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Integrative Cluster Analysis in Bioinformatics

Autor B Nandi
en Limba Engleză Hardback – 28 mai 2015

Clustering techniques are increasingly being put to use in the analysis of high-throughput biological datasets. Novel computational techniques to analyse high throughput data in the form of sequences, gene and protein expressions, pathways, and images are becoming vital for understanding diseases and future drug discovery.

This book details the complete pathway of cluster analysis, from the basics of molecular biology to the generation of biological knowledge. The book also presents the latest clustering methods and clustering validation, thereby offering the reader a comprehensive review of clustering analysis in bioinformatics from the fundamentals through to state-of-the-art techniques and applications.

Key Features:

  • Offers a contemporary review of clustering methods and applications in the field of bioinformatics, with particular emphasis on gene expression analysis
  • Provides an excellent introduction to molecular biology with computer scientists and information engineering researchers in mind, laying out the basic biological knowledge behind the application of clustering analysis techniques in bioinformatics
  • Explains the structure and properties of many types of high-throughput datasets commonly found in biological studies
  • Discusses how clustering methods and their possible successors would be used to enhance the pace of biological discoveries in the future
  • Includes a companion website hosting a selected collection of codes and links to publicly available datasets
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Specificații

ISBN-13: 9781118906538
ISBN-10: 1118906535
Pagini: 448
Dimensiuni: 169 x 249 x 26 mm
Greutate: 0.84 kg
Editura: Wiley
Locul publicării:Chichester, United Kingdom

Public țintă

TIER 2 P&R
Primary: Researchers in bioinformatics and machine learning
Secondary: Graduate students in bioinformatics and machine learning 

Notă biografică


Descriere

Clustering techniques are increasingly being put to use in the analysis of high-throughput biological datasets. Novel computational techniques to analyse high throughput data in the form of sequences, gene and protein expressions, pathways, and images are becoming vital for understanding diseases and future drug discovery.