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Jonas Soenen
Jonas Soenen
PhD Student, KU Leuven
Verified email at cs.kuleuven.be
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Cited by
Cited by
Year
The effect of hyperparameter tuning on the comparative evaluation of unsupervised anomaly detection methods
J Soenen, E Van Wolputte, L Perini, V Vercruyssen, W Meert, J Davis, ...
Proceedings of the KDD'21 Workshop on Outlier Detection and Description, 1-9, 2021
252021
A scalable ensemble approach to forecast the electricity consumption of households
L Botman, J Soenen, K Theodorakos, A Yurtman, J Bekker, ...
IEEE Transactions on Smart Grid 14 (1), 757-768, 2022
82022
Scenario generation of residential electricity consumption through sampling of historical data
J Soenen, A Yurtman, T Becker, R D’hulst, K Vanthournout, W Meert, ...
Sustainable Energy, Grids and Networks 34, 100985, 2023
52023
Tackling noise in active semi-supervised clustering
J Soenen, S Dumančić, T Van Craenendonck, H Blockeel
Joint European Conference on Machine Learning and Knowledge Discovery in …, 2020
22020
Semi-Supervised and Explainable Machine Learning with an Application to the Low-Voltage Grid
J Soenen
12023
Estimating Dynamic Time Warping Distance Between Time Series with Missing Data
A Yurtman, J Soenen, W Meert, H Blockeel
Joint European Conference on Machine Learning and Knowledge Discovery in …, 2023
2023
Measuring the Dissimilarity Between Time Series with Missing Data
A Yurtman, J Soenen, W Meert
Springer in the Lecture Notes in Computer Science Series (LNCS), 2023
2023
AD-MERCS: Modeling Normality and Abnormality in Unsupervised Anomaly Detection
J Soenen, E Van Wolputte, V Vercruyssen, W Meert, H Blockeel
arXiv preprint arXiv:2305.12958, 2023
2023
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