Percorrer por autor "Liu, Yanming"
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- Assessing global factors associated with tropical cyclone-related mortality: A population-based longitudinal studyPublication . Huang, Wenzhong; Yang, Zhengyu; Otto, Christian; Mengel, Matthias; Hales, Simon; Zhang, Yiwen; Xu, Rongbin; Bell, Michelle L.; Gasparrini, Antonio; Kan, Haidong; Sera, Francesco; Schwartz, Joel; Lavigne, Eric; Hundessa, Samuel; Yu, Wenhua; Carlos Chua, Paul Lester; Seposo, Xerxes; Goodman, Patrick; Zeka, Ariana; Hashizume, Masahiro; Z S Coelho, Micheline S.; Xu, Zhihu; Ye, Tingting; Yu, Pei; Wu, Yao; Wen, Bo; Liu, Yanming; Li, Shanshan; Guo, Yuming; MCC CollaboratorsBackground: The underlying factors associated with the substantial global tropical cyclone (TC)-related mortality burden, characterized by its highly variable spatiotemporal patterns, remain unclear. We aimed to identify and assess the key factors associated with TC-related mortality on a global scale. Methods: We collected mortality records from 2034 locations in 68 countries/territories across five continents (2000-2019) to identify and assess the key factors associated with TC-related mortality on a global scale. Bayesian ensemble models were applied to estimate the associated mortality for each TC event in each location. A random forest regression (RFR) model was employed to assess the relative statistical importance of TC and location characteristics, as well as their interactions, regarding the TC-related mortality. Findings: For TC physical characteristics, the TC-associated cumulative rainfall consistently exhibited stronger influence on mortality than TC-induced surge-driven flood depth or maximum sustained windspeed. However, sociodemographic factors, including population traits (e.g., population density, proportion of the population aged ≤ 9 years, percent of the population aged ≥ 65 years) and socioeconomic and infrastructure development (e.g., built-up ratio), showed greater relative importance than the TC physical attributes and accounted for the majority of the explained variations in TC-related mortality. Furthermore, cumulative rainfall interacted strongly with local sociodemographic conditions and was potentially the most important associated factor for disparities in mortality arising from factor interactions. Interpretation: The findings highlight the critical role of sociodemographic factors in explaining the global spatiotemporal variability of TC-related mortality, surpassing the relative importance of TC intensity. TC-related rainfall could be a key associated physical factor of the global mortality burden.
- Estimating the urban heat-related mortality burden due to greenness: a global modelling studyPublication . Wu, Yao; Wen, Bo; Ye, Tingting; Huang, Wenzhong; Liu, Yanming; Gasparrini, Antonio; Sera, Francesco; Tong, Shilu; Lavigne, Eric; Roye, Dominic; Achilleos, Souzana; Ryti, Niilo; Pascal, Mathilde; Zeka, Ariana; de'Donato, Francesca; das Neves Pereira da Silva, Susana; Madureira, Joana; Mistry, Malcolm; Armstrong, Ben; Bell, Michelle L; Schwartz, Joel; Guo, Yuming; Li, ShanshanBackground: Heat exposure poses a substantial public health threat. Increasing greenness has been suggested as a mitigation strategy due to its cooling effect and potential to modify the heat-mortality association. This study aimed to comprehensively estimate the effects of increased greenness on heat-related deaths. Methods: We applied a multistage meta-analytical approach to estimate the potential reduction in global heat-related deaths by increasing greenness in the warm season in 2000-19 in 11 534 urban areas. We used the enhanced vegetation index (EVI) to indicate greenness and a random forest model to predict daily temperatures in counterfactual EVI scenarios. In the factual EVI scenarios, daily mortality and weather variables from 830 locations in 53 countries were extracted from the Multi-Country Multi-City Collaborative Research Network and used to assess heat-mortality associations. These associations were then extrapolated to each urban area under both factual and counterfactual EVI scenarios based on meta-regression models. Findings: We estimated that EVI increased by 10% would decrease the global population-weighted warm-season mean temperature by 0·08°C, EVI increased by 20% would decrease temperature by 0·14°C, and EVI increased by 30% would decrease temperature by 0·19°C. In the factual scenario, 3 153 225 (2·48%) of 127 179 341 total deaths could be attributed to heat exposure. The attributable fraction of heat-related deaths (as a fraction of total deaths) in 2000-19 would decrease by 0·67 (95% empirical CI 0·53-0·82) percentage points in the 10% scenario, 0·80 (0·63-0·97) percentage points in the 20% scenario, and 0·91 (0·72-1·10) percentage points in the 30% scenario, compared with the factual scenario. South Europe was modelled to have the largest decrease in attributable fraction of heat-related mortality. Interpretation: This modelling study suggests that increased greenness could substantially reduce the heat-related mortality burden. Preserving and expanding greenness might be potential strategies to lower ambient temperature and reduce the health impacts of heat exposure.
