SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM
International audience The paper aims to evaluate the presence and condition of vegetation by SAGA GIS. The study area covers northern coasts of Iceland including two fjords, the Eyjafjörður and the Skagafjörður, prosperous agricultural regions. The vegetation coverage in Iceland experience the impa...
Published in: | Acta Biologica Marisiensis |
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Format: | Article in Journal/Newspaper |
Language: | English |
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HAL CCSD
2020
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Online Access: | https://hal.archives-ouvertes.fr/hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272/document https://hal.archives-ouvertes.fr/hal-02986272/file/10.2478_abmj-2020-0007.pdf https://doi.org/10.2478/abmj-2020-0007 |
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ftccsdartic:oai:HAL:hal-02986272v1 |
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record_format |
openpolar |
institution |
Open Polar |
collection |
Archive ouverte HAL (Hyper Article en Ligne, CCSD - Centre pour la Communication Scientifique Directe) |
op_collection_id |
ftccsdartic |
language |
English |
topic |
Iceland Landsat TM SAGA GIS cartography vegetation index machine learning automatization mapping ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION ACM: I.: Computing Methodologies/I.3: COMPUTER GRAPHICS ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.3: Relaxation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.0: Color ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.1: Depth cues ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.10: Image Representation ACM: I.: Computing Methodologies/I.6: SIMULATION AND MODELING ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.4: Applications ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.5: Implementation ACM: I.: Computing Methodologies/I.2: ARTIFICIAL INTELLIGENCE ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.2: Compression (Coding) ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.1: Digitization and Image Capture ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.0: General ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.1: Pixel classification ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.0: Edge and feature detection ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.2: Region growing partitioning [INFO.INFO-AI]Computer Science [cs]/Artificial Intelligence [cs.AI] [SDE]Environmental Sciences [SDU.STU.GP]Sciences of the Universe [physics]/Earth Sciences/Geophysics [physics.geo-ph] [SDE.MCG]Environmental Sciences/Global Changes [SDE.IE]Environmental Sciences/Environmental Engineering [SDU]Sciences of the Universe [physics] [SDU.OCEAN]Sciences of the Universe [physics]/Ocean Atmosphere [SDU.STU]Sciences of the Universe [physics]/Earth Sciences [SDU.STU.GM]Sciences of the Universe [physics]/Earth Sciences/Geomorphology [SDU.STU.AG]Sciences of the Universe [physics]/Earth Sciences/Applied geology [SDU.STU.GL]Sciences of the Universe [physics]/Earth Sciences/Glaciology |
spellingShingle |
Iceland Landsat TM SAGA GIS cartography vegetation index machine learning automatization mapping ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION ACM: I.: Computing Methodologies/I.3: COMPUTER GRAPHICS ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.3: Relaxation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.0: Color ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.1: Depth cues ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.10: Image Representation ACM: I.: Computing Methodologies/I.6: SIMULATION AND MODELING ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.4: Applications ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.5: Implementation ACM: I.: Computing Methodologies/I.2: ARTIFICIAL INTELLIGENCE ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.2: Compression (Coding) ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.1: Digitization and Image Capture ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.0: General ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.1: Pixel classification ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.0: Edge and feature detection ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.2: Region growing partitioning [INFO.INFO-AI]Computer Science [cs]/Artificial Intelligence [cs.AI] [SDE]Environmental Sciences [SDU.STU.GP]Sciences of the Universe [physics]/Earth Sciences/Geophysics [physics.geo-ph] [SDE.MCG]Environmental Sciences/Global Changes [SDE.IE]Environmental Sciences/Environmental Engineering [SDU]Sciences of the Universe [physics] [SDU.OCEAN]Sciences of the Universe [physics]/Ocean Atmosphere [SDU.STU]Sciences of the Universe [physics]/Earth Sciences [SDU.STU.GM]Sciences of the Universe [physics]/Earth Sciences/Geomorphology [SDU.STU.AG]Sciences of the Universe [physics]/Earth Sciences/Applied geology [SDU.STU.GL]Sciences of the Universe [physics]/Earth Sciences/Glaciology Lemenkova, Polina SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
topic_facet |
