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Airborne DInSAR Results Using Time-Domain Backprojection Algorithm: A Case Study Over the Slumgullion Landslide in Colorado With Validation Using Spaceborne SAR, Airborne LiDAR, and Ground-Based Observations.

, , , , , , , , and . IEEE J. Sel. Top. Appl. Earth Obs. Remote. Sens., 10 (11): 4987-5000 (2017)

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Evaluation of an airborne SAR system for deformation mapping: A case study over the slumgullion landslide., , , , , , , , and . IGARSS, page 1684-1687. IEEE, (2017)Multi-Capability Sar for Geoscience Research., and . IGARSS, page 7817-7820. IEEE, (2018)Estimation of Residual Motion Errors in Airborne SAR Interferometry Based on Time-Domain Backprojection and Multisquint Techniques., , , , , , , and . IEEE Trans. Geosci. Remote. Sens., 56 (4): 2397-2407 (2018)Airborne DInSAR Results Using Time-Domain Backprojection Algorithm: A Case Study Over the Slumgullion Landslide in Colorado With Validation Using Spaceborne SAR, Airborne LiDAR, and Ground-Based Observations., , , , , , , , and . IEEE J. Sel. Top. Appl. Earth Obs. Remote. Sens., 10 (11): 4987-5000 (2017)The BYU SAR: A Small, Student-Built SAR for UAV Operation., , and . IGARSS, page 411-414. IEEE, (2006)Theory and Application of Motion Compensation for LFM-CW SAR., and . IEEE Trans. Geosci. Remote. Sens., 46 (10): 2990-2998 (2008)Development and Results for a New Software Defined Radar: The SLIMSDR., , , , , and . IGARSS, page 6170-6173. IEEE, (2020)The microasar experiment on CASIE-09., , , and . IGARSS, page 3466-3469. IEEE, (2010)Theoretical and practical design considerations for a small, multi-band SAR: The SlimSAR., , and . IGARSS, page 126-129. IEEE, (2010)Generalized Frequency Scaling and Backprojection for LFM-CW SAR Processing., and . IEEE Trans. Geosci. Remote. Sens., 53 (7): 3600-3614 (2015)