Книга Big Data in Omics and Imaging Xiong

Big Data in Omics and Imaging

Език: Английски език
Корици: С меки корици
Издател: Taylor & Francis Ltd
Наличност: 50% вероятност
Ще претърсим света
73.98 144.69 лв
Big Data in Omics and Imaging: Association Analysis addresses the recent development of association...

Информация за книгата

Език
Английски език
Корици
Книга - С меки корици
Издадена
2021
страници
700
EAN
9781032095981
ISBN
1032095989
Enbook ID
36543188
Издател
Теглоt
1292
Размери
178 x 254

Пълно описание

Big Data in Omics and Imaging: Association Analysis addresses the recent development of association analysis and machine learning for both population and family genomic data in sequencing era. It is unique in that it presents both hypothesis testing and a data mining approach to holistically dissecting the genetic structure of complex traits and to designing efficient strategies for precision medicine. The general frameworks for association analysis and machine learning, developed in the text, can be applied to genomic, epigenomic and imaging data.



FEATURES



Bridges the gap between the traditional statistical methods and computational tools for small genetic and epigenetic data analysis and the modern advanced statistical methods for big data



Provides tools for high dimensional data reduction



Discusses searching algorithms for model and variable selection including randomization algorithms, Proximal methods and matrix subset selection



Provides real-world examples and case studies



Will have an accompanying website with R code




The book is designed for graduate students and researchers in genomics, bioinformatics, and data science. It represents the paradigm shift of genetic studies of complex diseases– from shallow to deep genomic analysis, from low-dimensional to high dimensional, multivariate to functional data analysis with next-generation sequencing (NGS) data, and from homogeneous populations to heterogeneous population and pedigree data analysis. Topics covered are: advanced matrix theory, convex optimization algorithms, generalized low rank models, functional data analysis techniques, deep learning principle and machine learning methods for modern association, interaction, pathway and network analysis of rare and common variants, biomarker identification, disease risk and drug response prediction.





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