TROPICAL URBAN FORESTS AS GREEN INFRASTRUCTURE FOR URBAN RESILIENCE

Sahrani Somadayo (1), Mariam Coulibaly (2), Tomo Zupan (3)
(1) Universitas Muhammadiyah Maluku Utara, Indonesia,
(2) University of Mali, Mali,
(3) University of Nova Gorica, Slovenia

Abstract

As urban areas continue to expand, the challenges posed by climate change—such as flooding, heat islands, and pollution—demand innovative solutions for enhancing urban resilience. Tropical urban forests, as a form of green infrastructure, offer significant benefits in mitigating these issues while improving the quality of life for urban residents. This study explores the role of tropical urban forests in strengthening urban resilience, focusing on their ecological, social, and economic contributions. The research utilizes a mixed-methods approach, combining environmental data collection (air quality, temperature regulation, stormwater management) with surveys and interviews from urban planners, policymakers, and residents. Findings reveal that tropical urban forests help reduce air pollution by up to 12%, lower surrounding temperatures by 2.5°C, and absorb up to 30% of rainfall, significantly mitigating urban flooding. Socially, residents near urban forests reported improved mental health, increased physical activity, and stronger community bonds. This study concludes that tropical urban forests are vital in enhancing urban resilience by providing essential ecosystem services and promoting social well-being. Integrating these green spaces into urban planning policies is crucial for creating sustainable and resilient cities.


 

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References

Abubakar, I. R., Onyebueke, V. U., Lawanson, T., Barau, A. S., & Bununu, Y. A. (2025). Urban planning strategies for addressing climate change in Lagos megacity, Nigeria. Land Use Policy, 153, 107524. https://doi.org/10.1016/j.landusepol.2025.107524

Alberti, M. A., & Pimentel da Silva, L. (2026). Chapter 11—Impacts of urban green infrastructure on human well-being and health. In N. Singh, J. M. Chodkowska-Miszczuk, P. Singh, & P. Verma (Eds.), Sustainable Urban Environments for Human Health (pp. 281–313). Academic Press. https://doi.org/10.1016/B978-0-443-40407-8.00012-6

Anderson, C. C., Olafsson, A. S., Romelli, C., & Albert, C. (2025). Assessing the equity of urban public green space visitation for cooling off from extreme heat: A public participation GIS (PPGIS) survey. Urban Forestry & Urban Greening, 112, 128989. https://doi.org/10.1016/j.ufug.2025.128989

Asibey, M. O., Awudu Haruna, H., Appau, P. K., & Yeboah, V. (2025). Empowering communities, protecting ecosystems: Climate resilience of urban socio-ecological systems. Journal of Environmental Management, 375, 124376. https://doi.org/10.1016/j.jenvman.2025.124376

Datta, U., & Raman, R. (2026). Chapter 9—Climate-responsive urban design: Integrating nature-based solutions in smart cities. In U. Chatterjee & L. Sivaramakrishnan (Eds.), Future Smart Cities (pp. 193–224). Elsevier. https://doi.org/10.1016/B978-0-443-33667-6.00003-3

Debie, E. (2025). Synergistic integration of urban agriculture and green infrastructure to enhance urban sustainability in Bahir Dar, Ethiopia. City and Environment Interactions, 27, 100216. https://doi.org/10.1016/j.cacint.2025.100216

Fariq, A., Nizam, Z., & Idris, H. (2024). Biodiversity Conservation in the Anthropocene: Challenges and Solutions. Selvicoltura Asean, 1(3), 137–146. https://doi.org/10.70177/jsa.v1i3.1660

Gao, P., Xiao, S., & Mustapa, F. D. (2025). A comprehensive review of urban agriculture in a changing climate: Technological innovations and policy frameworks. Climate Risk Management, 49, 100732. https://doi.org/10.1016/j.crm.2025.100732

Grilo, F., McPhearson, T., Aleixo, C., Santos-Reis, M., & Branquinho, C. (2025). Urban trees through a functional traits’ lens: Exploring the interplay between tree functional groups and social-ecological factors. Urban Forestry & Urban Greening, 107, 128749. https://doi.org/10.1016/j.ufug.2025.128749

Horanyi, A. M., & Thorn, J. P. R. (2025). Spatial distribution, determinants, and implementation barriers of green-blue-grey infrastructure-based urban heat island mitigation strategies in Budapest, Hungary. Urban Forestry & Urban Greening, 113, 129092. https://doi.org/10.1016/j.ufug.2025.129092

