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Heat wave vulnerability and exposure mapping for Osaka City, Japan

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Abstract

Heat waves and heat-related stresses are increasing environmental concerns in urban areas. The impact of heat waves is dependent on the intensity and duration of each event and on underlying environmental and socio-demographic factors which influence population vulnerability. In order to develop effective adaptation strategies, it is important to develop a method to clearly identify the most vulnerable areas based on these factors. The purpose of this study is to develop and map a heat wave vulnerability index combined with heat exposure analysis to identify areas where interventions can be targeted. The vulnerability index was derived from a principle component analysis of eight key variables that influence heat wave vulnerability. Eight proxy measures of vulnerability were obtained from 2010 census and land-use data for the 1904 census districts of Osaka City. Three principle components explained >77 % of the variance (age, employment and education; social isolation; density and lack of green space). The components were combined and weighted to produce a vulnerability score for each census district. The vulnerability scores ranged from 0 to 106, were categorised into eight vulnerability levels and were overlaid with fine-scale air temperature observations. The resulting output identified the distribution of population vulnerability and exposure. This assessment of vulnerability, combining exposure and sensitivity components, can provide precedent for efficient, targeted action to be taken to reduce the impact of heat waves at present and under climate change.

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References

  • Bai H, Islam MN, Kuroki H, Honda K, Wakasugi C (1995) Deaths due to heat waves during the summer of 1994 in Osaka Prefecture, Japan. Nihon Hoigaku Zasshi 49(4):265–274 (article in Japanese)

    CAS  Google Scholar 

  • Braga AL, Zanobetti A, Schwartz J (2002) The effect of weather on respiratory and cardiovascular deaths in 12 U.S. cities. Environ Health Perspect 110:859–863

    Article  Google Scholar 

  • Buscail C, Upegui E, Viel J-F (2012) Mapping heatwave health risk at the community level for public health action. Int J Health Geogr 11:38

    Article  Google Scholar 

  • Chestnut LG, Breffle WS, Smith JB, Kalkstein LS (1998) Analysis of differences in hot-weather-related mortality across 44 US metropolitan areas. Environ Sci Policy 1(1):59–70

    Article  Google Scholar 

  • Chow WTL, Chuang WC, Gober P (2012) Vulnerability to extreme heat in metropolitan Phoenix: spatial, temporal, and demographic dimensions. Prof Geogr 64(2):286–302

    Article  Google Scholar 

  • Chuang W, Gober P (2015) Predicting hospitalization for heat-related illness at the census-tract level: accuracy of a generic Heat Vulnerability Index in Phoenix, Arizona (USA). Environ Health Perspect 123:606–612

    Google Scholar 

  • Curriero FC, Heiner KS, Samet JM, Zeger SL, Strug L, Patz JA (2002) Temperature and mortality in 11 cities of the eastern United States. Am J Epidemiol 155(1):80–87

    Article  Google Scholar 

  • Cutter SL, Boruff BJ, Shirley WL (2003) Social vulnerability to environmental hazards. Soc Sci Q 84:242–261

    Article  Google Scholar 

  • Declet-Barreto J, Brazel AJ, Martin CA, Chow WT, Harlan SL (2013) Creating the park cool island in an inner-city neighborhood: heat mitigation strategy for Phoenix, AZ. Urban Ecosyst 16(3):617–635

    Article  Google Scholar 

  • Ebi KL, Teisburg TJ, Kalkstein LS, Robinson L, Weiher RF (2004) Heat watch/warning systems save lives. Bull Am Meteorol Soc 85(8):1067–1073

    Article  Google Scholar 

  • Fernandez Milan B, Creuzig F (2015) Reducing urban heat wave risk in the 21st century. Curr Opin Environ Sustain 14:221–231

    Article  Google Scholar 

  • Fouillet A, Rey G, Laurent F, Pavillon G, Bellec S, Guihenneuc-Jouyaux C, Clavel J, Jougla E, Hémon D (2006) Excess mortality related to the August 2003 heat wave in France. Int Arch Occup Environ Health 80(1):16–24

    Article  CAS  Google Scholar 

  • Hajat S, O’Connor M, Kosatsky T (2010) Health effects of hot weather: from awareness of risk factors to effective health protection. Lancet 375:856–863

    Article  Google Scholar 

  • Han SG, Huh JH (2008) Estimate of the heat island and building cooling load changes due to the restored stream in Seoul, Korea. Int J Urban Sci 12(2):129–145

