Multiscale assessment of northern forest characteristics based on ultra-high resolution data

The algorithms for quantitative estimates of various structural and functional parameters of forest ecosystems, particularly boreal forests, on high resolution remote sensing data are actively developing since the mid-2000s. For monitoring of forest ecosystems located at the Northern limit of distri...

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Published in:Abstracts of the ICA
Main Authors: Medvedev, Andrey, Kudikov, Arseny, Telnova, Natalia, Tutubalina, Olga, Golubeva, Elena, Zimin, Mikhail
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2019
Subjects:
Online Access:https://doi.org/10.5194/ica-abs-1-246-2019
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Verlagsveröffentlichung
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Verlagsveröffentlichung
Medvedev, Andrey
Kudikov, Arseny
Telnova, Natalia
Tutubalina, Olga
Golubeva, Elena
Zimin, Mikhail
Multiscale assessment of northern forest characteristics based on ultra-high resolution data
topic_facet article
Verlagsveröffentlichung
description The algorithms for quantitative estimates of various structural and functional parameters of forest ecosystems, particularly boreal forests, on high resolution remote sensing data are actively developing since the mid-2000s. For monitoring of forest ecosystems located at the Northern limit of distribution, effective not only lidar data but also the optical data obtained by unmanned aerial vehicles (UAV’s) with ultra-low altitude photography and derived products resulting from modern algorithms for the photogrammetric processing. High-detail remote sensing from UAV’s is a key level of monitoring of Northern forests at a large-scale level, ensuring the correct transition from sub - satellite ground-based studies to thematic products obtained from multi-time Hyper-and multispectral data of medium and relatively high resolution (MODIS, LANDSAT, Sentinel-2). When planning and conducting specific case studies based on UAV data, special attention should be paid to the justification of the survey methodology. In particular, the choice of a strictly defined high-altitude echelon of the survey determines the recognition of the objects of study and the possibility of reliable determination of its properties and features. To study the parameters of forest ecosystems at the level of individual trees and at the level of forest plantations, we selected two different-height echelons of survey from ultra-low altitudes: from 50 m, which allowed us to obtain ultra-high-detailed data for each sample area provided by detailed ground-based studies with sub-tree account, and from 100 m-to obtain derived characteristics of forest communities within the area equivalent to 3 pixels of thematic MODIS products with a spatial resolution of 250 m. The data of optical survey with UAV were obtained in July 2018 for 22 plots located in the central part of the Kola Peninsula and representative of different types of North taiga stands and their dynamics under climate change. At the stage of preprocessing images were obtained dense point clouds, characterizing both vertical and horizontal structure of stands. Digital terrain and terrain models and tree canopy models were obtained after cloud filtering and classification. Algorithms of automated segmentation and classification have been developed and tested to obtain such characteristics of stands as the height of individual trees, the area of crown projections, the projective cover of the tree-shrub layer. The obtained characteristics are aggregated by cells of a regular network with the dimension corresponding to the spatial resolution of Sentinel-2 and Landsat-8 data. The main results of the works are digital spatial datasets for 22 sample plots: raw data with very high resolution imagery (optical images with very high resolution, dense point clouds, RGB-orthophoto) and create based on a thematic derivative products (digital terrain model, topography, tree canopy cover; map of the heights and projections of the crowns of trees, percent cover of tree and shrub vegetation).
