A1 Vertaisarvioitu alkuperäisartikkeli tieteellisessä lehdessä

Assessing the consistency of low vegetation characteristics estimated using harvester, handheld, and drone light detection and ranging (LiDAR) systems




TekijätKafle, Binod; Kankare, Ville; Kaartinen, Harri; Väätäinen, Kari; Hyyti, Heikki; Faitli, Tamas; Hyyppä, Juha; Kukko, Antero; Kärhä, Kalle

KustantajaFinnish Society of Forest Science

Julkaisuvuosi2025

JournalSilva Fennica

Tietokannassa oleva lehden nimiSilva Fennica

Artikkelin numero25013

Vuosikerta59

Numero2

ISSN0037-5330

eISSN2242-4075

DOIhttps://doi.org/10.14214/sf.25013

Verkko-osoitehttps://doi.org/10.14214/sf.25013

Rinnakkaistallenteen osoitehttps://research.utu.fi/converis/portal/detail/Publication/499573852


Tiivistelmä

Evaluating the potential of a harvester-mounted LiDAR system in monitoring biodiversity indicators such as low vegetation during forest harvesting could enhance sustainable forest management and habitat conservation including dense forest areas for game. However, there is a lack of understanding on the capabilities and limitations of these systems to detect low vegetation characteristics. To address this knowledge gap, this study investigated the performance of a harvester-mounted LiDAR system for measuring low vegetation (height <5 m) attributes in a boreal forest in Finland, by comparing it with handheld mobile laser scanning (HMLS) and drone laser scanning (DLS) systems. LiDAR point cloud data was collected in September 2023 to quantify the low vegetation height (maximum, mean, and percentiles), volume (voxel-based and mean height-based) and cover (grid method). Depending on the system, LiDAR point cloud data was collected either before (HMLS and DLS), during (harvester LiDAR) or after (HMLS and DLS) harvesting operations. A total of 46 fixed-sized (5 m × 5 m) grid cells were studied and analyzed. Results showed harvester-mounted LiDAR provided consistent estimates with HMLS and DLS for maximum height, 99th height percentile, and volume across various grids (5 cm, 10 cm, 20 cm) and voxel (20 cm) sizes. High correlation was observed between the systems used for these attributes. This study demonstrated that harvester-mounted LiDAR is comparable to HMLS and DLS for assessing low vegetation height and volume. The findings could assist forest harvester operators in identifying potential low vegetation and dense areas for conservation and game management.


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Julkaisussa olevat rahoitustiedot
The “IlmoStar” project (VN/27353/2022), funded by the Ministry of Agriculture and Forestry in Finland and the European Union’s Next Generation EU program, provided funding for the author’s doctoral program in Science, Forestry, and Technology (LUMETO) at the University of Eastern Finland. This project was coordinated by FGI, with UEF, Luke, and Ponsse Plc as its partners. The IlmoStar project is a part of the UNITE Flagship.


Last updated on 2025-29-08 at 07:18