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Article

A Comparison of Unpiloted Aerial System Hardware and Software for Surveying Fine-Scale Oak Health in Oak–Pine Forests

by
Benjamin T. Fraser
1,*,
Larissa Robinov
2,
William Davidson
2,
Shea O’Connor
1 and
Russell G. Congalton
1
1
Department of Natural Resources and the Environment, University of New Hampshire, Durham, NH 03824, USA
2
Division of Forests & Lands, New Hampshire Department of Natural and Cultural Resources, Concord, NH 03301, USA
*
Author to whom correspondence should be addressed.
Forests 2024, 15(4), 706; https://doi.org/10.3390/f15040706
Submission received: 29 March 2024 / Revised: 12 April 2024 / Accepted: 15 April 2024 / Published: 17 April 2024
(This article belongs to the Special Issue Application of Close-Range Sensing in Forestry)

Abstract

Spongy moth (Lymantria dispar dispar) has caused considerable damage to oak trees across eastern deciduous forests. Forest management, post-outbreak, is resource intensive and typically focused on ecosystem restoration or resource loss mitigation. Some local forest managers and government partners are exploring developing technologies such as Unpiloted Aerial Systems (UASs, UAVs, or drones) to enhance their ability to gather reliable fine-scale information. However, with limited resources and the complexity of investing in hardware, software, and technical expertise, the decision to adopt UAS technologies has raised questions on their effectiveness. The objective of this study was to evaluate the abilities of two UAS surveying approaches for classifying the health of individual oak trees following a spongy moth outbreak. Combinations of two UAS multispectral sensors and two Structure from Motion (SfM)-based software are compared. The results indicate that the overall classification accuracy differed by as much as 3.8% between the hardware and software configurations. Additionally, the class-specific accuracy for ’Declining Oaks‘ differed by 5–10% (producer’s and user’s accuracies). The processing experience between open-source and commercial SfM software was also documented and demonstrated a 25-to-75-fold increase in processing duration. These results point out major considerations of time and software accessibility when selecting between hardware and software options for fine-scale forest mapping. Based on these findings, future stakeholders can decide between cost, practicality, technical complexity, and effectiveness.
Keywords: Lymantria dispar dispar; UAS; UAV; forest management; SfM; open-source; forest health; operational costs; temperate forests Lymantria dispar dispar; UAS; UAV; forest management; SfM; open-source; forest health; operational costs; temperate forests

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MDPI and ACS Style

Fraser, B.T.; Robinov, L.; Davidson, W.; O’Connor, S.; Congalton, R.G. A Comparison of Unpiloted Aerial System Hardware and Software for Surveying Fine-Scale Oak Health in Oak–Pine Forests. Forests 2024, 15, 706. https://doi.org/10.3390/f15040706

AMA Style

Fraser BT, Robinov L, Davidson W, O’Connor S, Congalton RG. A Comparison of Unpiloted Aerial System Hardware and Software for Surveying Fine-Scale Oak Health in Oak–Pine Forests. Forests. 2024; 15(4):706. https://doi.org/10.3390/f15040706

Chicago/Turabian Style

Fraser, Benjamin T., Larissa Robinov, William Davidson, Shea O’Connor, and Russell G. Congalton. 2024. "A Comparison of Unpiloted Aerial System Hardware and Software for Surveying Fine-Scale Oak Health in Oak–Pine Forests" Forests 15, no. 4: 706. https://doi.org/10.3390/f15040706

APA Style

Fraser, B. T., Robinov, L., Davidson, W., O’Connor, S., & Congalton, R. G. (2024). A Comparison of Unpiloted Aerial System Hardware and Software for Surveying Fine-Scale Oak Health in Oak–Pine Forests. Forests, 15(4), 706. https://doi.org/10.3390/f15040706

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