Livability: The Direction to Mitigating Urban Heat Islands’ Effect, Achieving Healthy, Sustainable, and Resilient Cities, and the Coverage

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Livable Cities

Abstract

This chapter presents a prologue and background of the book and the reason why it focuses on urban heat island effect (UHIE) mitigation in cities, especially amid energy and food security, and climate change (CC) and COVID crises. It also provides a review on the challenges facing cities globally. Also, the chapter concentrates on understanding what is livability, urban heat islands (UHIs), and their definitions and causes, as well as the significance of mitigating UHIE, including citizen attitudes, connectivity to nature, and learning through neighborhood’s access to clean transport and green spaces post-COVID-19. In addition, the chapter highlights the needs for reducing UHIE in megacities and understands the approaches to attain livability, sustainable development with emphasis on urban biomimicry through ecosystem service-based solutions to transform gray infrastructure to green infrastructure (GI) and blue infrastructure (BI) to lower the cooling load needed as a result of UHI in the built environments, as well as enhance health and well-being to attain the sustainable development goals (SDGs). Moreover, the chapter attempts to answer the thoughts about how can urban green coverage (UGC) and wetlands aid in develo** urban spaces and creating green and healthier cities? It also portrays the role of GI and BI in CC adaptation. Furthermore, this chapter presents models and ranking of the best livable cities globally. At the end, it provides the readers with a full comprehension of the structure book, which is articulated over two main parts and encompasses seven chapters inclusively. Finally, the chapter depicts a final note from the lead author about UHIE and its role in creating livable and sustainable cities.

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References

  1. The United Nations (2022) Guterres urges cities to embrace ‘generational opportunity’ for climate action, sustainable development. The United Nations News – Climate and Environment. https://news.un.org/en/story/2021/04/1089942. Accessed 27 June 2023

    Google Scholar 

  2. United Nations (2023) For a livable climate: net-zero commitments must be backed by credible action. United Nations Climate Action. https://www.un.org/en/climatechange/net-zero-coalition. Accessed 27 June 2023

    Google Scholar 

  3. IEA (2022) World energy outlook 2022. IEA, Paris. https://www.iea.org/reports/world-energy-outlook-2022, License: CC BY 4.0 (report); CC BY NC SA 4.0 (Annex A)

    Google Scholar 

  4. The Intergovernmental Panel on Climate Change (IPCC) (2023) The evidence is clear: the time for action is now. We can halve emissions by 2030. https://www.ipcc.ch/2022/04/04/ipcc-ar6-wgiii-pressrelease/. Accessed 27 June 2023

  5. European Central Bank (n.d.) Social development for sustainable development. The European Central Bank – EUROSYSTEM. https://www.ecb.europa.eu/pub/economic-bulletin/focus/2022/html/ecb.ebbox202204_01~68ef3c3dc6.en.html. Accessed 28 June 2023

  6. World Health Organization WHO (2020) Impact of COVID-19 on people’s livelihoods, their health, and our food systems. WHO. https://www.who.int/news/item/13-10-2020-impact-of-covid-19-on-people’s-livelihoods-their-health-and-our-food-systems. Accessed 27 June 2023

    Google Scholar 

  7. World Health Organization WHO (2021) The impact of COVID-19 on global health goals. WHO. https://www.who.int/news-room/spotlight/the-impact-of-covid-19-on-global-health-goals. Accessed 27 June 2023

    Google Scholar 

  8. The United Nations (2023) Causes and effects of climate change. The United Nation – Climate Action. https://www.un.org/en/climatechange/science/causes-effects-climate-change. Accessed 27 June 2023

    Google Scholar 

  9. Tanguay GA, Rajaonson J, Lefebvre J-F, Lanoie P (2009) Measuring the sustainability of cities: a survey-based analysis of the use of local indicators. Center for Interuniversity Research and Analysis of Organizations (CIRANO) (Scientific Publications No. 2009s, Montreal. https://ssrn.com/abstract=1336649. Accessed 28 Aug 2023

    Google Scholar 

  10. The United Nations (2023) Social development for sustainable development. The United Nations – Department of Economic and Social Affairs Social Inclusion. https://www.un.org/development/desa/dspd/2030agenda-sdgs.html. Accessed 27 June 2023

    Google Scholar 

  11. The United Nations (n.d.) Sustainable development goals: 17 goals to transform our world. The United Nations – Exhibits. https://www.un.org/en/exhibits/page/sdgs-17-goals-transform-world. Accessed 28 June 2023

  12. Li Y, Schubert S, Kropp JP et al (2020) On the influence of density and morphology on the Urban Heat Island intensity. Nat Commun 11:2647. https://doi.org/10.1038/s41467-020-16461-9

    Article  CAS  Google Scholar 

  13. The United Nations (2021) Infrastructure for climate action. The United Nations Environment Programme (UNEP). https://www.unep.org/resources/report/infrastructure-climate-action. Accessed 28 June 2023

    Google Scholar 

  14. IUCN (2019) Building resilience green and blue infrastructure. The United Nations Environment Programme (UNEP). https://iucn.org/news/europe/201911/building-resilience-green-and-blue-infrastructure. Accessed 28 June 2023

    Google Scholar 

  15. Almaaitah T, Appleby M, Rosenblat H, Drake J, Joksimovic D (2021) The-potential-of-Blue-Green-infrastructure as a Climate Change Strategy. Blue-Green Syst 3(1):223–248. https://doi.org/10.2166/bgs.2021.016

    Article  Google Scholar 

  16. University of California Regent (Berkeley), Understanding Global Change (2023) Absorption / reflection of sunlight. Understanding Global Change. https://ugc.berkeley.edu/background-content/reflection-absorption-sunlight/. Accessed 28 June 2023

    Google Scholar 

  17. Pearce F (2018) Urban heat: can white roofs help cool world’s warming cities? Yale Environment 360. https://e360.yale.edu/features/urban-heat-can-white-roofs-help-cool-the-worlds-warming-cities/. Accessed 28 June 2023

  18. Onnom W, Tripathi N, Nitivattananon V, Ninsawat S (2018) Development of a Liveable City Index (LCI) using multi criteria geospatial modelling for medium class cities in develo** countries. Sustainability 10:520. https://doi.org/10.3390/su10020520

    Article  Google Scholar 

  19. Cities and urbanization: we must address these 3 factors, to make our cities more vibrant and ‘liveable’ (2019) World Economic Forum. https://www.weforum.org/agenda/2019/09/this-is-what-makes-a-city-liveable/. Accessed 28 June 2023

  20. Higgs C, Badland H, Simons K, Knibbs L, Giles-Corti B (2019) The Urban Liveability Index: develo** a policy-relevant urban liveability composite measure and evaluating associations with transport mode choice. Int J Health Geogr 18. https://doi.org/10.1186/s12942-019-0178-8

  21. RIMT (2018) (rep.) Creating liveable cities in Australia July 2018: a scorecard and priority recommendations for Sydney, Melbourne, pp 1–12. https://cur.org.au/cms/wp-content/uploads/2018/08/sydney-city-score-cards_final.pdf

  22. Lamond J, Everett G (2019) Sustainable Blue-Green Infrastructure: a social practice approach to understanding community preferences and stewardship, Landsc Urban Plan 191:103639, 1–10. https://doi.org/10.1016/j.landurbplan.2019.103639

  23. Helen LM, Heaviside C, Cai X, Phalkey R (2021) The winter urban heat island: impacts on cold-related mortality in a highly urbanized European region for present and future climate. Environ Int 154:106530. https://doi.org/10.1016/j.envint.2021.106530

    Article  Google Scholar 

  24. BBC (2021) Greece wildfires spread, causing mass evacuations. BBC News – Climate Change. https://www.bbc.com/news/world-europe-58124129. Accessed 27 June 2023

    Google Scholar 

  25. Singh M (2020) California’s wildfires explained: how did they start – and is this normal? The Guardian. https://www.theguardian.com/us-news/2020/aug/21/california-wildfires-explained-q-and-a-weather-smoke. Accessed 27 June 2023

  26. Jones S (2022) “This is a warning”: Spain reels from devastating blazes and heatwaves. The Guardian. https://www.theguardian.com/world/2022/jul/22/spain-heatwave-rebuild-wildfires-temperatures. Accessed 27 June 2023

  27. Edwards T (2022) London wildfires: Crews say they experienced absolute hell. BBC News. https://www.bbc.com/news/uk-england-london-62236018. Accessed 27 June 2023

  28. UNDP (2023) From cacophony to harmony. United Nations Development Programme, UNDP. https://www.undp.org/from-cacophony-to-harmony?gclid=EAIaIQobChMI3vOsvbX_wIVBezVCh268AbxEAAYASAAEgLAoPD_BwE. Accessed 27 June 2023

  29. Runnalls KE, Oke TR (2000) Dynamics and controls of the near-surface heat island of Vancouver, British Columbia. Phys Geogr 21:283–304

    Article  Google Scholar 

  30. Green Infrastructure – The Conservation Fund (n.d.) What is green infrastructure? Green Infrastructure. https://greeninfrastructure.net/who-we-are/what-is-green-infrastructure/. Accessed 27 June 2023

  31. What is blue/green infrastructure? What is blue/green infrastructure? | Green 4 Grey (2023). https://green4grey.be/en/green-blue-infrastructure/what. Accessed 27 June 2023

  32. European Commission (2023) Supporting policy with scientific evidence. Green and Blue Infrastructures | Knowledge for Policy. https://knowledge4policy.ec.europa.eu/glossary-item/green-blue-infrastructures_en. Accessed 27 June 2023

    Google Scholar 

  33. Oke TR (1982) The energetic basis of the urban heat Island. Q J R Meteorol Soc 108:1–24

    Google Scholar 

  34. Heaviside C, Macintyre H, Vardoulakis S (2017) The Urban Heat Island: implications for health in a changing environment. Curr Environ Health Rep 4:296–305. https://doi.org/10.1007/s40572-017-0150-3

    Article  Google Scholar 

  35. Vujovic S, Haddad B, Karaky H, Sebaibi N, Boutouil M (2021) Urban Heat Island: causes, consequences, and mitigation measures with emphasis on reflective and permeable pavements. Civ Eng 2:459–484. https://doi.org/10.3390/civileng2020026

    Article  Google Scholar 

  36. Macintyre HL, Heaviside C (2019) Potential benefits of cool roofs in reducing heat-related mortality during heatwaves in a European city. Environ Int 127:430–441. https://doi.org/10.1016/j.envint.2019.02.065

    Article  CAS  Google Scholar 

  37. Macintyre HL, Heaviside C, Cai X, Phalkey R (2021) Comparing temperature-related mortality impacts of cool roofs in winter and summer in a highly urbanized European region for present and future climate. Environ Int 154:106606. https://doi.org/10.1016/j.envint.2021.106606

    Article  Google Scholar 

  38. Environment (2023) Cities and climate change. UNEP. https://www.unep.org/explore-topics/resource-efficiency/what-we-do/cities/cities-and-climate-change. Accessed 14 Aug 2023

    Google Scholar 

  39. Narumi D, Levinson R, Shimoda Y (2021) Effect of Urban Heat Island and global warming countermeasures on heat release and carbon dioxide emissions from a detached house. Atmos 12:572. https://doi.org/10.3390/atmos12050572

    Article  CAS  Google Scholar 

  40. Cuerdo-Vilches T, Díaz J, López-Bueno JA, Luna MY, Navas MA, Mirón IJ, Linares C (2023) Impact of urban heat islands on morbidity and mortality in heat waves: observational time series analysis of Spain’s five cities. Sci Total Environ 890:164412. https://doi.org/10.1016/j.scitotenv.2023.164412

    Article  CAS  Google Scholar 

  41. Building Resilience with Green and Blue Infrastructure. IUCN (2022). https://iucn.org/news/europe/201911/building-resilience-green-and-blue-infrastructure. Accessed 27 June 2023

  42. Haruna AI, Oppong RA, Marful AB (2018) Exploring eco-aesthetics for urban green infrastructure development and building resilient cities: a theoretical overview. Cogent Soc Sci 4(1):1478492. https://doi.org/10.1080/233118

    Article  Google Scholar 

  43. Zuniga-Teran DA, Gerlak AK, Mayer B, Evans TP, Lansey KE (2020) Urban resilience and green infrastructure systems: towards a multidimensional evaluation. Curr Opin Environ Sustain 44:42–47. https://doi.org/10.1016/j.cosust.2020.05.001

    Article  Google Scholar 

  44. Parker J, Simpson GD (2020) A theoretical framework for bolstering human-nature connections and urban resilience via green infrastructure. Land 9:252. https://doi.org/10.3390/land9080252

    Article  Google Scholar 

  45. Parker J, Simpson GD (2018) Public green infrastructure contributes to city livability: a systematic quantitative review. Land 7(4):161. https://doi.org/10.3390/land7040161

    Article  Google Scholar 

  46. MacLachlan A, Biggs E, Roberts G, Boruff B (2021) Sustainable city planning: a data-driven approach for mitigating urban heat. Front Built Environ 6:9–10. https://doi.org/10.3389/fbuil.2020.519599

    Article  Google Scholar 

  47. Meftahi M, Monavari M, Kheirkhah Zarkesh M, Vafaeinejad A, Jozi A (2022) Achieving sustainable development goals through the study of urban heat island changes and its effective factors using spatio-temporal techniques: the case study (Tehran city). Nat Res Forum 46(1):88–115. https://doi.org/10.1111/1477-8947.12245

    Article  Google Scholar 

  48. United Nations Environment Programme (UNEP) (2021) UN issues new guidance to address warming in cities. UN Environment. https://www.unep.org/news-and-stories/press-release/un-issues-new-guidance-address-warming-cities. Accessed 14 Aug 2023

    Google Scholar 

  49. United Nations Climate Change (2021) A beginner’s guide to climate neutrality. Unfccc.int. https://unfccc.int/blog/a-beginner-s-guide-to-climate-neutrality. Accessed 14 Aug 2023

