OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING

High spatial resolution images acquired with drones can provide useful information to farmers for devising suitable management practices and increase crop yield. Data collected as individual frames or images have to be mosaiced using pattern recognition and matching process. Most flight missions col...

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Main Authors: P. Bupathy, R. Sivanpillai, V. V. Sajithvariyar, V. Sowmya
Format: Article
Language:English
Published: Copernicus Publications 2021-08-01
Series:The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Online Access:https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLIV-M-3-2021/7/2021/isprs-archives-XLIV-M-3-2021-7-2021.pdf
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spelling doaj-92f831d0c3ca4280a45caa3bb3c3eb1f2021-08-10T23:12:31ZengCopernicus PublicationsThe International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences1682-17502194-90342021-08-01XLIV-M-3-202171210.5194/isprs-archives-XLIV-M-3-2021-7-2021OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORINGP. Bupathy0R. Sivanpillai1V. V. Sajithvariyar2V. Sowmya3Center for Computational Engineering and Networking, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Coimbatore, TN 641112, IndiaWyoming GIS Center, University of Wyoming, Laramie, WY 82072, USACenter for Computational Engineering and Networking, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Coimbatore, TN 641112, IndiaCenter for Computational Engineering and Networking, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Coimbatore, TN 641112, IndiaHigh spatial resolution images acquired with drones can provide useful information to farmers for devising suitable management practices and increase crop yield. Data collected as individual frames or images have to be mosaiced using pattern recognition and matching process. Most flight missions collect hundreds of photos with high overlap and side overlap in order to generate mosaic without data gaps or distortion. These frames are aligned using the location information associated with each image. The same features are identified in multiple frames for generating the mosaic. In this process, it is common to use all or most of the images which requires a lot of resources. Uploading and processing hundreds of images could take several hours to days. Many farmers and crop consultants in developing countries may not have the necessary resources to upload hundreds of images. This study assessed the optimal number of images required to generate an image mosaic for a crop field without any data gaps or distortion. Images were collected at two different heights and directions. First, the mosaic was generated using all (100%) frames followed by subsets containing 90%, through 50% of images. Results obtained will assist us to plan the settings in future flight missions for acquiring optimal number of images required for generating image mosaic.https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLIV-M-3-2021/7/2021/isprs-archives-XLIV-M-3-2021-7-2021.pdf
collection DOAJ
language English
format Article
sources DOAJ
author P. Bupathy
R. Sivanpillai
V. V. Sajithvariyar
V. Sowmya
spellingShingle P. Bupathy
R. Sivanpillai
V. V. Sajithvariyar
V. Sowmya
OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
author_facet P. Bupathy
R. Sivanpillai
V. V. Sajithvariyar
V. Sowmya
author_sort P. Bupathy
title OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
title_short OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
title_full OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
title_fullStr OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
title_full_unstemmed OPTIMIZING LOW-COST UAV AERIAL IMAGE MOSAICING FOR CROP GROWTH MONITORING
title_sort optimizing low-cost uav aerial image mosaicing for crop growth monitoring
publisher Copernicus Publications
series The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
issn 1682-1750
2194-9034
publishDate 2021-08-01
description High spatial resolution images acquired with drones can provide useful information to farmers for devising suitable management practices and increase crop yield. Data collected as individual frames or images have to be mosaiced using pattern recognition and matching process. Most flight missions collect hundreds of photos with high overlap and side overlap in order to generate mosaic without data gaps or distortion. These frames are aligned using the location information associated with each image. The same features are identified in multiple frames for generating the mosaic. In this process, it is common to use all or most of the images which requires a lot of resources. Uploading and processing hundreds of images could take several hours to days. Many farmers and crop consultants in developing countries may not have the necessary resources to upload hundreds of images. This study assessed the optimal number of images required to generate an image mosaic for a crop field without any data gaps or distortion. Images were collected at two different heights and directions. First, the mosaic was generated using all (100%) frames followed by subsets containing 90%, through 50% of images. Results obtained will assist us to plan the settings in future flight missions for acquiring optimal number of images required for generating image mosaic.
url https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLIV-M-3-2021/7/2021/isprs-archives-XLIV-M-3-2021-7-2021.pdf
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AT rsivanpillai optimizinglowcostuavaerialimagemosaicingforcropgrowthmonitoring
AT vvsajithvariyar optimizinglowcostuavaerialimagemosaicingforcropgrowthmonitoring
AT vsowmya optimizinglowcostuavaerialimagemosaicingforcropgrowthmonitoring
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