Structure learning for gene regulatory networks

Inference of biological network structures is often performed on high-dimensional data, yet is hindered by the limited sample size of high throughput "omics" data typically available. To overcome this challenge, often referred to as the "small n, large p problem," we exploit know...

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Veröffentlicht in:PLoS computational biology 2023-05, Vol.19 (5), p.e1011118-e1011118
Hauptverfasser: Federico, Anthony, Kern, Joseph, Varelas, Xaralabos, Monti, Stefano
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Sprache:eng
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