To install this package, start R and enter:

source("http://bioconductor.org/biocLite.R")
biocLite("predictionet")

In most cases, you don't need to download the package archive at all.

predictionet

Inference for predictive networks designed for (but not limited to) genomic data

Bioconductor version: 3.0

This package contains a set of functions related to network inference combining genomic data and prior information extracted from biomedical literature and structured biological databases. The main function is able to generate networks using Bayesian or regression-based inference methods; while the former is limited to < 100 of variables, the latter may infer networks with hundreds of variables. Several statistics at the edge and node levels have been implemented (edge stability, predictive ability of each node, ...) in order to help the user to focus on high quality subnetworks. Ultimately, this package is used in the 'Predictive Networks' web application developed by the Dana-Farber Cancer Institute in collaboration with Entagen.

Author: Benjamin Haibe-Kains, Catharina Olsen, Gianluca Bontempi, John Quackenbush

Maintainer: Benjamin Haibe-Kains <bhaibeka at jimmy.harvard.edu>, Catharina Olsen <colsen at ulb.ac.be>

Citation (from within R, enter citation("predictionet")):

Installation

To install this package, start R and enter:

source("http://bioconductor.org/biocLite.R")
biocLite("predictionet")

Documentation

To view documentation for the version of this package installed in your system, start R and enter:

browseVignettes("predictionet")

 

PDF R Script predictionet
PDF   Reference Manual
Text   README

Details

biocViews GraphAndNetwork, NetworkInference, Software
Version 1.12.0
In Bioconductor since BioC 2.9 (R-2.14)
License Artistic-2.0
Depends igraph, catnet
Imports penalized, RBGL, MASS
LinkingTo
Suggests network, minet, knitr
SystemRequirements
Enhances
URL http://compbio.dfci.harvard.edu http://www.ulb.ac.be/di/mlg
Depends On Me
Imports Me
Suggests Me
Build Report  

Package Archives

Follow Installation instructions to use this package in your R session.

Package Source predictionet_1.12.0.tar.gz
Windows Binary
Mac OS X 10.6 (Snow Leopard) predictionet_1.12.0.tgz
Mac OS X 10.9 (Mavericks) predictionet_1.12.0.tgz
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