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      Temperature and daily mortality in Suzhou, China: a time series analysis.

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          Abstract

          The evidence concerning the association between ambient temperature and mortality is limited in developing countries, especially in China. We assessed the effects of temperature on daily mortality between 2005 and 2008 in Suzhou, China. A Poisson regression model combined with a distributed-lag nonlinear model was used to examine the association between temperature and daily mortality. We investigated effect modification by individual characteristics, including gender, age and educational attainment. We found significant non-linear effects of temperature on total and cardiovascular mortality. Heat effects were immediate and lasted for 1-2 days, whereas cold effects persisted for 10 days. The relative risk of total morality associated with extreme cold temperature (1st percentile of temperature, -0.3 °C) over lags 0-14 days was 1.75 [95% confidence interval (CI): 1.43, 2.14)], compared with the minimum mortality temperature (26 °C). The relative risk associated with extremely hot temperature (99th percentile of temperature, 32.6 °C) over lags 0-3 days was 1.43 (95% CI: 1.31, 1.56). We did not observe significant modifying effect by gender, age or educational level. This study showed that exposure to both hot and cold temperatures was associated with increased mortality in Suzhou. Our findings may have implications for developing intervention strategies for extreme cold and hot temperatures.

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          Author and article information

          Journal
          Sci. Total Environ.
          The Science of the total environment
          1879-1026
          0048-9697
          Jan 1 2014
          : 466-467
          Affiliations
          [1 ] School of Public Health, Key Lab of Public Health Safety of the Ministry of Education, Fudan University, Shanghai, China; Research Institute for the Changing Global Environment and Fudan Tyndall Centre, Fudan University, Shanghai, China; Shanghai Key Laboratory of Atmospheric Particle Pollution and Prevention (LAP(3)), Fudan University, Shanghai, China.
          Article
          S0048-9697(13)00925-X
          10.1016/j.scitotenv.2013.08.011
          23994732
          4353d48f-8c75-4cd3-ac50-b485933a3b41
          © 2013.
          History

          Distributed-lag nonlinear model,Mortality,Temperature

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