Submitted:
04 August 2025
Posted:
05 August 2025
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Abstract
Keywords:
Introduction
Methods
| Author(s) & Year | Geographic Location | UGI Type Studied | GIS Methods Used | Key Outcomes/Findings | Data Sources |
| Buchavyi et al. (2023) | Dnipro, Ukraine | Urban green space percentage | NDVI, Satellite imagery, Field survey | Accurate mapping of green space boundaries; integration of multi-source data | Landsat, Sentinel, Google Earth, Field surveys |
| Mohammed & Hammo (2023) | Duhok City, Iraq | Urban parks | Satellite image classification, NDVI | Evaluation of park accessibility and green space quality | Satellite imagery, Google Earth, Field surveys |
| Ghasemi et al. (2022) | Tehran District 22, Iran | Accessibility to green spaces | Combined Compromise Solution (CoCoSo), GIS network analysis | Identified accessibility gaps and prioritized green space investments | Administrative records, Demographic data |
| Vîlcea & ǘoșea (2020) | Craiova, Romania | Urban green space accessibility | Network analysis, Service area coverage | Highlighted spatial inequality and accessibility challenges | GIS datasets, Demographic data |
| Mobarak et al. (2022) | Al Baha region, Saudi Arabia | Parks and green corridors | Multi-Criteria Decision Analysis (AHP), GIS suitability mapping | Identified suitable areas for green infrastructure development | Governmental spatial data, Remote sensing |
| Rachid et al. (2024) | Nador City, Morocco | Carbon storage and urban greening | GIS integrated with InVEST model | Spatial prioritization for carbon sequestration and urban greening | Remote sensing, InVEST data |
| Hoeben & Posch (2021) | Graz, Austria | Green roofs | Standardized GIS approaches, Remote sensing | Assessed biodiversity and thermal regulation benefits | Remote sensing data |
| Waheeb et al. (2023) | Taif Province, Saudi Arabia | Green space infrastructure | GIS and Multi-Criteria Decision Analysis (MCDA) | Enhanced sustainable urban planning through prioritized green space allocation | Remote sensing, administrative data |
| Osseni et al. (2023) | Abomey-Calavi District, Benin | Urban green spaces | GIS-based multi-criteria Analysis | Selected suitable sites considering social, economic, environmental factors | Open-source GIS data, Census data |
| Zhang et al. (2024) | Suzhou, China | Visual assessment of historic green landmarks | GIS spatial analysis, Survey data | Integrated subjective and objective assessment of urban green aesthetics | GIS layers, Perception surveys |
Thematic Quantitative Analysis and Results
| GIS Data Sources | Frequency of Use (No. of Studies) | Percentage (%) | Description/Examples |
| Remote Sensing Imagery (e.g., Landsat, Sentinel, QuickBird) | 15 | 75% | Multispectral/hyperspectral data for vegetation mapping and land cover classification |
| NDVI and Vegetation Indices | 12 | 60% | Normalized Difference Vegetation Index to quantify green cover density |
| Field Surveys / Ground Truth | 8 | 40% | Used for validation of remote sensing data and accuracy assessment |
| LiDAR | 3 | 15% | High-resolution elevation data for 3D structure and canopy analysis |
| Crowdsourced / Social Data | 4 | 20% | Public participation GIS (PPGIS), perception surveys, and social media data |
| Governmental Administrative Data | 10 | 50% | Demographic, land use, and cadastral datasets for spatial context |
Discussion

Conclusions
References
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