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Regularized estimation of large-scale gene association networks using graphical Gaussian models

Regularized estimation of large-scale gene association networks using graphical Gaussian models

Graphical Gaussian models are popular tools for the estimation of (undirected) gene association networks from microarray data. A key issue when the number of variables greatly exceeds the number of samples is the estimation of the matrix of partial correlations. Since the (Moore-Penrose) inverse of the sample covariance matrix leads …