Iceland Landsat TM SAGA GIS cartography vegetation index machine learning automatization mapping ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION ACM: I.: Computing Methodologies/I.3: COMPUTER GRAPHICS ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.3: Relaxation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.0: Color ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.1: Depth cues ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.10: Image Representation ACM: I.: Computing Methodologies/I.6: SIMULATION AND MODELING ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.4: Applications ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.5: Implementation ACM: I.: Computing Methodologies/I.2: ARTIFICIAL INTELLIGENCE ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.2: Compression (Coding) ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.1: Digitization and Image Capture ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.0: General ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.1: Pixel classification ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.0: Edge and feature detection ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.2: Region growing partitioning [INFO.INFO-AI]Computer Science [cs]/Artificial Intelligence [cs.AI] [SDE]Environmental Sciences [SDU.STU.GP]Sciences of the Universe [physics]/Earth Sciences/Geophysics [physics.geo-ph] [SDE.MCG]Environmental Sciences/Global Changes [SDE.IE]Environmental Sciences/Environmental Engineering [SDU]Sciences of the Universe [physics] [SDU.OCEAN]Sciences of the Universe [physics]/Ocean Atmosphere [SDU.STU]Sciences of the Universe [physics]/Earth Sciences [SDU.STU.GM]Sciences of the Universe [physics]/Earth Sciences/Geomorphology [SDU.STU.AG]Sciences of the Universe [physics]/Earth Sciences/Applied geology [SDU.STU.GL]Sciences of the Universe [physics]/Earth Sciences/Glaciology |
description |
International audience The paper aims to evaluate the presence and condition of vegetation by SAGA GIS. The study area covers northern coasts of Iceland including two fjords, the Eyjafjörður and the Skagafjörður, prosperous agricultural regions. The vegetation coverage in Iceland experience the impact of harsh climate, land use, livestock grazing, glacial ablation and volcanism. The data include the Landsat TM image. The methodology is based on computing raster bands for simulating Tassel Cap Transformation (wetness, greenness and brightness) and Enhanced Vegetation Index (EVI) sensitive to high biomass. The results include modelled three bands of brightness, greenness and wetness. Greenness variation shows the least values in ice-covered areas (-56.98 to-18.69). High values (-23.48 to 9.12) are in the valleys with dense vegetation, correlating with the geomorphology of the river network, the vegetation-free areas and ocean which corresponds to the peak of 30.87 to 41.19. The bell-shaped data distribution shows frequency 43.19-141.74 for vegetation indicating healthy state and canopy density. Maximal values are in ice-covered regions and glaciers (64°N-65°N). Very low values (0 to-20) show desertification and mountainous rocks. Moderate values (20-40) indicate healthy vegetation. The most frequent data:-28,17 to 11,8. The EVI shows data variations (-0.14 to 0.04). The study contributes both to the regional studies of Arctic Iceland and methodological approach of remote sensing data processing by SAGA GIS. |
author2 |
Ocean University of China (OUC) |
format |
Article in Journal/Newspaper |
author |
Lemenkova, Polina |
author_facet |
Lemenkova, Polina |
author_sort |
Lemenkova, Polina |
title |
SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
title_short |
SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
title_full |
SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
title_fullStr |
SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
title_full_unstemmed |
SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM |
title_sort |
saga gis for information extraction on presence and conditions of vegetation of northern coast of iceland based on the landsat tm |
publisher |
HAL CCSD |
publishDate |
2020 |
url |
https://hal.archives-ouvertes.fr/hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272/document https://hal.archives-ouvertes.fr/hal-02986272/file/10.2478_abmj-2020-0007.pdf https://doi.org/10.2478/abmj-2020-0007 |
long_lat |
ENVELOPE(-18.150,-18.150,65.500,65.500) ENVELOPE(-19.561,-19.561,65.875,65.875) |
geographic |
Arctic Eyjafjörður Skagafjörður |
geographic_facet |
Arctic Eyjafjörður Skagafjörður |
genre |
Arctic Iceland ice covered areas |
genre_facet |
Arctic Iceland ice covered areas |
op_source |
Acta Biologica Marisiensis https://hal.archives-ouvertes.fr/hal-02986272 Acta Biologica Marisiensis, 2020, 3 (2), pp.10 - 21. ⟨10.2478/abmj-2020-0007⟩ https://abmj.ro/uncategorized/saga-gis-for-information-extraction-on-presence-and-conditions-of-vegetation-of-northern-coast-of-iceland-based-on-the-landsat-tm/ |
op_relation |
info:eu-repo/semantics/altIdentifier/doi/10.2478/abmj-2020-0007 hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272/document https://hal.archives-ouvertes.fr/hal-02986272/file/10.2478_abmj-2020-0007.pdf doi:10.2478/abmj-2020-0007 |
op_rights |
http://creativecommons.org/licenses/by/ info:eu-repo/semantics/OpenAccess |
op_doi |
https://doi.org/10.2478/abmj-2020-0007 |
