9781803236421-1803236426-Bioinformatics with Python Cookbook - Third Edition: Use modern Python libraries and applications to solve real-world computational biology problems

Bioinformatics with Python Cookbook - Third Edition: Use modern Python libraries and applications to solve real-world computational biology problems

ISBN-13: 9781803236421
ISBN-10: 1803236426
Edition: 3rd ed.
Author: Tiago Antao
Publication date: 2022
Publisher: Packt Publishing
Format: Paperback 360 pages
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Book details

ISBN-13: 9781803236421
ISBN-10: 1803236426
Edition: 3rd ed.
Author: Tiago Antao
Publication date: 2022
Publisher: Packt Publishing
Format: Paperback 360 pages

Summary

Bioinformatics with Python Cookbook - Third Edition: Use modern Python libraries and applications to solve real-world computational biology problems (ISBN-13: 9781803236421 and ISBN-10: 1803236426), written by authors Tiago Antao, was published by Packt Publishing in 2022. With an overall rating of 4.4 stars, it's a notable title among other books. You can easily purchase or rent Bioinformatics with Python Cookbook - Third Edition: Use modern Python libraries and applications to solve real-world computational biology problems (Paperback) from BooksRun, along with many other new and used books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $20.15.

Description

Discover modern, next-generation sequencing libraries from the powerful Python ecosystem to perform cutting-edge research and analyze large amounts of biological data Key Features Perform complex bioinformatics analysis using the most essential Python libraries and applications Implement next-generation sequencing, metagenomics, automating analysis, population genetics, and much more Explore various statistical and machine learning techniques for bioinformatics data analysis Book Description
Bioinformatics is an active research field that uses a range of simple-to-advanced computations to extract valuable information from biological data, and this book will show you how to manage these tasks using Python.
This updated third edition of the Bioinformatics with Python Cookbook begins with a quick overview of the various tools and libraries in the Python ecosystem that will help you convert, analyze, and visualize biological datasets. Next, you'll cover key techniques for next-generation sequencing, single-cell analysis, genomics, metagenomics, population genetics, phylogenetics, and proteomics with the help of real-world examples. You'll learn how to work with important pipeline systems, such as Galaxy servers and Snakemake, and understand the various modules in Python for functional and asynchronous programming. This book will also help you explore topics such as SNP discovery using statistical approaches under high-performance computing frameworks, including Dask and Spark. In addition to this, you'll explore the application of machine learning algorithms in bioinformatics.
By the end of this bioinformatics Python book, you'll be equipped with the knowledge you need to implement the latest programming techniques and frameworks, empowering you to deal with bioinformatics data on every scale. What you will learn Become well-versed with data processing libraries such as NumPy, pandas, arrow, and zarr in the context of bioinformatic analysis Interact with genomic databases Solve real-world problems in the fields of population genetics, phylogenetics, and proteomics Build bioinformatics pipelines using a Galaxy server and Snakemake Work with functools and itertools for functional programming Perform parallel processing with Dask on biological data Explore principal component analysis (PCA) techniques with scikit-learn Who this book is for
This book is for bioinformatics analysts, data scientists, computational biologists, researchers, and Python developers who want to address intermediate-to-advanced biological and bioinformatics problems. Working knowledge of the Python programming language is expected. Basic knowledge of biology will also be helpful. Table of Contents Python and the Surrounding Software Ecology Using Data Processing Libraries: numpy, pandas, arrow, and zarr Next Generation Sequencing Advanced NGS Data Processing Working with Genomes Population Genetics Phylogenetics Using the Protein Data Bank Bioinformatics Pipelines Machine Learning for Bioinformatics Parallel Processing with Dask Functional and Asynchronous Programming

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