Araştırma Makalesi

Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles

Cilt: 5 Sayı: 1 4 Haziran 2026
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Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles

Öz

Nowadays, Unmanned Aerial Vehicles (UAVs) have found extensive applications across various innovative sectors. Within the context of forestry, these systems are utilized to determine key metrics such as tree height, diameter at breast height (DBH), and crown dimensions. This research develops a structured workflow specifically designed for Pinus nigra, focusing on estimating individual tree heights and establishing their mathematical relationship with DBH. To ensure the robustness of the proposed model, UAV-based data collection was complemented by 394 comprehensive field measurements. The resulting equation allows for the derivation of both height and DBH without further manual field labor. Validation results showed a mean error of ±70 cm for height and ±1.5 cm for DBH, representing approximately 8.2% and 7.9% of the respective mean values. This methodology offers a cost-effective and time-efficient alternative for developing accurate forest inventories and highlights the accuracy of this method and compares favorably to more expensive methods.

Anahtar Kelimeler

Destekleyen Kurum

Eskişehir Teknik Üniversitesi Bilimsel Araştırma Projeleri Birimi

Proje Numarası

20DRP032

Etik Beyan

Bu çalışma etik standartlara uygun olarak yürütülmüştür; insan veya hayvan denek içermediği için etik kurul onayı gerekmemektedir.

Teşekkür

Yazar, yer ölçümü oturumlarındaki yardımlarından dolayı Fırat Yelkuvan'a (Sivas Cumhuriyet Üniversitesi, Bilgisayar Mühendisliği Bölümü) ve ayrıca Sivas Orman İşletme Müdürlüğü'nün deneyimli ve kalifiye çalışanlarına teşekkürlerini sunar. Bu çalışma, Eskişehir Teknik Üniversitesi Bilimsel Araştırma Projeleri Birimi tarafından 'Uzaktan Algılama Teknikleri ile Orman Biyokütlesi Tahmini' başlıklı ve 20DRP032 numaralı proje kapsamında finansal olarak desteklenmiştir.

Kaynakça

  1. Aasen H, Burkart A, Bolten A, Bareth G. 2015. Generating 3D hyperspectral information with lightweight UAV snapshot cameras for vegetation monitoring: From camera calibration to quality assurance, ISPRS Journal of Photogrammetry and Remote Sensing, 108: 245–259. doi: 10.1016/j.isprsjprs.2015.08.002
  2. ArcGIS Pro. n.d. Minus (Spatial Analyst), ESRI. https://pro.arcgis.com/en/pro-app/2.8/tool-reference/spatial-analyst/minus.html (Accessed 21 February 2026)
  3. Becker-Reshef I, Vermote E, Lindeman M, Justice C. 2010. A generalized regression-based model for forecasting winter wheat yields in Kansas and Ukraine using MODIS data, Remote Sensing of Environment, 114(6): 1312–1323. doi: 10.1016/j.rse.2010.01.010
  4. Bendig J, Yu K, Aasen H, Bolten A, Bennertz S, Broscheit J, ... Bareth G. 2015. Combining UAV-based plant height from crop surface models, visible, and near infrared vegetation indices for biomass monitoring in barley, International Journal of Applied Earth Observation and Geoinformation, 39: 79–87. doi: 10.1016/j.jag.2015.02.012
  5. Birdal AC, Avdan U, Türk T. 2017. Estimating tree heights with images from an unmanned aerial vehicle, Geomatics, Natural Hazards and Risk, 8(2): 1144–1156. doi: 10.1080/19475705.2017.1300608
  6. Birdal, A.C. (2022). Pinus Nigra Biomass Estimation with Unmanned Aerial Vehicles (An Example of Sivas Cumhuriyet University Campus) (PhD Dissertation). Eskişehir Technical University, Eskişehir, Türkiye.
  7. Candiago S, Remondino F, De Giglio M, Dubbini M, Gattelli M. 2015. Evaluating multispectral images and vegetation indices for precision farming applications from UAV images, Remote Sensing, 7(4): 4026–4047. doi: 10.3390/rs70404026
  8. CHCNAV. n.d. CHCNAV i80 GNSS receiver is available now. https://chcnav.com/about-us/news-detail/chcnav-i80-gnss-receiver-is-available-now (Accessed 21 February 2026)

Ayrıntılar

Birincil Dil

İngilizce

Konular

Yazılım Mühendisliği (Diğer), Çevre Mühendisliği (Diğer)

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

4 Haziran 2026

Gönderilme Tarihi

3 Nisan 2026

Kabul Tarihi

5 Mayıs 2026

Yayımlandığı Sayı

Yıl 2026 Cilt: 5 Sayı: 1

Kaynak Göster

APA
Birdal, A. C. (2026). Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles. Teknik Meslek Yüksekokulları Akademik Araştırma Dergisi, 5(1), 103-112. https://izlik.org/JA54KS49MG
AMA
1.Birdal AC. Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles. ARTES. 2026;5(1):103-112. https://izlik.org/JA54KS49MG
Chicago
Birdal, Anıl Can. 2026. “Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles”. Teknik Meslek Yüksekokulları Akademik Araştırma Dergisi 5 (1): 103-12. https://izlik.org/JA54KS49MG.
EndNote
Birdal AC (01 Haziran 2026) Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles. Teknik Meslek Yüksekokulları Akademik Araştırma Dergisi 5 1 103–112.
IEEE
[1]A. C. Birdal, “Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles”, ARTES, c. 5, sy 1, ss. 103–112, Haz. 2026, [çevrimiçi]. Erişim adresi: https://izlik.org/JA54KS49MG
ISNAD
Birdal, Anıl Can. “Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles”. Teknik Meslek Yüksekokulları Akademik Araştırma Dergisi 5/1 (01 Haziran 2026): 103-112. https://izlik.org/JA54KS49MG.
JAMA
1.Birdal AC. Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles. ARTES. 2026;5:103–112.
MLA
Birdal, Anıl Can. “Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles”. Teknik Meslek Yüksekokulları Akademik Araştırma Dergisi, c. 5, sy 1, Haziran 2026, ss. 103-12, https://izlik.org/JA54KS49MG.
Vancouver
1.Anıl Can Birdal. Estimating Tree Metrics and Relationships Between Them with Unmanned Aerial Vehicles. ARTES [Internet]. 01 Haziran 2026;5(1):103-12. Erişim adresi: https://izlik.org/JA54KS49MG

ISSN: 2822-5880



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