REFERENCES

1. Kaur, A.; Ghosh, S.; Das, S. K. Satellite image-based land use/land cover dynamics and forest cover change analysis (1996-2016) in Odisha, India. Asian. J. Water. Environ. Pollut. 2019, 16, 25-39.

2. Desa, U. World urbanization prospects: the 2014 revision. United Nations Department of Economics and Social Affairs. Population Division: New York, NY, USA 41 (2015). https://digitallibrary.un.org/record/826634?utm_source=chatgpt.com&v=pdf (accessed 2026-03-12).

3. Buettner, T. Urban estimates and projections at the united nations: the strengths, weaknesses, and underpinnings of the world urbanization prospects. Spat. Demogr. 2015, 3, 91-108.

4. Amores, A.; Marcos, M.; Pedreros, R.; et al. Coastal flooding in the Maldives induced by mean sea-level rise and wind-waves: from global to local coastal modelling. Front. Mar. Sci. 2021, 8, 665672.

5. Roland, H. B. External vulnerability, local resilience, and urban-rural heterogeneity in the Marshall Islands. Environ. Sci. Policy. 2024, 152.

6. Leal Filho, W.; Krishnapillai, M.; Sidsaph, H.; et al. Climate change adaptation on small island states: an assessment of limits and constraints. J. Mar. Sci. Eng. 2021, 9, 602.

7. Ru, X.; Song, H.; Xia, H.; et al. Effects of land use and land cover change on temperature in summer over the yellow river basin, China. Remote. Sens. 2022, 14, 4352.

8. Jing, Y.; Liu, Y.; Cai, E.; Liu, Y.; Zhang, Y. Quantifying the spatiality of urban leisure venues in Wuhan, Central China - GIS-based spatial pattern metrics. Sustain. Cities. Soc. 2018, 40, 638-47.

9. Ito, A.; Hajima, T. Biogeophysical and biogeochemical impacts of land-use change simulated by MIROC-ES2L. Prog. Earth. Planet. Sci. 2020, 7, 54.

10. Lorenz, K.; Lal, R. Organic Agriculture and Climate Change, 1th ed.; Springer Cham, 2023.

11. American Meteorological Society. Biogeophysical climate impacts of land use and land cover change (LULCC). https://journals.ametsoc.org/collection/LULCC (accessed 2026-03-11).

12. Jia, S.; Yang, C.; Wang, M.; et al. Heterogeneous impact of land-use on climate change: study from a spatial perspective. Front. Environ. Sci. 2022, 10, 840603.

13. Li, L.; Awada, T.; Zhang, Y.; et al. Global land use change and its impact on greenhouse gas emissions. Glob. Change. Biol. 2024, 30, e17604.

14. Yang, H.; Wang, Y.; Tu, P.; et al. Evaluating the effects of future urban expansion on ecosystem services in the Yangtze River Delta urban agglomeration under the shared socioeconomic pathways. Ecol. Indic. 2024, 160, 111831.

15. Pielke, R. A.; Pitman, A.; Niyogi, D.; et al. Land use/land cover changes and climate: modeling analysis and observational evidence. WIREs. Clim. Change. 2011, 2, 828-50.

16. Degu, A. M.; Hossain, F.; Niyogi, D.; et al. The influence of large dams on surrounding climate and precipitation patterns. Geophys. Res. Lett. 2011, 38.

17. Bright, R. M. Metrics for biogeophysical climate forcings from land use and land cover changes and their inclusion in life cycle assessment: a critical review. Environ. Sci. Technol. 2015, 49, 3291-303.

18. Hua, W.; Chen, H.; Li, X. Effects of future land use change on the regional climate in China. Sci. China. Earth. Sci. 2015, 58, 1840-8.

19. Chu, X.; Lu, Z.; Wei, D.; Lei, G. Effects of land use/cover change (LUCC) on the spatiotemporal variability of precipitation and temperature in the Songnen Plain, China. J. Integr. Agric. 2022, 21, 235-48.

20. Cao, Q.; Liu, Y.; Georgescu, M.; Wu, J. Impacts of landscape changes on local and regional climate: a systematic review. Landsc. Ecol. 2020, 35, 1269-90.

21. Deng, X.; Zhao, C.; Lin, Y.; et al. Downscaling the impacts of large-scale LUCC on surface temperature along with IPCC RCPs: a global perspective. Energies 2014, 7, 2720-39.

