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Nicolas Labroche
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2020 – today
- 2025
- [j12]Elodie Escriva, Tom Lefrere, Manon Martin, Julien Aligon, Alexandre Chanson, Jean-Baptiste Excoffier, Nicolas Labroche, Chantal Soulé-Dupuy, Paul Monsarrat:
Effective data exploration through clustering of local attributive explanations. Inf. Syst. 127: 102464 (2025) - 2024
- [j11]Alexandre Chanson, Nicolas Labroche, Patrick Marcel, Vincent T'kindt:
Comparison Queries Generation Using Mathematical Programming for Exploratory Data Analysis. IEEE Trans. Knowl. Data Eng. 36(12): 7792-7804 (2024) - [c52]Alexandre Chanson, Nicolas Labroche, Patrick Marcel, Verónika Peralta, Panos Vassiliadis:
Interestingness Measures for Exploratory Data Analysis: a Survey. ADBIS (Short Papers) 2024: 14-24 - 2023
- [c51]Adam Przybylek, Aleksandra Karpus, Allel Hadjali, Anton Dignös, Carmem S. Hara, Danae Pla Karidi, Ester Zumpano, Fabio Persia, Genoveva Vargas-Solar, George Papastefanatos, Giancarlo Sperlì, Giorgos Giannopoulos, Ivan Lukovic, Julien Aligon, Manolis Terrovitis, Marek Grzegorowski, Mariella Bonomo, Mirian Halfeld Ferrari Alves, Nicolas Labroche, Paul Monsarrat, Richard Chbeir, Sana Sellami, Seshu Tirupathi, Simona E. Rombo, Slavica Kordic, Sonja Ristic, Tommaso Di Noia, Torben Bach Pedersen, Vincenzo Moscato:
Databases and Information Systems: Contributions from ADBIS 2023 Workshops and Doctoral Consortium. ADBIS (Short Papers) 2023: 293-311 - [c50]Alexandre Chanson, Nicolas Labroche, Patrick Marcel, Willeme Verdeaux:
Pairwise Loss Regularization for Recommendations Explanation. DOLAP 2023: 91-95 - 2022
- [j10]Léo Brunot, Nicolas Canovas, Alexandre Chanson, Nicolas Labroche, Willeme Verdeaux:
Preference-based and local post-hoc explanations for recommender systems. Inf. Syst. 108: 102021 (2022) - [j9]Sihem Amer-Yahia, Angela Bonifati, Cécile Favre, Élisa Fromont, Nicolas Labroche, Guy Melançon, Florence Sèdes, Arnaud Soulet, Alexandre Termier:
Diversity and Inclusion Activities in EGC - A 2022 Report. SIGKDD Explor. 24(1): 52-56 (2022) - [c49]Michael Franklin Mbouopda, Thomas Guyet, Nicolas Labroche, Abel Henriot:
Experimental Study of Time Series Forecasting Methods for Groundwater Level Prediction. AALTD@ECML/PKDD 2022: 34-49 - [c48]Alexandre Chanson, Faten El Outa, Nicolas Labroche, Patrick Marcel, Verónika Peralta, Willeme Verdeaux, Lucile Jacquemart:
Generating Personalized Data Narrations from EDA Notebooks. DOLAP 2022: 91-95 - [c47]Alexandre Chanson, Nicolas Labroche, Patrick Marcel, Stefano Rizzi, Vincent T'kindt:
Automatic generation of comparison notebooks for interactive data exploration. EDBT 2022: 2:274-2:284 - [c46]Nicolas Ringuet, Patrick Marcel, Nicolas Labroche, Thomas Devogele, Christophe Bortolaso:
Modeling Lifelong Pathway Co-construction. ER 2022: 130-144 - [c45]Fodil Benali, Damien Bodénès, Nicolas Labroche, Cyril de Runz:
MTCopula: Génération de données synthétiques et complexes basées sur les Copules. EGC 2022: 347-354 - [c44]Fodil Benali, Damien Bodénès, Cyril De Runz, Nicolas Labroche:
