show that these regression methods deal with confounding, mediation, and interaction of causal effects in essentially the same way. The examples, analyzed using Stata, are drawn from the biomedical context but generalize to other areas of application. While a first course in statistics is assumed, a chapter reviewing basic statistical methods is included. Some advanced topics are covered but the presentation remains intuitive. A brief introduction to regression analysis of complex surveys and notes for further reading are provided.

Informacija

Autorius: Eric Vittinghoff, Charles E. Mcculloch, Stephen C. Shiboski, David V. Glidden,
Serija: Statistics for Biology and Health
Leidėjas: Springer US
Išleidimo metai: 2011
Knygos puslapių skaičius: 532
ISBN-10: 1461413524
ISBN-13: 9781461413523
Formatas: Knyga kietu viršeliu
Kalba: Anglų
Žanras: Epidemiology and Medical statistics

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