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A First Course in Causal Inference

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A First Course in Causal Inference Synopsis

The past decade has witnessed an explosion of interest in research and education in causal inference, due to its wide applications in biomedical research, social sciences, artificial intelligence etc. This textbook, based on the author's course on causal inference at UC Berkeley taught over the past seven years, only requires basic knowledge of probability theory, statistical inference, and linear and logistic regressions. It assumes minimal knowledge of causal inference, and reviews basic probability and statistics in the appendix. It covers causal inference from a statistical perspective and includes examples and applications from biostatistics and econometrics.

Key Features:

  • All R code and data sets available at Harvard Dataverse.
  • Solutions manual available for instructors upon request from the author.
  • Includes over 100 exercises.

This book is suitable for an advanced undergraduate or graduate-level course on causal inference, or postgraduate and PhD-level course in statistics and biostatistics departments.

About This Edition

ISBN: 9781032758626
Publication date:
Author: Peng Ding
Publisher: Chapman & Hall/CRC an imprint of CRC Press
Format: Hardback
Pagination: 422 pages
Series: Chapman & Hall/CRC Texts in Statistical Science
Genres: Stochastics
Research methods: general

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