Low-cost Terrestrial Laser Scanners for Permanent Monitoring of Beach-Dune Systems

Journal Article (2026)
Author(s)

Daan Hulskemper (TU Delft - Civil Engineering & Geosciences)

Hannah Weiser (Universität Heidelberg)

Ronald Tabernig (Universität Heidelberg)

Bernhard Höfle (Universität Heidelberg)

Thomas de Jong (Student TU Delft)

Roderik Lindenbergh (TU Delft - Civil Engineering & Geosciences)

Research Group
Optical and Laser Remote Sensing
DOI related publication
https://doi.org/10.5194/isprs-annals-XI-1-2026-91-2026 Final published version
More Info
expand_more
Publication Year
2026
Language
English
Research Group
Optical and Laser Remote Sensing
Journal title
ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Issue number
1-2026
Volume number
11
Pages (from-to)
91-99
Event
25th ISPRS Congress 2026 From Imagery to Understanding (2026-07-04 - 2026-07-11), Toronto, Canada
Page Views
55
Reuse Rights

Other than for strictly personal use, it is not permitted to download, forward or distribute the text or part of it, without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license such as Creative Commons.

Abstract

Permanent laser scanning (PLS) is an effective tool for near-continuous monitoring of topographical changes in beach-dune systems. While PLS systems were traditionally costly, the emergence of affordable LiDAR sensors enables larger-scale setups with multiple scanners or sites. However, the different characteristics compared to high-end devices, create challenges for one-on-one replacement. To assess how low-cost sensors can replace high-end sensors, we compare the performance of a setup with several low-cost Livox AVIA sensors to a single high-end RIEGL VZ-2000i sensor in its ability to capture an embryonic dune field with large variation in topography. This is evaluated using HELIOS++ virtual laser scanning (VLS). To also assess the representativeness of the simulations, we further compare the VLS to real-world measurements with the Livox AVIA. Based on a VLS setup with six AVIAs mounted on tripods at 2 m above ground, a coverage of 52% can be obtained, which is similar to the coverage of a single RIEGL VZ-2000i on a tower 8 m high. The real-world experiments confirm the VLS results with a slightly lower point cloud coverage of 42%. Furthermore, the effective range of the Livox AVIA in a beach-dune system lies around 100-150 m. At larger ranges, only pulses at high incidence angles (angle between surface and incoming beam, >20°) are registered at the scanner. The variations in coverage between the VLS and real-world scans highlight the need for careful consideration of the occlusion potential of different representations of the topography, beam divergence shapes, and the moisture conditions.