  50. Reuters T (2022) India rates Mumbai’s “very poor” air quality as worse than smog-filled Delhi. Reuters. https://www.reuters.com/world/india/india-rates-mumbais-very-poor-air-quality-worse-than-smog-filled-delhi-2022-12-08/. Accessed 14 Aug 2023

    Google Scholar 

  51. World Bank Group (2022) High air pollution level is creating physical and mental health hazards in Bangladesh. World Bank. https://www.worldbank.org/en/news/press-release/2022/12/03/high-air-pollution-level-is-creating-physical-and-mental-health-hazards-in-bangladesh-world-bank. Accessed 14 Aug 2023

    Google Scholar 

  52. ANS Global (2023) The importance of urban greening: outdoor living walls. ANS Global. https://www.ansgroupglobal.com/blog/importance-urban-greening. Accessed 14 Aug 2023

    Google Scholar 

  53. Sky News (2022) Major incident declared across London after “huge surge” in fires and homes destroyed on UK’s hottest-ever day. Sky News. https://news.sky.com/story/major-incident-declared-across-london-after-huge-surge-in-fires-as-homes-destroyed-on-uks-hottest-ever-day-12655061. Accessed 14 Aug 2023

  54. US-GSA (2021) Green roofs. GSA. https://www.gsa.gov/governmentwide-initiatives/federal-highperformance-green-buildings/resource-library/integrative-strategies/green-roofs. Accessed 14 Aug 2023

    Google Scholar 

  55. Abdel Salam MA (2020) Egypt: green roof classrooms improve the education experience. World Bank Blogs. https://blogs.worldbank.org/arabvoices/egypt-green-roof-classrooms%2D%2Dimprove-education-experience. Accessed 14 Aug 2023

  56. Yuan J, Patra I, Majdi A, Acwin Dwijendra NK, Catalan Opulencia MJ, Chetthamrongchai P (2022) Fundamental green roof performance of residential building in desert climate: in terms of sustainability and decrease in energy consumption. Sustain Energy Technol Assess 53(Part B):102574. https://doi.org/10.1016/j.seta.2022.102574

    Article  Google Scholar 

  57. World Cities Report (2022) Envisaging the future of cities. United Nations Habitat. https://unhabitat.org/wcr/. Accessed 14 Aug 2023

    Google Scholar 

  58. Environmental Protection Agency (2022) Building climate resiliency with green infrastructure. EPA, 7 Sept 2022. https://www.epa.gov/green-infrastructure/building-climate-resiliency-green-infrastructure. Accessed 14 Aug 2023

    Google Scholar 

  59. Elton C (2023) Summer heatwaves: how hot are Europe’s favourite holiday spots and how can you beat the heat? Euronews Travel, 30 June 2023. https://www.euronews.com/travel/2023/06/30/summer-heatwaves-how-hot-are-europes-favourite-holiday-spots-and-how-can-you-beat-the-heat. Accessed 5 July 2023

  60. UN-habitat report calls for cities post-pandemic to lead the way to a fairer, Greener, healthier future | UN News (2021) United Nations – UN News Global perspective Human stories. https://news.un.org/en/story/2021/03/1088622. Accessed 11 July 2023

  61. WHO (World Health Organization) (2021) Numbers at a glance. https://www.who.int/emergencies/diseases/novel-coronavirus-2019. Accessed 11 July 2023

  62. World Bank (2021) Global economic prospects, June 2021. Washington, DC

    Google Scholar 

  63. UN Environnent Programme (2023) Cities and climate change. UN Environment Programme. https://www.unep.org/explore-topics/resource-efficiency/what-we-do/cities/cities-and-climate-change. Accessed 11 July 2023

    Google Scholar 

  64. International Labour Organisation (ILO) (2022) World employment and social outlook: trends 2022. International Labour Office, Geneva. https://www.ilo.org/global/research/global-reports/weso/trends2022/WCMS_834081/lang%2D%2Den/index.htm. Accessed 11 July 2023

  65. Around 2.5 billion more people will be living in cities by 2050, projects New UN Report (2023) United Nations – Department of Economic and Social Affairs. https://www.un.org/en/desa/around-25-billion-more-people-will-be-living-cities-2050-projects-new-un-report. Accessed 11 July 2023

  66. Kwon I-D, Ginolin A (2023) Tackling the challenges in megacity development. VIR. Vietnam Investment Review. Boston Consulting Group Vietnam, 16 Feb 2023. https://vir.com.vn/tackling-the-challenges-in-megacity-development99805.html#:~:text=Varying%20challenges,actions%20led%20by%20the%20government. Accessed 11 July 2023

  67. Mega cities – the biggest cities all over the world (no date) Worlddata.info. https://www.worlddata.info/megacities.php. Accessed 11 July 2023

  68. Aboulnaga MM, Elwan AF, Elsharouny MR (2019) Climate change adaptation scenarios in develo** countries. In: Urban climate change adaptation in develo** countries. Springer, Cham. https://doi.org/10.1007/978-3-030-05405-2_8

    Chapter  Google Scholar 

  69. Urbanization and the Megacity (2022) World Population. https://worldpopulationhistory.org/urbanization-and-the-megacity. Accessed 14 July 2023

  70. Secretary-general’s message on World Cities Day [scroll down for French version] secretary-general (no date) United Nations. https://www.un.org/sg/en/content/secretary-generals-message-world-cities-day-scroll-down-for-french-version. Accessed 14 July 2023

  71. International Labour Organization (2022) Present and future of work in the Least Developed Countries. https://www.ilo.org/wcmsp5/groups/public/%2D%2D-dgreports/%2D%2D-integration/documents/publication/wcms_844025.pdf. Accessed 11 July 2023

  72. Aboulnaga MM, Badran MF, Barakat MM (2021) Informal settlements and urban slums’ upgrading in megacities: conclusions and recommendations. In: Resilience of informal areas in megacities – magnitude, challenges, and policies. Springer, Cham. https://doi.org/10.1007/978-3-030-87794-1_8

    Chapter  Google Scholar 

  73. United Nations Environment Programme (UNEP) (2022) Air pollution note. https://www.unep.org/interactive/air-pollution-note/index.html?embed=health. Accessed 27 June 2023

  74. Olusola M (2012) Urbanization, housing, and environment: megacities of Africa. Int J Environ Dev Sustain 1(3):976–993

    Google Scholar 

  75. Swamy G, Shiva Nagendra SM, Schlink U (2017) Urban Heat Island (UHI) influence on secondary pollutant formation in a tropical humid environment. J Air Waste Manage Assoc 67(10):1080–1091. https://doi.org/10.1080/10962247.2017.1325417

    Article  CAS  Google Scholar 

  76. AfDB (African Development Bank) (2021) African economic outlook 2021: from debt resolution to growth: the road ahead for Africa, Abidjan

    Google Scholar 

  77. Beard J (2023) Infrastructure epidemiology, infrastructure epidemiology – Mott MacDonald. https://www.mottmac.com/views/what-is-a-truly-liveable-city. Accessed 13 July 2023

  78. Urban issues and challenges (2023) StudySmarter US. https://www.studysmarter.us/explanations/geography/challenges-in-the-human-environment/urban-issues-and-challenges. Accessed 14 July 2023

  79. Barak M, Moriarty D, Ledur J (2021) Africa’s rising cities – how Africa will become the center of the world’s urban future. Washington Post. https://www.washingtonpost.com/world/interactive/2021/africa-cities. Accessed 13 July 2023

  80. Statista Research Department and 2, J (2023) New York – resident population 2022. Statista. https://www.statista.com/statistics/206267/resident-population-in-new-york/. Accessed 14 July 2023

  81. World Population Review (2023) Tokyo population 2023. Tokyo Population 2023. https://worldpopulationreview.com/world-cities/tokyo-population. Accessed 14 July 2023

  82. UNESCO (2021) Megacities worldwide. UNESCO – Megacities Worldwide. https://en.unesco.org/events/eaumega2021/megacities. Accessed 14 July 2023

  83. Demographic change and local development: shrinkage, regeneration and social dynamics (2012) OECD. https://www.oecd.org/development/demographic-change-and-local-development-9789264180468-en.htm. Accessed 14 July 2023

  84. Visual feature: beat plastic pollution (2023) UNEP. https://www.unep.org/interactives/beat-plastic-pollution/?gclid=EAIaIQobChMI8Me1lbaPgAMVFkFBAh3zWwKVEAAYAiAAEgKPLfD_BwE. Accessed 15 July 2023

  85. Venter Z, Figari H, Krange O, Gundersen V (2022) Environmental justice in a very green city: spatial inequality in exposure to urban nature, air pollution and heat in Oslo, Norway. Sci Total Environ 858:160193. https://doi.org/10.1016/j.scitotenv.2022.160193

    Article  CAS  Google Scholar 

  86. Chen Austin M, De León L, Álvarez V, Bustamante M, Rodríguez Z, Mora D (2023) Assessment of the university campus metabolism due to mobility and outdoor conditions: survey and GIS-based approach. IOP Conf Ser Earth Environ Sci 1194(1):012005. https://doi.org/10.1088/1755-1315/1194/1/012005

    Article  Google Scholar 

  87. Maltezou R, Amante A (2023) Cerberus heatwave threatens new record temperatures for Europe. Reuters. https://www.reuters.com/world/europe/southern-europe-swelters-cerberus-heatwave-bites-2023-07-13/. Accessed 15 July 2023

    Google Scholar 

  88. Week in images: 10–14 July 2023 (2023) European Space Agency – ESA. https://www.esa.int/About_Us/Week_in_images/Week_in_images_10-14_July_2023. Accessed 15 July 2023

  89. Europe warming twice as fast as other continents, warns WMO | UN News (2023) United Nations – Climate and Environment. https://news.un.org/en/story/2023/06/1137867. Accessed 16 July 2023

  90. Niranjan A, Smith H (2023) Health alerts issued as blistering heat scorches Southern Europe. The Guardian. https://www.theguardian.com/world/2023/jul/14/health-alerts-blistering-heat-scorches-southern-europe. Accessed 15 July 2023

    Google Scholar 

  91. Turner BL, Lambin EF, Reenberg A (2007) The emergence of land change science for global environmental change and sustainability. Proc Natl Acad Sci U S A 104:20666–20671

    Article  CAS  Google Scholar 

  92. Seto KC, Güneralp B, Hutyra LR (2012) Global forecasts of urban expansion to 2030 and direct impacts on biodiversity and carbon pools. Proc Natl Acad Sci U S A 109:16083–16088

    Article  CAS  Google Scholar 

  93. Brelsford C, Lobo J, Hand J, Bettencourt LM (2017) Heterogeneity and scale of sustainable development in cities. Proc Natl Acad Sci U S A 114(34):8963–8968. https://doi.org/10.1073/pnas.1606033114

    Article  CAS  Google Scholar 

  94. Mueller N, Rojas-Rueda D, Khreis H, Cirach M, Andrés D, Ballester J, Bartoll X, Daher C, Deluca A, Echave C, Milà C, Márquez S, Palou J, Pérez K, Tonne C, Stevenson M, Rueda S, Nieuwenhuijsen M (2020) Changing the urban design of Cities for Health: the superblock model. Environ Int 134:105132. https://doi.org/10.1016/j.envint.2019.105132

    Article  CAS  Google Scholar 

  95. Yang Z, Gao W (2022) Evaluating the coordinated development between urban greening and economic growth in Chinese cities during 2005 to 2019. Int J Environ Res Public Health 19:9596. https://doi.org/10.3390/ijerph19159596

    Article  Google Scholar 

  96. Livability and sustainability of cities (2022) The world bank working for a world free of poverty. https://www.worldbank.org/en/cpf/india/what-we-work/resource-efficient-growth/livability-sustainability-cities. Accessed 14 July 2023

  97. Herrman T, Lewis R (2017) (rep.) What is liveability? Sustainable Cities Initiative (SCI), University of Oregon, Eugene, pp 1–11

    Google Scholar 

  98. Gough MZ (2015) Reconciling livability and sustainability: conceptual and practical implications for planning. J Plan Educ Res 35(2):145–160

    Article  Google Scholar 

  99. Timmer V, Seymoar N-K (2005) The livable city. International Centre for Sustainable Cities. https://www2.gov.bc.ca/assets/gov/british-columbians-our-governments/local-governments/planning-land-use/wuf_the_livable_city.pdf

    Google Scholar 

  100. Texas A& M, USA (2013) What is livability? Texas A&M University. What is livability? Handout, 3 May 2013. https://transit-mobility.tti.tamu.edu/files/2013/05/3-Definitions-of-livability-handout.pdf

  101. Kihl M, Brennan D, Gabhawala N, List J, Mittal P (2005) Livable communities: an evaluation guide. AARP Public Policy Institute, Washington, DC

    Google Scholar 

  102. Australian Capital Territory (2015) State of the environment 2015: what does the changing environment mean? What is liveability. State of the Environment 2015. http://reports.envcomm.act.gov.au/actsoe2015/the-report/9-what-does-the-changing-environment-mean/9-2-livability/index.html

  103. Ruth M, Franklin RS (2014) Livability for all? conceptual limits and practical implications. Appl Geogr 49:18–23. https://doi.org/10.1016/j.apgeog.2013.09.018

    Article  Google Scholar 

  104. Idrus S, Hadi AS, Shah AH, Fariz A (2008) Spatial urban metabolism for livable city. Blueprints for sustainable infrastructure conference, 9–12 Dec 2008, Auckland, NZ

    Google Scholar 

  105. Wikantiyoso R, Suhartono T, Triyosoputri E, Sulaksono AG (2021) Sustainable urban spatial resilience in improving the quality of livable Green Open Space (GOS). Case study: an implementation of Green City Development Program (GCDP) in Malang City Center Development Area, Indonesia. IOP Conf Ser: Earth Environ Sci 780:012025. https://doi.org/10.1088/1755-1315/780/1/012025

    Article  Google Scholar 

  106. Davern M, Giles-Corti B, Whitzman C, Badland H (2019) We must address these 3 factors, to make our cities more vibrant and ‘liveable’. World Economic Forum. https://www.weforum.org/agenda/2019/09/this-is-what-makes-a-city-liveable/. Accessed 12 July 2023

