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Geospatial technologies for Chang'e-3 and Chang'e-4 lunar rover missions., , , , , , , и . Geo spatial Inf. Sci., 23 (1): 87-97 (2020)High-Precision Measurement of 3-D Rock Morphology on Mars Using Stereo Rover Imagery., , , , , , и . IEEE Geosci. Remote. Sens. Lett., (2022)Adaptive Markov Random Field Approach for Classification of Hyperspectral Imagery., , , , и . IEEE Geosci. Remote. Sens. Lett., 8 (5): 973-977 (2011)Landing site topographic mapping and rover localization for Chang'e-4 mission., , , , , , , , , и 16 other автор(ы). Sci. China Inf. Sci., (2020)Vision-Based Decision Support for Rover Path Planning in the Chang'e-4 Mission., , , , , , , , , и . Remote Sensing, 12 (4): 624 (2020)Localization of the Chang'e-5 Lander Using Radio-Tracking and Image-Based Methods., , , , , , , , , и 3 other автор(ы). Remote. Sens., 13 (4): 590 (2021)A Generative Adversarial Network for Pixel-Scale Lunar DEM Generation from High-Resolution Monocular Imagery and Low-Resolution DEM., , , , , и . Remote. Sens., 14 (21): 5420 (2022)A Photogrammetric-Photometric Stereo Method for High-Resolution Lunar Topographic Mapping Using Yutu-2 Rover Images., , , , , , и . Remote. Sens., 13 (15): 2975 (2021)Coarse-to-Fine Crater Matching From Heterogeneous Surfaces of LROC NAC and Chang'e-2 DOM Images., , , , , и . IEEE Geosci. Remote. Sens. Lett., (2023)A continuative variable resolution digital elevation model for ground-based photogrammetry., , и . Comput. Geosci., (2014)