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VARIATIONAL METHODS FOR NEURAL NETWORK TRAINING: APPLICATIONS OF STURM-LIOUVILLE ENERGY ESTIMATES

Articolo
Data di Pubblicazione:
2025
Citazione:
VARIATIONAL METHODS FOR NEURAL NETWORK TRAINING: APPLICATIONS OF STURM-LIOUVILLE ENERGY ESTIMATES / Ferrara, Massimiliano. - In: FAR EAST JOURNAL OF MATHEMATICAL SCIENCES: FJMS. - ISSN 0972-0871. - 142:3(2025), pp. 243-255. [10.17654/0972087125015]
Abstract:
This paper establishes a novel connection between local minimization principles for Sturm-Liouville equations and optimization techniques used in training neural networks. By interpreting the training of neural networks as a variational problem, we demonstrate how recent results on energy estimates for mixed boundary value problems in Sturm-Liouville theory can be adapted to analyze and improve neural network convergence. We present two main theorems: the first establishes conditions for guaranteed convergence to non-zero local minima in neural network training, and the second demonstrates the existence of multiple critical points with energy estimates. Our theoretical results are supported by experimental validation on benchmark datasets, showing improved performance in avoiding trivial solutions during training. This work bridges the gap between classical differential equation theory and modern machine learning optimization.
Tipologia CRIS:
1.1 Articolo in rivista
Elenco autori:
Ferrara, Massimiliano
Autori di Ateneo:
FERRARA Massimiliano
Link alla scheda completa:
https://iris.unirc.it/handle/20.500.12318/159486
Link al Full Text:
https://iris.unirc.it//retrieve/handle/20.500.12318/159486/494757/M.Ferrara_2025_FEJMS_Variational%20methods_editor.pdf
Pubblicato in:
FAR EAST JOURNAL OF MATHEMATICAL SCIENCES: FJMS
Journal
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URL

https://pphmjopenaccess.com/index.php/fejms/article/view/3017
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