Huang, B., Qi, J., Pathak, M., Sharifi, A., Cheshmehzangi, A., Attia, S., Matzarakis, A., Ghaffarianhoseini, A., Yun, G. Y., Darko, A., Liu, X., & He, B.-J. (2025). Climate-driven transformations: A framework for the sustainable urban landscape system to enhance heat resilience. Sustainable Cities and Society, 131, 106684. https://doi.org/10.1016/j.scs.2025.106684

Huynh, L. T. M., Su, J., & Gasparatos, A. (2025). Differentiated trajectories of ecosystem-based adaptation for urban coastal defence in the Asian-Pacific region: A biodiversity–climate–society nexus perspective. Ocean & Coastal Management, 270, 107799. https://doi.org/10.1016/j.ocecoaman.2025.107799

Kifayatullah, S., Ul Haq, M. Z., Saqib, Z., & Khan, M. I. (2026). Chapter 11—Geospatial monitoring of urban green space degradation: Implications for ecosystem services and sustainable cities. In A. Tariq, U. Iqbal, & A. Hysa (Eds.), Utilizing Earth Observation Data in Reaching Sustainable Development Goals (pp. 243–271). Elsevier. https://doi.org/10.1016/B978-0-443-30204-6.00020-6

Kisvarga, S., Horotán, K., Neményi, A., Táborská, J., Istvánfi, Z., & Orlóci, L. (2025). A systematic review of native–invasive pollinator competition in urban green space. Environmental Challenges, 20, 101219. https://doi.org/10.1016/j.envc.2025.101219

Koh, M., Teo, R., & Tan, E. (2024). Deforestation and Forest Degradation: Drivers and Impacts on Biodiversity in Southeast Asia. Selvicoltura Asean, 1(4), 198–207. https://doi.org/10.70177/jsa.v1i4.1666

Kokkoris, I. P., Skandalos, N., & Karamanis, D. (2025). An urban integration approach of green roofs and rooftop photovoltaics towards carbon neutrality and biodiversity enhancement. Energy and Buildings, 349, 116585. https://doi.org/10.1016/j.enbuild.2025.116585

Liu, L., Lan, T., Wei, H., Shen, Y., & Yang, M. (2026). Evaluating the climate change adaptation of urban communities in Beijing, China. Habitat International, 168, 103706. https://doi.org/10.1016/j.habitatint.2025.103706

Liu, S., Feng, M., Xie, L., & Chan, F. K. S. (2025). Challenges and solutions for achieving carbon neutrality through urban green infrastructure in China’s future cities. Nature-Based Solutions, 8, 100263. https://doi.org/10.1016/j.nbsj.2025.100263

Liu, X., Zheng, L., & Wang, Y. (2025). Revealing the roles of climate, urban form, and vegetation greening in shaping the land surface temperature of urban agglomerations in the Yangtze River Economic Belt of China. Journal of Environmental Management, 377, 124602. https://doi.org/10.1016/j.jenvman.2025.124602

Liu, Z., Cheng, K. Y., Amati, M., Jim, C. Y., Hua, C., Yokohari, M., Cameron, R., & Ng, E. (2025). Creating a thermally comfortable city through urban green infrastructure: An international review of greening policies. Urban Forestry & Urban Greening, 105, 128713. https://doi.org/10.1016/j.ufug.2025.128713

Mandal, M., & Ramu, M. (2024). A Holistic Framework for Planning and Managing Tropical Forest Resources. Selvicoltura Asean, 1(2), 66–79. https://doi.org/10.55849/selvicoltura.v1i1.172

Marchionni, V., Szota, C., Farrell, C., Livesley, S. J., Nice, K. A., Prodanovic, V., Thompson, S., Cheung, P. K., Nouri, H., Lipson, M., & Winfrey, B. (2026). Urban greening and water strategies are key to adapt Australian cities to climate change and urban growth. Journal of Hydrology, 666, 134716. https://doi.org/10.1016/j.jhydrol.2025.134716

Marquez-Torres, A., Kumar, S., Aznarez, C., & Jenerette, G. D. (2025). Assessing the cooling potential of green and blue infrastructure from twelve US cities with contrasting climate conditions. Urban Forestry & Urban Greening, 104, 128660. https://doi.org/10.1016/j.ufug.2024.128660