    Google Scholar 

  107. Tuhkanen H et al (2022) Health and well-being in cities – cultural contributions from urban form in the global south context. Wellbeing Space Soc 3:100071. https://doi.org/10.1016/j.wss.2021.100071

    Article  Google Scholar 

  108. Lissandrello C, Bruyère SB (2022) What makes a city liveable? Ramboll Group. https://www.ramboll.com/lets-close-the-gap/what-makes-a-city-liveable. Accessed 12 July 2023

    Google Scholar 

  109. Kahachi HAH (2022) Future cities and reality: analytical preview of the different theories from information cities, smart cities, to liveable cities. In: Geotechnical engineering and sustainable construction: sustainable geotechnical engineering. Springer Singapore, Singapore, pp 805–816

    Chapter  Google Scholar 

  110. Alidoust S (2022) Planning healthy and livable cities. In: The Palgrave encyclopedia of urban and regional futures. Springer International Publishing, Cham, pp 1–5

    Google Scholar 

  111. Gür M (2023) Biophilic design as a tool for livable cities. Online J Art Des 11(5):142–160

    Google Scholar 

  112. Mohamed ASY (2022) Livable city: broadening the smart city paradigm, insights from Saudi Arabia. In: The international research & innovation forum. Springer International Publishing, Cham, pp 195–204

    Google Scholar 

  113. D’Acci L (2011) Measuring well-being and progress. Soc Indic Res 104(1):47–65

    Article  Google Scholar 

  114. Nawrath M, Guenat S, Elsey H, Dallimer M (2021) Exploring uncharted territory: do urban greenspaces support mental health in low- and middle-income countries? Environ Res 194:110625. https://doi.org/10.1016/j.envres.2020.110625

    Article  CAS  Google Scholar 

  115. Shuvo FK, Feng X, Akaraci S, Astell-Burt T (2020) Urban green space and health in low and middle-income countries: a critical review. Urban For Urban Green 52:126662. https://doi.org/10.1016/j.ufug.2020.126662

    Article  Google Scholar 

  116. Wangai PW, Benjamin Burkhard B, Müller F (2016) A review of studies on ecosystem services in Africa. Int J Sustain Built Environ 5(2):225–245. https://doi.org/10.1016/j.ijsbe.2016.08.005

    Article  Google Scholar 

  117. Sahakian M, Anantharaman M, Di Giulio A, Saloma C, Zhang D, Khanna R, Narasimalu S, Favis AM, Alfiler CA, Narayanan S, Gao X, Li C (2020) Green public spaces in the cities of South and Southeast Asia: protecting needs towards sustainable well-being. J Public Space 5(2):89–110. https://doi.org/10.32891/jps.v5i2.1286

    Article  Google Scholar 

  118. Gwedla N, Shackleton CM (2015) The development visions and attitudes towards urban forestry of officials responsible for greening in South African towns. Land Use Policy 42:17–26. https://doi.org/10.1016/j.landusepol.2014.07.004

    Article  Google Scholar 

  119. Guenat S, Dougill AJ, Kunin WE, Dallimer M (2019) Untangling the motivations of different stakeholders for urban greenspace conservation in sub-Saharan Africa. Ecosyst Serv 36:100904. https://doi.org/10.1016/j.ecoser.2019.100904

    Article  Google Scholar 

  120. Muhamad Nor AN, Abdul Aziz H, Nawawi SA, Muhammad Jamil R, Abas MA, Hambali KA, Yusuf AH, Ibrahim N, Rafaai NH, Corstanje R et al (2021) Evolution of green space under rapid urban expansion in Southeast Asian Cities. Sustainability 13(21):12024. https://doi.org/10.3390/su132112024

    Article  Google Scholar 

  121. Andrews A (2015) FRESH Thinking for a new era in environmental health and well-being. European Environmental Agency (EEA). https://www.eea.europa.eu/articles/a-europe-to-thrive-in/fresh-brochure/download. Accessed 12 July 2023

    Google Scholar 

  122. Western M, Tomaszewski W (2016) Subjective well-being, objective well-being, and inequality in Australia. PLoS One 11(10):e0163345

    Article  Google Scholar 

  123. Ryan RM, Deci EL (2001) On happiness and human potentials: a review of research on hedonic and eudaimonic well-being. Annu Rev Psychol 52:141–166. https://doi.org/10.1146/annurev.psych.52.1.141

    Article  CAS  Google Scholar 

  124. Statistics explained (2023) Statistics explained – quality of life indicators – measuring quality of life. https://ec.europa.eu/eurostat/statistics-explained/index.php?title=Quality_of_life_indicators_-_measuring_quality_of_life#The_8.2B1_dimensions_of_quality_of_life. Accessed 13 July 2023

  125. OECD regions and cities at a glance 2022 | en | OECD (2022) OECD regions and cities at a glance 2022. https://www.oecd.org/cfe/oecd-regions-and-cities-at-a-glance-26173212.htm. Accessed 13 July 2023

  126. What is a healthy city? (2023) World Health Organisation – Europe – European Healthy City Network. https://www.who.int/europe/groups/who-european-healthy-cities-network/what-is-a-health-city. Accessed 16 July 2023

  127. Roka K (2019) Liveable city: towards economic, social, cultural, and environmental well-being. In: Leal Filho W, Azul A, Brandli L, Özuyar P, Wall T (eds) Sustainable cities and communities. Encyclopedia of the UN sustainable development goals. Springer, Cham. https://doi.org/10.1007/978-3-319-71061-7_23-1

    Chapter  Google Scholar 

  128. Alderton A, Davern M, Nitvimol K et al (2019) What is the meaning of urban liveability for a city in a low-to-middle-income country? Contextualising liveability for Bangkok, Thailand. Glob Health 15:51. https://doi.org/10.1186/s12992-019-0484-8

  129. Make cities and human settlements inclusive, safe, resilient and sustainable. (2023) United Nations – Department of Economic and Social Affairs: Sustainable Development. https://sdgs.un.org/goals/goal11. Accessed 17 July 2023

  130. Goals and mission, livable city (2021) Livable City. https://www.livablecity.org/missiongoals/. Accessed 17 July 2023

  131. Elstad S (2022) Sustainable cities: creating livable and sustainable communities. Greener Ideal. https://greenerideal.com/guides/green-living/sustainable-cities/. Accessed 16 July 2023

  132. Lowe M, Whitzman C, Badland H, Davern M, Hes D, Aye L et al (2013) Liveable, healthy, sustainable: what are the key indicators for Melbourne neighbourhoods? Research paper 1, place, health and Liveability research program. University of Melbourne. https://socialequity.unimelb.edu.au/__data/assets/pdf_file/0006/1979574/liveability-Indicators-report.pdf. Accessed 16 July 2023

  133. Knuiman MW, Christian HE, Divitini ML, Foster SA, Bull FC, Badland HM et al (2014) A longitudinal analysis of the influence of the neighborhood built environment on walking for transportation: the RESIDE study. Am J Epidemiol 180(5):453–461

    Article  Google Scholar 

  134. Frank LD, Sallis JF, Conway TL, Chapman JE, Saelens BE, Bachman W (2006) Many pathways from land use to health: associations between neighborhood walkability and active transportation, body mass index, and air quality. J Am Plann Assoc 72(1):75–87

    Article  Google Scholar 

  135. Hirsch JA, Moore KA, Clarke PJ, Rodriguez DA, Evenson KR, Brines SJ et al (2014) Changes in the built environment and changes in the amount of walking over time: longitudinal results from the multi-ethnic study of atherosclerosis. Am J Epidemiol 180(8):799–809

    Article  Google Scholar 

  136. Sugiyama T, Giles-Corti B, Summers J, du Toit L, Leslie E, Owen N (2013) Initiating and maintaining recreational walking: a longitudinal study on the influence of neighborhood green space. Prev Med 57(3):178–182

    Article  Google Scholar 

  137. Kaczynski AT, Potwarka LR, Saelens BE (2008) Association of park size, distance, and features with physical activity in neighborhood parks. Am J Public Health 98(8):1451–1456

    Article  Google Scholar 

  138. Mitchell R, Popham F (2008) Effect of exposure to natural environment on health inequalities: an observational population study. Lancet 372(9650):1655–1660

    Article  Google Scholar 

  139. Gascon M, Triguero-Mas M, Martínez D, Dadvand P, Forns J, Plasència A et al (2015) Mental health benefits of long-term exposure to residential green and blue spaces: a systematic review. Int J Environ Res Public Health 12(4):4354–4379

    Article  Google Scholar 

  140. Kleerekoper L, van Esch M, Salcedo TB (2012) How to make a city climate proof, addressing the urban heat island effect. Resour Conserv Recycl 64:30–38

    Article  Google Scholar 

  141. Rizwan AM, Dennis LYC, Liu C (2008) A review on the generation, determination and mitigation of urban heat island. J Environ Sci 20(1):120–128

    Article  CAS  Google Scholar 

  142. Giles-Corti B, Foster S, Shilton T, Falconer R (2010) The co-benefits for health of investing in active transportation. N S W Public Health Bull 21(6):122–127

    Article  Google Scholar 

  143. Prasad A, Gray CB, Ross A, Kano M (2016) Metrics in urban health: current developments and future prospects. Annu Rev Public Health 37:113–133

    Article  Google Scholar 

  144. Ellis P, Robert M (2016) Leveraging urbanization in South Asia: managing spatial transformation for prosperity and livability. World Bank, Washington, DC. Alderton et al. Globalization and Health (2019) 15:51 Page 12 of 13

    Google Scholar 

  145. Badland H, Roberts R, Butterworth I, Giles-Corti B (2015) How liveable is Melbourne? Conceptualising and testing urban liveability indicators: progress to date, Melbourne

    Google Scholar 

  146. World Health Organization Centre for Health Development (2011) Healthy urban planning. World Health Organization, Kobe

    Google Scholar 

  147. EEA (2023) Who benefits from nature in cities? social inequalities in access to urban green and blue spaces across Europe. European Environmental Agency. https://www.eea.europa.eu/publications/who-benefits-from-nature-in. Accessed 18 July 2023

    Google Scholar 

  148. WHO (2023) Ambient (outdoor) air pollution. World Health Organization. https://www.who.int/news-room/fact-sheets/detail/ambient-(outdoor)-air-quality-and-health?gclid=EAIaIQobChMIyPTwq_uVgAMVAelRCh3s9AYHEAAYASAAEgKznPD_BwE. Accessed 15 July 2023

    Google Scholar 

  149. Goal 11: make cities inclusive, safe, resilient, and sustainable (2023) United Nations Sustainable Development Goals – Facts and Figures. https://www.un.org/sustainabledevelopment/cities/. Accessed 17 July 2023

  150. Goal 11: make cities inclusive, safe, resilient, and sustainable (2023) United Nations Sustainable Development Goals – Goal 11 Targets. https://www.un.org/sustainabledevelopment/cities/. Accessed 18 July 2023

  151. Davern M et al (2023) Liveability research creating real world impact: connecting urban planning and public health through the australian urban observatory. Cities Health:1–14. https://doi.org/10.1080/23748834.2023.2178091

  152. Gunn L (2022) Why liveable cities are important for better health equity. The Prevention Centre. https://preventioncentre.org.au/resources/why-liveable-cities-are-important-for-better-health-equity/. Accessed 19 July 2023

  153. Murayama Y (2000) Study of urban systems: outcomes and issues. In: Japanese urban system, The GeoJournal Library, vol 56. Springer, Dordrecht. https://doi.org/10.1007/978-94-017-2006-9_2

    Chapter  Google Scholar 

  154. Stevenson M, Gleeson B (2019) Complex urban systems: compact cities, transport and health. In: Nieuwenhuijsen M, Khreis H (eds) Integrating human health into urban and transport planning. Springer, Cham. https://doi.org/10.1007/978-3-319-74983-9_14

    Chapter  Google Scholar 

  155. Bai X (2023) 10 ways to make our cities liveable by 2030. World Economic Forum. https://www.weforum.org/agenda/2015/09/10-key-steps-to-make-our-cities-liveable-by-2030/. Accessed 19 July 2023

    Google Scholar 

  156. Rozek J, Giles-Corti B (2022) This is what our cities need to do to be truly liveable for all. The Conversation. https://theconversation.com/this-is-what-our-cities-need-to-do-to-be-truly-liveable-for-all-83967. Accessed 19 July 2023

  157. World Health Organization (2020) Physical inactivity: a global public health problem. World Health Organization, Geneva. https://www.who.int/data/gho/indicator-metadata-registry/imr-details/3416. Accessed 20 July 2023

    Google Scholar 

  158. Park JH, Moon JH, Kim HJ, Kong MH, Oh YH (2020) Sedentary lifestyle: overview of updated evidence of potential health risks. Korean J Fam Med 41(6):365–373. https://doi.org/10.4082/kjfm.20.0165

    Article  Google Scholar 

  159. IQAir (2023) Australia Air Quality Index (AQI) and Air Pollution Information. IQAir – real-time Australia most polluted city ranking. https://www.iqair.com/australia. Accessed 20 July 2023

  160. Chawla A (2021) Green space in cities can bring considerable health benefits for communities, but access is unequal. Resilience. https://www.resilience.org/stories/2021-04-01/green-space-in-cities-can-bring-considerable-health-benefits-for-communities-but-access-is-unequal/. Accessed 20 July 2023

  161. Weckroth M, Ala-Mantila S, Ballas D et al (2022) Urbanity, neighbourhood characteristics and perceived quality of life (QoL): analysis of individual and contextual determinants for perceived QoL in 3300 postal code areas in Finland. Soc Indic Res 164:139–164. https://doi.org/10.1007/s11205-021-02835-z

    Article  Google Scholar 

  162. Jones R, Young C, Symons J (2022) How green is our infrastructure? hel** cities assess its value for long-term liveability. The Conversation. https://theconversation.com/how-green-is-our-infrastructure-hel**-cities-assess-its-value-for-long-term-liveability-50528. Accessed 20 July 2023

