Mouton, A.; Alcaraz-Hernández, JD.; De Baets, B.; Goethals, ,P.; Martinez-Capel, F. (2010). Data-driven fuzzy habitat suitability models for brown trout in Spanish Mediterranean rivers. Environmental Modelling and Software. 26:615-622. https://doi.org/10.1016/j.envsoft.2010.12.001
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/33329
Título:
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Data-driven fuzzy habitat suitability models for brown trout in Spanish Mediterranean rivers
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Autor:
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Mouton, A.M.
Alcaraz-Hernández, Juan Diego
De Baets, B.
Goethals, , P.L.M
Martinez-Capel, Francisco
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Entidad UPV:
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Universitat Politècnica de València. Instituto de Investigación para la Gestión Integral de Zonas Costeras - Institut d'Investigació per a la Gestió Integral de Zones Costaneres
Universitat Politècnica de València. Departamento de Ingeniería Hidráulica y Medio Ambiente - Departament d'Enginyeria Hidràulica i Medi Ambient
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Fecha difusión:
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Resumen:
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[EN] In recent years, fuzzy models have been acknowledged as a suitable approach for species distribution modelling due to their transparency and their ability to incorporate the ecological gradient theory. Specifically, ...[+]
[EN] In recent years, fuzzy models have been acknowledged as a suitable approach for species distribution modelling due to their transparency and their ability to incorporate the ecological gradient theory. Specifically, the overlapping class boundaries of a fuzzy model are similar to the transitions between different environmental conditions. However, the need for ecological expert knowledge is an important constraint when applying fuzzy species distribution models. Moreover, the consistency of the ecological preferences of some fish species across different rivers has been widely contested. Recent research has shown that data-driven fuzzy models may solve this `knowledge acquisition bottleneck¿ and this paper is a further contribution. The aim was to analyse the brown trout (Salmo trutta fario L.) habitat preferences based on a data-driven fuzzy modelling technique and to compare the resulting fuzzy models with a commonly applied modelling technique, Random Forests. A heuristic nearest ascent hill-climbing algorithm for fuzzy rule optimisation and Random Forests were applied to analyse the ecological preferences of brown trout in 93 mesohabitats. No significant differences in model performance were observed between the optimal fuzzy model and the Random Forests model and both approaches selected river width, the cover index and flow velocity as the most important variables describing brown trout habitat suitability. Further, the fuzzy model combined ecological relevance with reasonable interpretability, whereas the transparency of the Random Forests model was limited. This paper shows that fuzzy models may be a valid approach for species distribution modelling and that their performance is comparable to that of state-of-the-art modelling techniques like Random Forests. Fuzzy models could therefore be a valuable decision support tool for river managers and enhance communication between stakeholders.
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Palabras clave:
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Fuzzy model
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Fish
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Brown trout
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Mediterranean rivers
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Habitat suitability
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Machine learning
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Ecological knowledge
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Random forests
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Derechos de uso:
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Cerrado |
Fuente:
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Environmental Modelling and Software. (issn:
1364-8152
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DOI:
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10.1016/j.envsoft.2010.12.001
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Editorial:
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Elsevier
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Versión del editor:
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http://dx.doi.org/10.1016/j.envsoft.2010.12.001
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Agradecimientos:
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Ans Mouton was a recipient of a Ph.D. grant financed by the Special Research Fund of Ghent University. The data acquisition was partially funded by the Conselleria de Medio Ambiente, Agua, Urbanismo y Vivienda, of the ...[+]
Ans Mouton was a recipient of a Ph.D. grant financed by the Special Research Fund of Ghent University. The data acquisition was partially funded by the Conselleria de Medio Ambiente, Agua, Urbanismo y Vivienda, of the Generalitat Valenciana, Spain. Matias Peredo, Pau Lucio, Rafael Casas, Pascual Puerto, Javier Izquierdo, Consuelo Perez and Rosa de la Salud participated in the field surveys.
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Tipo:
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Artículo
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