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Evento

Characterization of Vineyard Training Systems Based on Remote Sensing and Crop Indices

Capraro Fuentes, Flavio AndresIcon ; Pacheco, Daniela; Campillo Manrique, Pedro LucioIcon
Tipo del evento: Congreso
Nombre del evento: VII Congreso Bienal Argencon IEEE 2024
Fecha del evento: 18/09/2024
Institución Organizadora: Institute of Electrical and Electronics Engineers. Sección Argentina; Universidad Tecnológica Nacional. Facultad Regional de San Nicolás;
Título del Libro: 2024 IEEE Biennial Congress of Argentina (ARGENCON)
Editorial: Institute of Electrical and Electronics Engineers
ISBN: 979-8-3503-6593-1
Idioma: Español
Clasificación temática:
Sistemas de Automatización y Control

Resumen

In the context of precision viticulture, this work presents the implementation of remote sensing techniques to analyze the spatial variability of a vineyard (Vitis vinifera L.). This work seeks to continue a preliminary investigation conducted in 2020; this time, the study area within the vineyard was expanded, and the campaigns of 2023 and 2024 were considered. This trial was conducted in a vineyard located in the province of San Juan, Argentina. The vineyard was divided into three blocks (replicates), and within each block, three training systems were randomly implemented: Free Cordon, Minimal Pruning and Box Pruning. The analysis was mainly based on extracting information from various vineyard maps constructed from high-resolution (2.5 cm pixel size) multispectral and thermographic images. These images were captured using special cameras mounted on an unmanned aerial vehicle (UAV). Vegetation indices NDVI and NDRE were calculated from the orthomosaics. The spatial distribution of each index and the crop temperature (Tc) were studied, and measurements were subsequently recorded in plants within each training system. Based on these measurements, significant differences were identified among the three training systems. The results demonstrated the usefulness of the high-resolution images acquired to assess the vineyard's condition at the plant level, allowing the producer to manage each training system specifically.
Palabras clave: AGRICULTURE , PRECISION VITICULTURE , REMOTE SENSING, UNMANNED AERIAL VEHICLES (UAV) , THERMOGRAPHIC AND MULTISPECTRAL IMAGES
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info:eu-repo/semantics/restrictedAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/252208
URL: https://ieeexplore.ieee.org/document/10735888/
DOI: https://doi.org/10.1109/ARGENCON62399.2024.10735888
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Eventos de INSTITUTO DE AUTOMATICA
Citación
Characterization of Vineyard Training Systems Based on Remote Sensing and Crop Indices; VII Congreso Bienal Argencon IEEE 2024; San Nicolas de los Arroyos; Argentina; 2024; 1-7
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