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Classification of Terrestrial Lidar Data Directly From Digitized Echo Waveforms.

, , , and . IEEE Trans. Geosci. Remote. Sens., (2023)

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Implementation of a Zed 2i Stereo Camera for High-Frequency Shoreline Change and Coastal Elevation Monitoring., , , , and . IGARSS, page 6708-6711. IEEE, (2023)Development of a Best Practices Workflow for Rapid Beach Surveying Using a Lower-Cost Mobile Lidar System., and . IGARSS, page 8233-8236. IEEE, (2021)Classification of Terrestrial Lidar Data Directly From Digitized Echo Waveforms., , , and . IEEE Trans. Geosci. Remote. Sens., (2023)Fusion of uas-based structure-from-motion and optical inversion for seamless topo-bathymetric mapping., and . IGARSS, page 2999-3002. IEEE, (2017)Automatic feature extraction from airborne lidar measurements to identify cross-shore morphologies indicative of beach erosion., , , , and . IGARSS, page 2511-2514. IEEE, (2007)Full-Waveform Terrestrial Lidar Data Classification Using Raw Digitized Waveform Signals., , and . IGARSS, page 1916-1919. IEEE, (2022)Terrestrial Lidar Data Classification Based on Raw Waveform Samples Versus Online Waveform Attributes., , , and . IEEE Trans. Geosci. Remote. Sens., (2022)Application of Semantic Image Segmentation for Efficient UAS-SfM Photogrammetry Mapping., , and . IGARSS, page 6983-6986. IEEE, (2023)Deep Learning-Based Single Image Super-Resolution: An Investigation for Dense Scene Reconstruction with UAS Photogrammetry., , , and . Remote. Sens., 12 (11): 1757 (2020)Deep Learning Automatic Detection of the Wet/Dry Shoreline at Fish Pass, Texas., , , , and . IGARSS, page 1876-1879. IEEE, (2022)