Doing Meta-Analysis with R

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Doing Meta-Analysis with R

A Hands-On Guide

Psychological methodology Probability and statistics

Authors: Mathias Harrer, Pim Cuijpers, Toshi Furukawa, David Ebert

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Language: English

Published by: Chapman and Hall/CRC

Published on: 14th September 2021

Format: LCP-protected ePub

Size: 19 Mb

ISBN: 9781000435719


Doing Meta-Analysis with R: A Hands-On Guide

Serves as an accessible introduction on how meta-analyses can be conducted in R. Essential steps for meta-analysis are covered, including calculation and pooling of outcome measures, forest plots, heterogeneity diagnostics, subgroup analyses, meta-regression, methods to control for publication bias, risk of bias assessments and plotting tools. Advanced but highly relevant topics such as network meta-analysis, multi-three-level meta-analyses, Bayesian meta-analysis approaches and SEM meta-analysis are also covered. A companion R package, dmetar, is introduced at the beginning of the guide. It contains data sets and several helper functions for the meta and metafor package used in the guide.

The programming and statistical background covered in the book are kept at a non-expert level, making the book widely accessible.

Features

Contains two introductory chapters on how to set up an R environment and do basic imports/manipulations of meta-analysis data, including exercises

Describes statistical concepts clearly and concisely before applying them in R

Includes step-by-step guidance through the coding required to perform meta-analyses, and a companion R package for the book

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