  163. Aram A, Higueras García E, Solgi E, Mansournia S (2019) Urban green space cooling effect in cities. Heliyon 5(4):e01339. https://doi.org/10.1016/j.heliyon.2019.e01339

    Article  Google Scholar 

  164. Liu W, Zhao H, Sun S, Xu X, Huang T, Zhu J (2022) Green space cooling effect and contribution to mitigate heat island effect of surrounding communities in Bei**g Metropolitan Area. Front Public Health 10. https://doi.org/10.3389/fpubh.2022.870403

  165. Limb L (2023) How can we make European cities cooler during heatwaves? Euronews Green. https://www.euronews.com/green/2023/07/20/madrid-frankfurt-vienna-how-are-european-cities-adapting-to-fiercer-heatwaves. Accessed 20 July 2023

  166. Paudel S, States SL (2023) Urban green spaces and sustainability: exploring the ecosystem services and disservices of grassy lawns versus floral meadows. Urban For Urban Green 84:127932. https://doi.org/10.1016/j.ufug.2023.127932

    Article  Google Scholar 

  167. Wood E, Harsant A, Dallimer M, Cronin de Chavez A, McEachan RRC, Hassall C (2018) Not all green space is created equal: biodiversity predicts psychological restorative benefits from urban green space. Front Psychol 9:2320. https://doi.org/10.3389/fpsyg.2018.02320

    Article  Google Scholar 

  168. Cafasso S (2021) These are the human benefits of building nature into our cities. World Economic Forum. https://www.weforum.org/agenda/2021/05/nature-green-space-urban-cities-exercise-fresh-air/. Accessed 21 July 2023

    Google Scholar 

  169. Chen WY, Jim CY (2008) Assessment and valuation of the ecosystem services provided by urban forests. In: Carreiro MM, Song YC, Wu J (eds) Ecology, planning, and management of urban forests. Springer, New York. https://doi.org/10.1007/978-0-387-71425-7_5

    Chapter  Google Scholar 

  170. Office of The Commissioner for Sustainability and the Environment (2015). State of the environment 2015. State of the Environment 2015. http://reports.envcomm.act.gov.au/actsoe2015/the-report/9-what-does-the-changing-environment-mean/9-2-livability/index.html. Accessed 21 July 2023

  171. EIU (2023) Global liveability index 2023 report. Economist Intelligence Unit. https://www.eiu.com/n/campaigns/global-liveability-index-2023. Accessed 6 July 2023

  172. Hardingham-Gill T (2023) These cities have been ranked the most liveable in the world. CNN. https://edition.cnn.com/travel/worlds-most-liveable-cities-2023/index.html. Accessed 21 July 2023

  173. Howey W (2022) EIU’s Global Liveability Index rebounds as pandemic eases. Economist Intelligence Unit. https://www.eiu.com/n/eius-global-liveability-index-rebounds-as-pandemic-eases/. Accessed 21 July 2023

    Google Scholar 

  174. Australian Urban Observatory (2023) RMIT University. https://www.rmit.edu.au/about/our-values/sustainability/sustainable-development goals/projects/australian-urban-observatory. Accessed 22 July 2023

  175. Valcárcel-Aguiar B, Murias P, Vecino-Aguirre A (2022) Liveability versus sustainability in spanish cities: first evidence using synthetic indicators. Appl Res Qual Life 17:1935–1960. https://doi.org/10.1007/s11482-021-10005-z

    Article  Google Scholar 

  176. Tan BP (2013) The liveability framework. Centre for Liveable Cities, Singapore

    Google Scholar 

  177. Medayese S, Magidimisha-Chi**u H, Chipungu L (2021) The ASOCSA 14th built environment conference. In: IOP conference. 456-012027. IOP Publisher (Earth and Environmental Science), Bristol

    Google Scholar 

  178. Prokopowicz D (2020) Implementation of the principles of sustainable economy development as a key element of the pro-ecological transformation of the economy towards green economy and circular economy. Int J New Econom Soc Sci (IONESS) 11(1):417–480. https://doi.org/10.5604/01.3001.0014.3558

    Article  Google Scholar 

  179. Litman T (2011) Sustainability and liveability: sustainability and livability – summary of definitions, goals, objectives, and performance indicators. Victoria Transport Policy Institute, Victoria

    Google Scholar 

  180. Das K, Ramaswami A, Fan Y, Cao J (2022) Connecting the dots between urban infrastructure, well-being, liveability, and equity: a data-driven approach. Environ Res Infrastruct Sustain 2(3):035004. https://doi.org/10.1088/2634-4505/ac7901

  181. Dietrich I (2022) Transforming cities for a liveable future for all. Urbanet. https://www.urbanet.info/transforming-cities-for-a-liveable-future/. Accessed 24 July 2023

    Google Scholar 

  182. Sustainable development goals: United Nations Development Programme (2023) UNDP. https://www.undp.org/sustainable-development-goals/below-water. Accessed 24 July 2023

  183. The European heatwave of July 2023 in a longer-term context (2023) Copernicus. https://climate.copernicus.eu/. Accessed 24 July 2023

  184. Resilient Societies and Liveability – Ramboll Group (2023) Resilient Societies and Liveability – Ramboll Group. https://www.ramboll.com/resilient-societies-and-liveability. Accessed 24 July 2023

  185. The United Nations Office for the Coordination of Humanitarian Affairs, The International Federation of Red Cross and Red Crescent Societies, & The Red Cross Red Crescent Climate Centre (2022) Extreme heat: preparing for the heatwaves of the future, 10 Oct 2022. https://www.ifrc.org/sites/default/files/2022-10/Extreme-Heat-Report-IFRC-OCHA-2022.pdf. Accessed 23 Aug 2023

  186. Giuffrida A, Jones S, Smith H (2023) Italy heatwave could push temperatures close to European record, 10 July 2023. The Guardian. https://www.theguardian.com/world/2023/jul/10/italy-heatwave-temperatures-european-record-forecast. Accessed 24 July 2023

  187. Mendonca D et al (2023) Tourists flee Rhodes wildfires in Greece’s largest-ever evacuation. CNN. https://edition.cnn.com/2023/07/22/europe/greece-record-breaking-heat-wave-climate-intl/index.html. Accessed 24 July 2023

    Google Scholar 

  188. Rhodes Wildfire forces mass evacuations (2023) Reuters. https://www.reuters.com/world/europe/wildfire-greek-island-rhodes-forces-hundreds-evacuate-2023-07-22/. Accessed 24 July 2023

  189. Greece: wildfires break out on Corfu and Evia as 19,000 flee Rhodes Blazes (2023) The Guardian. https://www.theguardian.com/world/2023/jul/24/greece-wildfires-corfu-evia-rhodes-heatwave-northern-hemisphere-extreme-weather-temperatures-europe. Accessed 24 July 2023

  190. Kington T (2023) Europe heatwave 2023: Rome the infernal city as Cerberus raises hell, The Times & The Sunday Times: breaking news & today’s latest headlines. https://www.thetimes.co.uk/article/europe-heatwave-cerberus-italy-weather-temperatures-2023-hn66prdrl. Accessed 24 July 2023

  191. Pianigiani G (2023) New heat wave descends on Europe, as it struggles to adapt. The New York Times. https://www.nytimes.com/2023/07/14/world/europe/europe-heat-wave-italy.html. Accessed 24 July 2023

  192. Pereira T, Shackleton S, Donkor F (2018) Integrating Climate Change Adaptation (CCA) and Disaster Risk Reduction (DRR) for greater local level resilience: lessons from a multi-stakeholder think-tank, 16, 2017

    Google Scholar 

  193. Leal Filho W, Tuladhar L, Li C, Balogun A-LB, Kovaleva M, Abubakar IR, Azadi H, Donkor FKK (2023) Climate change and extremes: implications on city livability and associated health risks across the globe. Int J Clim Chang Strateg Manag 15(1):1–19. https://doi.org/10.1108/IJCCSM-07-2021-0078

    Article  Google Scholar 

  194. Mazdiyasni O, AghaKouchak A, Davis SJ et al (2017) Increasing probability of mortality during Indian heat waves. Sci Adv 3(6):e1700066. https://doi.org/10.1126/sciadv.1700066. American Association for the Advancement of Science

    Article  Google Scholar 

  195. Mitchell D, Heaviside C, Vardoulakis S et al (2016) Attributing human mortality during extreme heat waves to anthropogenic climate change. Environ Res Lett 11(7):074006. https://doi.org/10.1088/1748-9326/11/7/074006. IOP Publishing

    Article  Google Scholar 

  196. Mora C, Dousset B, Caldwell IR et al (2017) Global risk of deadly heat. Nat Clim Chang 7(7):501–506. https://doi.org/10.1038/nclimate3322. Nature Publishing Group

    Article  Google Scholar 

  197. Linares C, Culqui D, Carmona R et al (2017) Short-term association between environmental factors and hospital admissions due to dementia in Madrid. Environ Res 152:214–220. https://doi.org/10.1016/j.envres.2016.10.020

    Article  CAS  Google Scholar 

  198. Zander KK, Botzen WJW, Oppermann E et al (2015) Heat stress causes substantial labour productivity loss in Australia. Nat Clim Chang 5(7):647–651. https://doi.org/10.1038/nclimate2623. Nature Publishing Group

    Article  Google Scholar 

  199. Climate Change (2023) Climate Change. https://els.sunshinecoast.qld.gov.au/planning-for-the-future/climate-change. Accessed 26 July 2023

  200. Zhang T, Cheng C (2019) Dataset of the number of high temperature days, high temperature intensity and high temperature spatial agglomeration in China (1979–2017) [DB/OL]. Global Change Research Data Publishing & Repository. https://doi.org/10.3974/geodb.2019.06.14.V1

  201. Zhang T, Cheng C (2019) Assessment of China’s high-temperature hazards: accounting for spatial agglomeration. J Geo-Inf Sci 21(06):865–874

    Google Scholar 

  202. Shi C, Guo N, Zeng L, Wu F (2022) How climate change is going to affect urban livability in China. Clim Serv 26:100284. https://doi.org/10.1016/j.cliser.2022.100284

    Article  Google Scholar 

  203. United Nations Environment Programme (2023) Cities and climate change. UNEP. https://www.unep.org/explore-topics/resource-efficiency/what-we-do/cities/cities-and-climate-change. Accessed 26 July 2023

    Google Scholar 

  204. Boland B, Charchenko E, Knupfer S, Sahdev S (2021) How cities can adapt to climate change? McKinsey Sustainability, McKinsey & Company. https://www.mckinsey.com/capabilities/sustainability/our-insights/how-cities-can-adapt-to-climate-change. Accessed 26 July 2023

    Google Scholar 

  205. Fernandez J (2021) Cities and climate change. MIT Climate Portal. https://climate.mit.edu/explainers/cities-and-climate-change. Accessed 26 July 2023

  206. Kumar P (2021) Climate change and cities: challenges ahead. Front Sustain Cities 3:645613. https://doi.org/10.3389/frsc.2021.645613

    Article  Google Scholar 

  207. Trotta D (2022) Cities are a key cause of climate change, but they can also be key to solving it. World Economic Forum – Cities and Urbanization. https://www.weforum.org/agenda/2022/04/cities-driving-climate-cge-but-part-of-the-solution-un-report/. Accessed 26 July 2023

    Google Scholar 

  208. Allam Z, Nieuwenhuijsen M, Chabaud D, Moreno C (2022) The 15-minute city offers a new framework for sustainability, liveability, and health. Lancent Planet Health 6(3):E181–E183. https://doi.org/10.1016/S2542-5196(22)00014-6

    Article  Google Scholar 

  209. Liang L, Deng X, Wang P, Wang Z, Wang L (2020) Assessment of the impact of climate change on cities livability in China. Sci Total Environ 726:138339. https://doi.org/10.1016/j.scitotenv.2020.138339

    Article  CAS  Google Scholar 

  210. IPCC (2023) Urgent climate action can secure a liveable future for all. Intergovernmental Pannel on Climate Change – IPCC. https://www.ipcc.ch/2023/03/20/press-release-ar6-synthesis-report/. Accessed 26 July 2023

    Google Scholar 

  211. WHO (2021) Climate change and health. World Health Organisation. https://www.who.int/news-room/fact-sheets/detail/climate-change-and-health. Accessed 26 July 2023

    Google Scholar 

  212. C40 Knowledge (2022) Adapting to climate change. C40 Knowledge. https://www.c40knowledgehub.org/s/topic/0TO1Q0000001lR5WAI/adapting-to-climate-change?language=en_US. Accessed 26 July 2023

  213. C40 Cities Climate Leadership Group, C40 Knowledge Hub (2021) How to adapt your city to extreme heat. The C40 Knowledge Hub. https://www.c40knowledgehub.org/s/?language=en_US&gclid=EAIaIQobChMI0sff75SigAMVCENBAh2SJgyXEAMYASAAEgKyOvD_BwE. Accessed 26 July 2023

  214. GCHA (2022) Report: the Limits of Livability – the emerging threat of smoke impacts on health from forest fires and climate change. The Global Climate and Health Alliance. https://climateandhealthalliance.org/the-limits-of-livability. Accessed 26 July 2023

    Google Scholar 

  215. Sardyga A (2022) Liveability of cities at risk as climate change puts heat on urban trees. Western Sydney University. https://www.westernsydney.edu.au/newscentre/news_centre/more_news_stories/liveability_of_cities_at_risk_as_climate_change_puts_heat_on_urban_trees. Accessed 26 July 2023

    Google Scholar 

  216. STATE OF GREEN (2023) Climate adaptation can promote liveability. STATE OF GREEN. https://stateofgreen.com/en/news/climate-adaptation-can-promote-liveability/. Accessed 27 July 2023

    Google Scholar 

  217. CRC for Remote Economic Participation (2013) Climate change to affect liveability of remote Australia. PYHS ORG. https://phys.org/news/2013-06-climate-affect-liveability-remote-australia.html. Accessed 27 July 2023

    Google Scholar 

  218. US Environmental Protection Agency (2022) Heat island impacts | heat island effect | US EPA. US Environmental Protection Agency. https://www.epa.gov/heatislands/heat-island-impacts. Accessed 28 July 2023

