Abstract. Next to the known photogrammetric or acoustic measurement techniques, nowadays LiDAR is a promising option for high-resolution surveys or monitoring of underwater structures in low turbid and shallow waters. The objective of this investigation is to determine the performance of an underwater laser scanner and an air-borne bathymetric laser scanner for mobile data acquisitions. For this purpose, the underwater LiDAR (ULi) from Fraunhofer IPM is installed on a vessel. To enable the registration and georeferencing of the scan data, ULi is added by an Inertial Navigation System (INS) and two GNSS antennas. On the other hand, the air-borne bathymetric laser scanner (ABS) is integrated into an unmanned aerial system (UAS). Both systems are used to survey in the same measurement area to acquire comparable data sets. With the selected measurement settings, both systems can penetrate through water for more than 10 m and are able to resolve small underwater structures. Caused by shorter measurement ranges, ULi offers a point density which is approximately four times higher than the ABS and is able to resolve vertical underwater structures. The advantage of the UAS mounted ABS is that it can survey in shallow areas which cannot be accessed by vessels.
Annette Scheider, Sethmiya Herath Mudiyanselage, C. Werner et al.· The International Archives o...· 0 citations
Abstract. Green-wavelength LiDAR systems enable high-resolution 3D sensing in underwater environments, but the geometric evaluation of measurements acquired across the waterline remains challenging. This is mainly because traceable reference instruments typically operate only in air, while refraction at the waterline systematically affects both the 3D point cloud and the geometry of partially submerged objects. This study presents a controlled experimental framework for assessing waterline-induced effects in an Underwater LiDAR (ULi) system, using a terrestrial laser scanner (TLS), the Z+F IMAGER 5016A (IMAGER), as an above-water reference. A rigid reference frame (RRF) spanning the waterline was deployed in a swimming pool. First, the RRF was scanned by the IMAGER under in-air conditions to establish its reference geometry. Subsequently, in the waterline configuration, the ULi system measured the complete RRF, while the IMAGER captured only its above-water part. The analysis investigated refraction- and interface-related effects on the 3D point cloud and geometry in the above-water, cross-waterline, and underwater parts of the RRF. For a physically meaningful assessment, the evaluation considered overall geometric deviations and rigid-body-invariant internal quantities, including pairwise distances, which are independent of the overall pose of the RRF. Refractive-index sensitivity was analyzed by perturbing the refractive index and quantifying the resulting changes in the derived geometric quantities. The proposed workflow provides a practical and traceable basis for isolating waterline-related refraction effects, evaluating their impact on 3D point cloud geometry, and assessing refractive-index sensitivity.
Yu Lan, Jiale Wang, Ji Yang et al.· The International Archives o...· 0 citations