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  • Produktbild: Handbook of Meta-Analysis
  • Produktbild: Handbook of Meta-Analysis

Handbook of Meta-Analysis

89,99 €

inkl. gesetzl. MwSt., Versandkostenfrei


Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

27.03.2022

Abbildungen

82 SW-Abb., 80 Tabellen

Herausgeber

Christopher H. Schmid + weitere

Verlag

Taylor & Francis

Seitenzahl

572

Maße (L/B/H)

25,4/17,8/3,1 cm

Gewicht

1061 g

Sprache

Englisch

ISBN

978-0-367-53968-9

Beschreibung

Rezension

"Handbook of Meta-Analysis is a most laudable and detailed treatise on meta-analysis. It successfully covers - with gusto and substance - the full range of statistical methodology used in meta-analysis in a statistically rigorous and up-to-date manner, exuding a good balance of theory and applications (with real data and software syntax provided). It provides a comprehensive, coherent, and unified overview of the statistical foundations behind meta-analysis. Crafted by experts on the topic, each chapter is written with lucidity and surgical precision. It is elegantly organized, encyclopedic in breadth and depth, and fluent in exposition on the multidimensional role of meta-analysis: core material (background, systematic review process, data extraction, study-level results, frequent and Bayesian approaches); key extensions (meta-regression, individual data, multivariate meta-analysis, network meta-analysis, model checking, bias); and advances in particular fields of biomedical and social research (control risk regression, survival data, correlation matrices, genetic data, dose-response relationships, diagnostic tests, surrogate endpoints, complex observational data, prognostic models). It is a tour de force, a premier, and an indispensable reference that is highly recommended - and a must for serious researchers and practitioners engaged in meta-analysis. This state-of-the-science handbook is destined to be a classic."
- Joseph C. Cappelleri, PhD, MPH, MS, Executive Director of Biostatistics, Pfizer Inc

"For many researchers in social, medical, life and environmental sciences, it has become an essential part of their activities to synthesize evidence from the body of relevant research. The Handbook of Meta-analysis provides the most comprehensive and up-to-date coverage of the quantitative part of evidence synthesis, i.e., meta-analysis. Therefore, this handbook is a must-have for all researchers who wish to unlock and understand the power and potential of meta-analysis, but also for those who have already found and benefited from it. The authors of this edited volume are an interdisciplinary all-star team of statisticians and methodologists; probably, each of them could have written a textbook on meta-analysis. Here, they introduce both basics and advanced techniques that they have been leading to develop over their career. For many statisticians, a meta-analysis may be just one type of linear models (Chapters 1-11), yet, as this book demonstrates, meta-analyses can come in diverse forms and serve different purposes (see Chapters 14-22). Further, there are specific statistical issues meta-analysis needs to grapple with, such as publication bias (Chapters 12-13). The book ends with a chapter on how to use meta-analysis to plan our future work (Chapter 23) - what all scientists should be doing to reduce research waste and to accelerate scientific progress."
- Shinichi Nakagawa, Professor of Evolutionary Biology and Synthesis, University of New South Wales, Sydney, Australia

"This is an important book on an important subject, covering both theory and application, and it should be valuable to a wide range of readers in statistics and applied fields."
- Andrew Gelman, Columbia University

"...The Handbook of Meta-Analyses is a "must have" resource for: 1) statisticians, other professionals, and students conducting statistical research in meta-analysis; 2) practitioners conducting meta-analyses as part of systematic reviews or otherwise; and 3) educators and students who want to either start, or continue, to learn more about meta-analysis. The breadth and depth of up-to-date coverage of meta-analysis methods, wide range of areas of application, and examples, including online software code and data, is impressive. The contents are weighted towards frequentist strategies, but Bayesian strategies are highlighted in the core materials and revisited elsewhere. The Handbook is a pleasure to read. The editors and other co-authors guide the reader in a cohesive, unified fashion, from the foundational core material through increasingly sophisticated and wider ranging methods and applications. Their tone is conversational, with forwards-and-backwards sign-posting which integrates the contents in a tutorial-like fashion. Statistical notation is used with purpose, without excess, while maintaining statistical rigor in content. An abundance of graphs, figures, and tables reinforce the statistical concepts and methods, and visualize the examples. Both novice and more experienced readers will benefit...The Handbook of Meta-Analysis is a significant contribution which provides a palpable opportunity to improve future decision-making and policy setting."
- Thomas Bradstreet, Appeared in the Journal of Biopharmaceutical Statistics

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

27.03.2022

Abbildungen

82 SW-Abb., 80 Tabellen

Herausgeber

Verlag

Taylor & Francis

Seitenzahl

572

Maße (L/B/H)

25,4/17,8/3,1 cm

Gewicht

1061 g

Sprache

Englisch

ISBN

978-0-367-53968-9

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  • Produktbild: Handbook of Meta-Analysis
  • Produktbild: Handbook of Meta-Analysis
  • 1. Introduction to systematic review and meta-analysis
    2. General themes in meta-analysis
    3. Choice of effect measure and issues in extracting outcome data
    4. Analysis of univariate study-level summary data using normal models
    5. Exact likelihood methods for group-based summaries
    6. Bayesian methods for meta-analysis
    7. Meta-regression
    8. Individual participant data meta-analysis
    9. Multivariate meta-analysis
    10. Network meta-analysis
    11. Model Checking in meta-analysis
    12. Handling internal and external biases: quality and relevance of studies
    13. Publication and outcome reporting bias
    14. Control risk regression
    15. Multivariate meta-analysis of survival proportions
    16. Meta-analysis of correlations, correlation matrices and their functions
    17. The meta-analysis of genetic studies
    18. Meta-analysis of dose-response relationships
    19. Meta-analysis of diagnostic tests
    20. Meta-analytic approach to evaluation of surrogate endpoints
    21. Meta-analysis of epidemiological data, with a focus on individual participant data
    22. Meta-analysis of prediction models
    23. Using meta-analysis to plan further research