Journal
JOURNAL OF CELLULAR PHYSIOLOGY
Volume 229, Issue 12, Pages 1896-1900Publisher
WILEY
DOI: 10.1002/jcp.24662
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Funding
- NIH [EY022300, LM009012, LM010098, AI59694, GM103534]
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Recent technological advances allow for high throughput profiling of biological systems in a cost-efficient manner. The low cost of data generation is leading us to the big data era. The availability of big data provides unprecedented opportunities but also raises new challenges for data mining and analysis. In this review, we introduce key concepts in the analysis of big data, including both machine learning algorithms as well as unsupervised and supervised examples of each. We note packages for the R programming language that are available to perform machine learning analyses. In addition to programming based solutions, we review webservers that allow users with limited or no programming background to perform these analyses on large data compendia. J. Cell. Physiol. 229: 1896-1900, 2014. (c) 2014 Wiley Periodicals, Inc.
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