<?xml version="1.0"?>
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 <rdf:Description>
  <dc:title>Factor Analysis for Multiple Testing (FAMT) : simultaneous tests
under dependence in high-dimensional data</dc:title>
  <dc:description>The method proposed in this package takes into account the
impact of dependence on the multiple testing procedures for
high-throughput data as proposed by Friguet et al. (2009). The
common information shared by all the variables is modeled by a
factor analysis structure. The number of factors considered in
the model is chosen to reduce the false discoveries variance in
multiple tests. The model parameters are estimated thanks to an
EM algorithm. Adjusted tests statistics are derived, as well as
the associated p-values. The proportion of true null hypotheses
(an important parameter when controlling the false discovery
rate) is also estimated from the FAMT model. Graphics are
proposed to interpret and describe the factors.</dc:description>
  <dc:type>Software</dc:type>
  <dc:relation>Depends: mnormt, impute</dc:relation>
  <dc:creator>David Causeur &lt;David.Causeur@agrocampus-ouest.fr&gt;</dc:creator>
  <dc:contributor>David Causeur, Chloe Friguet, Magalie Houee-Bigot, Maela
Kloareg</dc:contributor>
  <dc:rights>GPL (&gt;= 2)</dc:rights>
  <dc:date>2011-05-12</dc:date>
  <dc:format>application/tgz</dc:format>
  <dc:identifier>http://CRAN.R-project.org/package=FAMT</dc:identifier>
 </rdf:Description>
</rdf:RDF>

