Kniha Hands-On Data Science for Biologists Using Python Hasija

Hands-On Data Science for Biologists Using Python

Jazyk: Angličtina
Väzba: Brožovaná
Vydavateľ: Taylor & Francis Ltd
Dostupnosť: 50 % šanca
Prehľadáme celý svet
106.93
Hands-on Data Science for Biologists using Python has been conceptualized to address the massive dat...

Informácie o knihe

Jazyk
Angličtina
Väzba
Kniha - Brožovaná
Vydalo
2021
Stránok
286
EAN
9780367546786
ISBN
0367546787
Enbook ID
33388384
Hmotnosť
640
Rozmery
253 x 179 x 24

Kompletný popis

Hands-on Data Science for Biologists using Python has been conceptualized to address the massive data handling needs of modern-day biologists. With the advent of high throughput technologies and consequent availability of omics data, biological science has become a data-intensive field. This hands-on textbook has been written with the inception of easing data analysis by providing an interactive, problem-based instructional approach in Python programming language.

The book starts with an introduction to Python and steadily delves into scrupulous techniques of data handling, preprocessing, and visualization. The book concludes with machine learning algorithms and their applications in biological data science. Each topic has an intuitive explanation of concepts and is accompanied with biological examples.

Features of this book:

  • The book contains standard templates for data analysis using Python, suitable for beginners as well as advanced learners.
  • This book shows working implementations of data handling and machine learning algorithms using real-life biological datasets and problems, such as gene expression analysis; disease prediction; image recognition; SNP association with phenotypes and diseases.
  • Considering the importance of visualization for data interpretation, especially in biological systems, there is a dedicated chapter for the ease of data visualization and plotting.
  • Every chapter is designed to be interactive and is accompanied with Jupyter notebook to prompt readers to practice in their local systems.

Other avant-garde component of the book is the inclusion of a machine learning project, wherein various machine learning algorithms are applied for the identification of genes associated with age-related disorders. A systematic understanding of data analysis steps has always been an important element for biological research. This book is a readily accessible resource that can be used as a handbook for data analysis, as well as a platter of standard code templates for building models.

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