Comparison of Tropospheric Path Delay Estimates from GNSS and Space-Borne SAR Interferometry in Alpine Conditions

被引:5
|
作者
Wilgan, Karina [1 ]
Siddique, Muhammad Adnan [2 ]
Strozzi, Tazio [3 ]
Geiger, Alain [1 ]
Frey, Othmar [3 ,4 ]
机构
[1] Swiss Fed Inst Technol, Inst Geodesy & Photogrammetry, Robert Gnehm Weg 15, CH-8093 Zurich, Switzerland
[2] Natl Univ Comp & Emerging Sci FAST NU, Dept Elect Engn, B Block, Lahore 54770, Pakistan
[3] Gamma Remote Sensing, Worbstr 225, CH-3073 Gumlingen, Switzerland
[4] Swiss Fed Inst Technol, Chair Earth Observat & Remote Sensing, Stefano Franscini Pl 3, CH-8093 Zurich, Switzerland
关键词
tropospheric delays; InSAR; GNSS; PSI; low-cost GPS; alpine areas; POINT TARGET ANALYSIS; GPS; MODEL; DEFORMATION; REFRACTIVITY; INVENTORY;
D O I
10.3390/rs11151789
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We compare tropospheric delays from Global Navigation Satellite Systems (GNSS) and Synthetic Aperture Radar (SAR) Interferometry (InSAR) in a challenging mountainous environment in the Swiss Alps, where strong spatial variations of the local tropospheric conditions are often observed. Tropospheric delays are usually considered to be an error for both GNSS and InSAR, and are typically removed. However, recently these delays are also recognized as a signal of interest, for example for assimilation into numerical weather models or climate studies. The GNSS and InSAR are techniques of complementary nature, as one has sparse spatial but high temporal resolution, and the other very dense spatial coverage but repeat pass of only a few days. This raises expectations for a combination of these techniques. For this purpose, a comprehensive comparison between the techniques must be first performed. Due to the relative nature of InSAR estimates, we compare the difference slant tropospheric delays retrieved from GNSS with the dSTDs estimated using Persistent Scatterer Interferometry (PSI) of 32 COSMO-SkyMed SAR images taken in a snow-free period from June to October between 2008 and 2013. The GNSS estimates calculated at permanent geodetic stations are interpolated to the locations of persistent scatterers using an in-house developed least-squares collocation software COMEDIE. The Pearson's correlation coefficient between InSAR and GNSS estimates averaged over all acquisitions is equal to 0.64 and larger than 0.8 for approximately half of the layers. Better agreement is obtained mainly for days with high variability of the troposphere (relative to the tropospheric conditions at the time of the reference acquisition), expressed as standard deviations of the GNSS-based dSTD On the other hand, the most common feature for the days with poor agreement is represented by very stable, almost constant GNSS estimates. In addition, there is a weak correlation between the agreement and the water vapor values in the area, as well as with the number of stations in the closest vicinity of the study area. Adding low-cost L-1 only GPS stations located within the area of the study increases the biases for most of the dates, but the standard deviations between InSAR and GNSS decrease for the limited area with low-cost stations.
引用
收藏
页数:21
相关论文
共 50 条
  • [31] Sensitivity functions of space-borne gravitational wave detectors for arbitrary time-delay interferometry combinations regarding nontensorial polarizations
    Wang, Pan-Pan
    Tan, Yu-Jie
    Qian, Wei-Liang
    Shao, Cheng-Gang
    PHYSICAL REVIEW D, 2021, 104 (02)
  • [32] Proof-of-principle Experimental Demonstration of Time-delay-interferometry for Chinese Space-borne Gravitational Wave Detection Missions
    Li, Xiaokang
    Liu, Heshan
    Wu, Pengzhan
    Li, Haosi
    Xu, Peng
    Luo, Ziren
    MICROGRAVITY SCIENCE AND TECHNOLOGY, 2022, 34 (04)
  • [33] On the ambiguity removal of wind direction derived from space-borne SAR imagery using deep learning
    Yang, Hongyu
    Fang, Chao
    Wang, Sheng
    Shao, Jianing
    Yang, Xiaofeng
    REMOTE SENSING OF ENVIRONMENT, 2024, 308
  • [34] Comparison of tropospheric parameters from Meteodrone measurements with GNSS estimates from ground-based stations
    Wilgan, Karina
    Stauffer, Raphael
    Meindl, Michael
    Geiger, Alain
    ADVANCES IN SPACE RESEARCH, 2020, 66 (12) : 2812 - 2826
  • [35] Estimates of North American summertime planetary boundary layer depths derived from space-borne lidar
    McGrath-Spangler, Erica L.
    Denning, A. Scott
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2012, 117
  • [36] Ionospheric Total Electron Content and Disturbance Observations from Space-Borne Coherent GNSS-R Measurements
    Wang, Yang
    Morton, Y. Jade
    IEEE Transactions on Geoscience and Remote Sensing, 2022, 60
  • [37] Ionospheric Total Electron Content and Disturbance Observations From Space-Borne Coherent GNSS-R Measurements
    Wang, Yang
    Morton, Y. Jade
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2022, 60
  • [38] Time-delay interferometry combinations to suppress two of six test-mass disturbances in space-borne gravitational wave detectors
    Tan, Yu-Jie
    Huang, Wei-Sheng
    Wang, Pan-Pan
    Wu, Zhang-Qi
    Le Floch, Jean-Michel
    Wu, Han-Zhong
    Liu, Jing
    Shao, Cheng-Gang
    Zhou, Ze-Bing
    PHYSICAL REVIEW D, 2025, 111 (02)
  • [39] A simulation study for deriving cloud liquid water path from space-borne microwave radiometric measurements
    Liu, ST
    Yan, W
    Optical Technologies for Atmospheric, Ocean, and Environmental Studies, Pts 1 and 2, 2005, 5832 : 514 - 522
  • [40] Comparison of Laser and Stereo Optical, SAR and InSAR Point Clouds from Air- and Space-Borne Sources in the Retrieval of Forest Inventory Attributes
    Yu, Xiaowei
    Hyyppa, Juha
    Karjalainen, Mika
    Nurminen, Kimmo
    Karila, Kirsi
    Vastaranta, Mikko
    Kankare, Ville
    Kaartinen, Harri
    Holopainen, Markus
    Honkavaara, Eija
    Kukko, Antero
    Jaakkola, Anttoni
    Liang, Xinlian
    Wang, Yunsheng
    Hyyppa, Hannu
    Katoh, Masato
    REMOTE SENSING, 2015, 7 (12) : 15933 - 15954