Computational Techniques for Biological Sequence Analysis
eBook - ePub

Computational Techniques for Biological Sequence Analysis

  1. 176 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Computational Techniques for Biological Sequence Analysis

About this book

This book provides an overview of basic and advanced computational techniques for analyzing and understanding protein, RNA, and DNA sequences. It covers effective computing techniques for DNA and protein classifications, evolutionary and sequence information analysis, evolutionary algorithms, and ensemble algorithms. Furthermore, the book reviews the role of machine learning techniques, artificial intelligence, ensemble learning, and sequence-based features in predicting post-translational modifications in proteins, DNA methylation, and mRNA methylation, along with their functional implications. The book also discusses the prediction of protein–protein and protein–DNA interactions, protein structure, and function using computational methods. It also presents techniques for quantitative analysis of protein–DNA interactions and protein methylation and their involvement in gene regulation. Additionally, the use of nature-inspired algorithms to gain insights into gene regulatory mechanisms and metabolic pathways in human diseases is explored. This book acts as a useful reference for bioinformaticians and computational biologists working in the fields of molecular biology, genomics, and bioinformatics.

Key Features:

  • Reviews machine learning techniques for DNA sequence classification and protein structure prediction
  • Discusses genetic algorithms for analyzing multiple sequence alignments and predicting protein–protein interaction sites
  • Explores computational methods for quantitative analysis of protein–DNA interactions
  • Examine the role of nature-inspired algorithms in understanding the gene regulation and metabolic pathways
  • Covers evolutionary algorithms and sequence-based features in predicting post-translational modifications

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Yes, you can access Computational Techniques for Biological Sequence Analysis by Saiyed Umer,Ranjeet Kumar Rout,Monika Khanderlwal,Smritirani Pati,Monika Khandelwal,Smitarani Pati in PDF and/or ePUB format, as well as other popular books in Computer Science & Programming Algorithms. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Title Page
  4. Copyright Page
  5. Contents
  6. About the Editors
  7. Contributors
  8. Chapter 1 Machine Learning and Computational Models for the Prediction of Post-Translational Modification Sites
  9. Chapter 2 Application of Artificial Intelligence in Recognition of Gene Regulation and Metabolic Pathways
  10. Chapter 3 Assessment of Machine Learning Algorithms in DNA Sequence Data Mining
  11. Chapter 4 Efficient Detection and Recuperation of Mental Health using X (Formerly Twitter) and Fitbit Data-Based Recommendation System
  12. Chapter 5 Role of Artificial Intelligence in Detection of Congenital Diseases
  13. Chapter 6 A Hybrid Multi-Level Segmentation-Based Ensemble Classification Model
  14. Chapter 7 Innovative Approaches to Bilirubin Detection
  15. Chapter 8 Targeted Immunization: Application of Machine Learning in Prediction of IL-4 Inducing Peptides
  16. Chapter 9 Healthcare Portal-Django Framework for Healthcare Management System
  17. Chapter 10 Harnessing Machine Learning and Deep Learning for DNA Sequence Analysis
  18. Index