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Bioinformatics and Computational Biology Solutions Using R and Bioconductor

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Material Type: Online Course
Date Added to MERLOT: July 18, 2008
Date Modified in MERLOT: October 27, 2011
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Author:
 Send email to paffairs@jhsph.edu
Johns Hopkins Bloomberg School of Public Health
Submitter : Cathy Swift

Description:
This course covers the basics of R software and the key capabilities of the Bioconductor project (a widely used open source and open development software project for the analysis and comprehension of data arising from high-throughput experimentation in genomics and molecular biology and rooted in the open source statistical computing environment R), including importation and preprocessing of high-throughput data from microarrays and other platforms. Also introduces statistical concepts and tools necessary to interpret and critically evaluate the bioinformatics and computational biology literature. Includes an overview of of preprocessing and normalization, statistical inference, multiple comparison corrections, Bayesian Inference in the context of multiple comparisons, clustering, and classification/machine learning.

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More information about this material:
Primary Audience: College Upper Division, Graduate School, Professional
Mobile Compatibility: Not specified at this time
Language: English
Cost Involved: no
Source Code Available: unsure
Accessiblity Information Available: unsure
Copyright: yes
Creative Commons: Creative Commons License
This work is licensed under a Attribution-NonCommercial-ShareAlike 3.0 United States

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