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Benjamin Quost
Benjamin Quost
Verified email at utc.fr
Title
Cited by
Cited by
Year
Refined modeling of sensor reliability in the belief function framework using contextual discounting
D Mercier, B Quost, T Denœux
Information fusion 9 (2), 246-258, 2008
2162008
Classifier fusion in the Dempster–Shafer framework using optimized t-norm based combination rules
B Quost, MH Masson, T Denœux
International Journal of Approximate Reasoning 52 (3), 353-374, 2011
1452011
CECM: Constrained evidential c-means algorithm
V Antoine, B Quost, MH Masson, T Denoeux
Computational Statistics & Data Analysis 56 (4), 894-914, 2012
852012
Pairwise classifier combination using belief functions
B Quost, T Denœux, MH Masson
Pattern Recognition Letters 28 (5), 644-653, 2007
842007
Clustering and classification of fuzzy data using the fuzzy EM algorithm
B Quost, T Denoeux
Fuzzy Sets and Systems 286, 134-156, 2016
512016
Moving object detection and segmentation in urban environments from a moving platform
D Zhou, V Frémont, B Quost, Y Dai, H Li
Image and Vision Computing 68, 76-87, 2017
492017
Parametric classification with soft labels using the evidential EM algorithm: linear discriminant analysis versus logistic regression
B Quost, T Denoeux, S Li
Advances in Data Analysis and Classification 11, 659-690, 2017
412017
Contextual discounting of belief functions
D Mercier, B Quost, T Denœux
European Conference on Symbolic and Quantitative Approaches to Reasoning and …, 2005
402005
Estimation of multiple sound sources with data and model uncertainties using the EM and evidential EM algorithms
X Wang, B Quost, JD Chazot, J Antoni
Mechanical Systems and Signal Processing 66, 159-177, 2016
362016
CEVCLUS: evidential clustering with instance-level constraints for relational data
V Antoine, B Quost, MH Masson, T Denoeux
Soft Computing 18, 1321-1335, 2014
362014
Iterative beamforming for identification of multiple broadband sound sources
X Wang, B Quost, JD Chazot, J Antoni
Journal of Sound and Vibration 365, 260-275, 2016
282016
Learning from data with uncertain labels by boosting credal classifiers
B Quost, T Denœux
Proceedings of the 1st ACM SIGKDD Workshop on Knowledge Discovery From …, 2009
242009
Classification by pairwise coupling of imprecise probabilities
B Quost, S Destercke
Pattern Recognition 77, 412-425, 2018
192018
On modeling ego-motion uncertainty for moving object detection from a mobile platform
D Zhou, V Frémont, B Quost, B Wang
2014 IEEE Intelligent Vehicles Symposium Proceedings, 1332-1338, 2014
182014
One-against-all classifier combination in the framework of belief functions
B Quost, T Denoeux, M Masson, A UPJV
Eighth Conference on Information Fusion Conference, 356-363, 2006
162006
Clustering fuzzy data using the fuzzy EM algorithm
B Quost, T Denœux
International Conference on Scalable Uncertainty Management, 333-346, 2010
152010
Adapting a combination rule to non-independent information sources
B Quost, T Denoeux, MH Masson
12th Information Processing and Management of Uncertainty in Knowledge-Based …, 2008
122008
Pairwise classifier combination in the transferable belief model
B Quost, T Denaeux, M Masson
2005 7th international conference on information fusion 1, 8 pp., 2005
122005
Combining binary classifiers with imprecise probabilities
S Destercke, B Quost
Integrated Uncertainty in Knowledge Modelling and Decision Making …, 2011
92011
Method for calculating a setpoint for managing the fuel and electricity consumption of a hybrid motor vehicle
A Ourabah, X Jaffrezic, A Gayed, B Quost, T Denoeux
US Patent 10,668,824, 2020
82020
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