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LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions

This article presents the LFuji-air dataset, which contains LiDAR based point clouds of 11 Fuji apples trees and the corresponding apples location ground truth. A mobile terrestrial laser scanner (MTLS) comprised of a LiDAR sensor and a real-time kinematics global navigation satellite system was use...

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Autores principales: Gené-Mola, Jordi, Gregorio, Eduard, Auat Cheein, Fernando, Guevara, Javier, Llorens, Jordi, Sanz-Cortiella, Ricardo, Escolà, Alexandre, Rosell-Polo, Joan R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7031136/
https://www.ncbi.nlm.nih.gov/pubmed/32099878
http://dx.doi.org/10.1016/j.dib.2020.105248
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author Gené-Mola, Jordi
Gregorio, Eduard
Auat Cheein, Fernando
Guevara, Javier
Llorens, Jordi
Sanz-Cortiella, Ricardo
Escolà, Alexandre
Rosell-Polo, Joan R.
author_facet Gené-Mola, Jordi
Gregorio, Eduard
Auat Cheein, Fernando
Guevara, Javier
Llorens, Jordi
Sanz-Cortiella, Ricardo
Escolà, Alexandre
Rosell-Polo, Joan R.
author_sort Gené-Mola, Jordi
collection PubMed
description This article presents the LFuji-air dataset, which contains LiDAR based point clouds of 11 Fuji apples trees and the corresponding apples location ground truth. A mobile terrestrial laser scanner (MTLS) comprised of a LiDAR sensor and a real-time kinematics global navigation satellite system was used to acquire the data. The MTLS was mounted on an air-assisted sprayer used to generate different air flow conditions. A total of 8 scans per tree were performed, including scans from different LiDAR sensor positions (multi-view approach) and under different air flow conditions. These variability of the scanning conditions allows to use the LFuji-air dataset not only for training and testing new fruit detection algorithms, but also to study the usefulness of the multi-view approach and the application of forced air flow to reduce the number of fruit occlusions. The data provided in this article is related to the research article entitled “Fruit detection, yield prediction and canopy geometric characterization using LiDAR with forced air flow” [1].
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spelling pubmed-70311362020-02-25 LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions Gené-Mola, Jordi Gregorio, Eduard Auat Cheein, Fernando Guevara, Javier Llorens, Jordi Sanz-Cortiella, Ricardo Escolà, Alexandre Rosell-Polo, Joan R. Data Brief Agricultural and Biological Science This article presents the LFuji-air dataset, which contains LiDAR based point clouds of 11 Fuji apples trees and the corresponding apples location ground truth. A mobile terrestrial laser scanner (MTLS) comprised of a LiDAR sensor and a real-time kinematics global navigation satellite system was used to acquire the data. The MTLS was mounted on an air-assisted sprayer used to generate different air flow conditions. A total of 8 scans per tree were performed, including scans from different LiDAR sensor positions (multi-view approach) and under different air flow conditions. These variability of the scanning conditions allows to use the LFuji-air dataset not only for training and testing new fruit detection algorithms, but also to study the usefulness of the multi-view approach and the application of forced air flow to reduce the number of fruit occlusions. The data provided in this article is related to the research article entitled “Fruit detection, yield prediction and canopy geometric characterization using LiDAR with forced air flow” [1]. Elsevier 2020-02-07 /pmc/articles/PMC7031136/ /pubmed/32099878 http://dx.doi.org/10.1016/j.dib.2020.105248 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Agricultural and Biological Science
Gené-Mola, Jordi
Gregorio, Eduard
Auat Cheein, Fernando
Guevara, Javier
Llorens, Jordi
Sanz-Cortiella, Ricardo
Escolà, Alexandre
Rosell-Polo, Joan R.
LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title_full LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title_fullStr LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title_full_unstemmed LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title_short LFuji-air dataset: Annotated 3D LiDAR point clouds of Fuji apple trees for fruit detection scanned under different forced air flow conditions
title_sort lfuji-air dataset: annotated 3d lidar point clouds of fuji apple trees for fruit detection scanned under different forced air flow conditions
topic Agricultural and Biological Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7031136/
https://www.ncbi.nlm.nih.gov/pubmed/32099878
http://dx.doi.org/10.1016/j.dib.2020.105248
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