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Mathématiques

Causal inference for statistics, social, and biomedical sciences

Guido W Imbens

Most questions in social and biomedical sciences are causal in nature: what would happen to individuals, or to groups, if part of their environment were changed ' In this groundbreaking text, two world-renowned experts present statistical methods for studying such questions. This book starts with the notion of potential outcomes, each corresponding to the outcome that would be realized if a subject were exposed to a particular treatment or regime. In this approach, causal effects are comparisons of such potential outcomes. The fundamental problem of causal inference is that we can only observe one of the potential outcomes for a particular subject. The authors discuss how randomized experiments allow us to assess causal effects and then turn to observational studies. They lay out the assumptions needed for causal inference and describe the leading analysis methods, including, matching, propensity-score methods, and instrumental variables. Many detailed applications are included, with special focus on practical aspects for the empirical researcher

Description available in French only

Not for loan1 copy

Publication

ISBN
978-0-521-88588-1
Language
English
Place of publication
New York
Publication year
2015

Library details

Dewey classification
MATH-02-163
Call number
MATH-02-163/01
Physical description
1 vol. (XIX-625 p.)
Dimensions
26 cm

Subjects

Contributors

Copies

MATH-02-163/01Not for loan
Barcode:
9958
Status:
Exclu du prêt
section:
Mathématique
location:
BSNV
notOnLoanCandidate:
1

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