container_title |
Acta Biologica Marisiensis |
container_volume |
3 |
container_issue |
2 |
container_start_page |
10 |
op_container_end_page |
21 |
_version_ |
1766350346865606656 |
spelling |
ftccsdartic:oai:HAL:hal-02986272v1 2023-05-15T15:20:07+02:00 SAGA GIS for information extraction on presence and conditions of vegetation of northern coast of Iceland based on the Landsat TM Lemenkova, Polina Ocean University of China (OUC) 2020-11-02 https://hal.archives-ouvertes.fr/hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272/document https://hal.archives-ouvertes.fr/hal-02986272/file/10.2478_abmj-2020-0007.pdf https://doi.org/10.2478/abmj-2020-0007 en eng HAL CCSD info:eu-repo/semantics/altIdentifier/doi/10.2478/abmj-2020-0007 hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272 https://hal.archives-ouvertes.fr/hal-02986272/document https://hal.archives-ouvertes.fr/hal-02986272/file/10.2478_abmj-2020-0007.pdf doi:10.2478/abmj-2020-0007 http://creativecommons.org/licenses/by/ info:eu-repo/semantics/OpenAccess Acta Biologica Marisiensis https://hal.archives-ouvertes.fr/hal-02986272 Acta Biologica Marisiensis, 2020, 3 (2), pp.10 - 21. ⟨10.2478/abmj-2020-0007⟩ https://abmj.ro/uncategorized/saga-gis-for-information-extraction-on-presence-and-conditions-of-vegetation-of-northern-coast-of-iceland-based-on-the-landsat-tm/ Iceland Landsat TM SAGA GIS cartography vegetation index machine learning automatization mapping ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION ACM: I.: Computing Methodologies/I.3: COMPUTER GRAPHICS ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.3: Relaxation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.0: Color ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.8: Scene Analysis/I.4.8.1: Depth cues ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.10: Image Representation ACM: I.: Computing Methodologies/I.6: SIMULATION AND MODELING ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.4: Applications ACM: I.: Computing Methodologies/I.5: PATTERN RECOGNITION/I.5.5: Implementation ACM: I.: Computing Methodologies/I.2: ARTIFICIAL INTELLIGENCE ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.2: Compression (Coding) ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.1: Digitization and Image Capture ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.0: General ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.1: Pixel classification ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.0: Edge and feature detection ACM: I.: Computing Methodologies/I.4: IMAGE PROCESSING AND COMPUTER VISION/I.4.6: Segmentation/I.4.6.2: Region growing partitioning [INFO.INFO-AI]Computer Science [cs]/Artificial Intelligence [cs.AI] [SDE]Environmental Sciences [SDU.STU.GP]Sciences of the Universe [physics]/Earth Sciences/Geophysics [physics.geo-ph] [SDE.MCG]Environmental Sciences/Global Changes [SDE.IE]Environmental Sciences/Environmental Engineering [SDU]Sciences of the Universe [physics] [SDU.OCEAN]Sciences of the Universe [physics]/Ocean Atmosphere [SDU.STU]Sciences of the Universe [physics]/Earth Sciences [SDU.STU.GM]Sciences of the Universe [physics]/Earth Sciences/Geomorphology [SDU.STU.AG]Sciences of the Universe [physics]/Earth Sciences/Applied geology [SDU.STU.GL]Sciences of the Universe [physics]/Earth Sciences/Glaciology info:eu-repo/semantics/article Journal articles 2020 ftccsdartic https://doi.org/10.2478/abmj-2020-0007 2020-12-23T22:47:41Z International audience The paper aims to evaluate the presence and condition of vegetation by SAGA GIS. The study area covers northern coasts of Iceland including two fjords, the Eyjafjörður and the Skagafjörður, prosperous agricultural regions. The vegetation coverage in Iceland experience the impact of harsh climate, land use, livestock grazing, glacial ablation and volcanism. The data include the Landsat TM image. The methodology is based on computing raster bands for simulating Tassel Cap Transformation (wetness, greenness and brightness) and Enhanced Vegetation Index (EVI) sensitive to high biomass. The results include modelled three bands of brightness, greenness and wetness. Greenness variation shows the least values in ice-covered areas (-56.98 to-18.69). High values (-23.48 to 9.12) are in the valleys with dense vegetation, correlating with the geomorphology of the river network, the vegetation-free areas and ocean which corresponds to the peak of 30.87 to 41.19. The bell-shaped data distribution shows frequency 43.19-141.74 for vegetation indicating healthy state and canopy density. Maximal values are in ice-covered regions and glaciers (64°N-65°N). Very low values (0 to-20) show desertification and mountainous rocks. Moderate values (20-40) indicate healthy vegetation. The most frequent data:-28,17 to 11,8. The EVI shows data variations (-0.14 to 0.04). The study contributes both to the regional studies of Arctic Iceland and methodological approach of remote sensing data processing by SAGA GIS. Article in Journal/Newspaper Arctic Iceland ice covered areas Archive ouverte HAL (Hyper Article en Ligne, CCSD - Centre pour la Communication Scientifique Directe) Arctic Eyjafjörður ENVELOPE(-18.150,-18.150,65.500,65.500) Skagafjörður ENVELOPE(-19.561,-19.561,65.875,65.875) Acta Biologica Marisiensis 3 2 10 21 |