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Bioinformatics with Python Cookbook

You're reading from   Bioinformatics with Python Cookbook Learn how to use modern Python bioinformatics libraries and applications to do cutting-edge research in computational biology

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Product type Paperback
Published in Nov 2018
Publisher Packt
ISBN-13 9781789344691
Length 360 pages
Edition 2nd Edition
Languages
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Author (1):
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Tiago Antao Tiago Antao
Author Profile Icon Tiago Antao
Tiago Antao
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Table of Contents (12) Chapters Close

Preface 1. Python and the Surrounding Software Ecology 2. Next-Generation Sequencing FREE CHAPTER 3. Working with Genomes 4. Population Genetics 5. Population Genetics Simulation 6. Phylogenetics 7. Using the Protein Data Bank 8. Bioinformatics Pipelines 9. Python for Big Genomics Datasets 10. Other Topics in Bioinformatics 11. Advanced NGS Processing

Introduction


In this chapter, we will discuss high-performance computing techniques for large computational biology datasets. We will talk about efficient data storage, code parallelization, running software in clusters, and code optimization. We will try to avoid any solution to a specific proprietary technology (for example, Amazon EC2) and will instead design code that will be applicable in a wide range of scenarios.

The previous edition of this book had some recipes that compared lazy and eager data structures. This made sense, as Python 2 was mostly eager and Python 3 is mostly lazy. As Python 2 is behind us, that content has been dropped. That being said, make sure that you understand the difference and that your code is mostly lazy. Be sure to check generators in Python. Use them.

As the sizes of the datasets is constantly increasing, in this edition, we cannot evade discussing the efficient storage of bioinformatics data, and so we will discuss the Hierarchical Data Format (HDF5) and...

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