Big Data Analysis for Bioinformatics and Biomedical...

Big Data Analysis for Bioinformatics and Biomedical Discoveries

Shui Qing Ye (Editor)
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Big Data Analysis for Bioinformatics and Biomedical Discoveries provides a practical guide to the nuts and bolts of Big Data, enabling you to quickly and effectively harness the power of Big Data to make groundbreaking biological discoveries, carry out translational medical research, and implement personalized genomic medicine. Contributing to the NIH Big Data to Knowledge (BD2K) initiative, the book enhances your computational and quantitative skills so that you can exploit the Big Data being generated in the current omics era.

The book explores many significant topics of Big Data analyses in an easily understandable format. It describes popular tools and software for Big Data analyses and explains next-generation DNA sequencing data analyses. It also discusses comprehensive Big Data analyses of several major areas, including the integration of omics data, pharmacogenomics, electronic health record data, and drug discovery.

Accessible to biologists, biomedical scientists, bioinformaticians, and computer data analysts, the book keeps complex mathematical deductions and jargon to a minimum. Each chapter includes a theoretical introduction, example applications, data analysis principles, step-by-step tutorials, and authoritative references.

Features

• Covers the most important topics of Big Data analysis in biomedicine and biology

• Introduces computing tools for Big Data analysis, such as Linux-based command lines, Python, and R

• Presents data analysis pipelines for next-generation DNA sequencing applications, including Genome-seq, RNA-seq, Microbiome-seq, Methylome-seq, miRNA-seq, and ChIP-seq

• Shows how to integrate high-dimensional omics data, pharmacogenomics data, electronic medical records, in silico drug findings, and literature-based knowledge for precision medicine

Rok:
2016
Wydawnictwo:
CRC Press
Język:
english
Strony:
264
Serie:
Chapman & Hall/CRC Mathematical and Computational Biology Series
Plik:
PDF, 5.58 MB
IPFS:
CID , CID Blake2b
english, 2016
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