Simulation and Power Analysis Using R
Book Details
Format
Hardback or Cased Book
Book Series
Chapman & Hall/CRC The R Series
ISBN-10
1032012501
ISBN-13
9781032012506
Publisher
Taylor & Francis Ltd
Imprint
Chapman & Hall/CRC
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Aug 31st, 2026
Print length
227 Pages
Weight
453 grams
Product Classification:
Probability & statisticsProbability and statistics
Ksh 16,550.00
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Primarily aimed at researchers and graduate students of statistics and data science who want to study simulation and/or power analysis. It could be particularly useful for any researcher needing to supply a power analysis for a grant funding proposal. It could be used to teach a special topics course to postgraduate students.
Simulation-based methods are increasingly central to modern applied research, particularly as study designs and statistical models grow more complex. Traditional analytic tools for power analysis and study planning often rely on simplifying assumptions that are difficult to justify in real-world settings. Simulation provides a flexible alternative, allowing researchers to explore design choices, modeling assumptions, and inferential tradeoffs under realistic data-generating processes. Simulation and Power Analysis Using R presents simulation not only as a tool for estimating power, but as a broader framework for study design and causal reasoning. Using applied examples and clear conceptual motivation, the book demonstrates how simulation can inform decisions before data are collected. FeaturesPractical and applied introduction to simulation-based power analysis and study designCoverage of generalized linear models and generalized linear mixed models, including clustered and hierarchical dataExtensions to experimental and quasi-experimental designs such as randomized controlled trials, cluster randomized trials, regression discontinuity, difference-in-differences, and interrupted time seriesStrategies for varying simulation parameters to explore robustness and design tradeoffsMethods for simulating realistic data conditions, including missing data and model misspecificationFully reproducible R code throughout, built around a modular simulation framework using the simglm packageThis book is intended for applied researchers, data scientists, and graduate students in fields such as statistics, education, psychology, public health, and the social sciences. It is particularly well suited for researchers who need to justify study design or power calculations in grant proposals, or who work with complex designs for which standard formulas are inadequate. The book may also be used as a text for graduate courses or advanced seminars on simulation, power analysis, or applied causal inference.
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