Urban Ecological Drivers of CO₂ Intensity in Arid Cities: A Multi-Scale, VHR-based Analysis of Baghdad and Erbil
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Abstract
Urban areas in arid zones face distinct emissions challenges from rapid growth, high cooling demand and sparse vegetation cover, which limits the natural absorption of CO₂ and strains urban ecology. Using an integration of VHR satellite imagery with local socioeconomic and infrastructural data, this study presents a framework that measures carbon dioxide emission intensities across the Zayouna/Mansour district (Baghdad) and Erbil Municipality Center (Erbil), two major Iraqi cities situated in an arid environment. A combined bottom-up and top-down framework with Random Forest regression was used to identify localized emission hotspots and the ecological determinants of CO₂ emissions, drawing on Sentinel-2-derived NDVI, Landsat 8/9-derived LST, VIIRS-derived night light intensity, WorldView/Pléiades-derived building density, OpenStreetMap road density and surface albedo at 250 × 250 m grid resolution over 2020–2024. Results reveal spatially concentrated emission hotspots near major road arteries and high-density residential and commercial zones, while green areas show lower emission intensities, confirming vegetation's role as a CO₂ sink in urban areas. The spatial emission model performs well in estimating each city's footprint (R² = 0.78, RMSE = 0.008 kg CO₂/m²). Panel data and fixed-effect models identify traffic density as the primary driver of CO₂ emissions in Baghdad (coefficient = 0.040, p < 0.001, R² = 0.85), while energy consumption dominates in Erbil (coefficient = 0.028, p < 0.001, R² = 0.80). Vegetation cover (NDVI) is negatively related to emission intensity in both cities (Baghdad: −0.095, Erbil: −0.080; both p < 0.001). These findings offer actionable guidance for climate-smart urban planning and customized emission-reduction policies in data-scarce arid cities, and the methodology is transferable to other data-poor urban areas developing smart city strategies.
