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A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction

Nighttime light (NTL) images have been broadly applied to extract urban built-up areas in recent years. However, the typical NTL images provided by Defense Meteorological Satellite Program/Operational Linescan System (DMSP/OLS) and National Polar-Orbiting Partnership’s Visible Infrared Imaging Radio...

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Autores principales: Li, Fei, Yan, Qingwu, Bian, Zhengfu, Liu, Baoli, Wu, Zhenhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7284333/
https://www.ncbi.nlm.nih.gov/pubmed/32455659
http://dx.doi.org/10.3390/s20102918
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author Li, Fei
Yan, Qingwu
Bian, Zhengfu
Liu, Baoli
Wu, Zhenhua
author_facet Li, Fei
Yan, Qingwu
Bian, Zhengfu
Liu, Baoli
Wu, Zhenhua
author_sort Li, Fei
collection PubMed
description Nighttime light (NTL) images have been broadly applied to extract urban built-up areas in recent years. However, the typical NTL images provided by Defense Meteorological Satellite Program/Operational Linescan System (DMSP/OLS) and National Polar-Orbiting Partnership’s Visible Infrared Imaging Radiometer Suite (NPP/VIIRS) have the drawbacks of low resolution and blooming effect, which bring difficulty for the application of them in urban built-up area extraction. Therefore, this paper proposes the POI (point of interest) and LST (land surface temperature) adjusted NTL urban index (PLANUI) to extract the urban built-up areas with high accuracy. PLANUI is the first urban index to integrate POI and NTL for urban built-up area extraction. In this paper, NPP/VIIRS and Luojia 1-01 images were introduced as the original NTL data and the vegetation adjusted NTL urban index (VANUI) was selected as the comparison item. The threshold method was utilized to extract urban built-up areas from these data. The results show that: (1) Based on the comparison with the reference data, the PLANUI can make up the shortcoming of low resolution and the blooming effect of NTL effectively. (2) Compared with the VANUI, the PLANUI can significantly improve the accuracy of the urban built-up areas extracted and characterize urban features. (3) According to the results based on NPP/VIIRS and Luojia 1-01 images, the PLANUI has extensive applicability, both for regions with different degrees of economic development and NTL data with different resolutions. PLANUI can enhance the features of urban built-up areas with social sensing data and natural remote sensing data, which helps to weaken the NTL blooming effect and improve the extraction accuracy. PLANUI can provide an effective approach for urban built-up area extraction, which plays a certain guiding role for the study of urban structure, urban expansion, and urban planning and governance.
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spelling pubmed-72843332020-06-15 A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction Li, Fei Yan, Qingwu Bian, Zhengfu Liu, Baoli Wu, Zhenhua Sensors (Basel) Article Nighttime light (NTL) images have been broadly applied to extract urban built-up areas in recent years. However, the typical NTL images provided by Defense Meteorological Satellite Program/Operational Linescan System (DMSP/OLS) and National Polar-Orbiting Partnership’s Visible Infrared Imaging Radiometer Suite (NPP/VIIRS) have the drawbacks of low resolution and blooming effect, which bring difficulty for the application of them in urban built-up area extraction. Therefore, this paper proposes the POI (point of interest) and LST (land surface temperature) adjusted NTL urban index (PLANUI) to extract the urban built-up areas with high accuracy. PLANUI is the first urban index to integrate POI and NTL for urban built-up area extraction. In this paper, NPP/VIIRS and Luojia 1-01 images were introduced as the original NTL data and the vegetation adjusted NTL urban index (VANUI) was selected as the comparison item. The threshold method was utilized to extract urban built-up areas from these data. The results show that: (1) Based on the comparison with the reference data, the PLANUI can make up the shortcoming of low resolution and the blooming effect of NTL effectively. (2) Compared with the VANUI, the PLANUI can significantly improve the accuracy of the urban built-up areas extracted and characterize urban features. (3) According to the results based on NPP/VIIRS and Luojia 1-01 images, the PLANUI has extensive applicability, both for regions with different degrees of economic development and NTL data with different resolutions. PLANUI can enhance the features of urban built-up areas with social sensing data and natural remote sensing data, which helps to weaken the NTL blooming effect and improve the extraction accuracy. PLANUI can provide an effective approach for urban built-up area extraction, which plays a certain guiding role for the study of urban structure, urban expansion, and urban planning and governance. MDPI 2020-05-21 /pmc/articles/PMC7284333/ /pubmed/32455659 http://dx.doi.org/10.3390/s20102918 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Fei
Yan, Qingwu
Bian, Zhengfu
Liu, Baoli
Wu, Zhenhua
A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title_full A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title_fullStr A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title_full_unstemmed A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title_short A POI and LST Adjusted NTL Urban Index for Urban Built-Up Area Extraction
title_sort poi and lst adjusted ntl urban index for urban built-up area extraction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7284333/
https://www.ncbi.nlm.nih.gov/pubmed/32455659
http://dx.doi.org/10.3390/s20102918
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