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Cathy Maugis
Cathy Maugis
Institut de Mathématiques de Toulouse, INSA Toulouse
Bestätigte E-Mail-Adresse bei insa-toulouse.fr - Startseite
Titel
Zitiert von
Zitiert von
Jahr
Co-expression analysis of high-throughput transcriptome sequencing data with Poisson mixture models
A Rau, C Maugis-Rabusseau, ML Martin-Magniette, G Celeux
Bioinformatics 31 (9), 1420-1427, 2015
732015
Transformation and model choice for RNA-seq co-expression analysis
A Rau, C Maugis-Rabusseau
Briefings in bioinformatics 19 (3), 425-436, 2018
542018
Synthetic data sets for the identification of key ingredients for RNA-seq differential analysis
G Rigaill, S Balzergue, V Brunaud, E Blondet, A Rau, O Rogier, J Caius, ...
Briefings in bioinformatics 19 (1), 65-76, 2018
492018
Clustering transformed compositional data using K-means, with applications in gene expression and bicycle sharing system data
A Godichon-Baggioni, C Maugis-Rabusseau, A Rau
Journal of Applied Statistics 46 (1), 47-65, 2019
342019
Variable selection in model-based clustering and discriminant analysis with a regularization approach
G Celeux, C Maugis-Rabusseau, M Sedki
Advances in Data Analysis and Classification 13 (1), 259-278, 2019
302019
Comparing model selection and regularization approaches to variable selection in model-based clustering
G Celeux, ML Martin-Magniette, C Maugis-Rabusseau, AE Raftery
Journal de la Societe francaise de statistique 155 (2), 57-71, 2014
282014
Adaptive density estimation for clustering with Gaussian mixtures
C Maugis-Rabusseau, B Michel
ESAIM: Probability and Statistics 17, 698-724, 2013
262013
On the estimation of mixtures of Poisson regression models with large number of components
P Papastamoulis, ML Martin-Magniette, C Maugis-Rabusseau
Computational Statistics & Data Analysis 93, 97-106, 2016
242016
Clustering high-throughput sequencing data with Poisson mixture models
A Rau, G Celeux, ML Martin-Magniette, C Maugis-Rabusseau
Inria, 2011
232011
A sparse variable selection procedure in model-based clustering
C Meynet, C Maugis-Rabusseau
182012
Parameter recovery in two-component contamination mixtures: The strategy
S Gadat, J Kahn, C Marteau, C Maugis-Rabusseau
Annales de l'Institut Henri Poincaré, Probabilités et Statistiques 56 (2 …, 2020
132020
Non-asymptotic detection of two-component mixtures with unknown means
B Laurent, C Marteau, C Maugis-Rabusseau
Bernoulli 22 (1), 242-274, 2016
92016
SelvarClustMV: Variable selection approach in model-based clustering allowing for missing values
C Maugis-Rabusseau, ML Martin-Magniette, S Pelletier
Journal de la Société Française de Statistique 153 (2), 21-36, 2012
72012
SelvarMix: Regularization for variable selection in model-based clustering and discriminant analysis
M Sedki, G Celeux, C Maugis-Rabusseau
R package version 1 (1), 2017
52017
SuperMix: Sparse regularization for mixtures
Y De Castro, S Gadat, C Marteau, C Maugis-Rabusseau
The Annals of Statistics 49 (3), 1779-1809, 2021
22021
Multidimensional two-component Gaussian mixtures detection
B Laurent, C Marteau, C Maugis-Rabusseau
Annales de l'Institut Henri Poincaré, Probabilités et Statistiques 54 (2 …, 2018
22018
SelvarMix: AR package for variable selection in model-based clustering and discriminant analysis with a regularization approach
M Sedki, G Celeux, C Maugis
INRIA Techical report, 2014
22014
Insights on the control of yeast single-cell growth variability by members of the Trehalose Phosphate Synthase (TPS) complex
S Arabaciyan, M Saint-Antoine, C Maugis-Rabusseau, JM François, ...
Frontiers in cell and developmental biology 9, 607628, 2021
12021
Co-expression analysis of RNA-seq data with the HTSCluster package
A Rau, C Maugy-Rabusseau, ML Martin-Magniette, G Celeux
Version 2 (8), 0
1
The DendrisCHIP® Technology as a New, Rapid and Reliable Molecular Method for the Diagnosis of Osteoarticular Infections
E Bernard, T Peyret, M Plinet, Y Contie, T Cazaudarré, Y Rouquet, ...
Diagnostics 12 (6), 1353, 2022
2022
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