The past three decades have witnessed an explosion of what is now referred to as high-dimensional `omics' data. This book describes the statistical methods and analytic frameworks that are best equipped to interpret these complex data and how they apply to health-related research.
The past three decades have witnessed an explosion of what is now referred to as high-dimensional `omics' data. This book describes the statistical methods and analytic frameworks that are best equipped to interpret these complex data and how they apply to health-related research.Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Shili Lin, PhD is a Professor in the Department of Statistics and a faculty member in the Translational Data Analytics Institute at the Ohio State University. Her research interests are in statistical methodologies for high-dimensional and big data, with a focus on their applications in biomedical research, statistical genetics and genomics, and integration of multiple omics data. Denise Scholtens, PhD is Professor and Chief of the Division of Biostatistics in the Department of Preventive Medicine at Northwestern University Feinberg School of Medicine. She is interested in the design and conduct of large-scale multi-center prospective health research studies, and in the integration of high-dimensional omics data analyses into these settings. Sujay Datta, PhD is an Associate Professor and the Graduate Program Coordinator in the Department of Statistics at the University of Akron. His research interests include statistical analyses of high-dimensional and high-throughput data, graphical and network-based models, statistical models and methods for cancer data, as well as sequential/multistage sampling designs.
Inhaltsangabe
1 The Biology of a Living Organism 2 Protein Protein Interactions 3 Protein Protein Interaction Network Analyses 4 Detection of Imprinting and Maternal Effects 5 Modelling and Analysis of Next Generation Sequencing Data 6 Sequencing Based DNA Methylation Data 7 Modelling and Analysis of Spatial Chromatin Interactions 8 Digital Improvement of Single Cell Hi C Data 9 Metabolomics Data Pre processing 10 Metabolomics Data Analysis 11 Appendix
1 The Biology of a Living Organism 2 Protein Protein Interactions 3 Protein Protein Interaction Network Analyses 4 Detection of Imprinting and Maternal Effects 5 Modelling and Analysis of Next Generation Sequencing Data 6 Sequencing Based DNA Methylation Data 7 Modelling and Analysis of Spatial Chromatin Interactions 8 Digital Improvement of Single Cell Hi C Data 9 Metabolomics Data Pre processing 10 Metabolomics Data Analysis 11 Appendix
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