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PhenoGMM: Gaussian mixture modeling of cytometry data quantifies changes inmicrobial community structure
Rubbens, P.; Props, R.; Kerckhof, F.-M.; Boon, N.; Waegeman, W.
(2021). PhenoGMM: Gaussian mixture modeling of cytometry data quantifies changes inmicrobial community structure.
mSphere 6(1)
: e00530-20.
https://dx.doi.org/10.1128/msphere.00530-20
In:
mSphere. American Society for Microbiology: Washington. e-ISSN 2379-5042
Available in
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Open access 370898
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Author keywords
diversity, fingerprint, flow cytometry, machine learning, microbial communities, mixture model
Authors
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Rubbens, P.
Props, R.
Kerckhof, F.-M.
Boon, N.
Waegeman, W.
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