Parra-Boronat, L.; Mostaza-Colado, D.; Yousfi, S.; Marin, JF.; Mauri, PV.; Lloret, J. (2021). Drone RGB Images as a Reliable Information Source to Determine Legumes Establishment Success. Drones. 5(3):1-18. https://doi.org/10.3390/drones5030079
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/187825
Título:
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Drone RGB Images as a Reliable Information Source to Determine Legumes Establishment Success
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Autor:
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Parra-Boronat, Lorena
Mostaza-Colado, David
Yousfi, Salima
Marin, Jose F.
Mauri, Pedro V.
Lloret, Jaime
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Entidad UPV:
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Universitat Politècnica de València. Departamento de Comunicaciones - Departament de Comunicacions
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
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Fecha difusión:
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Resumen:
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[EN] The use of drones in agriculture is becoming a valuable tool for crop monitoring. There are some critical moments for crop success; the establishment is one of those. In this paper, we present an initial approximation ...[+]
[EN] The use of drones in agriculture is becoming a valuable tool for crop monitoring. There are some critical moments for crop success; the establishment is one of those. In this paper, we present an initial approximation of a methodology that uses RGB images gathered from drones to evaluate the establishment success in legumes based on matrixes operations. Our aim is to provide a method that can be implemented in low-cost nodes with relatively low computational capacity. An index (B1/B2) is used for estimating the percentage of green biomass to evaluate the establishment success. In the study, we include three zones with different establishment success (high, regular, and low) and two species (chickpea and lentils). We evaluate data usability after applying aggregation techniques, which reduces the picture's size to improve long-term storage. We test cell sizes from 1 to 10 pixels. This technique is tested with images gathered in production fields with intercropping at 4, 8, and 12 m relative height to find the optimal aggregation for each flying height. Our results indicate that images captured at 4 m with a cell size of 5, at 8 m with a cell size of 3, and 12 m without aggregation can be used to determine the establishment success. Comparing the storage requirements, the combination that minimises the data size while maintaining its usability is the image at 8 m with a cell size of 3. Finally, we show the use of generated information with an artificial neural network to classify the data. The dataset was split into a training dataset and a verification dataset. The classification of the verification dataset offered 83% of the cases as well classified. The proposed tool can be used in the future to compare the establishment success of different legume varieties or species.
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Palabras clave:
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Chickpea
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Lentil
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Vegetation index
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Artificial neural network
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Aggregation
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Derechos de uso:
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Reconocimiento (by)
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Fuente:
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Drones. (eissn:
2504-446X
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DOI:
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10.3390/drones5030079
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Editorial:
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MDPI AG
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Versión del editor:
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https://doi.org/10.3390/drones5030079
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Código del Proyecto:
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info:eu-repo/grantAgreement/MAPAMA//PDR18-XEROCESPED//PDR-CM 2014-2020/
info:eu-repo/grantAgreement/GVA//APOSTD%2F2019%2F04//Contrato posdoctoral GVA-Parra Boronat. Proyecto: Ensayos con combinaciones de cespitosas más sostenibles para jardinería pública/
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Agradecimientos:
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This research and the contract of S.Y. were funded by project PDR18-XEROCESPED, under the PDR-CM 2014-2020, by the EU (European Agricultural Fund for Rural Development, EAFRD), Spanish Ministry of Agriculture, Fisheries ...[+]
This research and the contract of S.Y. were funded by project PDR18-XEROCESPED, under the PDR-CM 2014-2020, by the EU (European Agricultural Fund for Rural Development, EAFRD), Spanish Ministry of Agriculture, Fisheries and Food (MAPA) and Comunidad de Madrid regional government through IMIDRA and the contract of L.P. was funded by Conselleria de Educacion, Cultura y Deporte with the Subvenciones para la contratacion de personal investigador en fase postdoctoral, APOSTD/2019/04.
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Tipo:
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Artículo
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