Artificial Intelligence Technologies for Computational Biology
eBook - ePub

Artificial Intelligence Technologies for Computational Biology

  1. 342 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

About this book

This text emphasizes the importance of artificial intelligence techniques in the field of biological computation. It also discusses fundamental principles that can be applied beyond bio-inspired computing.

It comprehensively covers important topics including data integration, data mining, machine learning, genetic algorithms, evolutionary computation, evolved neural networks, nature-inspired algorithms, and protein structure alignment. The text covers the application of evolutionary computations for fractal visualization of sequence data, artificial intelligence, and automatic image interpretation in modern biological systems.

The text is primarily written for graduate students and academic researchers in areas of electrical engineering, electronics engineering, computer engineering, and computational biology.

This book:

• Covers algorithms in the fields of artificial intelligence, and machine learning useful in biological data analysis.

• Discusses comprehensively artificial intelligence and automatic image interpretation in modern biological systems.

• Presents the application of evolutionary computations for fractal visualization of sequence data.

• Explores the use of genetic algorithms for pair-wise and multiple sequence alignments.

• Examines the roles of efficient computational techniques in biology.

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Information

Publisher
CRC Press
Year
2022
Print ISBN
9781032160009
eBook ISBN
9781000778694

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Title Page
  4. Copyright Page
  5. Contents
  6. Preface
  7. Contributors
  8. List of Figures
  9. List of Tables
  10. Chapter 1 Graph Representation Learning for Protein Classification
  11. Chapter 2 Extraction of Sequence-Based Features for Prediction of Methylation Sites in Protein Sequences
  12. Chapter 3 A Taxonomy of e-Healthcare Techniques and Solutions: Challenges and Future Directions
  13. Chapter 4 Classification of Lung Diseases Using Machine Learning Techniques
  14. Chapter 5 Multi Objective Bacterial Foraging Optimization: A Survey
  15. Chapter 6 Artificial Intelligence for Biomedical Informatics
  16. Chapter 7 A Novel Approach for Feature Selection Using Artificial Neural Networks and Particle Swarm Optimization
  17. Chapter 8 In Search for the Optimal Preprocessing Technique for Deep Learning-Based Diabetic Retinopathy Stage Classification from Retinal Fundus Images
  18. Chapter 9 Cancer Diagnosis from Histopathology Images Using Deep Learning: A Review
  19. Chapter 10 Skin Lesion Classification by Using Deep Tree-CNN
  20. Chapter 11 Hybrid Deep Learning Model to Diagnose Covid-19 on its Early Stages Using Lung CT Images
  21. Chapter 12 Impact of Machine Learning Practices on Biomedical Informatics, Its Challenges and Future Benefits
  22. Chapter 13 Recognition of Types of Arrhythmia: An Implementation of Ensembling Techniques Using ECG Beat
  23. Chapter 14 Feature Selection, Machine Learning and Deep Learning Algorithms on Multi-modal Omics Data
  24. Index

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Yes, you can access Artificial Intelligence Technologies for Computational Biology by Ranjeet Kumar Rout, Saiyed Umer, Sabha Sheikh, Amrit Lal Sangal, Ranjeet Kumar Rout,Saiyed Umer,Sabha Sheikh,Amrit Lal Sangal in PDF and/or ePUB format, as well as other popular books in Technology & Engineering & Computer Engineering. We have over 1.5 million books available in our catalogue for you to explore.