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Genome Data Analysis /

This textbook describes recent advances in genomics and bioinformatics and provides numerous examples of genome data analysis that illustrate its relevance to real world problems and will improve the reader's bioinformatics skills. Basic data preprocessing with normalization and filtering, prim...

Descripció completa

Dades bibliogràfiques
Autor principal: Kim, Ju Han
Format: Printed Book
Publicat: Springer, 2019
Edició:1st ed. 2019.
Col·lecció:Learning Materials in Biosciences,
Matèries:
Accés en línia:https://hdl.loc.gov/loc.gdc/stacks.2019743957
Descripció
Sumari:This textbook describes recent advances in genomics and bioinformatics and provides numerous examples of genome data analysis that illustrate its relevance to real world problems and will improve the reader's bioinformatics skills. Basic data preprocessing with normalization and filtering, primary pattern analysis, and machine learning algorithms using R and Python are demonstrated for gene-expression microarrays, genotyping microarrays, next-generation sequencing data, epigenomic data, and biological network and semantic analyses. In addition, detailed attention is devoted to integrative genomic data analysis, including multivariate data projection, gene-metabolic pathway mapping, automated biomolecular annotation, text mining of factual and literature databases, and integrated management of biomolecular databases. This textbook is primarily intended for life scientists, medical scientists, statisticians, data processing researchers, engineers, and other beginners in bioinformatics who are experiencing difficulty in approaching the field. However, it will also serve as a simple guideline for experts unfamiliar with the new, developing subfield of genomic analysis within bioinformatics.
Descripció física:1 online resource (XVI, 367 pages 645 illustrations, 236 illustrations in color.)
ISBN:9789811319426