    Article  Google Scholar 

  • Harlan SL, Declet-Barreto JH, Stefanov WL, Petitti DB (2013) Neighborhood effects on heat deaths: social and environmental predictors of vulnerability in Maricopa County, Arizona. Environ Health Perspect 121:197–204

    Article  Google Scholar 

  • Huisman M, Kunst AE, Mackenbach JP (2004) Socioeconomic inequalities in morbidity among the elderly: a European overview. Soc Sci Med 57:861–873

    Article  Google Scholar 

  • IPCC (2014) In: Field CB, Barros VR, Dokken DJ, Mach KJ, Mastrandrea MD, Bilir TE, Chatterjee M, Ebi KL, Estrada YO, Genova RC, Girma B, Kissel ES, Levy AN, MacCracken S, Mastrandrea PR, White LL (eds) Climate change 2014: impacts, adaptation, and vulnerability. Part A: Global and sectoral aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge, United Kingdom; New York, NY, USA, p 1132

  • JMA (2015) Japan Meteorological Agency. http://www.data.jma.go.jp/gmd/risk/obsdl/index.php

  • Jarvis A, Reuter HI, Nelson A, Guevara E (2008) Hole-filled SRTM for the globe version 4. Available from the CGIAR-CSI SRTM 90 m Database (http://srtm.csi.cgiar.org)

  • Johnson DP, Stanforth A, Lulla V, Luber G (2012) Developing an applied extreme heat vulnerability index utilizing socioeconomic and environmental data. Appl Geogr 35(1–2):23–31

    Article  Google Scholar 

  • Kim Y, Joh S (2006) A vulnerability study of the low-income elderly in the context of high temperature and mortality in Seoul, Korea. Sci Total Environ 371(1–3):82–88

    Article  CAS  Google Scholar 

  • Mastrangelo G, Fedeli U, Visentin C, Milan G, Fadda E, Spolaore P (2007) Pattern and determinants of hospitalization during heat waves: an ecologic study. BMC Public Health 7:200

    Article  Google Scholar 

  • Masumoto K (2009) Urban heat island in Osaka City—distribution of air temperature and wet bulb globe. In: The seventh international conference on urban climate, 29 June–3 July 2009, Yokohama, Japan

  • Masumoto K, Taniguchi I, Nomura T (2006) Characteristics of air temperature distribution in 2005 and situation of heat island in Osaka City. J Heat Isl Inst Int 1:30–35

    Google Scholar 

  • Matsumoto S (2015) Environmental subsidies to consumers: how did they work in the Japanese market?. Routledge, New York

    Google Scholar 

  • NLNI (2016) National Land Numerical Information download service. http://nlftp.mlit.go.jp/ksj/jpgis/jpgis_datalist.html (Japanese)

  • Reid CE, O’Neill MS, Gronlund CJ, Brines SJ, Brown DG, Diez-Roux AV, Schwartz J (2009) Mapping community determinants of heat vulnerability. Environ Health Perspect 117(11):1730–1736

    Google Scholar 

  • Song X, Liu J, Lin Y, Liu L, Wang D (2015) Regional thermal climate prediction and mitigation strategy of local urban heat island. Harbin Gongye Daxue Xuebao J Harbin Inst Technol 47(2):25–30

    Google Scholar 

  • Tabuchi T, Fukuhara H, Iso H (2012) Geographically-based discrimination is a social determinant of mental health in a deprived or stigmatized area in Japan: a cross-sectional study. Soc Sci Med 75(6):1015–1021

    Article  Google Scholar 

  • USGS (2016) United States Geological Survey website (http://landsat.usgs.gov). Satellite data accessed online at http://earthexplorer.usgs.gov/

  • Vescovi L, Rebetez M, Rong F (2005) Assessing public health risk due to extremely high temperature events: climate and social parameters. Clim Res 30:71–78

    Article  Google Scholar 

  • Wolf T, McGregor G (2013) The development of a heat wave vulnerability index for London, United Kingdom. Weather Clim Extremes 1:59–68

    Article  Google Scholar 

Download references

Acknowledgments

Thanks are expressed to the Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan, and Osaka University for providing funding for this project. The authors would also like to express thanks to Dr. Keiko Masumoto at the Osaka City Institute of Public Health and Environmental Sciences for providing invaluable meteorological data.

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Correspondence to Robert G. D. Macnee.

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Macnee, R.G.D., Tokai, A. Heat wave vulnerability and exposure mapping for Osaka City, Japan. Environ Syst Decis 36, 368–376 (2016). https://doi.org/10.1007/s10669-016-9607-4

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