Produktbild: Exploration and Analysis of DNA Microarray and Other High-Dimensional Data

Exploration and Analysis of DNA Microarray and Other High-Dimensional Data

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Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

17.03.2014

Verlag

John Wiley & Sons

Seitenzahl

344

Maße (L/B/H)

23,9/16,3/2,5 cm

Gewicht

590 g

Auflage

2nd edition

Sprache

Englisch

ISBN

978-1-118-35633-3

Beschreibung

Rezension

"Featuring new information on interpretation of findings, class prediction, ABC clustering, limma for mixed models, biclustering, mass spectrometry, tracking Spearman correlations, and more, this extremely well written" (Journal of Environmental Quality) book is a choice reference for scientists, teachers, and students interested in DNA data analysis." (Zentralblatt MATH, 1 October 2014)
 
"In summary this is an excellent text for both life scientist and computer/mathematicians. Highly recommended." (Scientific Computing, 1 August 2014)

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

17.03.2014

Verlag

John Wiley & Sons

Seitenzahl

344

Maße (L/B/H)

23,9/16,3/2,5 cm

Gewicht

590 g

Auflage

2nd edition

Sprache

Englisch

ISBN

978-1-118-35633-3

Herstelleradresse

Libri GmbH
Europaallee 1
36244 Bad Hersfeld
DE

Email: gpsr@libri.de

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  • Produktbild: Exploration and Analysis of DNA Microarray and Other High-Dimensional Data
  • Preface xv
     
    Acknowledgments xvii
     
    1 A brief introduction 1
     
    1.1 A note on exploratory data analysis 3
     
    1.2 Computing considerations and software 4
     
    1.3 A brief outline of the book 5
     
    1.4 Datasets and case studies 7
     
    2 Genomics basics 11
     
    2.1 Genes 11
     
    2.2 DNA 12
     
    2.3 Gene expression 13
     
    2.4 Hybridization assays and other laboratory techniques 15
     
    2.5 The human genome 16
     
    2.6 Genome variations and their consequences 18
     
    2.7 Genomics 19
     
    2.8 The role of genomics in pharmaceutical and research and clinical practice 20
     
    2.9 Proteins 23
     
    2.10 Bioinformatics 23
     
    3 Microarrays 27
     
    3.1 Types of microarray experiments 28
     
    3.2 A very simple hypothetical microarray experiment 32
     
    3.3 A typical microarray experiment 34
     
    3.4 Multichannel cDNA microarrays 38
     
    3.5 Oligonucleotide microarrays 38
     
    3.6 Bead based arrays 40
     
    3.7 Confirmation of microarray results 40
     
    4 Processing the scanned image 43
     
    4.1 Converting the scanned image to the spotted image 44
     
    4.2 Quality assessment 47
     
    4.3 Adjusting for background 53
     
    4.4 Expression level calculation for twochannel cDNA microarrays 56
     
    4.5 Expression level calculation for oligonucleotide microarrays 58
     
    5 Preprocessing microarray data 65
     
    5.1 Logarithmic transformation 66
     
    5.2 Variance stabilizing transformations 66
     
    5.3 Sources of bias 68
     
    5.4 Normalization 69
     
    5.5 Intensity dependent normalization 70
     
    5.6 Judging the success of a normalization 81
     
    5.7 Outlier identification 83
     
    5.8 Nonresistant rules for outlier identification 83
     
    5.9 Resistant rules for outlier identification 83
     
    5.10 Assessing replicate array quality 84
     
    6 Summarization 95
     
    6.1 Replication 95
     
    6.2 Technical replicates 96
     
    6.3 Biological replicates 100
     
    6.4 Biological replicates 100
     
    6.5 Multiple oligonucleotide arrays 102
     
    6.6 Estimating fold change in twochannel experiments 104
     
    6.7 Bayes estimation of fold change 105
     
    6.8 Estimating fold change Affymetrix data 106
     
    6.9 RMA Summarization of multiple oligonucleotide arrays revisited 107
     
    6.10 FARMS summarization. 108
     
    7 Two group comparative experiments 119
     
    7.1 Basics of statistical hypothesis testing 120
     
    7.2 Fold changes 123
     
    7.3 The two sample t test 123
     
    7.4 Diagnostic checks 127
     
    7.5 Robust t tests 129
     
    7.6 The Mann Whitney Wilcox on rank sum test 130
     
    7.7 Multiplicity 132
     
    7.8 The false discovery rate 135
     
    7.9 Resampling based Multiple Testing Procedures 138
     
    7.10 Small variance adjusted t tests and SAM 140
     
    7.11 Conditional t 146
     
    7.12 Borrowing strength across genes 149
     
    7.13 Twochannel experiments 151
     
    7.14 Filtering 153
     
    8 Model based inference and experimental design considerations 177
     
    8.1 The F test 178
     
    8.2 The basic linear model 179
     
    8.3 Fitting the model in two stages 181
     
    8.4 Multichannel experiments 182
     
    8.5 Experimental design considerations 183
     
    8.6 Miscellaneous issues 187
     
    8.7 Model based analysis of Affymetrix arrays 188
     
    9 Analysis of gene sets 211
     
    9.1 Methods for identifying enriched gene sets 213
     
    9.2 ORA and Fisher's exact test 217
     
    9.3 Interpretation of results 217
     
    9.4 Example 217