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An Efficient Maximum Likelihood Estimation Approach of Multi-Baseline SAR Interferometry for Refined Topographic Mapping in Mountainous Areas., , , и . Remote. Sens., 10 (3): 454 (2018)Moon-Based SAR for Earth Observation and Its Spatial Baseline Decorrelation in Repeat-Pass Interferometry., , , и . IGARSS, стр. 1705-1708. IEEE, (2019)Analyzing the topographic influence for the PS-INSAR processing in the Three Gorges region., , , , , и . IGARSS, стр. 3843-3846. IEEE, (2012)An Analysis of Spatiotemporal Baseline and Effective Spatial Coverage for Lunar-Based SAR Repeat-Track Interferometry., , , , , , и . IEEE J. Sel. Top. Appl. Earth Obs. Remote. Sens., 12 (9): 3458-3469 (2019)A carbon nanotube patch antenna for polarization selective radiation performance., , , , и . ICKII, стр. 217-220. IEEE, (2018)Inferring decelerated land subsidence and groundwater storage dynamics in Tianjin-Langfang using Sentinel-1 InSAR., , , , , , , , и . Int. J. Digit. Earth, 15 (1): 1526-1546 (декабря 2022)Landslide Displacement Monitoring with Split-Bandwidth Interferometry: A Case Study of the Shuping Landslide in the Three Gorges Area., , , и . Remote Sensing, 9 (9): 937 (2017)Joint use of multi-orbit high-resolution SAR interferometry for DEM generation in mountainous area., , , , и . IGARSS, стр. 406-409. IEEE, (2014)A Parallel InSAR Phase Unwrapping Method Based on Separated Continuous Regions., , , , и . Remote. Sens., 15 (5): 1370 (марта 2023)Geohazards Analysis of the Litang-Batang Section of Sichuan-Tibet Railway Using SAR Interferometry., , , , и . IEEE J. Sel. Top. Appl. Earth Obs. Remote. Sens., (2021)