1. Kim Y-M, Kim S, Cheong H-K, Kim E-H. Comparison of Temperature Indexes for the Impact Assessment of Heat Stress on Heat-Related Mortality. Environ Health Toxicol. 2011;26. doi:10.5620/eht.2011.26.e2011009

  2. Heris MP, Middel A, Muller B. Impacts of form and design policies on urban microclimate: Assessment of zoning and design guideline choices in urban redevelopment projects. Landsc Urban Plan. 2020;202:103870.

  3. Sheridan SC, Lee CC, Allen MJ. The Mortality Response to Absolute and Relative Temperature Extremes. International Journal of Environmental Research and Public Health. 2019;16(9):1493. doi:10.3390/ijerph16091493

  4. Sheridan SC, Lee CC, Smith ET. A comparison between station observations and reanalysis data in the identification of extreme temperature events. doi:10.1002/essoar.10502708.1

  5. Sheridan SC, Lee CC, Allen MJ. The Mortality Response to Absolute and Relative Temperature Extremes. International Journal of Environmental Research and Public Health. 2019;16(9):1493. doi:10.3390/ijerph16091493

  6. Steadman RG. A Universal Scale of Apparent Temperature. J Climate Appl Meteor. 1984;23(12):1674-1687.

  7. Epstein Y, Moran DS. Thermal Comfort and the Heat Stress Indices. Ind Health. 2006;44(3):388-398.

  8. Urban A, Kyselý J. Comparison of UTCI with Other Thermal Indices in the Assessment of Heat and Cold Effects on Cardiovascular Mortality in the Czech Republic. Int J Environ Res Public Health. 2014;11(1):952-967.

  9. Ng CFS, Ueda K, Ono M, Nitta H, Takami A. Characterizing the effect of summer temperature on heatstroke-related emergency ambulance dispatches in the Kanto area of Japan. Int J Biometeorol. 2013;58(5):941-948.

  10. Allen MJ, Sheridan SC. Mortality risks during extreme temperature events (ETEs) using a distributed lag non-linear model. Int J Biometeorol. 2015;62(1):57-67.

  11. Anderson GB, Brooke Anderson G, Bell ML. Heat Waves in the United States: Mortality Risk during Heat Waves and Effect Modification by Heat Wave Characteristics in 43 U.S. Communities. Environmental Health Perspectives. 2011;119(2):210-218. doi:10.1289/ehp.1002313

  12. Nairn JR, Fawcett RJB. The Excess Heat Factor: A Metric for Heatwave Intensity and Its Use in Classifying Heatwave Severity. Int J Environ Res Public Health. 2014;12(1):227-253.

  13. Ellis FP, Nelson F, Pincus L. Mortality during heat waves in New York City July, 1972 and August and September, 1973. Environ Res. 1975;10(1):1-13.

  14. Schuman SH. Patterns of urban heat-wave deaths and implications for prevention: data from New York and St. Louis during July, 1966. Environ Res. 1972;5(1):59-75.

  15. Hijmans RJ, Cameron SE, Parra JL, Jones PG, Jarvis A. Very high resolution interpolated climate surfaces for global land areas. International Journal of Climatology. 2005;25(15):1965-1978. doi:10.1002/joc.1276

  16. Anderson M. As Rising Heat Bakes U.S. Cities, The Poor Often Feel It Most. NPR. https://www.npr.org/2019/09/03/754044732/as-rising-heat-bakes-u-s-cities-the-poor-often-feel-it-most. Published September 3, 2019. Accessed October 18, 2020.

  17. Mirzaei PA. Recent challenges in modeling of urban heat island. Sustainable Cities and Society. 2015;19:200-206.

  18. Kolokotroni M, Giridharan R. Urban heat island intensity in London: An investigation of the impact of physical characteristics on changes in outdoor air temperature during summer. Solar Energy. 2008;82(11):986-998.

  19. Crank PJ, Middel A, Wagner M, Hoots D, Smith M, Brazel A. Validation of seasonal mean radiant temperature simulations in hot arid urban climates. Sci Total Environ. 2020;749:141392.

  20. Demuzere M, Hankey S, Mills G, Zhang W, Lu T, Bechtel B. Combining expert and crowd-sourced training data to map urban form and functions for the continental US. Sci Data. 2020;7(1):264.