    Google Scholar 

  219. Santamouris M (2020) Recent progress on urban overheating and heat island research. assessment of the energy, environmental, vulnerability and health impact. Synergies with the global climate change. Energ Buildings 207:109482. https://doi.org/10.1016/j.enbuild.2019.109482

    Article  Google Scholar 

  220. Maxwell KS, Julius A, Grambsch A, Kosmal L, Larson L, Sonti N (2018) Built environment, urban systems, and cities. In: Reidmiller DR, Avery CW, Easterling DR, Kunkel KE, Lewis KLM, Maycock TK, Stewart BC (eds) Impacts, risks, and adaptation in the United States: fourth national climate assessment, vol II. U.S. Global Change Research Program, Washington, DC, pp 438–478

    Google Scholar 

  221. Zamuda C, Bilello DE, Conzelmann G, Mecray E, Satsangi A, Tidwell V, Walker BJ (2018) Energy supply, delivery, and demand. In: Reidmiller DR, Avery CW, Easterling DR, Kunkel KE, Lewis KLM, Maycock TK, Stewart BC (eds) Impacts, risks, and adaptation in the United States: fourth national climate assessment, vol II. U.S. Global Change Research Program, Washington, DC, pp 174–201

    Google Scholar 

  222. Hassan NA, Hashim Z, Hashim JH (2016) Impact of climate change on air quality and public health in urban areas. Asia Pac J Public Health 28(2_suppl):38S–48S

    Article  Google Scholar 

  223. Gamble JL, Hurley BJ, Schultz PA, Jaglom WS, Krishnan N, Harris M (2013) Climate change and older Americans: state of the science. Environ Health Perspect 121(1):15–22

    Article  Google Scholar 

  224. U.S. Climate Change Science Program (2008) Analyses of the effects of global change on human health and welfare and human systems. In: Gamble JL (ed), Ebi KL, Sussman FG, Wilbanks TJ (Authors) A report by the U.S. Climate Change Science Program and the Subcommittee on Global Change Research. U.S. Environmental Protection Agency, Washington, DC

    Google Scholar 

  225. Vaidyanathan A, Malilay J, Schramm P, Saha S (2020) Heat-related deaths — United States, 2004–2018. Morb Mortal Wkly Rep 69(24):729–734

    Article  Google Scholar 

  226. Hoff J (2015) Reflective roofs and urban heat islands. Continuing Education Center, Sept 2015. https://continuingeducation.bnpmedia.com/courses/durolast-inc/reflective-roofs-and-urban-heat-islands/1/. Accessed 27 Aug 2023

  227. Hibbard KA, Hoffman FM, Huntzinger D, West TO (2017) Changes in land cover and terrestrial biogeochemistry. In: Wuebbles DJ, Fahey DW, Hibbard KA, Dokken DJ, Stewart BC, Maycock TK (eds) Climate science special report: fourth national climate assessment, vol I. U.S. Global Change Research Program, Washington, DC, pp 277–302. https://doi.org/10.7930/J0416V6X

    Chapter  Google Scholar 

  228. Li G, Zhang X, Mirzaei P, Zhang J, Zhao Z (2018) Urban heat island effect of a typical valley city in China: responds to the global warming and rapid urbanization. Sustain Cities Soc 38:736–745. https://doi.org/10.1016/j.scs.2018.01.033

    Article  Google Scholar 

  229. UCAR (2023) Urban Heat Islands. UCAR – Center for Science Education. https://scied.ucar.edu/learning-zone/climate-change-impacts/urban-heat-islands. Accessed 28 July 2023

  230. Mohajerani A, Bakaric J, Jeffrey-Bailey T (2017) The urban heat island effect, its causes, and mitigation, with reference to the thermal properties of asphalt concrete. J Environ Manag 197:522–538. https://doi.org/10.1016/j.jenvman.2017.03.095

    Article  Google Scholar 

  231. Wang U, Akbari H, Chen B (2016) Urban geometry and environmental urban policy development. Procedia Eng 169:308–315. https://doi.org/10.1016/j.proeng.2016.10.038

    Article  Google Scholar 

  232. Abd Elraouf R, Elmokadem A, Megahed N, Abo Eleinen O, Eltarabily S (2022) The impact of urban geometry on outdoor thermal comfort in a hot-humid climate. Build Environ 225:109632. https://doi.org/10.1016/j.buildenv.2022.109632

    Article  Google Scholar 

  233. Asaeda TT, Ca V, Wake A (1996) Heat storage of pavement and its effect on the lower atmosphere. Atmos Environ 30(3):413–427. https://doi.org/10.1016/1352-2310(94)00140-5

    Article  CAS  Google Scholar 

  234. Radhi H, Assem E, Sharples S (2014) On the colours and properties of building surface materials to mitigate urban heat islands in highly productive solar regions. Build Environ 72:162–172. https://doi.org/10.1016/j.buildenv.2013.11.005

    Article  Google Scholar 

  235. Shamsaei M, Carter A, Vaillancourt M (2022) A review on the heat transfer in asphalt pavements and urban heat island mitigation methods. Constr Build Mater 359:129350. https://doi.org/10.1016/j.conbuildmat.2022.129350

    Article  Google Scholar 

  236. Gokhan Calis G, Yildizel SA, Keskin US (2022) Investigation of color pigment incorporated roller compacted high performance concrete as a mitigation tool against urban heat island. Case Stud Constr Mater 17:e01479. https://doi.org/10.1016/j.cscm.2022.e01479

    Article  Google Scholar 

  237. Doick KJ, Peace A, Hutchings TR (2014) The role of one large greenspace in mitigating London’s nocturnal urban heat island. Sci Total Environ 493:662–671. https://doi.org/10.1016/j.scitotenv.2014.06.048

    Article  CAS  Google Scholar 

  238. Wong NH, Yu C (2005) Study of green areas and urban heat island in a tropical city. Habitat Int 29(3):547–558. https://doi.org/10.1016/j.habitatint.2004.04.008

    Article  Google Scholar 

  239. Najah FT, Abdullah SFK, Abdulkareem TA (2023) Urban land use changes: effect of green urban spaces transformation on Urban Heat Islands in Baghdad. Alex Eng J 66:555–571. https://doi.org/10.1016/j.aej.2022.11.005

    Article  Google Scholar 

  240. Li C, Lu L, Fu Z, Sun R, Pan L, Han L, Guo H, Li Q (2022) Diverse cooling effects of green space on urban heat island in tropical megacities. Front Environ Sci 10:1073914. https://doi.org/10.3389/fenvs.2022.1073914

    Article  Google Scholar 

  241. Du H, Song X, Jiang H, Kan Z, Wang Z, Cai Y (2016) Research on the cooling island effects of water body: a case study of Shanghai, China. Ecol Indic 67:31–38. https://doi.org/10.1016/j.ecolind.2016.02.040

    Article  Google Scholar 

  242. Hwang B, Sou HD, Oh JH, Park CR (2023) Cooling effect of urban forests on the urban heat island in Seoul, South Korea. PLoS One 18(7):e0288774. https://doi.org/10.1371/journal.pone.0288774

    Article  CAS  Google Scholar 

  243. Sun R, Chen L (2017) Effects of green space dynamics on urban heat islands: mitigation and diversification. Ecosyst Serv 23:38–46. https://doi.org/10.1016/j.ecoser.2016.11.011

    Article  Google Scholar 

  244. Lin J, Qiu S, Tan X, Zhuang Y (2023) Measuring the relationship between morphological spatial pattern of green space and urban heat island using machine learning methods. Build Environ 228:109910. https://doi.org/10.1016/j.buildenv.2022.109910

    Article  Google Scholar 

  245. Qiu GY, Zou Z, Li X, Li H, Guo Q, Yan C, Tan S (2017) Experimental studies on the effects of green space and evapotranspiration on urban heat island in a subtropical megacity in China. Habitat Int 68:30–42. https://doi.org/10.1016/j.habitatint.2017.07.009

    Article  Google Scholar 

  246. Zhao L, Tingting Li T, Przybysz A, Liu H, Zhang B, An W, Zhu C (2023) Effects of urban lakes and neighbouring green spaces on air temperature and humidity and seasonal variabilities. Sustain Cities Soc 91:104438. https://doi.org/10.1016/j.scs.2023.104438

    Article  Google Scholar 

  247. Hayes AT, Jandaghian Z, Lacasse MA, Gaur A, Lu H, Laouadi A, Ge H, Wang L (2022) Nature-based solutions (nbss) to mitigate urban heat island (UHI) effects in Canadian cities. Buildings 12(7):925. https://doi.org/10.3390/buildings12070925

    Article  Google Scholar 

  248. Bartesaghi Koc C, Osmond P, Peters A (2018) Evaluating the cooling effects of green infrastructure: a systematic review of methods, indicators, and data sources. Sol Energy 166:486–508. https://doi.org/10.1016/j.solener.2018.03.008

    Article  Google Scholar 

  249. Irfeey AMM, Chau H-W, Sumaiya MMF, Wai CY, Muttil N, Jamei E (2023) Sustainable mitigation strategies for Urban Heat Island effects in urban areas. Sustainability 15:10767. https://doi.org/10.3390/su151410767

    Article  Google Scholar 

  250. Semenzato P, Bortolini L (2023) Urban Heat Island mitigation and urban green spaces: testing a model in the City of Padova (Italy). Land 12(2):476. https://doi.org/10.3390/land12020476

    Article  Google Scholar 

  251. Mihalakakou G et al (2023) Green roofs as a nature-based solution for improving urban sustainability: progress and perspectives. Renew Sust Energ Rev 180:113306. https://doi.org/10.1016/j.rser.2023.113306

    Article  Google Scholar 

  252. Cook LM, Larsen TA, T. A. (2021) Towards a performance-based approach for multifunctional green roofs: an interdisciplinary review. Build Environ 188:107489. https://doi.org/10.1016/j.buildenv.2020.107489

    Article  Google Scholar 

  253. Wu Z, Zhang Y (2019) Water bodies’ cooling effects on urban land daytime surface temperature: ecosystem service reducing heat island effect. Sustainability 11(3):787. https://doi.org/10.3390/su11030787

    Article  Google Scholar 

  254. **e Q, Ren L, Yang C (2023) Regulation of water bodies to urban thermal environment: evidence from Wuhan, China. Front Ecol Evol, Urban Ecol 11. https://doi.org/10.3389/fevo.2023.983567

  255. Using water to cope with heat waves in cities (2016) Climate adapt – using water to cope with heat waves in cities – English. https://climate-adapt.eea.europa.eu/en/metadata/adaptation-options/water-uses-to-cope-with-heat-waves-in-cities. Accessed 31 July 2023

  256. Corporate, I (2023) Urban heat islands and their adverse effects on their inhabitants, Iberdrola – Sustainability and Urban Heat Island. https://www.iberdrola.com/sustainability/urban-heat-island. Accessed 31 July 2023

  257. Wu L, Zhang J (2021) The effects of human movements on urban climate over Eastern China. npj Urban Sustain 1(1):36. https://doi.org/10.1038/s42949-021-00038-6

    Article  Google Scholar 

  258. Shahmohamadi P, Che-Ani AI, Maulud KNA, Tawil NM, Abdullah NAG (2011) The impact of anthropogenic heat on formation of Urban Heat Island and energy consumption balance. Urban Stud Res 2011:497524. https://doi.org/10.1155/2011/497524

    Article  Google Scholar 

  259. Gantumur B et al (2019) Implication of urban heat island (UHI) related to human activities: a case study in Mongolia. In: Remote sensing technologies and applications in urban environments IV, vol 34. SPIE, Strasbourg. https://doi.org/10.1117/12.2533696

    Chapter  Google Scholar 

  260. Louiza H, Zeroual A, Djamel H (2015) Impact of the transport on the Urban Heat Island. Int J Traffic Transp Eng 5:252–263. https://doi.org/10.7708/ijtte.2015.5(3)

    Article  Google Scholar 

  261. Debbage N, Shepherd JM (2015) The urban heat island effect and city contiguity. Comput Environ Urban Syst 54:181–194. https://doi.org/10.1016/j.compenvurbsys.2015.08.002

    Article  Google Scholar 

  262. Dienst M, Lindén J, Esper J (2018) Determination of the urban heat island intensity in villages and its connection to land cover in three European climate zones. Clim Res 76:1–15. https://doi.org/10.3354/cr01522

    Article  Google Scholar 

  263. Urban heat islands in the Northwest (2023) Urban Heat Islands in the Northwest | USDA Climate Hubs. https://www.climatehubs.usda.gov/hubs/northwest/topic/urban-heat-islands-northwest. Accessed 1 Aug 2023

  264. Kershaw T (2017) The Urban Heat Island (UHI). In: Climate change resilience in the urban environment. IOP Publishing Ltd, Bristol, pp 1–44. https://iopscience.iop.org/book/mono/978-0-7503-1197-7/chapter/bk978-0-7503-1197-7ch4

    Chapter  Google Scholar 

  265. Wong E (2008) Urban Heat Island basics. In: Reducing Urban Heat Islands: compendium of strategies. U.S. Environment Protection Agency – US-EPA, Virginia. https://www.epa.gov/sites/default/files/2017-05/documents/reducing_urban_heat_islands_ch_1.pdf. Accessed 31 July 2023

    Chapter  Google Scholar 

  266. Causes of heat islands effect (2023) What is urban heat island effect. COWIN – Community Weather Information, University of Hong Kong, China. https://cowin.hku.hk/public/STEM2023-1/teacher/urban.xhtml. Accessed 1 Aug 2023

  267. Kabir R (2022) Explained: NASA detects heat islands around Delhi amid extreme heatwaves. What is it all about? News. https://news.abplive.com/explainers/explained-nasa-detects-heat-islands-around-delhi-amid-extreme-heatwave-know-what-it-is-all-about-1532079. Accessed 1 Aug 2023

