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Title: Spatial prediction of soil water retention in a Páramo landscape: methodological insight into machine learning using random forest
Authors: Guio Blanco, Carlos Manuel
Brito Gomez, Victor Manuel
Crespo Sanchez, Patricio Javier
Lieb, Mareike
metadata.dc.ucuenca.correspondencia: Lieb, Mareike , mareike.liess@ufz.de
Keywords: Páramo
Parameter tuning
Random Forest
Validation
Water retention
metadata.dc.ucuenca.areaconocimientofrascatiamplio: 1. Ciencias Naturales y Exactas
metadata.dc.ucuenca.areaconocimientofrascatidetallado: 1.5.10 Recursos Hídricos
metadata.dc.ucuenca.areaconocimientofrascatiespecifico: 1.5 Ciencias de la Tierra y el Ambiente
metadata.dc.ucuenca.areaconocimientounescoamplio: 05 - Ciencias Físicas, Ciencias Naturales, Matemáticas y Estadísticas
metadata.dc.ucuenca.areaconocimientounescodetallado: 0521 - Ciencias Ambientales
metadata.dc.ucuenca.areaconocimientounescoespecifico: 052 - Medio Ambiente
Issue Date: 2018
metadata.dc.ucuenca.volumen: vol. 316
metadata.dc.source: Geoderma
metadata.dc.identifier.doi: 10.1016/j.geoderma.2017.12.002
metadata.dc.type: ARTÍCULO
Abstract: 
Soils of Páramo ecosystems regulate the water supply to many Andean populations. In spite of being a necessary input to distributed hydrological models, regionalized soil water retention data from these areas are currently not available. The investigated catchment of the Quinuas River has a size of about 90 km 2 and comprises parts of the Cajas National Park in southern Ecuador. It is dominated by soils with high organic carbon contents, which display characteristics of volcanic influence. Besides providing spatial predictions of soil water retention at the catchment scale, the study presents a detailed methodological insight to model setup and validation of the underlying machine learning approach with random forest. The developed models performed well predicting volumetric water contents between 0.55 and 0.9 cm 3 cm− 3. Among the predictors derived from a digital elevation model …
Description: 
Soils of Páramo ecosystems regulate the water supply to many Andean populations. In spite of being a necessary input to distributed hydrological models, regionalized soil water retention data from these areas are currently not available. The investigated catchment of the Quinuas River has a size of about 90 km 2 and comprises parts of the Cajas National Park in southern Ecuador. It is dominated by soils with high organic carbon contents, which display characteristics of volcanic influence. Besides providing spatial predictions of soil water retention at the catchment scale, the study presents a detailed methodological insight to model setup and validation of the underlying machine learning approach with random forest. The developed models performed well predicting volumetric water contents between 0.55 and 0.9 cm 3 cm− 3. Among the predictors derived from a digital elevation model …
URI: https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85038206836&origin=inward
metadata.dc.ucuenca.urifuente: http://www.sciencedirect.com/science/journal/00167061
ISSN: 0016-7061
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