Bibliography
Major publications by the team in recent years
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1S. Arlot, A. Celisse.
Segmentation of the mean of heteroscedastic data via cross-validation, in: Statistics and Computing, 2010, pp. 1–20.
http://www.springerlink.com/content/jq202v115512u26p/ -
2S. Arlot, A. Celisse, Z. Harchaoui.
Kernel change-point detection, 2012. -
3C. Biernacki.
Pourquoi les modèles de mélange pour la classification ?, in: La Revue de Modulad, 2009, vol. 40, pp. 1–22. -
4C. Biernacki, G. Celeux, G. Govaert.
Exact and Monte Carlo Calculations of Integrated Likelihoods for the Latent Class Model, in: Journal of Statistical and Planning Inference, 2010, no 1, pp. 2991–3002. -
5C. Biernacki, J. Jacques.
A generative model for rank data based on sorting algorithm, in: Computational Statistics and Data Analysis, 2013, no 58, pp. 162–176. -
6A. Biernacki.
Gaussian Parsimonious Clustering Models Scale Invariant and Stable by Projection, in: Statistics and Computing, in press. -
7A. Celisse.
Optimal cross-validation in density estimation, ArXiv, 2013, no arXiv:0811.0802v3. -
8A. Celisse, J.-J. Daudin, L. Pierre.
Consistency of maximum likelihood and variational estimators in stochastic block model, in: Electronic Journal of Statistics, 2012, pp. 1847–1899.
http://projecteuclid.org/handle/euclid.ejs -
9S. Dabo-Niang, S. A. Ould-Abdi, A. Diop.
Consistency of a nonparametric conditional mode estimator for random fields, in: Statistical Methods and Applications, 2013. [ DOI : 10.1007/s10260-013-0239-2 ] -
10M. Giacofci, S. Lambert-Lacroix, G. Marot, F. Picard.
Wavelet-based clustering for mixed-effects functional models in high dimension, in: Biometrics, 2012, to appear. -
11M. Guedj, A. Celisse, G. Nuel.
kerfdr: A semi-parametric kernel-based approach to local FDR estimations, in: BMC Bioinformatics, 2009, vol. 84, no 10, (electronic). -
12J. Jacques, C. Biernacki.
Extension of model-based classification for binary data when training and test populations differ, in: Journal of Applied Statistics, 2010, vol. 37, no 5, pp. 749–766. -
13M. Marbac, C. Biernacki, V. Vandewalle.
Modèle de classification de données qualitatives par modes de dépendance conditionnelle, in: 45e Journées de Statistique de la SFDS, Toulouse, 2013. -
14M. Marbac, C. Biernacki, V. Vandewalle.
Modèle de mélange de copules Gaussiennes pour la classification des données hétérogènes, in: Cinquièmes Rencontres des Jeunes Statisticien-ne-s, Aussois, 2013. -
15M. Marbac, C. Biernacki, V. Vandewalle.
Model-based clustering for conditionally correlated categorical data, Inria, 2013, no RR-8232. -
16V. Vandewalle, C. Biernacki, G. Celeux, G. Govaert.
A predictive deviance criterion for selecting a generative model in semi-supervised classification, in: Computational Statistics and Data Analysis, in press. -
17V. Vandewalle, C. Biernacki, M. Marbac.
Modèle de classification de données qualitatives par modes de dépendance conditionnelle, in: Seminar of probability and statistics, Paris V, 2013.
Articles in International Peer-Reviewed Journals
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18C. Biernacki, A. Lourme.
Gaussian Parsimonious Clustering Models Scale Invariant and Stable by Projection, in: Statistics and Computing, December 2013, In press.
http://hal.inria.fr/hal-00688250 -
19S. Dabo-Niang, S. Ali Ould Abdi, A. Ould Abdi, A. Diop.
Consistency of a nonparametric conditional mode estimator for random fields, in: Statistical Methods and Applications, 2013. [ DOI : 10.1007/s10260-013-0239-2 ]
http://hal.inria.fr/hal-00921178 -
20S. Dabo-Niang, A.-F. Yao.
Spatial kernel density estimation for functional random variables, in: Metrika, 2013, vol. 1, pp. 19-52.
http://hal.inria.fr/hal-00943638 -
21E. Eirola, A. Lendasse, V. Vandewalle, C. Biernacki.
Mixture of Gaussians for Distance Estimation with Missing Data, in: Neurocomputing, December 2013, vol. In press.
http://hal.inria.fr/hal-00921023 -
22M. Giacofci, S. Lambert-Lacroix, G. Marot, F. Picard.
Wavelet-based clustering for mixed-effects functional models in high dimension, in: Biometrics, March 2013, vol. 69, no 1, pp. 31-40. [ DOI : 10.1111/j.1541-0420.2012.01828.x ]
http://hal.inria.fr/hal-00782458 -
23J. Jacques, C. Preda.
Funclust: a curves clustering method using functional random variables density approximation, in: Neurocomputing, 2013, vol. 112, pp. 164-171.
http://hal.inria.fr/hal-00628247 -
24J. Jacques, C. Preda.
Functional data clustering: a survey, in: Advances in Data Analysis and Classification, January 2013, 25 p. [ DOI : 10.1007/s11634-013-0158-y ]
http://hal.inria.fr/hal-00771030 -
25J. Jacques, C. Preda.
Model-based clustering for multivariate functional data, in: Computational Statistics and Data Analysis, 2014, vol. 71, pp. 92-106.
http://hal.inria.fr/hal-00713334 -
26A. Lourme, C. Biernacki.