  268. Morris C, Simmonds I, Plummer N (2001) Quantification of the influences of wind and cloud on the nocturnal urban heat island of a large city. J Appl Meteorol 40:169–182. https://doi.org/10.1175/1520-0450(2001)040<0169:QOTIOW>2.0.CO;2

    Article  Google Scholar 

  269. Nuruzzaman M (2015) Urban heat island: causes, effects and mitigation measures – a review. Int J Environ Monit Anal 3(2):67–73. https://doi.org/10.11648/j.ijema.20150302.15

    Article  Google Scholar 

  270. Martilli A, Krayenhoff ES, Nazarian N (2020) Is the Urban Heat Island intensity relevant for heat mitigation studies? Urban Clim 31:100541. https://doi.org/10.1016/j.uclim.2019.100541

    Article  Google Scholar 

  271. Ulfiasari S, Yola L (2022) Towards climate change adaptive spatial planning: urban heat islands distribution in Jakarta Metropolitan Area. In: Sustainable development approaches: selected papers of AUA and ICSGS 2021. Springer International Publishing, Cham, pp 111–118

    Chapter  Google Scholar 

  272. Chaston TB, Broome RA, Cooper N, Duck G, Geromboux C, Guo Y et al (2022) Mortality burden of heatwaves in Sydney, Australia is exacerbated by the urban heat island and climate change: can tree cover help mitigate the health impacts? Atmos 13(5):714

    Article  Google Scholar 

  273. Stewart ID, Mills G (2021) The Urban Heat Island. Elsevier, Amsterdam

    Google Scholar 

  274. Oke TR (1987) Boundary layer climates, 1st edn. Routledge, Taylor & Francis Group, Cambridge

    Google Scholar 

  275. Druckenmiller H (2023) Urban heat islands 101, resources for the future. https://www.rff.org/publications/explainers/urban-heat-islands-101/. Accessed 2 Aug 2023

  276. Urban Heat Islands (2023) HEAT.gov – National Integrated Heat Health Information System. https://www.heat.gov/pages/urban-heat-islands. Accessed 2 Aug 2023

  277. Voogt JA (2002) Urban heat island. In: Encyclopedia of global environmental change, vol 3. John Wiley & Sons, Hoboken, pp 660–666

    Google Scholar 

  278. Appleton J (2023) How the urban heat island effect is harming our cities. The Global Smart City Knowledge Center. https://www.beesmart.city/en/solutions/how-the-urban-heat-island-effect-is-harming-our-cities. Accessed 2 Aug 2023

    Google Scholar 

  279. Fahed J, Kinab E, Ginestet S, Adolphe L (2020) Impact of urban heat island mitigation measures on microclimate and pedestrian comfort in a dense urban district of Lebanon. Sustain Cities Soc 61:102375. https://doi.org/10.1016/j.scs.2020.102375

    Article  Google Scholar 

  280. Mutani G, Todeschi V (2020) The effects of green roofs on outdoor thermal comfort, urban heat island mitigation and energy savings. Atmos 11:123

    Article  Google Scholar 

  281. He B-J, Ding L, Prasad D (2020) Relationships among local-scale urban morphology, urban ventilation, urban heat island and outdoor thermal comfort under sea breeze influence. Sustain Cities Soc 60:102289

    Article  Google Scholar 

  282. Perera T, Nayanajith T, Jayasinghe G, Premasiri H (2022) Identification of thermal hotspots through heat index determination and urban heat island mitigation using ENVImet numerical micro-climate model. Model Earth Syst Environ 8:209–226

    Article  Google Scholar 

  283. Vardoulakis E, Karamanis D, Fotiadi A, Mihalakakou G (2013) The urban heat island effect in a small Mediterranean city of high summer temperatures and cooling energy demands. Sol Energy 94:128–144. https://doi.org/10.1016/j.solener.2013.04.016

    Article  Google Scholar 

  284. Joint Research Centre (2022) Cities are often 10–15 °C hotter than their rural surroundings. EU Science Hub. https://joint-research-centre.ec.europa.eu/jrc-news-and-updates/cities-are-often-10-15-degc-hotter-their-rural-surroundings-2022-07-25_en. Accessed 2 Aug 2023

    Google Scholar 

  285. Mentaschi L, Duveiller Bogdan GHE, Zulian G, Corban C, Pesaresi M, Maes J, Stocchino A, Feyen L (2022) Global long-term map** of surface temperature shows intensified intra-city urban heat island extremes. Glob Environ Change Hum Policy Dimensions 72:102441. https://publications.jrc.ec.europa.eu/repository/handle/JRC123644

    Article  Google Scholar 

  286. WMO (2023) July 2023 is set to be the hottest month on record. World Meteorological Organization. https://public.wmo.int/en/media/press-release/july-2023-set-be-hottest-month-record. Accessed 3 Aug 2023

    Google Scholar 

  287. Cao S-J, Deng H-Y (2019) Investigation of temperature regulation effects on indoor thermal comfort, air quality, and energy savings toward green residential buildings. Sci Technol Built Environ 25:309–321

    Article  Google Scholar 

  288. Ren J, He J, Kong X, Xu W, Kang Y, Yu Z, Li H (2022) A field study of CO2 and particulate Matter characteristics during the transition season in the subway system in Tian**, China. Energ Buildings 254:111620

    Article  Google Scholar 

  289. ** C, Ren C, Wang J, Feng Z, Cao S-J (2021) Impacts of urban-scale building height diversity on urban climates: a case study of Nan**g, China. Energy Build 251:111350

    Article  Google Scholar 

  290. Smargiassi A, Goldberg MS, Plante C, Fournier M, Baudouin Y, Kosatsky T (2009) Variation of daily warm season mortality as a function of micro-urban heat islands. J Epidemiol Community Health 63(8):659–664

    Article  CAS  Google Scholar 

  291. Salgado L (2023) Intensifying heat waves prompt health warnings for Europe, US. Reuters. https://www.reuters.com/world/wmo-warns-risk-heart-attacks-deaths-heatwave-intensifies-2023-07-18/. Accessed 3 Aug 2023

    Google Scholar 

  292. Ramirez R (2023) Nearly 62,000 people died from record-breaking heat in Europe last summer. It’s a lesson for the US, too. CNN World. https://edition.cnn.com/2023/07/10/world/deadly-europe-heatwave-2022-climate/index.html. Accessed 3 Aug 2023

    Google Scholar 

  293. Ren J, Shi K, Li Z, Kong X, Zhou H (2023) A review on the impacts of urban heat islands on outdoor thermal comfort. Buildings 13:1368. https://doi.org/10.3390/buildings13061368

    Article  Google Scholar 

  294. Mohan M, Sati AP, Bhati S (2020) Urban sprawl during five decadal period over National Capital Region of India: impact on urban heat island and thermal comfort. Urban Clim 33:100647

    Article  Google Scholar 

  295. Kalogeropoulos G, Dimoudi A, Toumboulidis P, Zoras S (2022) Urban heat island and thermal comfort assessment in a medium-sized Mediterranean city. Atmos 13:1102

    Article  Google Scholar 

  296. Van Hove L, Jacobs C, Heusinkveld B, Elbers J, Van Driel B, Holtslag A (2015) Temporal and spatial variability of urban heat island and thermal comfort within the Rotterdam agglomeration. Build Environ 83:91–103

    Article  Google Scholar 

  297. Pioppi B, Pigliautile I, Pisello AL (2020) Data collected by coupling fix and wearable sensors for addressing urban microclimate variability in an historical Italian city. Data Brief 29:105322

    Article  Google Scholar 

  298. Wang Y, Akbari H (2014) Effect of sky view factor on outdoor temperature and comfort in Montreal. Environ Eng Sci 31:272–287

    Article  CAS  Google Scholar 

  299. Sharmin T, Steemers K, Matzarakis A (2015) Analysis of microclimatic diversity and outdoor thermal comfort perceptions in the tropical megacity Dhaka, Bangladesh. Build Environ 94:734–750

    Article  Google Scholar 

  300. Naikoo MW, Islam ARMT, Mallick J, Rahman A (2022) Land use/land cover change and its impact on surface urban heat island and urban thermal comfort in a metropolitan city. Urban Clim 41:101052

    Article  Google Scholar 

  301. Pantavou K, Santamouris M, Asimakopoulos D, Theoharatos G (2014) Empirical calibration of thermal indices in an urban outdoor Mediterranean environment. Build Environ 80:283–292

    Article  Google Scholar 

  302. Oikonomou E, Davies M, Mavrogianni A, Biddulph P, Wilkinson P, Kolokotroni M (2012) Modelling the relative importance of the urban heat island and the thermal quality of dwellings for overheating in London. Build Environ 57:223–238

    Article  Google Scholar 

  303. Pioppi B, Pisello AL, Ramamurthy P (2022) Wearable sensing techniques to understand pedestrian-level outdoor microclimate affecting heat related risk in urban parks. Sol Energy 242:397–412

    Article  Google Scholar 

  304. Gao Y, Zhao J, Han L (2022) Exploring the spatial heterogeneity of urban heat island effect and its relationship to block morphology with the geographically weighted regression model. Sustain Cities Soc 76:103431

    Article  Google Scholar 

  305. WEF (2022) Discover how sweltering urban heat islands are being cooled down. World Economic Forum (WEF): Cities and Urbanization. https://www.weforum.org/agenda/2022/08/ways-to-cool-cities-and-avoid-urban-heat-islands/. Accessed 4 Aug 2023

    Google Scholar 

  306. Takano T, Nakamura K, Watanabe M (2002) Urban residential environments and senior citizens’ longevity in megacity areas: the importance of walkable green spaces. J Epidemiol Community Health 56(12):913–918

    Article  CAS  Google Scholar 

  307. De Vries S, Verheij R, Groenewegen P, Spreeuwenberg P (2003) Natural environments-healthy environments? An exploratory analysis of the relationship between greenspace and health. Environ Plan A 35(10):1717–1731

    Article  Google Scholar 

  308. Tian L, Li Y, Lu J, Wang J (2021) Review on urban heat island in China: methods, its impact on buildings energy demand and mitigation strategies. Sustainability 13:762. https://doi.org/10.3390/su13020762

    Article  Google Scholar 

  309. US-EPA (2023) What you can do to reduce heat islands. Environmental Protection Agency. https://www.epa.gov/heatislands/what-you-can-do-reduce-heat-islands. Accessed 4 Aug 2023

    Google Scholar 

  310. Sari DP (2021) A review of how building mitigates the urban heat island in Indonesia and tropical cities. Earth 2:653–666. https://doi.org/10.3390/earth2030038

    Article  Google Scholar 

  311. Kloss P, Che-Ani A, Ramly M, Maulud K et al (2010) Reducing urban heat island effects: a systematic review to achieve energy consumption balance. Int J Phy Sci 5:626–636

    Google Scholar 

  312. O’Malley C, Piroozfarb P, Farr ERP, Pomponi F (2015) Urban Heat Island (UHI) mitigating strategies: a case-based comparative analysis. Sustain Cities Soc 19:222–235. https://doi.org/10.1016/j.scs.2015.05.009

    Article  Google Scholar 

  313. O’Malley C, Piroozfarb PAE, Farr ERP, Gates J (2014) An investigation into minimizing urban heat island (UHI) effects: a UK perspective. Energy Procedia 62:72–80. https://doi.org/10.1016/j.egypro.2014.12.368

    Article  Google Scholar 

  314. Abulibdeh A (2021) Analysis of urban heat island characteristics and mitigation strategies for eight arid and semi-arid gulf region cities. Environ Earth Sci 80:259. https://doi.org/10.1007/s12665-021-09540-7

    Article  Google Scholar 

  315. Vida S (2011) Les espaces verts urbains et la santé. Institut national de santé publique du Québec, Montréal, pp 1–14. https://www.inspq.qc.ca/pdf/publications/1274_EspacesVertsUrbainsSante.pdf. Accessed 2 Aug 2023

    Google Scholar 

  316. Bauman A, Bull F (2007) Environmental correlates of physical activity and walking in adults and children: a review of reviews. National Institute of Clinical Excellence, pp 1–44

    Google Scholar 

  317. Lee ACK, Maheswaran R (2010) The health benefits of urban green spaces: a review of the evidence. J Public Health (Oxf) 33(2):212–222

    Article  Google Scholar 

  318. Kaczynski AT, Henderson KA (2007) Environmental correlates of physical activity: a review of evidence about parks and recreation. Leis Sci 29(4):315–354

    Article  Google Scholar 

  319. Bowler D, Buyung-Ali L, Knight T, Pullin A (2010) A systematic review of evidence for the added benefits to health of exposure to natural environments. BMC Public Health 10(1):456

    Article  Google Scholar 

  320. Welegedara NPY, Agrawal SK, Lotfi G (2023) Exploring spatiotemporal changes of the urban heat island effect in high-latitude cities at a neighbourhood level: a case of Edmonton, Canada. Sustain Cities Soc 90:104403. https://doi.org/10.1016/j.scs.2023.104403

    Article  Google Scholar 

  321. Dimoudi A, Nikolopoulou M (2003) Vegetation in the urban environment: microclimatic analysis and benefits. Energ Buildings 35(1):69–76

    Article  Google Scholar 

  322. Dentamaro I, Lafortezza R, Colangelo G, Carrus G, Sanesi G (2009) Benefits and well-being perceived by green spaces users during heat waves. Urban For Urban Green 8:97–108

    Article  Google Scholar 

  323. Skelhorna C, Lindley S, Levermore G (2014) The impact of vegetation types on air and surface temperatures in a temperate city: a fine scale assessment in Manchester, UK. Landsc Urban Plan 121:129–140

    Article  Google Scholar 

  324. Chen D, Wang X, Thatcher M, Barnett G, Kachenko A, Prince R (2014) Urban vegetation for reducing heat related mortality. Environ Pollut 192:275–284

    Article  Google Scholar 

  325. Stone B Jr, Vargo J, Liu P, DeLucia A, Trail M, Hu Y et al (2014) Avoided heat-related mortality through climate adaptation strategies in three US cities. PLoS One 9(6):e100852

