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Meta-learning approach for variational autoencoder hyperparameter tuning

Berti M.
•
Camilo da Silva M.
•
Saccani S.
•
Barbon Junior S.
2025
  • journal article

Periodico
JOURNAL OF UNIVERSAL COMPUTER SCIENCE
Abstract
Synthetic data generation is a promising alternative to traditional data anonymization, with Variational Autoencoders (VAEs) excelling at generating high-quality synthetic tabular datasets. However, VAE hyperparameter selection is often computationally expensive or subop-timal. We propose a meta-learning (MtL) method for hyperparameter recommendation, which achieves competitive performance to state-of-the-art Bayesian Optimization (BO) with median AUC values of 0.660 ± 0.038 (MtL) and 0.650 ± 0.041 (BO), showing no statistically significant difference. Notably, our approach reduces configuration time to under three minutes, compared to BO’s multi-hour requirement, while also enabling incremental improvements through new data integration. This combination of efficiency, adaptability, and performance establishes MtL as a practical solution for hyperparameter tuning in synthetic data generation.
DOI
10.3897/jucs.124087
WOS
WOS:001530596600002
Archivio
https://hdl.handle.net/11368/3115691
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-105010266535
https://lib.jucs.org/article/124087/
Diritti
open access
license:creative commons
license uri:http://creativecommons.org/licenses/by/4.0/
FVG url
https://arts.units.it/bitstream/11368/3115691/2/10.3897jucs.124087.pdf
Soggetti
  • HPO

  • Meta-learning

  • VAE

  • Variational Autoencod...

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