22. Cao, Q.; Yu, D.; Georgescu, M.; Han, Z.; Wu, J. Impacts of land use and land cover change on regional climate: a case study in the agro-pastoral transitional zone of China. Environ. Res. Lett. 2025, 10, 124025.

23. Laux, P.; Nguyen, P. N. B.; Cullmann, J.; Kunstmann, H. Impacts of land-use/land-cover change and climate change on the regional climate in the central Vietnam. In Land Use and Climate Change Interactions in Central Vietnam; Nauditt, A., Ribbe, L., Eds.; Water Resources Development and Management; Springer Singapore, 2017; pp 143-51.

24. Barati, A. A.; Zhoolideh, M.; Azadi, H.; Lee, J.; Scheffran, J. Interactions of land-use cover and climate change at global level: how to mitigate the environmental risks and warming effects. Ecol. Indic. 2023, 146, 109829.

25. Bonan, G. B. Observational evidence for reduction of daily maximum temperature by croplands in the midwest United States. J. Climate. 2001, 14, 2430-42.

26. Minnett, P.; Alvera-azcárate, A.; Chin, T.; et al. Half a century of satellite remote sensing of sea-surface temperature. Remote. Sens. Environ. 2019, 233, 111366.

27. Zhou, D.; Xiao, J.; Bonafoni, S.; et al. Satellite remote sensing of surface urban heat islands: progress, challenges, and perspectives. Remote. Sens. 2018, 11, 48.

28. Ahmed, M. R.; Ghaderpour, E.; Gupta, A.; Dewan, A.; Hassan, Q. K. Opportunities and challenges of spaceborne sensors in delineating land surface temperature trends: a review. IEEE. Sensors. J. 2023, 23, 6460-72.

29. Muro, J.; Strauch, A.; Heinemann, S.; et al. Land surface temperature trends as indicator of land use changes in wetlands. Int. J. Appl. Earth. Obs. Geoinf. 2018, 70, 62-71.

30. Krivoguz, D.; Bespalova, E.; Zhilenkov, A.; et al. Unveiling climate-land use and land cover interactions on the Kerch Peninsula using structural equation modeling. Climate 2024, 12, 120.

31. Fonseka, H. P. U.; Premasiri, H. M. R.; Chaminda, S. P.; Zhang, H. Morphological and functional polycentric urbanization in Colombo Metropolitan of Sri Lanka using time-series satellite images from 1988-2022. Sustainability 2024, 16, 7816.

32. Noszczyk, T. A review of approaches to land use changes modeling. Hum. Ecol. Risk. Assess. 2018, 25, 1377-405.

33. Hernández-delgado, E. A. Coastal restoration challenges and strategies for small island developing states in the face of sea level rise and climate change. Coasts 2024, 4, 235-86.

34. Abdelrahman, M. A. E.; Afifi, A. A.; Scopa, A. A Time series investigation to assess climate change and anthropogenic impacts on quantitative land degradation in the north delta, Egypt. ISPRS. Int. J. Geo-Inf. 2021, 11, 30.

35. Sannigrahi, S.; Zhang, Q.; Joshi, P.; et al. Examining effects of climate change and land use dynamic on biophysical and economic values of ecosystem services of a natural reserve region. J. Clean. Prod. 2020, 257, 120424.

37. Ranagalage, M.; Estoque, R. C.; Murayama, Y. An urban heat island study of the Colombo Metropolitan Area, Sri Lanka, based on landsat data (1997-2017). SPRS. Int. J. Geo-Inf. 2017, 6, 189.

38. Fonseka, P. U.; Zhang, H.; Premasiri, R.; Samarasuriya, C.; Rathnayake, U. Assessing microclimatic influences in Colombo metropolitan area (CMA) amidst global climate change: a comprehensive study from 1980 to 2022. Environ. Monit. Assess. 2025, 197, 199.

39. Subasinghe, S.; Nianthi, R.; Rajapaksha, G.; Gamage, I. Monitoring the impacts of urbanisation on environmental sustainability using geospatial techniques: a case study in Colombo District, Sri Lanka. J. Geospat. Surv. 2021, 1, 1-13.

40. Grimmond, S. Urbanization and global environmental change: local effects of urban warming. Geogr. J. 2007, 173, 83-8.

