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Article

Structural Change in Romanian Land Use and Land Cover (1990–2018): A Multi-Index Analysis Integrating Kolmogorov Complexity, Fractal Analysis, and GLCM Texture Measures

by
Ion Andronache
1,2,3,4 and
Ana-Maria Ciobotaru
5,6,*
1
Advanced Digital Archaeological-Historical Network, Alma Mater Europaea (AMEU), ECM-Slovenska Ulica No. 17, 2000 Maribor, Slovenia
2
“Vasile Alecsandri” Secondary School, Aleea Științei No. 5, 810465 Braila, Romania
3
“Alexandru Ioan Cuza” Secondary School, Ghioceilor Street No. 1, 810217 Braila, Romania
4
“Gheorghe Munteanu Murgoci” National College, 4 Independentei Boulevard, 810019 Braila, Romania
5
Faculty of Geography–Focsani Branch, University of Bucharest, 71 Republicii Street, 620047 Focsani, Romania
6
“Gheorghe Balș” Technical College, 107 Republicii Street, 625100 Adjud, Romania
*
Author to whom correspondence should be addressed.
Geomatics 2025, 5(4), 78; https://doi.org/10.3390/geomatics5040078
Submission received: 5 October 2025 / Revised: 27 November 2025 / Accepted: 1 December 2025 / Published: 12 December 2025

Abstract

Monitoring land use and land cover (LULC) transformations is essential for understanding socio-ecological dynamics. This study assesses structural shifts in Romania’s landscapes between 1990 and 2018 by integrating algorithmic complexity, fractal analysis, and Grey-Level Co-occurrence Matrix (GLCM) texture analysis. Multi-year maps were used to compute Kolmogorov complexity, fractal measures, and 15 GLCM metrics. The measures were compiled into a unified matrix, and temporal trajectories were explored with principal component analysis and k-means clustering to identify inflection points. Informational complexity and Higuchi 2D decline over time, while homogeneity and angular second moment rise, indicating greater local uniformity. A structural transition around 2006 separates an early heterogeneous regime from a more ordered state; 2012 appears as a turning point when several indices reach extreme values. Strong correlations between fractal and texture measures imply that geometric and radiometric complexity co-evolve, whereas large-scale fractal dimensions remain nearly stable. The multi-index approach provides a replicable framework for identifying critical transitions in LULC. It can support landscape monitoring, and future work should integrate finer temporal data and socio-economic drivers.
Keywords: algorithmic complexity; fractal dimension; GLCM texture analysis; Land Use Land Cover (LULC); landscape structure; spatial complexity; structural transition algorithmic complexity; fractal dimension; GLCM texture analysis; Land Use Land Cover (LULC); landscape structure; spatial complexity; structural transition

Share and Cite

MDPI and ACS Style

Andronache, I.; Ciobotaru, A.-M. Structural Change in Romanian Land Use and Land Cover (1990–2018): A Multi-Index Analysis Integrating Kolmogorov Complexity, Fractal Analysis, and GLCM Texture Measures. Geomatics 2025, 5, 78. https://doi.org/10.3390/geomatics5040078

AMA Style

Andronache I, Ciobotaru A-M. Structural Change in Romanian Land Use and Land Cover (1990–2018): A Multi-Index Analysis Integrating Kolmogorov Complexity, Fractal Analysis, and GLCM Texture Measures. Geomatics. 2025; 5(4):78. https://doi.org/10.3390/geomatics5040078

Chicago/Turabian Style

Andronache, Ion, and Ana-Maria Ciobotaru. 2025. "Structural Change in Romanian Land Use and Land Cover (1990–2018): A Multi-Index Analysis Integrating Kolmogorov Complexity, Fractal Analysis, and GLCM Texture Measures" Geomatics 5, no. 4: 78. https://doi.org/10.3390/geomatics5040078

APA Style

Andronache, I., & Ciobotaru, A.-M. (2025). Structural Change in Romanian Land Use and Land Cover (1990–2018): A Multi-Index Analysis Integrating Kolmogorov Complexity, Fractal Analysis, and GLCM Texture Measures. Geomatics, 5(4), 78. https://doi.org/10.3390/geomatics5040078

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