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April 8, 2026Remote Sensing1 citationsOpen Access

Use of Multi-Squint InSAR to Separate Surface Deformation from Troposphere Delay

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XWXing WuSOShadi OveisgharanAKA. Khazendar

Key Points

  • To analyze how tropospheric delays affect InSAR measurements and to develop methods for their separation from surface deformation.
  • Processed UAVSAR data with three different squint angles
  • Analyzed non-uniform tropospheric delay features
  • Estimated altitude of effective troposphere delay layers
  • Identified variations in tropospheric delay structures with different squint angles
  • Observed delays of a few centimeters across interferograms
  • Developed methods to separate surface deformation from atmosphere delay components

Abstract

Tropospheric delays can be the leading source of error in spaceborne interferometric synthetic aperture radar (InSAR) measurements. Here, we find that the non-uniform troposphere delay features are dependent on the squint angles used for repeat-pass InSAR data acquisitions. Large squint angles cause large along-track shifts in these non-uniform troposphere delay features. By processing the airborne L-band uninhabited aerial vehicle SAR (UAVSAR) data with three different squint angles, we were able to see various non-uniform delay structures of different sizes with varying delays of up to a few centimeters across the observed interferograms. We were also able to estimate the altitude of the effective troposphere delay layers. The understanding of the squint-dependent troposphere delay can help us separate the surface deformation component from the atmosphere delay component in the InSAR phase measurements. A number of methods are proposed for this separation. We used the UAVSAR data and simulated surface deformations to verify these methods. This technique can also be used for spaceborne cases.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69d5f0d774eaea4b11a7a3d9https://doi.org/10.3390/rs18071094
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