Masoudi, M., Ferguson, J., Khan, A., Liu, G., Skoyles, A., & Drescher, M. (2025). Synthesizing the evidence on green and blue infrastructure for urban temperature mitigation in Canada. Environmental Reviews, 33, 1–17. https://doi.org/10.1139/er-2025-0104

Molina-Pardo, J. L., Giménez-Luque, E., Gisbert-Gallego, J., & Guirado, E. (2025). Resistance of urban trees to drought shaped by family and site in a semi-arid city. Urban Forestry & Urban Greening, 114, 129167. https://doi.org/10.1016/j.ufug.2025.129167

Nasution, R. A. R., Rakuasa, H., Turi, F., Hidayatullah, M., & Latue, P. C. (2024). Analysis of Average Land Surface Temperature of Java Island, Indonesia in 2024 using reduceRegions in Google Earth Engine. Selvicoltura Asean, 1(2), 80–95. https://doi.org/10.70177/jsa.v1i2.1182

Özer, E., & Tansel, B. (2025). Climate stressors and adaptation strategies using green stormwater infrastructure (GSI) systems in urban areas: Improving design and functionality. City and Environment Interactions, 25, 100185. https://doi.org/10.1016/j.cacint.2024.100185

Paudel, S., States, S. L., & Mainali, K. (2025). Urban greening with biodiverse perennial meadows improves ecosystem services in human dominated landscapes. Urban Forestry & Urban Greening, 113, 129014. https://doi.org/10.1016/j.ufug.2025.129014

Priya, U. K., & Senthil, R. (2025). Enhancing sustainable urban planning to mitigate urban heat island effects through residential greening. Sustainable Cities and Society, 129, 106512. https://doi.org/10.1016/j.scs.2025.106512

Rao, P., Torreggiani, D., Tassinari, P., Rötzer, T., Pauleit, S., & Rahman, M. A. (2025). Do urban green spaces cool cities differently across latitudes? Spatial variability and climatic drivers of vegetation-induced cooling. Sustainable Cities and Society, 130, 106513. https://doi.org/10.1016/j.scs.2025.106513

Seguel-Medina, C., Nijhuis, S., & Sepulveda-Carmona, D. (2025). Towards a landscape-based approach for planning and design in complex urban geomorphologies: A case study of Valparaíso, Chile. Landscape Architecture and Sustainability, 1, 100003. https://doi.org/10.1016/j.las.2025.100003

Sheng, H., Li, X., Aguila, L. C. R., Haider, F. U., Zhou, S.-Y.-D., Wu, G., Meng, C., Deng, Y., & Liu, J. (2026). Comparison of soil enzyme activity and stoichiometry between urban park and forest in the Pearl River Delta region, China. Applied Soil Ecology, 217, 106584. https://doi.org/10.1016/j.apsoil.2025.106584

Skandalos, N., & Karamanis, D. (2025). Decarbonizing operational emissions in urban neighborhoods with the integration of rooftop photovoltaics and green infrastructure under current and future climate conditions. Energy and Buildings, 329, 115306. https://doi.org/10.1016/j.enbuild.2025.115306

Tun, K. Z., Pramanik, M., Mallick, S. K., Chakrabortty, R., Halder, B., Moharir, K. N., Pande, C. B., & Zhran, M. (2025). Cooling the cities: A comprehensive review of urban heat island mitigation strategies in Southeast Asia. Human Settlements and Sustainability, 1(2), 91–102. https://doi.org/10.1016/j.hssust.2025.05.002

Wei, S., Xiang, Y., & Li, Z. (2024). Balancing Conservation and Development: A Policy Framework for Sustainable Forest Management. Selvicoltura Asean, 1(4), 187–197. https://doi.org/10.70177/jsa.v1i4.1665

Authors

Sahrani Somadayo
sahranisomadayo@gmail.com (Primary Contact)
Mariam Coulibaly
Tomo Zupan
Somadayo, S., Coulibaly, M. ., & Zupan, T. . (2026). TROPICAL URBAN FORESTS AS GREEN INFRASTRUCTURE FOR URBAN RESILIENCE. Journal of Selvicoltura Asean, 3(1), 1–11. https://doi.org/10.70177/jsa.v3i1.3173

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