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Do cell phones cause cancer? Can a new curriculum increase student achievement? Determining what the real causes of such problems are, and how powerful their effects may be, are central issues in research across various fields of study. Some researchers are highly skeptical of drawing causal conclusions except in tightly controlled randomized experiments, while others discount the threats posed by different sources of bias, even in less rigorous observational studies. Bias and Causation presents a complete treatment of the subject, organizing and clarifying the diverse types of biases into a conceptual framework. The book treats various sources of bias in comparative studies—both randomized and observational—and offers guidance on how they should be addressed by researchers.
Utilizing a relatively simple mathematical approach, the author develops a theory of bias that outlines the essential nature of the problem and identifies the various sources of bias that are encountered in modern research. The book begins with an introduction to the study of causal inference and the related concepts and terminology. Next, an overview is provided of the methodological issues at the core of the difficulties posed by bias. Subsequent chapters explain the concepts of selection bias, confounding, intermediate causal factors, and information bias along with the distortion of a causal effect that can result when the exposure and/or the outcome is measured with error. The book concludes with a new classification of twenty general sources of bias and practical advice on how mathematical modeling and expert judgment can be combined to achieve the most credible causal conclusions.
Throughout the book, examples from the fields of medicine, public policy, and education are incorporated into the presentation of various topics. In addition, six detailed case studies illustrate concrete examples of the significance of biases in everyday research.
Requiring only a basic understanding of statistics and probability theory, Bias and Causation is an excellent supplement for courses on research methods and applied statistics at the upper-undergraduate and graduate level. It is also a valuable reference for practicing researchers and methodologists in various fields of study who work with statistical data.
This book was selected as the 2011 Ziegel Prize Winner in Technometrics for the best book reviewed by the journal.
It is also the winner of the 2010 PROSE Award for Mathematics from The American Publishers Awards for Professional and Scholarly Excellence
Gracefully written by a hand of intelligence and experience, Bias and Causation is a groundbreaking contribution to the statistical community with special value to those whose applications and interests lie in biostatistics, sociology, survey sampling and litigation. This includes those in the lay community who must make decisions on the basis of findings in these areas. Bias and Causation presents a thorough, informative description of causation, as it can only be considered under the statistical umbrella, and a detailed taxonomy of bias and its potential sources. It is a must read and constant reference for those designing survey studies and a reminder of cautions for those who must contend with study results and conclusions. Lessons can be carried over to applications in the physical and engineering sciences.
This is a very ambitious book, which confronts major problems with the conventions of statistically-grounded investigation, especially investigations involving the messy realities of humans. While it is primarily written for the trained statistician, it is accessible in the most important passages to non-statisticians who want to ponder what we mean by causation and how we analyze and determine causation. In a fundamental way,the book is about how we learn about the world,and how the statistics profession has learned, in flawed ways, over the past hundred years how to study the human world. As a means to open up in the reader some pathways to understanding the state of statistically-grounded investigation, it is well worth the price. I don't know how I would have come across such a critique of statistical thinking any other way.
The author comes with a long career in real world applications of statistics, such as in support of litigation.
This is the only... read more
My conclusion: we all want to know about causation in the real world and traditional statistical models (whether Bayesian or frequentist) have been of very little help. This book makes this case very clearly as well as clarifying some long-standing confusions and makes a start on moving us in what I think is the right direction. In elegant prose, the author clarifies the meaning, and limitations, of some of our most technical attempts at defining causality statistically and shows, very clearly, why more than math is needed
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