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R Bioinformatics Cookbook

R Bioinformatics Cookbook

By : MacLean, Dr Dan Maclean
2.7 (3)
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R Bioinformatics Cookbook

R Bioinformatics Cookbook

2.7 (3)
By: MacLean, Dr Dan Maclean

Overview of this book

Handling biological data effectively requires an in-depth knowledge of machine learning techniques and computational skills, along with an understanding of how to use tools such as edgeR and DESeq. With the R Bioinformatics Cookbook, you’ll explore all this and more, tackling common and not-so-common challenges in the bioinformatics domain using real-world examples. This book will use a recipe-based approach to show you how to perform practical research and analysis in computational biology with R. You will learn how to effectively analyze your data with the latest tools in Bioconductor, ggplot, and tidyverse. The book will guide you through the essential tools in Bioconductor to help you understand and carry out protocols in RNAseq, phylogenetics, genomics, and sequence analysis. As you progress, you will get up to speed with how machine learning techniques can be used in the bioinformatics domain. You will gradually develop key computational skills such as creating reusable workflows in R Markdown and packages for code reuse. By the end of this book, you’ll have gained a solid understanding of the most important and widely used techniques in bioinformatic analysis and the tools you need to work with real biological data.
Table of Contents (13 chapters)
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Finding experiments and reads from SRA/ENA

The Short Read Archive (SRA) and the European Nucleotide Archive (ENA) are databases of records of raw high-throughput-DNA sequence data. Each is a mirrored version of the same sets of high-throughput sequence data, submitted by scientists in all fields of biology from all over the world. The free availability of high-throughput sequence data through these databases means that we can conceive of and execute new analyses on existing datasets. By performing searches on the databases, we can identify sequence data that we may wish to work with. In this recipe, we'll look at using the SRAdb package to query the datasets on SRA/ENA and retrieve the data for selected sets programmatically.

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