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Optimization of Adversarial Reprogramming for Transfer Learning on Closed Box Models

Bott, Alexander 1; Siems, Moritz 1; Puchta, Alexander 1; Fleischer, Jürgen 1
1 Institut für Produktionstechnik (WBK), Karlsruher Institut für Technologie (KIT)

Abstract:

"In this work, we optimise a transfer learning approach for predicting the Remaining Useful Life
(RUL) of ball bearings, particularly in scenarios with limited data availability. Accurate RUL prediction is
crucial for improving maintenance strategies, reducing downtime and improving machine reliability, making
it highly relevant to industry. We use the Black Box Adversarial Reprogramming (BAR) algorithm to process
target domain data in a source domain model through adversarial reprogramming. While it has been shown
that this concept can work well in image classification, and a further modification has been developed to
classify time series features, this work focuses primarily on the remaining key challenges such as the selection
and comparison of appropriate loss functions, the optimisation of hyperparameters using Bayesian methods,
and data labelling in the absence of ground truth. Our results show an increase in the performance of the
BAR algorithm on the macro f1 score of 0.23 on the training set and up to 0.21 on the test set"

Zugehörige Institution(en) am KIT Institut für Produktionstechnik (WBK)
Publikationstyp Zeitschriftenaufsatz
Publikationsjahr 2025
Sprache Englisch
Identifikator ISSN: 2169-3536
KITopen-ID: 1000181082
Erschienen in IEEE Access
Verlag Institute of Electrical and Electronics Engineers (IEEE)
Band 13
Seiten 48999–49006
Vorab online veröffentlicht am 17.03.2025
Schlagwörter "Adversial reprogramming, closed box transfer learning, machine learning,, RUL-classification"
Nachgewiesen in OpenAlex
Scopus
Web of Science
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Verlagsausgabe §
DOI: 10.5445/IR/1000181082
Veröffentlicht am 15.04.2025
Seitenaufrufe: 6
seit 15.04.2025
Downloads: 2
seit 22.04.2025
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