Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data

Increasing near-surface temperature over the Qinghai-Tibet Plateau (QTP) has led to permafrost degradation and increasing active layer thickness (ALT). In this study, the ALT was estimated based on ground subsidence monitored by multitemporal interferometric synthetic aperture radar (MT-InSAR) and t...

Full description

Bibliographic Details
Main Authors: Xuefei Zhang, Hong Zhang, Chao Wang, Yixian Tang, Bo Zhang, Fan Wu, Jing Wang, Zhengjia Zhang
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9069907/
id doaj-9a63087f0f0b438ca2627829cf2756f0
record_format Article
spelling doaj-9a63087f0f0b438ca2627829cf2756f02021-03-30T01:44:18ZengIEEEIEEE Access2169-35362020-01-018843368435110.1109/ACCESS.2020.29884829069907Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture DataXuefei Zhang0Hong Zhang1https://orcid.org/0000-0002-0088-8148Chao Wang2Yixian Tang3Bo Zhang4Fan Wu5Jing Wang6Zhengjia Zhang7Aerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaAerospace information Research Institute, Chinese Academy of Sciences, Beijing, ChinaFaculty of Information Engineering, China University of Geosciences, Wuhan, ChinaIncreasing near-surface temperature over the Qinghai-Tibet Plateau (QTP) has led to permafrost degradation and increasing active layer thickness (ALT). In this study, the ALT was estimated based on ground subsidence monitored by multitemporal interferometric synthetic aperture radar (MT-InSAR) and temporal-spatial multilayer soil moisture data. For the ground subsidence monitoring, a modified Stefan piecewise elevation change model based on air temperature data was integrated into a new small baseline subset (NSBAS) chain. A total of 33 scenes of Sentinel-1 data (S-1) were collected over one year to build the MT-InSAR analysis network. Moreover, both soil moisture active/passive (SMAP) L4 surface and root zone soil moisture data and ERA-Interim reanalysis data were used to build an ALT retrieval model. In particular, the global-scaled soil moisture data (SMAP and ERA-Interim) fraction was separated based on the Sentinel-1 amplitude-based land cover classification results and in situ soil moisture data. A typical ALT estimation method based on the point scale groundwater information was also performed to evaluate the performance of the proposed method. Based on the validation of the ground-based ALT observations, the proposed method outperformed the traditional point scale groundwater information-based method, with a correlation coefficient of 0.67, RMSE of 0.70 and ubRMSE of 0.51, respectively. The ERA-Interim-based estimation results were underestimated due to the overestimation of the ERA-Interim soil moisture data. Obvious differences were observed between the ALT of the alpine meadow areas and alpine desert areas. Our results demonstrate that the combination of temporal-spatial multilayer soil moisture data and the MT-InSAR method with S-1 images is a promising approach for the large-scale characterization of ALT.https://ieeexplore.ieee.org/document/9069907/Active layer thickness (ALT)permafrostMT-InSARNSBASseasonal subsidence
collection DOAJ
language English
format Article
sources DOAJ
author Xuefei Zhang
Hong Zhang
Chao Wang
Yixian Tang
Bo Zhang
Fan Wu
Jing Wang
Zhengjia Zhang
spellingShingle Xuefei Zhang
Hong Zhang
Chao Wang
Yixian Tang
Bo Zhang
Fan Wu
Jing Wang
Zhengjia Zhang
Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
IEEE Access
Active layer thickness (ALT)
permafrost
MT-InSAR
NSBAS
seasonal subsidence
author_facet Xuefei Zhang
Hong Zhang
Chao Wang
Yixian Tang
Bo Zhang
Fan Wu
Jing Wang
Zhengjia Zhang
author_sort Xuefei Zhang
title Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
title_short Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
title_full Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
title_fullStr Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
title_full_unstemmed Active Layer Thickness Retrieval Over the Qinghai-Tibet Plateau Using Sentinel-1 Multitemporal InSAR Monitored Permafrost Subsidence and Temporal-Spatial Multilayer Soil Moisture Data
title_sort active layer thickness retrieval over the qinghai-tibet plateau using sentinel-1 multitemporal insar monitored permafrost subsidence and temporal-spatial multilayer soil moisture data
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Increasing near-surface temperature over the Qinghai-Tibet Plateau (QTP) has led to permafrost degradation and increasing active layer thickness (ALT). In this study, the ALT was estimated based on ground subsidence monitored by multitemporal interferometric synthetic aperture radar (MT-InSAR) and temporal-spatial multilayer soil moisture data. For the ground subsidence monitoring, a modified Stefan piecewise elevation change model based on air temperature data was integrated into a new small baseline subset (NSBAS) chain. A total of 33 scenes of Sentinel-1 data (S-1) were collected over one year to build the MT-InSAR analysis network. Moreover, both soil moisture active/passive (SMAP) L4 surface and root zone soil moisture data and ERA-Interim reanalysis data were used to build an ALT retrieval model. In particular, the global-scaled soil moisture data (SMAP and ERA-Interim) fraction was separated based on the Sentinel-1 amplitude-based land cover classification results and in situ soil moisture data. A typical ALT estimation method based on the point scale groundwater information was also performed to evaluate the performance of the proposed method. Based on the validation of the ground-based ALT observations, the proposed method outperformed the traditional point scale groundwater information-based method, with a correlation coefficient of 0.67, RMSE of 0.70 and ubRMSE of 0.51, respectively. The ERA-Interim-based estimation results were underestimated due to the overestimation of the ERA-Interim soil moisture data. Obvious differences were observed between the ALT of the alpine meadow areas and alpine desert areas. Our results demonstrate that the combination of temporal-spatial multilayer soil moisture data and the MT-InSAR method with S-1 images is a promising approach for the large-scale characterization of ALT.
topic Active layer thickness (ALT)
permafrost
MT-InSAR
NSBAS
seasonal subsidence
url https://ieeexplore.ieee.org/document/9069907/
work_keys_str_mv AT xuefeizhang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT hongzhang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT chaowang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT yixiantang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT bozhang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT fanwu activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT jingwang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
AT zhengjiazhang activelayerthicknessretrievalovertheqinghaitibetplateauusingsentinel1multitemporalinsarmonitoredpermafrostsubsidenceandtemporalspatialmultilayersoilmoisturedata
_version_ 1724186464508444672