41. Oh, S.; Son, S.; Min, S. Possible impact of urbanization on extreme precipitation-temperature relationship in East Asian megacities. Weather. Clim. Extremes. 2021, 34, 100401.

42. Lenderink, G.; Van Meijgaard, E. Linking increases in hourly precipitation extremes to atmospheric temperature and moisture changes. Environ. Res. Lett. 2010, 5, 025208.

43. Li, L.; Li, Z. Potential intensification of hourly precipitation extremes in Western Canada: a comprehensive understanding of precipitation-temperature scaling. Atmos. Res. 2023, 295, 106979.

44. Qian, Y.; Chakraborty, T. C.; Li, J.; et al. Urbanization impact on regional climate and extreme weather: current understanding, uncertainties, and future research directions. Adv. Atmos. Sci. 2022, 39, 819-60.

45. Wang, W.; Liu, C.; Zhang, F.; et al. Evaluation of impacts of environmental factors and land use on seasonal surface water quality in arid and humid regions using structural equation models. Ecol. Indic. 2022, 144, 109546.

46. Becker, J. M.; Rai, A.; Rigdon, E. Predictive validity and formative measurement in structural equation modeling: embracing practical relevance. ICIS 2013 Proceedings 2010. https://aisel.aisnet.org/icis2013/proceedings/ResearchMethods/5/ (accessed 2026-03-11).

47. DeMartini, K. S.; Gueorguieva, R.; Taylor, J. R.; et al. Dynamic structural equation modeling of the relationship between alcohol habit and drinking variability. Drug. Alcohol. Depend. 2022, 233, 109202.

48. Parsaee, M.; Joybari, M. M.; Mirzaei, P. A.; Haghighat, F. Urban heat island, urban climate maps and urban development policies and action plans. Environ. Technol. Innov. 2019, 14, 100341.

49. Xiao, F.; Zhu, B.; Zhu, T. Inconsistent urbanization effects on summer precipitation over the typical climate regions in central and eastern China. Theor. Appl. Clim. 2020, 143, 73-85.

50. Lee, S. S.; Kim, B.; Li, Z.; et al. Aerosol as a potential factor to control the increasing torrential rain events in urban areas over the last decades. Atmos. Chem. Phys. 2018, 18, 12531-50.

51. Li, Y.; Schubert, S.; Kropp, J. P.; Rybski, D. On the influence of density and morphology on the Urban Heat Island intensity. Nat. Commun. 2020, 11, 2647.

52. Wang, C.; Zhang, H.; Ma, Z.; Yang, H.; Jia, W. Urban morphology influencing the urban heat island in the high-density city of Xi’an based on the local climate zone. Sustainability 2024, 16, 3946.

53. Park, I.; Min, S. Role of convective precipitation in the relationship between subdaily extreme precipitation and temperature. J. Climate. 2017, 30, 9527-37.

54. Schroeer, K.; Kirchengast, G. Sensitivity of extreme precipitation to temperature: the variability of scaling factors from a regional to local perspective. Clim. Dyn. 2017, 50, 3981-94.

55. Martinkova, M.; Kysely, J. Overview of observed clausius-clapeyron scaling of extreme precipitation in midlatitudes. Atmosphere 2020, 11, 786.

56. Wang, G.; Wang, D.; Trenberth, K. E.; et al. The peak structure and future changes of the relationships between extreme precipitation and temperature. Nature. Clim. Change. 2017, 7, 268-74.

57. Nguyen, C. T.; Chidthaisong, A.; Limsakul, A.; et al. How do disparate urbanization and climate change imprint on urban thermal variations? A comparison between two dynamic cities in Southeast Asia. Sustainable. Cities. and. Society. 2022, 82, 103882.

58. Wang, Z.; Li, B.; Yang, J. Impacts of land use change on the regional climate: a structural equation modeling study in southern China. Adv. Meteorol. 2015, 2015, 563673.

59. Li, X.; Wang, T.; Zhou, Z.; Su, J.; Yang, D. Seasonal characteristics and spatio-temporal variations of the extreme precipitation-air temperature relationship across China. Environ. Res. Lett. 2023, 18, 054022.

60. Zeder, J.; Fischer, E. M. Observed extreme precipitation trends and scaling in Central Europe. Weather. Clim. Extremes. 2020, 29, 100266.

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