Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer

The hypothesis of this research was that the maps based on remotely-sensed images would create zones of different vigor, yield, water status, winter hardiness and berry composition and the wines from the unique zones would show different chemical and sensorial profiles. A second hypothesis was that...

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Main Authors: Reynolds Andrew G., Lee Hyun-Suk, Dorin Briann, Brown Ralph, Jollineau Marilyne, Shemrock Adam, Crombleholme Marnie, Jobin Poirier Emilie, Zheng Wei, Gasnier Maxime, Shabanian Mehdi, Meng Baozhong
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20185002010
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spelling doaj-1ac322f62f7e4dc081ef979dbf692be02021-02-02T03:29:06ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01500201010.1051/e3sconf/20185002010e3sconf_terroircongress2018_02010Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titerReynolds Andrew G.Lee Hyun-SukDorin BriannBrown RalphJollineau MarilyneShemrock AdamCrombleholme MarnieJobin Poirier EmilieZheng WeiGasnier MaximeShabanian MehdiMeng BaozhongThe hypothesis of this research was that the maps based on remotely-sensed images would create zones of different vigor, yield, water status, winter hardiness and berry composition and the wines from the unique zones would show different chemical and sensorial profiles. A second hypothesis was that titer of grapevine leafroll-associated virus (GLRaV) could be correlated spatially to NDVI and other spectral indices. To determine zonation, unmanned aerial vehicles (UAVs) with multispectral and thermal sensors were flown over six Cabernet Franc vineyard blocks in Ontario, Canada. Zonation was based on NDVI values, and spatial correlations were examined between the NDVI and leaf water potential (Ψ), soil water content (SWC), stomatal conductance (gs), winter hardiness (LT50), vine size, yield, and berry composition. Additional NDVI data were acquired using GreenSeeker (proximal sensing), and both NDVI data sets produced maps of similar configuration. Several direct correlations were found between UAV-based NDVI and vine size, berry weight, yield, titratable acidity, SWC, leaf Ψ, gs, and NDVI from GreenSeeker. Inverse correlations included thermal data, Brix, color/ anthocyanins/ phenols, and LT50. The pattern of UAV-based NDVI and other variables corresponded to the PCA results. Thermal scan and GreenSeeker were useful tools for mapping variability in water status, yield components, and berry composition. In 2016, zoned maps were created based on UAV NDVI data, and grapes were harvested according to the separate zones. Additionally, spatial correlations between GLRaV titer and NDVI were observed. Use of UAVs may be able to delineate zones of differing vine size, yield components, and berry composition, as well as areas of different virus status and winter hardiness.https://doi.org/10.1051/e3sconf/20185002010
collection DOAJ
language English
format Article
sources DOAJ
author Reynolds Andrew G.
Lee Hyun-Suk
Dorin Briann
Brown Ralph
Jollineau Marilyne
Shemrock Adam
Crombleholme Marnie
Jobin Poirier Emilie
Zheng Wei
Gasnier Maxime
Shabanian Mehdi
Meng Baozhong
spellingShingle Reynolds Andrew G.
Lee Hyun-Suk
Dorin Briann
Brown Ralph
Jollineau Marilyne
Shemrock Adam
Crombleholme Marnie
Jobin Poirier Emilie
Zheng Wei
Gasnier Maxime
Shabanian Mehdi
Meng Baozhong
Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
E3S Web of Conferences
author_facet Reynolds Andrew G.
Lee Hyun-Suk
Dorin Briann
Brown Ralph
Jollineau Marilyne
Shemrock Adam
Crombleholme Marnie
Jobin Poirier Emilie
Zheng Wei
Gasnier Maxime
Shabanian Mehdi
Meng Baozhong
author_sort Reynolds Andrew G.
title Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
title_short Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
title_full Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
title_fullStr Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
title_full_unstemmed Mapping Cabernet Franc vineyards by unmanned aerial vehicles (UAVs) for variability in vegetation indices, water status, and virus titer
title_sort mapping cabernet franc vineyards by unmanned aerial vehicles (uavs) for variability in vegetation indices, water status, and virus titer
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2018-01-01
description The hypothesis of this research was that the maps based on remotely-sensed images would create zones of different vigor, yield, water status, winter hardiness and berry composition and the wines from the unique zones would show different chemical and sensorial profiles. A second hypothesis was that titer of grapevine leafroll-associated virus (GLRaV) could be correlated spatially to NDVI and other spectral indices. To determine zonation, unmanned aerial vehicles (UAVs) with multispectral and thermal sensors were flown over six Cabernet Franc vineyard blocks in Ontario, Canada. Zonation was based on NDVI values, and spatial correlations were examined between the NDVI and leaf water potential (Ψ), soil water content (SWC), stomatal conductance (gs), winter hardiness (LT50), vine size, yield, and berry composition. Additional NDVI data were acquired using GreenSeeker (proximal sensing), and both NDVI data sets produced maps of similar configuration. Several direct correlations were found between UAV-based NDVI and vine size, berry weight, yield, titratable acidity, SWC, leaf Ψ, gs, and NDVI from GreenSeeker. Inverse correlations included thermal data, Brix, color/ anthocyanins/ phenols, and LT50. The pattern of UAV-based NDVI and other variables corresponded to the PCA results. Thermal scan and GreenSeeker were useful tools for mapping variability in water status, yield components, and berry composition. In 2016, zoned maps were created based on UAV NDVI data, and grapes were harvested according to the separate zones. Additionally, spatial correlations between GLRaV titer and NDVI were observed. Use of UAVs may be able to delineate zones of differing vine size, yield components, and berry composition, as well as areas of different virus status and winter hardiness.
url https://doi.org/10.1051/e3sconf/20185002010
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