globalchange  > 气候减缓与适应
DOI: 10.1016/j.atmosenv.2018.11.045
WOS记录号: WOS:000456639900040
论文题名:
Spatial interpolation of current airborne pollen concentrations where no monitoring exists
作者: Oteros, Jose1; Bergmann, Karl-Christian2; Menzel, Annette3; Damialis, Athanasios4,5; Traidl-Hoffmann, Claudia4,5,6; Schmidt-Weber, Carsten B.1; Buters, Jeroen1
通讯作者: Oteros, Jose
刊名: ATMOSPHERIC ENVIRONMENT
ISSN: 1352-2310
EISSN: 1873-2844
出版年: 2019
卷: 199, 页码:435-442
语种: 英语
英文关键词: Pollen ; Geostatistics ; Prediction model ; Automatic forecasting system ; Aerobiology
WOS关键词: METEOROLOGICAL PARAMETERS ; CLIMATE-CHANGE ; BIRCH POLLEN ; IMPACT ; AIR ; PREDICTION ; SATELLITE ; WEATHER ; MODEL ; URBAN
WOS学科分类: Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向: Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
英文摘要:

Background: Pollen is naturally emitted and is relevant for health, crop sciences and monitoring climate change, among others. Despite their relevance, pollen is often insufficiently monitored resulting in a lack of data. Thus, spatial modelling of pollen concentrations for unmonitored areas is necessary. The aim of this study was to develop an automatic system for calculating daily pollen concentrations at sites without regular pollen monitoring.


Method: We used data from 14 pollen taxa collected during 2015 at 26 stations distributed across Bavaria, Germany. The proposed system was based on the Kriging interpolation method to spatially model pollen concentrations for unmonitored areas, in combination with regression of environmental parameters. The method also took into account weather effects on daily pollen concentrations.


Results: An automatic system was developed for calculating current pollen concentrations at any location of the county. The results were displayed as daily pollen concentrations per m(3) in maps of 1 km(2) resolution. The models are trained automatically for every day by using the pollen and weather inputs. Automatic inputs will increase the usability of the model. In 50% of the cases, Gaussian Kriging was selected as the optimal model. An R-2 of 0.5 is reached in external validation without considering the effect of the weather. An R-2 of 0.7 is reached after considering the effect of daily weather parameters.


Conclusions: A fully automatic pollen network (ePIN) was built in Bavaria during 2018 that delivers data on-line without delay. The proposed method allows for a comparably small number of automatic devices per study area, but still providing information on pollen on any location in the study area.


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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/129972
Appears in Collections:气候减缓与适应

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作者单位: 1.Tech Univ Munich, Ctr Allergy & Environm ZAUM, German Ctr Lung Res DZL, Helmholtz Ctr, Munich, Germany
2.Fdn German Pollen Informat Serv PID, Berlin, Germany
3.Tech Univ Munich, Ecoclimatol, Dept Ecol & Ecosyst Management, Freising Weihenstephan, Germany
4.Tech Univ Munich, Chair & Inst Environm Med, UNIKA T, Augsburg, Germany
5.Helmholtz Zentrum M, Augsburg, Germany
6.Christine Kuhne Ctr Allergy Res & Educ CK Care, Davos, Switzerland

Recommended Citation:
Oteros, Jose,Bergmann, Karl-Christian,Menzel, Annette,et al. Spatial interpolation of current airborne pollen concentrations where no monitoring exists[J]. ATMOSPHERIC ENVIRONMENT,2019-01-01,199:435-442
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