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Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables

Alvarez, Maria Paula et al · Elsevier · 2025

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The ecological condition of forest ecosystems is degraded. Limited prior research in vegetationhas focused on monitoring ecological condition levels in dry forest at fine scale. We proposeda novel approach to obtain accurate indicators of the ecological condition of the ChacoSerrano forest (Córdoba, Argentina) by estimating forest structure variables (canopy cover (),diameter breast height (_), number of woody individuals ( ) and two first axesof a principal component analysis (1 and 2)) as a measure of forest degradation. Toachieve this, first the correlation with two complementary groups of remote sensing deriveddata (texture metrics over Normalised difference vegetation index and SAR-derived data) wasexplored. Then, General linear models (GLM) were constructed using the most correlatedremote sensing derived variables with forest structure variables as predictor variables. Thebest estimation was obtained to (2=0.58, rmse=14,5%), followed by (2=0.37,rmse=156.6) and (2=0.22, rmse=14.6), with an spatial arrangement consistent with fieldobservations. Moreover, estimation was more accurate than those at regional and globalscale, and highlights the importance of developing local models in areas that exhibit highecological, geological, and human heterogeneity. In addition, other forest variables could also beevaluated, like floristic composition or others associated with functioning. Results offer valuableinsights for developing management strategies suitable for each condition, and for future studiesregarding the relationship of the mentioned condition and associated natural and anthropicfactors. Fil: Alvarez, Maria Paula. Comision Nacional de Actividades Espaciales. Instituto de Altos Estudios Espaciales "Mario Gulich"; Argentina Fil: Bellis, Laura Marisa. Comision Nacional de Actividades Espaciales. Instituto de Altos Estudios Espaciales "Mario Gulich"; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Córdoba; Argentina

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APA 7

Alvarez, M. P. E. A. (2025). Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables. http://hdl.handle.net/11336/271871

MLA

Alvarez, Maria Paula et al. "Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables." 2025. http://hdl.handle.net/11336/271871.

Chicago

Alvarez, Maria Paula et al. 2025. "Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables.". http://hdl.handle.net/11336/271871.

Harvard

Alvarez, M. P. E. A. 2025, Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables, Elsevier, available at: http://hdl.handle.net/11336/271871 [Accessed 8 Aug. 2026].

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Titel
Ecological condition indicators for dry forest: Forest structure variables estimation with NDVI texture metrics and SAR variables
Autor / Mitwirkende
Alvarez, Maria Paula et al
Verlag
Elsevier
Erscheinungsjahr
2025
ISSN
2352-9385
ISSN
2352-9385
Sprache
Inglés

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