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A Practical Approach to Microarray Data Analysis

Paperback Engels 2009 2009e druk 9781441912268
Verwachte levertijd ongeveer 9 werkdagen

Samenvatting

The book addresses the requirement of scientists and researchers to gain a basic understanding of microarray analysis methodologies and tools. It is intended for students, teachers, researchers, and research managers who want to understand the state of the art and of the presented methodologies and the areas in which gaps in our knowledge demand further research and development. The book is designed to be used by the practicing professional tasked with the design and analysis of microarray experiments or as a text for a senior undergraduate- or graduate level course in analytical genetics, biology, bioinformatics, computational biology, statistics and data mining, or applied computer science.

Specificaties

ISBN13:9781441912268
Taal:Engels
Bindwijze:paperback
Aantal pagina's:368
Uitgever:Springer New York
Druk:2009

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Inhoudsopgave

<P>Acknowledgements.<BR>Preface.<BR>1. Introduction to Microarray Data Analysis; W. Dubitzky, et al.<BR>2. Data Pre-Processing Issues in Microarray Analysis; N.A. Tinker, et al.<BR>3. Missing Value Estimation; O.G. Troyanskaya, et al.<BR>4. Normalization; N. Morrison, D.C. Hoyle.<BR>5. Singular Value Decomposition and Principal Component Analysis; M.E. Wall, et al.<BR>6. Feature Selection in Microarray Analysis; E.P. Xing.<BR>7. Introduction to Classification in Microarray Experiments; S. Dudoit, J. Fridlyand.<BR>8. Bayesian Network Classifiers for Gene Expression Analysis; B.-T. Zhang, K.-B. Hwang.<BR>9. Classifying Microarray Data Using Support Vector Machines; S. Mukherjee.<BR>10. Weighted Flexible Compound Covariate Method for Classifying Microarray Data; Y. Shyr, K.M. Kim.<BR>11. Classification of Expression Patterns Using Artificial Neural Networks; M. Ringnér, et al.<BR>12. Gene Selection and Sample Classification Using a Genetic Algorithm and k-Nearest Neighbor Method.<BR>13. Clustering Genomic Expression Data: Design and Evaluation Principles; F. Azuaje, N. Bolshakova.<BR>14. Clustering or Automatic Class Discovery: Hierarchical Methods; D.C. Stanford, et al.<BR>15. Discovering Genomic Expression Patterns with Self-Organizing Neural Networks; F. Azuaje.<BR>16. Clustering or Automatic Class Discovery: non-hierarchical, non-SOM; K.Y. Yeung.<BR>17. Correlation and Association Analysis; S.M. Lin, K.F. Johnson.<BR>18. Global Functional Profiling of Gene Expression Data; S. Draghici, S.A. Krawetz.<BR>19. Microarray Software Review; Y.F. Leung, et al.<BR>20. Microarray Analysis as a Process; S. Jensen.<BR>Index. </P>

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        A Practical Approach to Microarray Data Analysis