    Article  Google Scholar 

  326. Giguère M (2009) Literature review of urban heat islands mitigation strategy. Institut national de santé publique du Québec, Montréal, pp 1–75. https://www.inspq.qc.ca/pdf/publications/1513_UrbanHeatIslandMitigationStrategies.pdf. Accessed 3 Aug 2023

    Google Scholar 

  327. Beaudoin M, Gosselin P (2016) An effective public health program to reduce urban heat islands in Québec, Canada. Pan Am J Public Health 40(3):160–166

    Google Scholar 

  328. Elisabet Lindgren E, Elmqvist T (2017) Ecosystem services and human health. In: Oxford research encyclopedia of environmental science. Oxford University Press. https://doi.org/10.1093/acrefore/9780199389414.013.86

    Chapter  Google Scholar 

  329. Water and Sanitation – United Nations Sustainable Development (2023) United Nations Sustainable Development Goals. https://www.un.org/sustainabledevelopment/water-and-sanitation/. Accessed 9 Aug 2023

  330. IUCN (ed) (2020) Global standard for nature-based solutions: a user-friendly framework for the verification, design and scaling up of NbS, 1st edn. IUCN, Gland

    Google Scholar 

  331. Langergraber G, Pucher B, Simperler L, Kisser J, Katsou E, Buehler D, Mateo MCG, Atanasova N (2020) Implementing nature-based solutions for creating a resourceful circular city. Blue-Green Syst 2:173–185

    Article  Google Scholar 

  332. MacKinnon M, Pedersen Zari M, Brown DK, Benavidez R, Jackson B (2023) Urban biomimicry for flood mitigation using an ecosystem service assessment tool in Central Wellington, New Zealand. Biomimetics 8:9. https://doi.org/10.3390/biomimetics8010009

    Article  Google Scholar 

  333. Boehnke D, Krehl A, Mörmann K, Volk R, Lützkendorf T, Naber E, Becker R, Norra S (2022) Map** urban green and its ecosystem services at microscale—a methodological approach for climate adaptation and biodiversity. Sustainability 14:9029. https://doi.org/10.3390/su14159029

    Article  Google Scholar 

  334. Bona S, Silva-Afonso A, Gomes R, Matos R, Rodrigues F (2023) Nature-based solutions in urban areas: a European analysis. Appl Sci 13:168. https://doi.org/10.3390/app13010168

    Article  CAS  Google Scholar 

  335. Gudde PA (2022) Literature review – cool down the town: provision of ecosystem services in urban heat island effect solutions. Dissertation. Utrecht University. https://studenttheses.uu.nl/bitstream/handle/20.500.12932/41538/31-1%20Literature%20Review%20PANM%20Gudde.pdf?sequence=1&isAllowed=y. Accessed 5 Aug 2023

  336. Veerkamp CJ, Schipper AM, Hedlund K, Lazarova T, Nordin A, Hanson HI (2021) A review of studies assessing ecosystem services provided by urban green and blue infrastructure. Ecosyst Serv 52:101367

    Article  Google Scholar 

  337. Mosca F, Dotti Sani GM, Giachetta A, Perini K (2021) Nature-based solutions: thermal comfort improvement and psychological well-being, a case study in Genoa, Italy. Sustainability 13:11638. https://doi.org/10.3390/su132111638

    Article  Google Scholar 

  338. Mokhtari Z, Barghjelveh S, Sayahnia R, Qureshi S, Russo A (2022) Dynamic and heterogeneity of urban heat island: a theoretical framework in the context of urban ecology. Land 11:1155. https://doi.org/10.3390/land11081155

    Article  Google Scholar 

  339. Bosch M, Locatelli M, Hamel P, Jaligot R, Chenal J, Joost S (2020) Evaluating urban greening scenarios for urban heat mitigation: a spatially-explicit approach. BioRxiv. https://doi.org/10.1101/2020.11.09.373779

  340. Eleftheria A, Phil J (2006) Sustainable urban future in Southern Europe – what about the Heat Island Effect? European Regional Science Association, ERSA conference papers, ersa06p392, https://ideas.repec.org/p/wiw/wiwrsa/ersa06p392.html

  341. Alexandri E, Jones P (2008) Temperature decreases in an urban canyon due to green walls and green roofs in diverse climates. Build Environ 43(4):480–493. https://doi.org/10.1016/j.buildenv.2006.10.055

    Article  Google Scholar 

  342. Li Y, Sun Y, Li J, Gao C (2020) Socioeconomic drivers of urban heat island effect: empirical evidence from major Chinese cities. Sustain Cities Soc 63:102425. https://doi.org/10.1016/j.scs.2020.102425

    Article  Google Scholar 

  343. Miner MJ, Taylor RA, Jones C, Phelan PE (2017) Efficiency, economics, and the urban heat island. Environ Urban 29(1):183–194. https://doi.org/10.1177/0956247816655676

    Article  Google Scholar 

  344. Lu X, Wang H, Chen H, Gao S (2022) Assessing the impact of natural conditions/socioeconomic indicators on the urban thermal environment based on geographic big data. Atmos 13(12):1942. https://doi.org/10.3390/atmos13121942

    Article  Google Scholar 

  345. de’Donato F et al (2016) ISEE annual meeting 2016. In: Environmental health perspectives (EHP). International Society for Environmental Epidemiology (ISEE). https://ehp.niehs.nih.gov/doi/abs/10.1289/isee.2016.3731. Accessed 9 Aug 2023

    Google Scholar 

  346. Whiteoak K, Saigar J (2019) Estimating the economic benefits of Urban Heat Island mitigation – economic analysis. Cooperative Research Centre for Water Sensitive Cities, Melbourne. https://watersensitivecities.org.au/wp-content/uploads/2019/08/UHI-mitigation-economic-benefits-Final-Report_approve.pdf. Accessed 3 Aug 2023

    Google Scholar 

  347. Mills G, Stewart ID, Niyogi D (2022) The origins of modern urban climate science: reflections on ‘A numerical model of the urban heat island’. Prog Phys Geogr Earth Environ 46(4):649–656

    Article  Google Scholar 

  348. Hu Y, Hou M, Jia G, Zhao C, Zhen X, Xu Y (2019) Comparison of surface and canopy urban heat islands within megacities of eastern China. ISPRS J Photogramm Remote Sens 156:160–168

    Article  Google Scholar 

  349. Sidiqui P, Tariq MAUR, Ng AWM (2022) An investigation to identify the effectiveness of socioeconomic, demographic, and buildings’ characteristics on surface urban heat island patterns. Sustainability 14:2777. https://doi.org/10.3390/su14052777

    Article  Google Scholar 

  350. COP27: the top quotes from climate and world leaders at the UN Summit (2022) World Economic Forum – COP27. https://www.weforum.org/agenda/2022/11/cop27-quotes-climate-leaders/. Accessed 11 Aug 2023

  351. Mathew T (2011) Climate change adaptation in urban systems: strategies for planning regimes. Research paper 32, Urban Research Program, e-prints, pp 1–19. https://www.eprints.qut.edu.au/62271/13/Climate_Change_Adaptation_in_Urban_Systems_Author%27s_Accepted_Copy.pdf. Accessed 11 Aug 2023

  352. Mohamed W (2022) Urban greening can reduce impact of global heating in cities, finds study. The Guardian. https://www.theguardian.com/environment/2022/sep/29/urban-greening-reduce-impact-global-heating-cities-study. Accessed 10 Aug 2023

  353. Liu Z, Zhan W, Bechtel B et al (2022) Surface warming in global cities is substantially more rapid than in rural background areas. Commun Earth Environ 3:219. https://doi.org/10.1038/s43247-022-00539-x

    Article  Google Scholar 

  354. IPCC (2007) Summary for policymakers. In: Parry ML et al (eds) Climate change 2007: impacts, adaptation and vulnerability – contribution of Working Group II to the fourth assessment report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge

    Google Scholar 

  355. Adger WN, Arnell NW, Tompkins EL (2005) Successful adaptation to climate change across scales. Glob Environ Chang 15:77–86

    Article  Google Scholar 

  356. Cuthbert MO, O’Carroll D, Rau GC (2022) This is how to reap the benefits of making our cities greener. World Economic Forum – Climate Change. https://www.weforum.org/agenda/2022/02/urban-greening-extreme-weather-climate-change-cities/. Accessed 11 Aug 2023

    Google Scholar 

  357. Cuthbert MO, Rau GC, Ekström M et al (2022) Global climate-driven trade-offs between the water retention and cooling benefits of urban greening. Nat Commun 13:518. https://doi.org/10.1038/s41467-022-28160-8

    Article  CAS  Google Scholar 

  358. Mabon L, Shih WY (2021) Urban greenspace as a climate change adaptation strategy for subtropical Asian cities: a comparative study across cities in three countries. Glob Environ Change 68:102248. https://doi.org/10.1016/j.gloenvcha.2021.102248

    Article  Google Scholar 

  359. Lobo J, Aggarwal RM, Alberti M et al (2023) Integration of urban science and urban climate adaptation research: opportunities to advance climate action. npj Urban Sustain 3:32. https://doi.org/10.1038/s42949-023-00113-0

    Article  Google Scholar 

  360. Atiqul Haq SM et al (2021) Public perceptions of urban green spaces: convergences and divergences. Front Sustain Cities 3. https://doi.org/10.3389/frsc.2021.755313

  361. Collins CMT, Cook-Monie I, Raum S (2019) What do people know? Ecosystem services, public perception, and sustainable management of urban park trees in London, U.K. Urban For Urban Green 43:126362. https://doi.org/10.1016/j.ufug.2019.06.005

    Article  Google Scholar 

  362. Duan J, Wang Y, Fan C, **a B, de Groot R (2018) Perception of urban environmental risks and the effects of urban green infrastructures (UGIs) on human well-being in four public green spaces of Guangzhou, China. Environ Manag 62:500–517. https://doi.org/10.1007/s00267-018-1068-8

    Article  Google Scholar 

  363. Zhao C, Yan Y, Wang C, Tang M, Wu G, Ding D et al (2018) Adaptation and mitigation for combating climate change – from single to joint. Ecosyst Health Sustain 4:85–94. https://doi.org/10.1080/20964129.2018.1466632

    Article  Google Scholar 

  364. Guenat S, Porras Lopez G, Mkwambisi DD, Dallimer M (2021) Unpacking stakeholder perceptions of the benefits and challenges associated with urban greenspaces in sub-Saharan Africa. Front Environ Sci 9:e591512. https://doi.org/10.3389/fenvs.2021.591512

    Article  Google Scholar 

  365. Kim M, Rupprecht CDD, Furuya K (2019) Typology and perception of informal green space in urban interstices: a case study of Ichikawa City, Japan. Int Rev Spat Plan Sustain Dev 8:4–20. https://doi.org/10.14246/irspsd.8.1_4

    Article  Google Scholar 

  366. Lo AY, Byrne JA, Jim CY (2017) How climate change perception is resha** attitudes towards the functional benefits of urban trees and green space: lessons from Hong Kong. Urban For Urban Green 23:74–83. https://doi.org/10.1016/j.ufug.2017.03.007

    Article  Google Scholar 

  367. Hoyle H, Jorgensen A, Hitchmough JD (2019) What determines how we see nature? Perceptions of naturalness in designed urban green spaces. People Nat 1:167–180. https://doi.org/10.1002/pan3.19

    Article  Google Scholar 

  368. Jahan Z, Shirazi SA, Sharkullah K (2019) Evaluation of residents perception about socio-economic and environmental impacts of urban green spaces of Lahore, Pakistan. Int J Econ Environ Geol 10:87–96. https://doi.org/10.46660/ijeeg.Vol10.Iss2.2019.267

    Article  Google Scholar 

  369. Włodarczyk-Marciniak R, Sikorska D, Krauze K (2020) Residents’ awareness of the role of informal green spaces in a post-industrial city, with a focus on regulating services and urban adaptation potential. Sustain Cities Soc 59:102236. https://doi.org/10.1016/j.scs.2020.102236

    Article  Google Scholar 

  370. Beyene GA, Borishe EN (2021) Public Urban green spaces’ visiting habits and perception regarding their health benefits in Addis Ababa City, Ethiopia. Int J Environ Prot Policy 9:50–58. https://doi.org/10.11648/j.ijepp.20210903.11

    Article  Google Scholar 

  371. Rupprecht CD (2017) Informal urban green space: residents’ perception, use, and management preferences across four major Japanese shrinking cities. Land 6:59. https://doi.org/10.3390/land6030059

    Article  Google Scholar 

  372. % of public green space (parks and gardens) (2023) World Cities Culture Forum, Global leadership on culture in cities. https://www.worldcitiescultureforum.com/data/of-public-green-space-parks-and-gardens. Accessed 14 Aug 2023

  373. Quaranta E, Dorati C, Pistocchi A (2021) Water, energy, and climate benefits of urban greening throughout Europe under different climatic scenarios. Sci Rep 11:12163. https://doi.org/10.1038/s41598-021-88141-7

    Article  CAS  Google Scholar 

  374. Wong NH, Tan CL, Kolokotsa DD et al (2021) Greenery as a mitigation and adaptation strategy to urban heat. Nat Rev Earth Environ 2:166–181. https://doi.org/10.1038/s43017-020-00129-5

    Article  Google Scholar 

  375. Climate change benefits of reducing heat islands (2023) EPA – United States Environmental Agency. https://www.epa.gov/heatislands/climate-change-and-heat-islands. Accessed 13 Aug 2023

  376. Innovative pavement solution for the mitigation of the Urban Heat Island Effect (Life Heatland) (2022) Climate Adapt – EEA. https://climate-adapt.eea.europa.eu/en/metadata/projects/innovative-pavement-solution-for-the-mitigation-of-the-urban-heat-island-effect. Accessed 13 Aug 2023

  377. The HEATLAND – reducing the Heat Island (2022) Life Heatland – EUROPEAN LIFE PROJECTS. https://heatlandlife.eu/. Accessed 13 Aug 2023

  378. United Nations (2023) UN research roadmap for the COVID-19 recovery. https://www.un.org/en/pdfs/UNCOVID19ResearchRoadmap.pdf. Accessed 20 Aug 2023

