Resumen
The performance of hyperspectral image classification (HIC) models strongly depends on the informativeness and representativeness of the training data, which directly impacts classification accuracy. Active learning (AL) has been introduced as a strategy to enhance classification performance by selecting informative and representative samples from unlabeled data and incorporating them into the training process. Although AL has shown promising results in various applications, it requires an oracle to label new data. In this work, we eliminate the need for an oracle and adapt the principles of AL to the supervised learning paradigm. We integrate key concepts from AL into supervised learning by iteratively updating a supervised classifier with subsets of labeled and (potentially) informative data extracted from a fully labeled dataset. Experiments conducted on real hyperspectral data demonstrate that our method outperforms conventional supervised learning when implemented with a standard neural network architecture.
| Idioma original | Inglés |
|---|---|
| Título de la publicación alojada | 2025 Latin American GRSS & ISPRS Remote Sensing Conference (LAGIRS) |
| Subtítulo de la publicación alojada | Foz do Iguaçu, Brazil, November 10-13, 2025 |
| Lugar de publicación | New York |
| Editorial | Institute of Electrical and Electronics Engineers |
| Número de páginas | 7 |
| ISBN (versión digital) | 979-8-3315-5003-5 |
| DOI | |
| Estado | Publicada - 2025 |
| Evento | LAGIRS 2025 – Latin America GRSS and ISPRS Remote Sensing Conference - Foz de Iguazú, Brasil Duración: 10 nov. 2025 → 13 nov. 2025 https://selperbrasil.org.br/events/lagirs-2025/home/ |
Conferencia
| Conferencia | LAGIRS 2025 – Latin America GRSS and ISPRS Remote Sensing Conference |
|---|---|
| País/Territorio | Brasil |
| Ciudad | Foz de Iguazú |
| Período | 10/11/25 → 13/11/25 |
| Dirección de internet |
ODS de las Naciones Unidas
Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible
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ODS 4: Educación de calidad
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ODS 9: Industria, innovación e infraestructura
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ODS 17: Alianzas para lograr los objetivos
Huella
Profundice en los temas de investigación de 'Adapting active learning to improve hyperspectral image classification within supervised learning'. En conjunto forman una huella única.Citar esto
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