An enhanced adaptive geometry evolutionary algorithm using stochastic diversity mechanism. GECCO 2022: 476-483 - [c43]Fodil Benali, Damien Bodénès, Cyril de Runz, Nicolas Labroche:
A new reference-based algorithm based on non-euclidean geometry for multi-stakeholder media planning. SAC 2022: 1056-1065 - [i3]Michael Franklin Mbouopda, Thomas Guyet, Nicolas Labroche, Abel Henriot:
Experimental study of time series forecasting methods for groundwater level prediction. CoRR abs/2209.13927 (2022) - 2021
- [c42]Alexandre Chanson, Thomas Devogele, Nicolas Labroche, Patrick Marcel, Nicolas Ringuet, Vincent T'kindt:
A Chain Composite Item Recommender for Lifelong Pathways. DaWaK 2021: 55-66 - [c41]Alexandre Chanson, Nicolas Labroche, Willeme Verdeaux:
Towards Local Post-hoc Recommender Systems Explanations. DOLAP 2021: 41-50 - [c40]Fodil Benali, Damien Bodenes, Nicolas Labroche, Cyril de Runz:
MTCopula: Synthetic Complex Data Generation Using Copula. DOLAP 2021: 51-60 - [c39]Fodil Benali, Damien Bodénès, Cyril De Runz, Nicolas Labroche:
An Enhanced R-NSGA-II For Multiple Brands Advertising Campaign Allocation Problem. ICTAI 2021: 1306-1310 - 2020
- [j8]Adnan El Moussawi, Arnaud Giacometti, Nicolas Labroche, Arnaud Soulet:
MAPK-means: A clustering algorithm with quantitative preferences on attributes. Intell. Data Anal. 24(2): 459-489 (2020) - [c38]Alexandre Chanson, Ben Crulis, Nicolas Labroche, Patrick Marcel, Verónika Peralta, Stefano Rizzi, Panos Vassiliadis:
The Traveling Analyst Problem: Definition and Preliminary Study. DOLAP 2020: 94-98 - [c37]Willeme Verdeaux, Clément Moreau, Nicolas Labroche, Patrick Marcel:
Causality based explanations in multi-stakeholder recommendations. EDBT/ICDT Workshops 2020 - [c36]Krista Drushku, Julien Aligon, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
Recommandations basées sur les centres d'intérêts utilisateurs en Business Intelligence. INFORSID 2020: 151-152 - [i2]Caroline Pasquer, Agata Savary, Jean-Yves Antoine, Carlos Ramisch, Nicolas Labroche, Arnaud Giacometti:
To Be or Not To Be a Verbal Multiword Expression: A Quest for Discriminating Features. CoRR abs/2007.11381 (2020)
2010 – 2019
- 2019
- [j7]Mahfoud Djedaini, Krista Drushku, Nicolas Labroche, Patrick Marcel, Verónika Peralta, Willeme Verdeaux:
Automatic assessment of interactive OLAP explorations. Inf. Syst. 82: 148-163 (2019) - [j6]Krista Drushku, Julien Aligon, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
Interest-based recommendations for business intelligence users. Inf. Syst. 86: 79-93 (2019) - [c35]Alexandre Chanson, Ben Crulis, Krista Drushku, Nicolas Labroche, Patrick Marcel:
Profiling User Belief in BI Exploration for Measuring Subjective Interestingness. DOLAP 2019 - [c34]Patrick Marcel, Nicolas Labroche, Panos Vassiliadis:
Towards a Benefit-based Optimizer for Interactive Data Analysis. DOLAP 2019 - [i1]Alexandre Chanson, Ben Crulis, Nicolas Labroche, Patrick Marcel:
A Subjective Interestingness measure for Business Intelligence explorations. CoRR abs/1907.06946 (2019) - 2018
- [c33]Violaine Antoine, Kévin Gravouil, Nicolas Labroche:
On Evidential Clustering with Partial Supervision. BELIEF 2018: 14-21 - [c32]Martina Megasari, Pandu Wicaksono, Chiao Yun Li, Clément Chaussade, Shibo Cheng, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
