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Estimating aboveground biomass using sentinel-1a and landsat 8 OLI satellite image in pure calabrian pine (pinus brutia ten.) stands (a case study in Anamur forest planning unit)

2022
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Advisor: Doç. Dr. Alkan Günlü

Abstract (EN)

In this study, it was aimed to model the aboveground biomass by using Landsat 8 OLI, Sentinel-1A and some topographic data in pure red pine stands distributed within the boundaries of Anamur Forest Planning Unit, Anamur Forest Management Enterprise, Mersin Regional Directorate of Forestry. A total of 404 sample field data were used in the study. Of these sample field data, 323 (80%) were used in the creation of the models and 81 (20%) in the testing of the models. Above-ground biomass values for each sample area were calculated using the allometric equation in this study. Band brightness, vegetation indices and texture values from Landsat 8 OLI satellite image, reflectance and back scattering values for both polarizations (VH and VV) of Sentinel-1A satellite image, and elevation, slope and aspect values from Digital Elevation Model (DEM) data produced from Alos-Palsar satellite image were calculated for each sample plot. The relationships between aboveground biomass and variables obtained from Landsat 8 OLI, Sentinel-1A and DEM data were modeled by multiple regression analysis. A total of 22 different regression models were developed. The best relationship among the developed models (R_a^2= 0,509 ; Sy.x= 28,39900); Band2, Band8 brightness, WRI, GCI, DVI, ARVI, NDMI vegetation indices, B4_77_ENT, B5_77_M, B6_33_M, B10_55_M, B10_77_SM, B10_99_SM, B11_55_ENT texture values of Landsat 8 OLI satellite image, reflectance values for both polarizations (VH and VV) of Sentinel-1A image with the elevation and aspect as independent variables were obtained

Author

İzzet Güverçin

How to Cite

İzzet Güverçin (Master Thesis). Estimating aboveground biomass using sentinel-1a and landsat 8 OLI satellite image in pure calabrian pine (pinus brutia ten.) stands (a case study in Anamur forest planning unit), 2022, Çankırı Karatekin Üniversitesi.

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