Statistical And Computational Methods For Microbiome Multi Omics Data

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Statistical and Computational Methods for Microbiome Multi-Omics Data

Author : Himel Mallick,Vanni Bucci,Lingling An
Publisher : Frontiers Media SA
Page : 170 pages
File Size : 45,7 Mb
Release : 2020-11-19
Category : Science
ISBN : 9782889660919

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Statistical and Computational Methods for Microbiome Multi-Omics Data by Himel Mallick,Vanni Bucci,Lingling An Pdf

This eBook is a collection of articles from a Frontiers Research Topic. Frontiers Research Topics are very popular trademarks of the Frontiers Journals Series: they are collections of at least ten articles, all centered on a particular subject. With their unique mix of varied contributions from Original Research to Review Articles, Frontiers Research Topics unify the most influential researchers, the latest key findings and historical advances in a hot research area! Find out more on how to host your own Frontiers Research Topic or contribute to one as an author by contacting the Frontiers Editorial Office: frontiersin.org/about/contact.

Computational Methods for Microbiome Analysis

Author : Joao Carlos Setubal,Jens Stoye,Bas E. Dutilh
Publisher : Frontiers Media SA
Page : 170 pages
File Size : 47,6 Mb
Release : 2021-02-02
Category : Science
ISBN : 9782889664375

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Computational Methods for Microbiome Analysis by Joao Carlos Setubal,Jens Stoye,Bas E. Dutilh Pdf

Methods for Single-Cell and Microbiome Sequencing Data

Author : Himel Mallick,Lingling An,Mengjie Chen,Pei Wang,Ni Zhao
Publisher : Frontiers Media SA
Page : 129 pages
File Size : 54,5 Mb
Release : 2022-05-31
Category : Science
ISBN : 9782889762804

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Methods for Single-Cell and Microbiome Sequencing Data by Himel Mallick,Lingling An,Mengjie Chen,Pei Wang,Ni Zhao Pdf

Computational methods for microbiome analysis, volume 2

Author : Setubal,Nikos Kyrpides
Publisher : Frontiers Media SA
Page : 223 pages
File Size : 55,7 Mb
Release : 2023-01-04
Category : Science
ISBN : 9782832506400

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Computational methods for microbiome analysis, volume 2 by Setubal,Nikos Kyrpides Pdf

Statistical Analysis of Microbiome Data

Author : Somnath Datta,Subharup Guha
Publisher : Springer Nature
Page : 349 pages
File Size : 48,5 Mb
Release : 2021-10-27
Category : Medical
ISBN : 9783030733513

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Statistical Analysis of Microbiome Data by Somnath Datta,Subharup Guha Pdf

Microbiome research has focused on microorganisms that live within the human body and their effects on health. During the last few years, the quantification of microbiome composition in different environments has been facilitated by the advent of high throughput sequencing technologies. The statistical challenges include computational difficulties due to the high volume of data; normalization and quantification of metabolic abundances, relative taxa and bacterial genes; high-dimensionality; multivariate analysis; the inherently compositional nature of the data; and the proper utilization of complementary phylogenetic information. This has resulted in an explosion of statistical approaches aimed at tackling the unique opportunities and challenges presented by microbiome data. This book provides a comprehensive overview of the state of the art in statistical and informatics technologies for microbiome research. In addition to reviewing demonstrably successful cutting-edge methods, particular emphasis is placed on examples in R that rely on available statistical packages for microbiome data. With its wide-ranging approach, the book benefits not only trained statisticians in academia and industry involved in microbiome research, but also other scientists working in microbiomics and in related fields.