Can Models Learned from a Dataset Reflect Acquisition of Procedural Knowledge? An Experiment with Automatic Measurement of Online Review Quality. DOLAP 2018 - [c31]Violaine Antoine, Nicolas Labroche:
Semi-supervised Fuzzy c-Means Variants: A Study on Noisy Label Supervision. IPMU (2) 2018: 51-62 - 2017
- [j5]Viet-Vu Vu, Nicolas Labroche:
Active seed selection for constrained clustering. Intell. Data Anal. 21(3): 537-552 (2017) - [c30]Mahfoud Djedaini, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
Detecting User Focus in OLAP Analyses. ADBIS 2017: 105-119 - [c29]Krista Drushku, Julien Aligon, Nicolas Labroche, Patrick Marcel, Verónika Peralta, Bruno Dumant:
User Interests Clustering in Business Intelligence Interactions. CAiSE 2017: 144-158 - [c28]Mahfoud Djedaini, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
A benchmark for assessing OLAP exploration assistants. EDA 2017: 81-84 - [c27]Adnan El Moussawi, Philippe De Guis, Arnaud Giacometti, Nicolas Labroche, Arnaud Soulet:
Prototype de clustering exploratoire pour l'aide à la segmentation des clients. EGC 2017: 457-460 - 2016
- [c26]Adnan El Moussawi, Ahmed Cheriat, Arnaud Giacometti, Nicolas Labroche, Arnaud Soulet:
Clustering par apprentissage de distance guidé par des préférences sur les attributs. EGC 2016: 333-344 - [c25]Adnan El Moussawi, Ahmed Cheriat, Arnaud Giacometti, Nicolas Labroche, Arnaud Soulet:
Clustering with Quantitative User Preferences on Attributes. ICTAI 2016: 383-387 - [c24]Mahfoud Djedaini, Pedro Furtado, Nicolas Labroche, Patrick Marcel, Verónika Peralta:
Benchmarking Exploratory OLAP. TPCTC 2016: 61-77 - 2015
- [j4]Sahar Changuel, Nicolas Labroche, Bernadette Bouchon-Meunier:
Resources Sequencing Using Automatic Prerequisite-Outcome Annotation. ACM Trans. Intell. Syst. Technol. 6(1): 6:1-6:30 (2015) - [c23]Pedro Furtado, Sergi Nadal, Verónika Peralta, Mahfoud Djedaini, Nicolas Labroche, Patrick Marcel:
Materializing Baseline Views for Deviation Detection Exploratory OLAP. DaWaK 2015: 243-254 - [c22]Violaine Antoine, Nicolas Labroche:
Classification évidentielle avec contraintes d'étiquettes. EGC 2015: 125-136 - 2014
- [j3]Nicolas Labroche:
Online fuzzy medoid based clustering algorithms. Neurocomputing 126: 141-150 (2014) - [c21]Nicolas Labroche, Marcin Detyniecki, Thomas Bärecke:
Comparaison de bornes théoriques pour l'accélération du clustering incrémental en une passe. EGC 2014: 467-478 - [c20]Violaine Antoine, Nicolas Labroche, Viet-Vu Vu:
Evidential seed-based semi-supervised clustering. SCIS&ISIS 2014: 706-711 - 2013
- [c19]Sylvain Dormieu, Nicolas Labroche:
SNOW, un algorithme exploratoire pour le subspace clustering. EGC 2013: 79-84 - [c18]Nicolas Labroche, Marcin Detyniecki, Thomas Bärecke:
Accelerating One-Pass Clustering by Cluster Selection Racing. ICTAI 2013: 491-498 - 2012
- [b2]Nicolas Labroche:
Méthodes d'apprentissage automatique pour l'analyse des interactions utilisateurs. (Machine learning methods for the analysis of user interactions). Pierre and Marie Curie University, Paris, France, 2012 - [j2]Viet-Vu Vu, Nicolas Labroche, Bernadette Bouchon-Meunier:
