[Spring and summer-autumn pollen grading and forecasting model based on daily visits of allergic rhinitis patients].

弹簧(装置) 分级(工程) 花粉 医学 气象学 地理 工程类 植物 生物 机械工程 土木工程
作者
Yuhui Ouyang,Yin Zhang,Yan Yan,J G Chen,Wen Fei,Likun Gong,W W Liu,X J Liu,Deyong Song,Zhice Xu,Ying Zhang,Yang Zhang,Luo Zhang
出处
期刊:PubMed [National Institutes of Health]
卷期号:60 (3): 313-320
标识
DOI:10.3760/cma.j.cn115330-20240823-00491
摘要

Objective: To establish graded forecast models of pollen concentration in spring and summer-autumn in northern China, based on long-term data of pollen and allergic rhinitis (AR) medical visits in 8 cities of northern China. Methods: Pollen concentration and the characteristics of AR patients from 8 cities of northern China, including Beijing, Baotou, Hohhot, Xi'an, Xining, Cangzhou, Liaocheng and Zibo, were analyzed. Spearman's correlation was used to examine the relationship between pollen concentration and daily AR patient visits. A pollen concentration grading was establish, and a pollen forecast model was created using the eXtreme gradient boosting (XGBoost) algorithm. The model incorporated meteorological factors and the 3-day moving average of pollen concentrations. Results: The spring pollen period started early and lasted long in Beijing and Xi 'an, while the summer-autumn pollen period started earlier and persisted longer in Xining, Baotou and Hohhot. During summer-autumn pollen period, and the spring period in most cities (except Baotou and Cangzhou), average daily patient visits were significantly higher than those in non-pollen periods. A strong correlation was observed between daily AR patient visits and the 3-day moving average of pollen concentrations in both the spring and summer-autumn periods across all cities. Based on the correlation, a pollen concentration grading standard of northern China was established. The accuracy evaluation of pollen concentration prediction model showed that the percentage of forecasts with either completely accurate or within one level difference exceeded 91% in spring and 95% in summer-autumn. The most important predictive variable in the model was the pollen level from previous day, followed by the temperature and humidity. Conclusion: The grading prediction model for pollen concentration provides guidance for AR patients in term of travel, early defense and treatment, as well as the determining medication schedules for clinical drug research and specific immunotherapy.
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