Resumen
This paper presents a methodology to transform a problem to make it suitable for classification methods, while reducing its complexity so that the classification models extracted are more accurate. The problem is represented by a dataset, where each instance consists of a variable number of descriptors and a class label. We study dataset transformations in order to describe each instance by a single descriptor with its corresponding features and a class label. To analyze the suitability of each transformation, we rely on measures that approximate the geometrical complexity of the dataset. We search for the best transformation minimizing the geometrical complexity. By using complexity measures, we are able to estimate the intrinsic complexity of the dataset without being tied to any particular classifier.
| Idioma original | Inglés |
|---|---|
| Título de la publicación alojada | Artificial Intelligence Research and Development |
| Editorial | IOS Press BV |
| Páginas | 133-140 |
| Número de páginas | 8 |
| ISBN (versión impresa) | 9781586037987 |
| Estado | Publicada - 2007 |
| Evento | 10th International Conference of the Catalan Association for Artificial Intelligence, CCIA 2007 - Sant Julia de Loria, Andorra Duración: 25 oct 2007 → 26 oct 2007 |
Serie de la publicación
| Nombre | Frontiers in Artificial Intelligence and Applications |
|---|---|
| Volumen | 163 |
| ISSN (versión impresa) | 0922-6389 |
| ISSN (versión digital) | 1879-8314 |
Conferencia
| Conferencia | 10th International Conference of the Catalan Association for Artificial Intelligence, CCIA 2007 |
|---|---|
| País/Territorio | Andorra |
| Ciudad | Sant Julia de Loria |
| Período | 25/10/07 → 26/10/07 |
ODS de las Naciones Unidas
Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible
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ODS 3: Salud y bienestar
Huella
Profundice en los temas de investigación de 'Modeling problem transformations based on data complexity'. En conjunto forman una huella única.Cómo citar
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