DOI: 10.3390/rs18152634 ISSN: 2072-4292

A Persistent Scatterer Interferometry-Based Parametric Framework for Characterizing Pre-, Co-, and Post-Seismic Surface Deformation: Application to the 2025 Dingri Earthquake (Southern Tibet)

Evandro Balbi, Simone Barani, Leonardo Colavitti, Gabriele Tarchini, Shiba Subedi, Gabriele Ferretti

Persistent Scatterer Interferometry (PSI) provides dense and temporally continuous measurements of ground deformation, offering a robust framework for investigating, among other phenomena, earthquake-related surface deformation. However, most satellite-based investigations of large earthquakes remain focused on coseismic interferograms, source inversions, and short post-seismic observation windows. In this study, we propose a PSI-based parametric approach that, given a Persistent Scatterer (PS) time series, uses a piecewise linear regression with an imposed coseismic step at the earthquake origin time to estimate the pre-event line-of-sight (LOS) velocity, the coseismic displacement step, and the post-event LOS velocity using ascending and descending satellite observations. The methodology is applied to the 7 January 2025 Mw 7.1 Dingri earthquake (southern Tibet), a recent large normal-faulting event for which previous studies have documented complex rupture behavior and significant co- and post-seismic surface deformation. The results show that our PSI-based approach enables, within a single framework, the isolation of the coseismic jump, the quantification of post-event velocity patterns, and the systematic comparison of pre- and post- event deformation. In addition, the combination of ascending and descending datasets yields a first-order reconstruction of the vertical and east–west deformation components. The proposed approach complements physics-based source modeling by offering a scalable, observation-driven, and point-wise characterization of deformation evolution.

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