Statistical Analysis of Microbiome Data with R: ICSA Book Series in Statistics
Autor Yinglin Xia, Jun Sun, Ding-Geng Chenen Limba Engleză Hardback – 20 oct 2018
The book also discusses recent developments in statistical modelling and data analysis in microbiome research, as well as the latest advances in next-generation sequencing and big data in methodological development and applications. This timely book will greatly benefit all readers involved in microbiome, ecology and microarray data analyses, as well as other fields of research.
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Specificații
ISBN-13: 9789811315336
ISBN-10: 9811315337
Pagini: 496
Ilustrații: XXIII, 505 p. 84 illus., 67 illus. in color.
Dimensiuni: 155 x 235 x 32 mm
Greutate: 0.92 kg
Ediția:1st ed. 2018
Editura: Springer Nature Singapore
Colecția Springer
Seria ICSA Book Series in Statistics
Locul publicării:Singapore, Singapore
ISBN-10: 9811315337
Pagini: 496
Ilustrații: XXIII, 505 p. 84 illus., 67 illus. in color.
Dimensiuni: 155 x 235 x 32 mm
Greutate: 0.92 kg
Ediția:1st ed. 2018
Editura: Springer Nature Singapore
Colecția Springer
Seria ICSA Book Series in Statistics
Locul publicării:Singapore, Singapore
Cuprins
Chapter 1: Introduction to R, RStudio and ggplot2.- Chapter 2: What are Microbiome Data?.- Chapter 3: Bioinformatic and Statistical Analyses of Microbiome Data.- Chapter 4: Power and Sample Size Calculation in Hypothesis Testing Microbiome Data.- Chapter 5: Microbiome Data Management.- Chapter 6: Exploratory Analysis of Microbiome Data.- Chapter 7: Comparisons of Diversities, OTUs and Taxa among Groups.- Chapter 8: Community Composition Study.- Chapter 9: Modeling Over-dispersed Microbiome Data.- Chapter 10: Linear Regression Modeling metadata.- Chapter 11: Modeling Zero-Inflated Microbiome Data.
Recenzii
“Statistical Analysis of Microbiome Data With R represents a very good foundational resource for bioinformaticians and statisticians interested in this emerging area of research.” (Kim-Anh Lê Cao, Biometrical Journal, Vol. 61, 2019)
Textul de pe ultima copertă
This unique book addresses the statistical modelling and analysis of microbiome data using cutting-edge R software. It includes real-world data from the authors’ research and from the public domain, and discusses the implementation of R for data analysis step by step. The data and R computer programs are publicly available, allowing readers to replicate the model development and data analysis presented in each chapter, so that these new methods can be readily applied in their own research.
The book also discusses recent developments in statistical modelling and data analysis in microbiome research, as well as the latest advances in next-generation sequencing and big data in methodological development and applications. This timely book will greatly benefit all readers involved in microbiome, ecology and microarray data analyses, as well as other fields of research.
The book also discusses recent developments in statistical modelling and data analysis in microbiome research, as well as the latest advances in next-generation sequencing and big data in methodological development and applications. This timely book will greatly benefit all readers involved in microbiome, ecology and microarray data analyses, as well as other fields of research.
Caracteristici
Written by experts actively engaged in the field Includes timely discussions and presentations on methodological development in microbiome studies and real-world applications Includes data and computer programs that are publicly available, allowing readers to replicate the statistical analyses Offers a framework for analysing microbiome data