Improving constrained clustering with active query selection. Pattern Recognit. 45(4): 1749-1758 (2012) - [c17]Sahar Changuel, Nicolas Labroche:
Content Independent Metadata Production as a Machine Learning Problem. MLDM 2012: 306-320 - 2011
- [c16]Sahar Changuel, Nicolas Labroche:
Distinguishing defined concepts from prerequisite concepts in learning resources. CIDM 2011: 22-29 - 2010
- [c15]Viet-Vu Vu, Nicolas Labroche, Bernadette Bouchon-Meunier:
Boosting Clustering by Active Constraint Selection. ECAI 2010: 297-302 - [c14]Viet-Vu Vu, Nicolas Labroche, Bernadette Bouchon-Meunier:
An Efficient Active Constraint Selection Algorithm for Clustering. ICPR 2010: 2969-2972 - [c13]Viet-Vu Vu, Nicolas Labroche, Bernadette Bouchon-Meunier:
Active Learning for Semi-Supervised K-Means Clustering. ICTAI (1) 2010: 12-15 - [c12]Sahar Changuel, Nicolas Labroche, Bernadette Bouchon-Meunier:
Automatic concept type identification from learning resources. IJCNN 2010: 1-6 - [c11]Nicolas Labroche, Christophe Marsala:
Optimization of a fuzzy decision trees forest with artificial ant based clustering. SoCPaR 2010: 1-5
2000 – 2009
- 2009
- [c10]Sahar Changuel, Nicolas Labroche, Bernadette Bouchon-Meunier:
Automatic Web Pages Author Extraction. FQAS 2009: 300-311 - [c9]Sahar Changuel, Nicolas Labroche, Bernadette Bouchon-Meunier:
A General Learning Method for Automatic Title Extraction from HTML Pages. MLDM 2009: 704-718 - [c8]Viet-Vu Vu, Nicolas Labroche, Bernadette Bouchon-Meunier:
Leader Ant Clustering with Constraints. RIVF 2009: 1-8 - 2008
- [j1]Marie-Jeanne Lesot, Nicolas Labroche, Lionel Yaffi:
Analyse et visualisation interactive de sessions web. Rev. d'Intelligence Artif. 22(3-4): 369-382 (2008) - 2007
- [c7]Nicolas Labroche, Marie-Jeanne Lesot, Lionel Yaffi:
A New Web Usage Mining and Visualization Tool. ICTAI (1) 2007: 321-328 - 2005
- [c6]Nicolas Labroche:
Mesure d'audience sur Internet par populations de fourmis artificielles. EGC (Ateliers) 2005: 119-124 - 2004
- [c5]Nicolas Labroche, Christiane Guinot, Gilles Venturini:
Fast Unsupervised Clustering with Artificial Ants. PPSN 2004: 1143-1152 - 2003
- [b1]Nicolas Labroche:
Modélisation du système de reconnaissance chimique des fourmis pour le problème de la classification non-supervisée : application à la mesure d'audience sur Internet. (Modelling of the chemical recognition system of ants for the unsupervised classification problem : application to web usage mining). François Rabelais University, Tours, France, 2003 - [c4]Nicolas Labroche, Nicolas Monmarché, Gilles Venturini:
AntClust: Ant Clustering and Web Usage Mining. GECCO 2003: 25-36 - [c3]Nicolas Labroche, Nicolas Monmarché, Gilles Venturini:
Visual Clustering with Artificial Ants Colonies. KES 2003: 332-338 - [c2]Nicolas Labroche, Nicolas Monmarché, Gilles Venturini:
Web Sessions Clustering with Artificial Ants Colonies. WWW (Posters) 2003 - 2002
- [c1]Nicolas Labroche, Nicolas Monmarché, Gilles Venturini:
A new clustering algorithm based on the ants chemical recognition system. ECAI 2002: 345-349
Coauthor Index
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