  379. Urban greening post covid-19: what it means for business (2022). Earth911. https://earth911.com/business-policy/urban-greening-post-covid-19/. Accessed 19 Aug 2023

  380. Cities and the circular economy (2017) Ellen MacArthur Foundation. https://ellenmacarthurfoundation.org/cities-and-the-circular-economy-deep-dive. Accessed 20 Aug 2023

  381. United Nations (2023) Policies on spatial distribution and urbanization have broad impacts on sustainable development. https://www.un.org/development/desa/pd/sites/www.un.org.development.desa.pd/files/undes_pd_2020_popfacts_urbanization_policies.pdf. Accessed 20 Aug 2023

  382. Natalucci F, Suntheim F, Vandenbussche J (2021) How investment funds can drive the green transition. IMF. https://www.imf.org/en/Blogs/Articles/2021/10/04/gfsr-ch3-how-investment-funds-can-drive-the-green-transition. Accessed 26 Aug 2023

    Google Scholar 

  383. World economy set to lose up to 18% GDP from climate change if no action taken, reveals Swiss Re Institute’s stress-test analysis (2021) Swiss Re Group. https://www.swissre.com/media/press-release/nr-20210422-economics-of-climate-change-risks.html. Accessed 26 Aug 2023

  384. Callahan CW, Mankin JS (2022) Globally unequal effect of extreme heat on economic growth. Sci Adv 8(43):eadd3726. https://doi.org/10.1126/sciadv.add3726

    Article  CAS  Google Scholar 

  385. Environmental Protection Agency (2023) Using trees and vegetation to reduce heat islands. EPA. https://www.epa.gov/heatislands/using-trees-and-vegetation-reduce-heat-islands. Accessed 28 Aug 2023

    Google Scholar 

  386. Dickinsonre (2015) Storm water management model. https://commons.wikimedia.org/wiki/File:SWMM5LIDFeatures51.png. Accessed 26 Aug 2023

  387. Lukes R, Kloss C (2008) Managing wet weather with green infrastructure municipal handbook: green streets. Environmental Protection Agency: Low Impact Development Centre. https://nepis.epa.gov/Exe/ZyPDF.cgi/P1005FMJ.PDF?Dockey=P1005FMJ.PDF. Accessed 26 Aug 2023

    Google Scholar 

  388. Environmental Protection Agency (2023) Benefits of green infrastructure. EPA. https://www.epa.gov/green-infrastructure/benefits-green-infrastructure. Accessed 14 Aug 2023

    Google Scholar 

  389. Santamouris M, Osmond P (2020) Increasing green infrastructure in cities: impact on ambient temperature, air quality and heat-related mortality and morbidity. Buildings 10:233. https://doi.org/10.3390/buildings10120233

    Article  Google Scholar 

  390. Tools and resources: improving air quality (2023) Forest Research. https://www.forestresearch.gov.uk/tools-and-resources/fthr/urban-regeneration-and-greenspace-partnership/greenspace-in-practice/benefits-of-greenspace/improving-air-quality/. Accessed 15 Aug 2023

  391. Nutter MA (2016) Green works, City of Philadelphia. https://www.phila.gov/media/20160419140515/2009-greenworks-vision.pdf. Accessed 15 Aug 2023

  392. Stratus Consulting Inc (2009) A triple bottom line assessment of traditional and green infrastructure options for controlling CSO events in Philadelphia’s watersheds, Boulder

    Google Scholar 

  393. EPA (2015) Proctor Creek’s Boone Boulevard Green Street Project Health Impact Assessment (HIA). EPA/600/R-14/400. U.S. Environmental Protection Agency, Office of Research and Development and Region 4, Washington, DC

    Google Scholar 

  394. Gunawardena KR, Wells MJ, Kershaw T (2017) Utilising green and bluespace to mitigate urban heat island intensity. Sci Total Environ 584–585:1040–1055. https://doi.org/10.1016/j.scitotenv.2017.01.158

    Article  CAS  Google Scholar 

  395. Well F, Ludwig F (2020) Blue–green architecture: a case study analysis considering the synergetic effects of water and vegetation. Front Archit Res 9(1):191–202. https://doi.org/10.1016/j.foar.2019.11.001

    Article  Google Scholar 

  396. Green Infrastructure (2023) European Commission, Environment. https://environment.ec.europa.eu/topics/nature-and-biodiversity/green-infrastructure_en. Accessed 16 Aug 2023

  397. Green Infrastructure (2023) Biodiversity: information system of Europe, European Commission. https://biodiversity.europa.eu/green-infrastructure. Accessed 16 Aug 2023

  398. ARUP (2014) Cities alive: rethinking green infrastructure. ARUP. http://www.arup.com. Accessed 16 Aug 2023

    Google Scholar 

  399. Urban development – overview (2023) The World Bank. https://www.worldbank.org/en/topic/urbandevelopment/overview. Accessed 16 Aug 2023

  400. Gledhill DG, James P (2008) Rethinking urban blue spaces from a landscape perspective: species, scale, and the human element. Salzburger Geographische Arbeiten 42:151–164

    Google Scholar 

  401. Selman P (2008) What do we mean by sustainable landscape? Sustain Sci Pract Policy 4(2):23–28

    Google Scholar 

  402. Núñez Peiró M, Sánchez-Guevara C, Neila González FJ (2017) Update of the urban heat island of Madrid and its influence on the building’s energy simulation. In: Mercader-Moyano P (ed) Sustainable development and renovation in architecture, urbanism and engineering. Springer, Cham. https://doi.org/10.1007/978-3-319-51442-0_28

    Chapter  Google Scholar 

  403. Ghofrani Z, Sposito V, Faggian R (2017) A comprehensive review of blue-green infrastructure concepts. Environ Sustain 6(1):15–36

    Google Scholar 

  404. Abbott J, Davies P, Simkins P et al (2013) Creating water sensitive places – sco** the potential for water sensitive urban design in the UK. CIRIA, London

    Google Scholar 

  405. Hoyer J, Dickhaut W, Kronwitter L, Weber B (2011) Water sensitive urban design: principles and inspiration for sustainable stormwater management in the city of the future. Jovis, Berlin

    Google Scholar 

  406. Lawson L, Thorne C, Ahilan S, Allen D et al (2014) Delivering and evaluating the multiple flood risk benefits in blue-green cities; an interdisciplinary approach. In: Proverbs D, Brebbia CA (eds) Flood recovery innovation and response IV. WIT Press, Southampton

    Google Scholar 

  407. Alves A, Gómez JP, Vo**ovic Z, Sánchez A, Weesakul S (2018) Combining co-benefits and stakeholders’ perceptions into green infrastructure selection for flood risk reduction. Environments 5(2):29–123

    Article  Google Scholar 

  408. Jiang Y, Zevenbergen C, Ma Y (2018) Urban pluvial flooding and stormwater management: a contemporary review of China’s challenges and “sponge cities” strategy. Environ Sci Pol 80:132–143

    Article  Google Scholar 

  409. Verichev K, Salazar-Concha C, Díaz-López C, Carpio M (2023) The influence of the urban heat island effect on the energy performance of residential buildings in a city with an oceanic climate during the summer period: case of Valdivia, Chile. Sustain Cities Soc 97:104766. https://doi.org/10.1016/j.scs.2023.104766

    Article  Google Scholar 

  410. Salvati A, Coch Roura H, Cecere C (2017) Assessing the urban heat island and its energy impact on residential buildings in Mediterranean climate: Barcelona case study. Energ Buildings 146:38–54. https://doi.org/10.1016/j.enbuild.2017.04.025

    Article  Google Scholar 

  411. Zhan D, Sezer N, Hou D, Wang L, Hassan IG (2023) Integrating urban heat island impact into building energy assessment in a hot-arid city. Buildings 13:1818. https://doi.org/10.3390/buildings13071818

    Article  Google Scholar 

  412. Bowder G et al (2020) Integrating green and gray. Synopsis, World Resources Institute. https://www.wri.org/research/integrating-green-and-gray-creating-next-generation-infrastructure. Accessed 18 Aug 2023

    Google Scholar 

  413. Wesener A, McWilliam W (2021) Integrated urban green and grey infrastructure. In: The Palgrave encyclopedia of urban and regional futures. Palgrave Macmillan, Cham. https://doi.org/10.1007/978-3-030-51812-7_126-1

    Chapter  Google Scholar 

  414. Choi J, Kim G (2022) History of Seoul’s parks and green space policies: focusing on policy changes in urban development. Land 11(4):474

    Article  Google Scholar 

  415. Jung Y (2023) A move towards just sustainability: transformation of discourses around urban sustainability planning in Seoul, Republic of Korea. Local Environ 28(3):347–364

    Article  Google Scholar 

  416. Robinson T, Ji M (2022) Freeway removal: from Cheonggyecheon to Seoullo 7017. In: Sustainable, smart and solidary seoul: transforming an Asian megacity. Springer International Publishing, Cham, pp 39–71

    Chapter  Google Scholar 

  417. United Nations (2023) The sustainable development agenda. https://www.un.org/sustainabledevelopment/development-agenda/. Accessed 28 Aug 2023

  418. Lombardía A, Gómez-Villarino MT (2023) Green infrastructure in cities for the achievement of the UN sustainable development goals: a systematic review. Urban Ecosyst. https://doi.org/10.1007/s11252-023-01401-4

  419. Liu J, Hull V, Godfray HCJ, Tilman D, Gleick P, Hoff H, Pahl-Wostl C, Xu Z, Chung MG, Sun J, Li S (2018) Nexus approaches to global sustainable development. Nat Sustain 1(9):466–476. https://doi.org/10.1038/s41893-018-0135-8

    Article  Google Scholar 

  420. Lafortezzaa R, Carrusc G, Sanesia G, Davies C (2009) Benefits and well-being perceived by people visiting green spaces in periods of heat stress. https://doi.org/10.1016/j.ufug.2009.02.003

  421. Gatto E, Buccolieri R, Aarrevaara E, Ippolito F, Emmanuel R, Perronace L, Santiago JL (2020) Impact of urban vegetation on outdoor thermal comfort: comparison between a Mediterranean City (Lecce, Italy) and a Northern European City (Lahti, Finland). Forests 11(2):228. https://doi.org/10.3390/f11020228. MDPI AG

    Article  Google Scholar 

  422. Wu Y, Wei YD, Liu M, García I (2023) Green infrastructure inequality in the context of COVID-19: taking parks and trails as examples. Urban For Urban Green 86:128027. https://doi.org/10.1016/j.ufug.2023.128027

    Article  Google Scholar 

  423. New Urban Agenda (2022) UN-Habitat. https://unhabitat.org/about-us/new-urban-agenda. Accessed 21 Aug 2023

  424. The High-Level Meeting of the General Assembly on the progress in the implementation of the New Urban Agenda (2022) UN-Habitat. https://unhabitat.org/hlm-new-urban-agenda. Accessed 21 Aug 2023

  425. The mandate for healthy cities (2023) The World Health Organization. https://www.who.int/teams/health-promotion/enhanced-well-being/ninth-global-conference/healthy-cities. Accessed 21 Aug 2023

  426. Cities key to solving climate crisis (2023) The World Bank. https://www.worldbank.org/en/news/press-release/2023/05/18/cities-key-to-solving-climate-crisis. Accessed 21 Aug 2023

  427. C40 is a global network of mayors of the world’s leading cities that are united in action to confront the climate crisis (2023) C40. https://www.c40.org/. Accessed 21 Aug 2023

  428. Research and innovation: nature-based solutions research policy (2023) European Commission. https://research-and-innovation.ec.europa.eu/research-area/environment/nature-based-solutions/research-policy_en. Accessed 21 Aug 2023

  429. Park JJ, O’Brien L, Roe J, Thompson CW, Mitchell R (2011) The natural outdoors and health: assessing the value and potential contribution of secondary public data sets in the UK to current and future knowledge. Health Place 17(1):269–279. https://doi.org/10.1016/j.healthplace.2010.11.005

    Article  Google Scholar 

  430. Ubalde-López M et al (2023) BioCities as promotors of health and well-being. In: Scarascia-Mugnozza GE, Guallart V, Salbitano F, Ottaviani Aalmo G, Boeri S (eds) Transforming biocities. Future city, vol 20. Springer, Cham. https://doi.org/10.1007/978-3-031-29466-2_6

    Chapter  Google Scholar 

  431. Friedlingstein, Pierre, Michael O’sullivan, Matthew W. Jones, Robbie M. Andrew, Luke Gregor, Judith Hauck, Corinne Le Quéré et al. “Global carbon budget 2022.” Earth System Science Data Discussions 2022 (2022): 1–159. Available at https://essd.copernicus.org/articles/14/4811/2022/essd-14-4811-2022.pdf

  432. Gedzelman, S. D., S. Austin, R. Cermak, N. Stefano, S. Partridge, S. Quesenberry, and D. A. Robinson. “Mesoscale aspects of the urban heat island around New York City.” Theoretical and applied climatology 75(2003):29–42

    Google Scholar 

  433. Imhoff, Marc L., ** Zhang, Robert E. Wolfe, and Lahouari Bounoua. “Remote sensing of the urban heat island effect across biomes in the continental USA.” Remote sensing of environment 114, no. 3(2010):504–513

    Google Scholar 

  434. Kłysik, Kazimierz, and Krzysztof Fortuniak. “Temporal and spatial characteristics of the urban heat island of Łódź, Poland.” Atmospheric environment 33, no. 24–25(1999):3885–3895

    Google Scholar 

  435. Yang, Jiachuan, and Elie Bou-Zeid. “Should cities embrace their heat islands as shields from extreme cold?.” Journal of Applied Meteorology and Climatology 57, no. 6(2018): 1309–1320

    Google Scholar 

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Aboulnaga, M., Trombadore, A., Mostafa, M., Abouaiana, A. (2024). Livability: The Direction to Mitigating Urban Heat Islands’ Effect, Achieving Healthy, Sustainable, and Resilient Cities, and the Coverage. In: Livable Cities. Springer, Cham. https://doi.org/10.1007/978-3-031-51220-9_1

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