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✦   LIBER   ✦

[Statistics for Biology and Health] The Analysis of Gene Expression Data Volume 810 || The Analysis of Gene Expression Data: An Overview of Methods and Software

✍ Scribed by Parmigiani, Giovanni; Garrett, Elizabeth S.; Irizarry, Rafael A.; Zeger, Scott L.


Book ID
115463620
Publisher
Springer New York
Year
2003
Tongue
English
Weight
366 KB
Edition
2003
Category
Article
ISBN-13
9780387955773

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✦ Synopsis


This Book Presents Practical Approaches For The Analysis Of Data From Gene Expression Microarrays. Each Chapter Describes The Conceptual And Methodological Underpinning For A Statistical Tool And Its Implementation In Software. Methods Cover All Aspects Of Statistical Analysis Of Microarrays, From Annotation And Filtering To Clustering And Classification. Chapters Are Written By The Developers Of The Software. All Software Packages Described Are Free To Academic Users. The Book Includes Coverage Of Various Packages That Are Part Of The Bioconductor Project And Several Related R Tools. The Materials Presented Cover A Range Of Software Tools Designed For Varied Audiences. Some Chapters Describe Simple Menu-driven Software In A User-friendly Fashion, And Are Designed To Be Accessible To Microarray Data Analysts Without Formal Quantitative Training. Most Chapters Are Directed At Microarray Data Analysts With Master-level Training In Computer Science, Biostatistics Or Bioinformatics. A Minority Of More Advanced Chapters Are Intended For Doctoral Students And Researchers. Introduction -- Visualization And Annotation Of Genomic Experiments -- Bioconductor R Packages For Exploratory Data Analysis And Normalization Of Cdna Microarray Data -- An R Package For Analyses Of Affymetrix Oligonucleotide Arrays -- Dna-chip Analyzer (d-chip) -- Expression Profiler -- An S-plus Library For The Analysis Of Microarray Data -- Dragon And Dragon View: Methods For The Annotation, Analysis, And Visualization Of Large-scale Gene Expression Data -- Snomad: User-friendly Web Tools For The Standardization And Normalization Of Microarry Data -- Microarray Analysis Using The Microarray Explorer -- Parametric Empirical Bayes Methods For Microarrays -- Sam Thresholding And False Discovery Rates For Detecting Differential Gene Expression In Dna Microarrays -- Adaptive Gene Picking With Microarray Data: Detecting Important Low Abundance Signals.-maanova: A Software Package For The Analysis Of Spotted Cdna Microarray Experiments -- Geneclust -- Poe Statistical Tools For Molecular Profiling -- Bayesian Decomposition -- Cluster Analysis Of Gene Expression Dynamics -- Relevance Networks: A First Step Towards Finding Genetic Regulatory Networks Within Microarray Data. Edited By Giovanni Parmigiani, Elizabeth S. Garrett, Rafael A. Irizarry, Scott L. Zeger.


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