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BAMarray™: Java software for Bayesian analysis of variance for microarray data
Authors:Hemant Ishwaran  J Sunil Rao  Udaya B Kogalur
Affiliation:(1) Department of Quantitative Health Sciences, Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, OH 44195, USA;(2) Department of Statistics, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA;(3) Department of Epidemiology and Biostatistics, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA;(4) Ireland Comprehensive Cancer Center, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA;(5) Department of Statistics, Columbia University, 1255 Amsterdam Avenue, New York, NY 10027, USA
Abstract:

Background  

DNA microarrays open up a new horizon for studying the genetic determinants of disease. The high throughput nature of these arrays creates an enormous wealth of information, but also poses a challenge to data analysis. Inferential problems become even more pronounced as experimental designs used to collect data become more complex. An important example is multigroup data collected over different experimental groups, such as data collected from distinct stages of a disease process. We have developed a method specifically addressing these issues termed Bayesian ANOVA for microarrays (BAM). The BAM approach uses a special inferential regularization known as spike-and-slab shrinkage that provides an optimal balance between total false detections and total false non-detections. This translates into more reproducible differential calls. Spike and slab shrinkage is a form of regularization achieved by using information across all genes and groups simultaneously.
Keywords:
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