Handbook of Statistical Genomics

Author : David J. Balding,Ida Moltke,John Marioni
Publisher : John Wiley & Sons
Page : 1828 pages
File Size : 41,7 Mb
Release : 2019-07-09
Category : Science
ISBN : 9781119429258

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Handbook of Statistical Genomics by David J. Balding,Ida Moltke,John Marioni Pdf

A timely update of a highly popular handbook on statistical genomics This new, two-volume edition of a classic text provides a thorough introduction to statistical genomics, a vital resource for advanced graduate students, early-career researchers and new entrants to the field. It introduces new and updated information on developments that have occurred since the 3rd edition. Widely regarded as the reference work in the field, it features new chapters focusing on statistical aspects of data generated by new sequencing technologies, including sequence-based functional assays. It expands on previous coverage of the many processes between genotype and phenotype, including gene expression and epigenetics, as well as metabolomics. It also examines population genetics and evolutionary models and inference, with new chapters on the multi-species coalescent, admixture and ancient DNA, as well as genetic association studies including causal analyses and variant interpretation. The Handbook of Statistical Genomics focuses on explaining the main ideas, analysis methods and algorithms, citing key recent and historic literature for further details and references. It also includes a glossary of terms, acronyms and abbreviations, and features extensive cross-referencing between chapters, tying the different areas together. With heavy use of up-to-date examples and references to web-based resources, this continues to be a must-have reference in a vital area of research. Provides much-needed, timely coverage of new developments in this expanding area of study Numerous, brand new chapters, for example covering bacterial genomics, microbiome and metagenomics Detailed coverage of application areas, with chapters on plant breeding, conservation and forensic genetics Extensive coverage of human genetic epidemiology, including ethical aspects Edited by one of the leading experts in the field along with rising stars as his co-editors Chapter authors are world-renowned experts in the field, and newly emerging leaders. The Handbook of Statistical Genomics is an excellent introductory text for advanced graduate students and early-career researchers involved in statistical genetics.

Statistical Analysis of Microbiome Data with R

Author : Yinglin Xia,Jun Sun,Ding-Geng Chen
Publisher : Springer
Page : 505 pages
File Size : 49,6 Mb
Release : 2018-10-06
Category : Computers
ISBN : 9789811315343

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Statistical Analysis of Microbiome Data with R by Yinglin Xia,Jun Sun,Ding-Geng Chen Pdf

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.

Multi-Omics Analysis of the Human Microbiome

Author : Indra Mani,Vijai Singh
Publisher : Springer
Page : 0 pages
File Size : 53,6 Mb
Release : 2024-06-10
Category : Science
ISBN : 9819718430

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Multi-Omics Analysis of the Human Microbiome by Indra Mani,Vijai Singh Pdf

This book introduces the rapidly evolving field of multi-omics in understanding the human microbiome. The book focuses on the technology used to generate multi-omics data, including advances in next-generation sequencing and other high-throughput methods. It also covers the application of artificial intelligence and machine learning algorithms to the analysis of multi-omics data, providing readers with an overview of the powerful computational tools that are driving innovation in this field. The chapter also explores the various bioinformatics databases and tools available for the analysis of multi-omics data. The book also delves into the application of multi-omics technology to the study of microbial diversity, including metagenomics, metatranscriptomics, and metaproteomics. The book also explores the use of these techniques to identify and characterize microbial communities in different environments, from the gut and oral microbiome to the skin microbiome and beyond. Towards theend, it focuses on the use of multi-omics in the study of microbial consortia, including mycology and the viral microbiome. The book also explores the potential of multi-omics to identify genes of biotechnological importance, providing readers with an understanding of the role that this technology could play in advancing biotech research. Finally, the book concludes with a discussion of the clinical applications of multi-omics technology, including its potential to identify disease biomarkers and develop personalized medicine approaches. Overall, this book provides readers with a comprehensive overview of this exciting field, highlighting the potential for multi-omics to transform our understanding of the microbial world.

Statistical Data Analysis of Microbiomes and Metabolomics

Author : Yinglin Xia,Jun Sun
Publisher : American Chemical Society
Page : 229 pages
File Size : 41,6 Mb
Release : 2022-02-03
Category : Science
ISBN : 9780841299160

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Statistical Data Analysis of Microbiomes and Metabolomics by Yinglin Xia,Jun Sun Pdf

Compared with other research fields, both microbiome and metabolomics data are complicated and have some unique characteristics, respectively. Thus, choosing an appropriate statistical test or method is a very important step in the analysis of microbiome and metabolomics data. However, this is still a difficult task for those biomedical researchers without a statistical background and for those biostatisticians who do not have research experiences in these fields. Graduate students studying microbiome and metabolomics; statisticians, working on microbiome and metabolomics projects, either for their own research, or for their collaborative research for experimental design, grant application, and data analysis; and researchers who investigate biomedical and biochemical projects with the microbiome, metabolome, and multi-omics data analysis will benefit from reading this work.