format Article in Journal/Newspaper
author Medvedev, Andrey
Kudikov, Arseny
Telnova, Natalia
Tutubalina, Olga
Golubeva, Elena
Zimin, Mikhail
author_facet Medvedev, Andrey
Kudikov, Arseny
Telnova, Natalia
Tutubalina, Olga
Golubeva, Elena
Zimin, Mikhail
author_sort Medvedev, Andrey
title Multiscale assessment of northern forest characteristics based on ultra-high resolution data
title_short Multiscale assessment of northern forest characteristics based on ultra-high resolution data
title_full Multiscale assessment of northern forest characteristics based on ultra-high resolution data
title_fullStr Multiscale assessment of northern forest characteristics based on ultra-high resolution data
title_full_unstemmed Multiscale assessment of northern forest characteristics based on ultra-high resolution data
title_sort multiscale assessment of northern forest characteristics based on ultra-high resolution data
publisher Copernicus Publications
publishDate 2019
url https://doi.org/10.5194/ica-abs-1-246-2019
https://noa.gwlb.de/receive/cop_mods_00001078
https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00001040/ica-abs-1-246-2019.pdf
https://www.abstr-int-cartogr-assoc.net/1/246/2019/ica-abs-1-246-2019.pdf
geographic Kola Peninsula
geographic_facet Kola Peninsula
genre kola peninsula
taiga
genre_facet kola peninsula
taiga
op_relation Abstracts of the ICA -- https://www.abstracts-of-the-ica.net/ -- 2570-2106
https://doi.org/10.5194/ica-abs-1-246-2019
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spelling ftnonlinearchiv:oai:noa.gwlb.de:cop_mods_00001078 2023-05-15T17:05:05+02:00 Multiscale assessment of northern forest characteristics based on ultra-high resolution data Medvedev, Andrey Kudikov, Arseny Telnova, Natalia Tutubalina, Olga Golubeva, Elena Zimin, Mikhail 2019-07 electronic https://doi.org/10.5194/ica-abs-1-246-2019 https://noa.gwlb.de/receive/cop_mods_00001078 https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00001040/ica-abs-1-246-2019.pdf https://www.abstr-int-cartogr-assoc.net/1/246/2019/ica-abs-1-246-2019.pdf eng eng Copernicus Publications Abstracts of the ICA -- https://www.abstracts-of-the-ica.net/ -- 2570-2106 https://doi.org/10.5194/ica-abs-1-246-2019 https://noa.gwlb.de/receive/cop_mods_00001078 https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00001040/ica-abs-1-246-2019.pdf https://www.abstr-int-cartogr-assoc.net/1/246/2019/ica-abs-1-246-2019.pdf https://creativecommons.org/licenses/by/4.0/ uneingeschränkt info:eu-repo/semantics/openAccess CC-BY article Verlagsveröffentlichung article Text doc-type:article 2019 ftnonlinearchiv https://doi.org/10.5194/ica-abs-1-246-2019 2022-02-08T23:01:59Z The algorithms for quantitative estimates of various structural and functional parameters of forest ecosystems, particularly boreal forests, on high resolution remote sensing data are actively developing since the mid-2000s. For monitoring of forest ecosystems located at the Northern limit of distribution, effective not only lidar data but also the optical data obtained by unmanned aerial vehicles (UAV’s) with ultra-low altitude photography and derived products resulting from modern algorithms for the photogrammetric processing. High-detail remote sensing from UAV’s is a key level of monitoring of Northern forests at a large-scale level, ensuring the correct transition from sub - satellite ground-based studies to thematic products obtained from multi-time Hyper-and multispectral data of medium and relatively high resolution (MODIS, LANDSAT, Sentinel-2). When planning and conducting specific case studies based on UAV data, special attention should be paid to the justification of the survey methodology. In particular, the choice of a strictly defined high-altitude echelon of the survey determines the recognition of the objects of study and the possibility of reliable determination of its properties and features. To study the parameters of forest ecosystems at the level of individual trees and at the level of forest plantations, we selected two different-height echelons of survey from ultra-low altitudes: from 50 m, which allowed us to obtain ultra-high-detailed data for each sample area provided by detailed ground-based studies with sub-tree account, and from 100 m-to obtain derived characteristics of forest communities within the area equivalent to 3 pixels of thematic MODIS products with a spatial resolution of 250 m. The data of optical survey with UAV were obtained in July 2018 for 22 plots located in the central part of the Kola Peninsula and representative of different types of North taiga stands and their dynamics under climate change. At the stage of preprocessing images were obtained dense point clouds, characterizing both vertical and horizontal structure of stands. Digital terrain and terrain models and tree canopy models were obtained after cloud filtering and classification. Algorithms of automated segmentation and classification have been developed and tested to obtain such characteristics of stands as the height of individual trees, the area of crown projections, the projective cover of the tree-shrub layer. The obtained characteristics are aggregated by cells of a regular network with the dimension corresponding to the spatial resolution of Sentinel-2 and Landsat-8 data. The main results of the works are digital spatial datasets for 22 sample plots: raw data with very high resolution imagery (optical images with very high resolution, dense point clouds, RGB-orthophoto) and create based on a thematic derivative products (digital terrain model, topography, tree canopy cover; map of the heights and projections of the crowns of trees, percent cover of tree and shrub vegetation). Article in Journal/Newspaper kola peninsula taiga Niedersächsisches Online-Archiv NOA Kola Peninsula Abstracts of the ICA 1 1 1