Simultaneous Gaussian Model-Based Clustering for Samples of Multiple Origins, in: Computational Statistics, December 2013, vol. 152, no 3, pp. 371-391.
http://hal.inria.fr/hal-00921041 -
27R. Walker, M. Gissot, L. Huot, T. Dilezitoko Alayi, D. Hot, G. Marot, C. Schaeffer-Reiss, A. Van Dorsselaer, K. Kim, S. Tomavo.
Toxoplasma transcription factor TgAP2XI-5 regulates the expression of genes involved in parasite virulence and host invasion, in: Journal of Biological Chemistry, 2013.
http://hal.inria.fr/hal-00921150 -
28L. Yengo, J. Jacques, C. Biernacki.
Variable clustering in high dimensional linear regression models, in: Journal de la Société Française de Statistique, 2014, in press.
http://hal.inria.fr/hal-00764927
Invited Conferences
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29S. Dabo-Niang.
Spatial Data Analysis, in: 8th International conference of Sousse ISG, Sousse, Tunisia, 2013.
http://hal.inria.fr/hal-00943641 -
30J. Jacques.
Clustering multivariate ordinal data, in: 20th Summer Working Group on Model-Based Clustering of the Department of Statistics of the University of Washington, Bologna, Italy, July 2013.
http://hal.inria.fr/hal-00943733 -
31J. Jacques.
Model-based clustering for multivariate functional data, in: ERCIM 2013, 6th International Conference of the ERCIM working group on Computational and Methodological Statistics, London, United Kingdom, December 2013.
http://hal.inria.fr/hal-00943732
International Conferences with Proceedings
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32S. Dabo-Niang.
Exploring spatial non-parametric estimations, in: Marrakesh International Conference on Probability and Statistics, Marrakech, Morocco, 2013.
http://hal.inria.fr/hal-00943642
Conferences without Proceedings
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33Q. Grimonprez, J. Jacques, C. Biernacki.
Rankclust: An R package for clustering multivariate partial rankings, in: Deuxième Rencontres R, France, 2013.
http://hal.inria.fr/hal-00944005 -
34J. Hamon, C. Dhaenens, G. Even, J. Jacques.
Feature selection in high dimensional regression problems for genomic, in: Tenth International Meeting on Computational Intelligence Methods for Bioinformatics and Biostatistics, Nice, France, June 2013.
http://hal.inria.fr/hal-00839705 -
35J. Hamon, C. Dhaenens, G. Even, J. Jacques.
Modèles mixtes en génétique animale : sélection de variables par optimisation combinatoire, in: 45ème Journées De Statistiques, Toulouse, France, May 2013.
http://hal.inria.fr/hal-00839707
Internal Reports
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36M. Attouch, M. Salem Ahmed, S. Dabo-Niang, A. Diop.
k-nearest neighbors method estimation of regression function for spatial dependent data, 2014.
http://hal.inria.fr/hal-00943647 -
37S. Bouka, S. Dabo-Niang, G. Gayraud, G.-M. Nkiet.
Minimax testing in a spatial discrete regression scheme, 2014.
http://hal.inria.fr/hal-00943645 -
38S. Dabo-Niang, L. Hamdad, C. Ternynck, A.-F. Yao.
A kernel spatial density estimation with applications to spatial clustering and Monsoon Asia Drought Atlas analysis, 2013.
http://hal.inria.fr/hal-00943643 -
39S. Dabo-Niang, C. Ternynck, A.-F. Yao.
A new spatial regression estimator in the multivariate context, 2014.
http://hal.inria.fr/hal-00943646 -
40J. Kellner, A. Celisse.
New goodness-of-fit tes for normality in RKHS, 2014.
http://hal.inria.fr/hal-00943669 -
41M. Marbac, C. Biernacki, V. Vandewalle.
Model-based clustering for conditionally correlated categorical data, Inria, February 2013, no RR-8232, 33 p.
http://hal.inria.fr/hal-00787757 -
42C. Ternynck, M. Ali Ben Alaya, F. Chebana, S. Dabo-Niang, T. Ouarda.
Flood hydrograph classification using functional data analysis, 2013.
http://hal.inria.fr/hal-00943644
Patents
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43M. Pierre-Jean, G. Marot, R. Guillem, A. Celisse.
Change-point detection with kernel methods : application to DNA copy number signals, 2013.
http://hal.inria.fr/hal-00943413 -
44M. Pierre-Jean, G. Marot, G. Rigaill, A. Celisse.
Détection de ruptures à partir de méthodes à noyaux, 2013.
http://hal.inria.fr/hal-00943423
Other Publications
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45Q. Grimonprez, A. Celisse, M. Cheok, M. Figeac, G. Marot.
MPAgenomics : An R package for multi-patients analysis of genomic markers, 2014.
http://hal.inria.fr/hal-00933614 -
46J. Jacques, Q. Grimonprez, C. Biernacki.
Rankcluster: An R package for clustering multivariate partial rankings, 2013.
http://hal.inria.fr/hal-00840692 -
47M. Marbac, C. Biernacki, V. Vandewalle.
Classification de données mixtes par un modèle de mélange de copules gaussiennes, 2014, 46e Journées de Statistique (Rennes, du 2 au 6 juin 2014 ).
http://hal.inria.fr/hal-00940613 -
48A. Rau, G. Marot, F. Jaffrézic.
Differential meta-analysis of RNA-seq data from multiple studies, June 2013.
http://hal.inria.fr/hal-00834369 -
49L. Rémi, I. Serge, L. Florent, C. Biernacki, G. Celeux, G. Govaert.
Rmixmod: The R Package of the Model-Based Unsupervised, Supervised and Semi-Supervised Classification Mixmod Library, 2013.
http://hal.inria.fr/hal-00919486 -
50L. Yengo, J. Jacques, C. Biernacki, M. Canouil.
Variable Clustering in High-Dimensional Linear Regression: The R Package clere, 2013.
http://hal.inria.fr/hal-00940929