Statistical Genomics

Author : Brooke Fridley,Xuefeng Wang
Publisher : Springer Nature
Page : 377 pages
File Size : 40,9 Mb
Release : 2023-03-16
Category : Science
ISBN : 9781071629864

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Statistical Genomics by Brooke Fridley,Xuefeng Wang Pdf

This volume provides a collection of protocols from researchers in the statistical genomics field. Chapters focus on integrating genomics with other “omics” data, such as transcriptomics, epigenomics, proteomics, metabolomics, and metagenomics. Written in the highly successful Methods in Molecular Biology series format, chapters include introductions to their respective topics, lists of the necessary materials and reagents, step-by-step, readily reproducible laboratory protocols, and tips on troubleshooting and avoiding known pitfalls. Cutting-edge and thorough, Statistical Genomics hopes that by covering these diverse and timely topics researchers are provided insights into future directions and priorities of pan-omics and the precision medicine era.

Computational Methods in Biomedical Research

Author : Ravindra Khattree,Dayanand Naik
Publisher : CRC Press
Page : 432 pages
File Size : 55,5 Mb
Release : 2007-12-12
Category : Mathematics
ISBN : 1420010921

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Computational Methods in Biomedical Research by Ravindra Khattree,Dayanand Naik Pdf

Continuing advances in biomedical research and statistical methods call for a constant stream of updated, cohesive accounts of new developments so that the methodologies can be properly implemented in the biomedical field. Responding to this need, Computational Methods in Biomedical Research explores important current and emerging computational statistical methods that are used in biomedical research. Written by active researchers in the field, this authoritative collection covers a wide range of topics. It introduces each topic at a basic level, before moving on to more advanced discussions of applications. The book begins with microarray data analysis, machine learning techniques, and mass spectrometry-based protein profiling. It then uses state space models to predict US cancer mortality rates and provides an overview of the application of multistate models in analyzing multiple failure times. The book also describes various Bayesian techniques, the sequential monitoring of randomization tests, mixed-effects models, and the classification rules for repeated measures data. The volume concludes with estimation methods for analyzing longitudinal data. Supplying the knowledge necessary to perform sophisticated statistical analyses, this reference is a must-have for anyone involved in advanced biomedical and pharmaceutical research. It will help in the quest to identify potential new drugs for the treatment of a variety of diseases.

Advances in methods and tools for multi-omics data analysis

Author : Ornella Cominetti,Sergio Oller Moreno,Sumeet Agarwal
Publisher : Frontiers Media SA
Page : 184 pages
File Size : 54,7 Mb
Release : 2023-05-12
Category : Science
ISBN : 9782832523421

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Advances in methods and tools for multi-omics data analysis by Ornella Cominetti,Sergio Oller Moreno,Sumeet Agarwal Pdf

Precision Medicine for Investigators, Practitioners and Providers

Author : Joel Faintuch,Salomao Faintuch
Publisher : Academic Press
Page : 640 pages
File Size : 50,8 Mb
Release : 2019-11-16
Category : Science
ISBN : 9780128191798

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Precision Medicine for Investigators, Practitioners and Providers by Joel Faintuch,Salomao Faintuch Pdf

Precision Medicine for Investigators, Practitioners and Providers addresses the needs of investigators by covering the topic as an umbrella concept, from new drug trials to wearable diagnostic devices, and from pediatrics to psychiatry in a manner that is up-to-date and authoritative. Sections include broad coverage of concerning disease groups and ancillary information about techniques, resources and consequences. Moreover, each chapter follows a structured blueprint, so that multiple, essential items are not overlooked. Instead of simply concentrating on a limited number of extensive and pedantic coverages, scholarly diagrams are also included. Provides a three-pronged approach to precision medicine that is focused on investigators, practitioners and healthcare providers Covers disease groups and ancillary information about techniques, resources and consequences Follows a structured blueprint, ensuring essential chapters items are not overlooked

