Evaluation of Transfer Learning Techniques in Neural Networks with Tiny-scale Training Data

dc.contributor.author Pons, Claudia Fabiana
dc.contributor.author Pérez, Gabriela
dc.contributor.author Jacinto, Milagros
dc.contributor.author Moschettoni, Martín
dc.date.accessioned 2025-02-07T14:43:40Z
dc.date.available 2025-02-07T14:43:40Z
dc.date.issued 2023-10-7
dc.description.abstract This paper rigorously analyzes the process of building a deep neural network for image recognition and classification using Transfer Learning techniques. The biggest challenge is assuming that the training dataset is very small. The research is based on addressing a particular case study, the income of donations to the Food Bank of La Plata. The results obtained corroborate that the techniques analyzed are appropriate to solve tasks of detection and classification of images even in cases in which there is a very moderate number of samples.
dc.identifier.citation Gabriela Pérez, Milagros Jacinto, Martín Moschettoni, Claudia Pons (2023). Evaluation of Transfer Learning Techniques in Neural Networks with Tiny-scale Training Data. En: Revista Eletrônica Argentina-Brasil de Tecnologias da Informação e da Comunicação, [S.l.], v. 1, n. 17, out. 2023.
dc.identifier.other 10.9781/ijimai.2023.11.003
dc.identifier.uri https://repositorio.uai.edu.ar/handle/123456789/3450
dc.language.iso en
dc.publisher Editora SETREM
dc.subject machine learning
dc.subject transfer learning
dc.subject pre-trained models
dc.subject small dataset
dc.subject food bank
dc.subject Keras
dc.subject Convolutional Neural Networks
dc.title Evaluation of Transfer Learning Techniques in Neural Networks with Tiny-scale Training Data
dc.type ARTICULO
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