Assessing Harvested Sites in a Forested Boreal Mountain Catchment through Global Forest Watch
Abstract
:1. Introduction
Objectives
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- Assess the accuracy of the FCL and FCLE against visual evidence of forest cover loss in aerial images, using a forested catchment representing varying terrain conditions as a case area.
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- Estimate annual harvest in proportion to the productive forest area.
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- Identify possible trends in terms of increasing harvested site size and any changes in levels of activity in different slope categories, based on FCLE.
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- Assess the appropriateness of timber extraction technologies being used in different slope categories, based on the assumption that cable extraction is most suited to the steepest slopes and the use of excavator-assisted forwarding, which implies digging temporary extraction trails on steep slopes, is minimised overall.
2. Materials and Methods
2.1. Case Study Area
2.1.1. Harvesting Methods Used and Anticipated Activity Levels
2.1.2. Terrain
2.2. Productive Forest Area Masking
2.3. Global Forest Watch (GFW) Data and Orthophoto Acquisition
2.4. Methodological Workflow
2.4.1. Enhancing the Forest Cover Loss (FCL) Map
Initial Assessment
Denoising and Aggregation
2.4.2. Accuracy Assessment and Area Estimation
2.4.3. Assessment of Forest Cover Loss Enhanced (FCLE) Geometry
2.4.4. Analysis of Harvesting Operations
Analysis of the Harvesting Systems Used
Analysis of the Harvesting Systems Used in Steep Terrain
3. Results
3.1. Accuracy Assessment and Area Estimation of FCL and FCLE
3.1.1. Accuracy Assessment on pixel level and Area Estimation
3.1.2. Assessment of FCLE Geometry
3.2. Analysis of Harvesting Operations
3.2.1. Trends in Harvested Areas
3.2.2. Analysis of the Harvesting Systems Used
3.2.3. Analysis of the Harvesting Systems Used in Steep Terrain
4. Discussion
4.1. Accuracy Assessment
4.2. Analysis of Harvesting Operations
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Forest Cover Loss in Reference Observations | ||||
---|---|---|---|---|
No | Yes | Total | ||
Forest cover loss in the FCL and FCLE maps | No | 714 (634) | 9 (9) | 723 (643) |
Yes | 1 (1) | 10 (9) | 11 (10) | |
Total | 715 (635) | 19 (18) | 734 (653) | |
Kappa: 0.66 | Commission error forest cover loss: 0.1% | Omission error forest cover loss: 47.6% | Overall accuracy: 98.6% |
Forest cover loss in reference observations | ||||
---|---|---|---|---|
No | Yes | Total | ||
Forest cover loss in the FCL and FCLE maps | No | 714 (634) | 12 (12) | 726 (646) |
Yes | 1 (1) | 10 (9) | 11 (10) | |
Total | 715 (635) | 22 (21) | 737 (656) | |
Kappa: 0.6 | Commission error forest cover loss: <0.1% | Omission error forest cover loss: 54.9% | Overall accuracy: 98.2% |
Variable | Area Error (ha) | Area Error (%) |
---|---|---|
average | 1.9 | 28.9 |
RMSE | 2.9 | 39.7 |
max | 12.3 | 99.2 |
min | −2.4 | −70 |
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Rossi, F.; Breidenbach, J.; Puliti, S.; Astrup, R.; Talbot, B. Assessing Harvested Sites in a Forested Boreal Mountain Catchment through Global Forest Watch. Remote Sens. 2019, 11, 543. https://doi.org/10.3390/rs11050543
Rossi F, Breidenbach J, Puliti S, Astrup R, Talbot B. Assessing Harvested Sites in a Forested Boreal Mountain Catchment through Global Forest Watch. Remote Sensing. 2019; 11(5):543. https://doi.org/10.3390/rs11050543
Chicago/Turabian StyleRossi, Fernando, Johannes Breidenbach, Stefano Puliti, Rasmus Astrup, and Bruce Talbot. 2019. "Assessing Harvested Sites in a Forested Boreal Mountain Catchment through Global Forest Watch" Remote Sensing 11, no. 5: 543. https://doi.org/10.3390/rs11050543