Exploring the InSAR Deformation Series Using Unsupervised Learning in a Built Environment

Author:

Yang Mengshi12ORCID,Li Menghua3ORCID,Huang Cheng45ORCID,Zhang Ruisi12,Liu Rui12

Affiliation:

1. School of Earth Sciences, Yunnan University, Kunming 650500, China

2. Yunnan International Joint Laboratory of China-Laos-Bangladesh-Myanmar Natural Resources Remote Sensing Monitoring, Kunming 650500, China

3. Faculty of Land Resources Engineering, Kunming University of Science and Technology, Kunming 650093, China

4. Yunnan Key Laboratory of Geohazard Forecast and Geoecological Restoration in Plateau Mountainous Area, Kunming 650216, China

5. Yunnan Institute of Geological Environment Monitoring, Kunming 650216, China

Abstract

As a city undergoes large-scale construction and expansion, there is an urgent need to monitor the stability of the ground and infrastructure. The time-series InSAR technique is an effective tool for measuring surface displacements. However, interpreting these displacements in a built environment, where observed displacements consist of mixed signals, poses a challenge. This study uses principal component analysis (PCA) and the k-means clustering method for exploring deformation series within an unsupervised learning context. The PCA method extracts the dominant components in deformation series, whereas the clustering method identifies similar deformation series. This method was tested on Kunming City (KMC) using C-band Sentinel-1, X-band TerraSAR-X, and L-band ALOS-2 PALSAR-2 data acquired between 2017 to 2022. The experiment demonstrated that the suggested unsupervised learning approach can group PS points with similar kinematic characteristics. Five types of deformation kinematic characteristics were discovered in the three SAR datasets: upward, slight upward, stability, slight downward, and downward. According to the results, less than 20% of points exhibit significant motion trends, whereas 50% show small velocity values but still demonstrate movement trends. The remaining 30% are relatively stable. Similar clustering results were obtained from the three datasets using unsupervised methods, highlighting the effectiveness of identifying spatial–temporal patterns over the study area. Moreover, It was found that clustering based on kinematic characteristics enhances the interpretation of InSAR deformation, particularly for points with small deformation velocities. Finally, the significance of PCA decomposition in interpreting InSAR deformation was discussed, as it can better represent series with noise, enabling their accurate identification.

Funder

National Natural Science Foundation of China

Yunnan Fundamental Research Projects

Publisher

MDPI AG

Reference49 articles.

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3. Permanent Scatterers in SAR Interferometry;Ferretti;IEEE Trans. Geosci. Remote Sens.,2001

4. A new algorithm for surface deformation monitoring based on small baseline differential SAR interferograms;Berardino;IEEE Trans. Geosci. Remote Sens.,2003

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