Applied Microbiome Statistics

Author : Yinglin Xia,Jun Sun
Publisher : CRC Press
Page : 457 pages
File Size : 50,8 Mb
Release : 2024-07-22
Category : Mathematics
ISBN : 9781040045664

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Applied Microbiome Statistics by Yinglin Xia,Jun Sun Pdf

This unique book officially defines microbiome statistics as a specific new field of statistics and addresses the statistical analysis of correlation, association, interaction, and composition in microbiome research. It also defines the study of the microbiome as a hypothesis-driven experimental science and describes two microbiome research themes and six unique characteristics of microbiome data, as well as investigating challenges for statistical analysis of microbiome data using the standard statistical methods. This book is useful for researchers of biostatistics, ecology, and data analysts. Presents a thorough overview of statistical methods in microbiome statistics of parametric and nonparametric correlation, association, interaction, and composition adopted from classical statistics and ecology and specifically designed for microbiome research. Performs step-by-step statistical analysis of correlation, association, interaction, and composition in microbiome data. Discusses the issues of statistical analysis of microbiome data: high dimensionality, compositionality, sparsity, overdispersion, zero-inflation, and heterogeneity. Investigates statistical methods on multiple comparisons and multiple hypothesis testing and applications to microbiome data. Introduces a series of exploratory tools to visualize composition and correlation of microbial taxa by barplot, heatmap, and correlation plot. Employs the Kruskal–Wallis rank-sum test to perform model selection for further multi-omics data integration. Offers R code and the datasets from the authors’ real microbiome research and publicly available data for the analysis used. Remarks on the advantages and disadvantages of each of the methods used.

Computational Methods for Next Generation Sequencing Data Analysis

Author : Ion Mandoiu,Alexander Zelikovsky
Publisher : John Wiley & Sons
Page : 460 pages
File Size : 48,8 Mb
Release : 2016-10-03
Category : Computers
ISBN : 9781118169483

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Computational Methods for Next Generation Sequencing Data Analysis by Ion Mandoiu,Alexander Zelikovsky Pdf

Introduces readers to core algorithmic techniques for next-generation sequencing (NGS) data analysis and discusses a wide range of computational techniques and applications This book provides an in-depth survey of some of the recent developments in NGS and discusses mathematical and computational challenges in various application areas of NGS technologies. The 18 chapters featured in this book have been authored by bioinformatics experts and represent the latest work in leading labs actively contributing to the fast-growing field of NGS. The book is divided into four parts: Part I focuses on computing and experimental infrastructure for NGS analysis, including chapters on cloud computing, modular pipelines for metabolic pathway reconstruction, pooling strategies for massive viral sequencing, and high-fidelity sequencing protocols. Part II concentrates on analysis of DNA sequencing data, covering the classic scaffolding problem, detection of genomic variants, including insertions and deletions, and analysis of DNA methylation sequencing data. Part III is devoted to analysis of RNA-seq data. This part discusses algorithms and compares software tools for transcriptome assembly along with methods for detection of alternative splicing and tools for transcriptome quantification and differential expression analysis. Part IV explores computational tools for NGS applications in microbiomics, including a discussion on error correction of NGS reads from viral populations, methods for viral quasispecies reconstruction, and a survey of state-of-the-art methods and future trends in microbiome analysis. Computational Methods for Next Generation Sequencing Data Analysis: Reviews computational techniques such as new combinatorial optimization methods, data structures, high performance computing, machine learning, and inference algorithms Discusses the mathematical and computational challenges in NGS technologies Covers NGS error correction, de novo genome transcriptome assembly, variant detection from NGS reads, and more This text is a reference for biomedical professionals interested in expanding their knowledge of computational techniques for NGS data analysis. The book is also useful for graduate and post-graduate students in bioinformatics.