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Jerzy Stefanowski
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Ensemble learning for data stream analysis: A survey
B Krawczyk, LL Minku, J Gama, J Stefanowski, M Woźniak
Information Fusion 37, 132-156, 2017
11032017
SMOTE–IPF: Addressing the noisy and borderline examples problem in imbalanced classification by a re-sampling method with filtering
JA Sáez, J Luengo, J Stefanowski, F Herrera
Information Sciences 291, 184-203, 2015
6202015
Reacting to different types of concept drift: The accuracy updated ensemble algorithm
D Brzezinski, J Stefanowski
IEEE transactions on neural networks and learning systems 25 (1), 81-94, 2013
5432013
Incomplete information tables and rough classification
J Stefanowski, A Tsoukias
Computational intelligence 17 (3), 545-566, 2001
5432001
On the extension of rough sets under incomplete information
J Stefanowski, A Tsoukiās
New Directions in Rough Sets, Data Mining, and Granular-Soft Computing: 7th …, 1999
4421999
Lingo: Search results clustering algorithm based on singular value decomposition
S Osiński, J Stefanowski, D Weiss
Intelligent Information Processing and Web Mining: Proceedings of the …, 2004
4292004
Open challenges for data stream mining research
G Krempl, I Žliobaite, D Brzeziński, E Hüllermeier, M Last, V Lemaire, ...
ACM SIGKDD explorations newsletter 16 (1), 1-10, 2014
3882014
On rough set based approaches to induction of decision rules
J Stefanowski
Rough sets in knowledge discovery 1 (1), 500-529, 1998
3631998
Local neighbourhood extension of SMOTE for mining imbalanced data
T Maciejewski, J Stefanowski
2011 IEEE symposium on computational intelligence and data mining (CIDM …, 2011
3262011
Types of minority class examples and their influence on learning classifiers from imbalanced data
K Napierala, J Stefanowski
Journal of Intelligent Information Systems 46, 563-597, 2016
3132016
Learning from imbalanced data in presence of noisy and borderline examples
K Napierała, J Stefanowski, S Wilk
Rough Sets and Current Trends in Computing: 7th International Conference …, 2010
2892010
Selective pre-processing of imbalanced data for improving classification performance
J Stefanowski, S Wilk
International conference on data warehousing and knowledge discovery, 283-292, 2008
2472008
ROSE-software implementation of the rough set theory
B Predki, R Słowiński, J Stefanowski, R Susmaga, S Wilk
Rough Sets and Current Trends in Computing: First International Conference …, 1998
2401998
Variable consistency model of dominance-based rough sets approach
S Greco, B Matarazzo, R Slowinski, J Stefanowski
Rough Sets and Current Trends in Computing: Second International Conference …, 2001
2312001
An algorithm for induction of decision rules consistent with the dominance principle
S Greco, B Matarazzo, R Slowinski, J Stefanowski
Rough Sets and Current Trends in Computing: Second International Conference …, 2001
2282001
Neighbourhood sampling in bagging for imbalanced data
J Błaszczyński, J Stefanowski
Neurocomputing 150, 529-542, 2015
2272015
Accuracy updated ensemble for data streams with concept drift
D Brzeziński, J Stefanowski
International conference on hybrid artificial intelligence systems, 155-163, 2011
2092011
Combining block-based and online methods in learning ensembles from concept drifting data streams
D Brzezinski, J Stefanowski
Information Sciences 265, 50-67, 2014
2082014
Rough classification in incomplete information systems
R SLOWIŃSKI, J Stefanowski
Models and Methods in Multiple Criteria Decision Making, 1347-1357, 1989
1951989
Dealing with data difficulty factors while learning from imbalanced data
J Stefanowski
Challenges in computational statistics and data mining, 333-363, 2015
1542015
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