Forecasting model of Corylus, Alnus, and Betula pollen concentration levels using spatiotemporal correlation properties of pollen count

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The aim of the study was to create and evaluate models for predicting high levels of daily pollen concentration of CorylusAlnus, and Betula using a spatiotemporal correlation of pollen count. For each taxon, a high pollen count level was established according to the first allergy symptoms during exposure. The dataset was divided into a training set and a test set, using a stratified random split. For each taxon and city, the model was built using a random forest method. Corylus models performed poorly. However, the study revealed the possibility of predicting with substantial accuracy the occurrence of days with high pollen concentrations of Alnus and Betula using past pollen count data from monitoring sites. These results can be used for building (1) simpler models, which require data only from aerobiological monitoring sites, and (2) combined meteorological and aerobiological models for predicting high levels of pollen concentration.

Tytuł
Forecasting model of Corylus, Alnus, and Betula pollen concentration levels using spatiotemporal correlation properties of pollen count
Twórca
Nowosad Jakub
Słowa kluczowe
aerobiology; allergenic pollen; Betulaceae; forecast; random forest; spatiotemporal models
Słowa kluczowe
aerobiologia; pyłek allergenowy; modele przestrzenno-czasowe
Współtwórca
Stach Alfred
Kasprzyk Idalia
Weryszko-Chmielewska Elżbieta
Piotrowska-Weryszko Krystyna
Puc Małgorzata ORCID 0000-0001-6734-9352
Grewling Łukasz
Pędziszewska Anna
Uruska Agnieszka
Myszkowska Dorota
Chłopek Kazimiera
Majkowska-Wojciechowska Barbara
Data
2016
Typ zasobu
artykuł
Identyfikator zasobu
DOI 10.1007/s10453-015-9418-y
Źródło
Aerobiologia, 2016, 32 iss. 3, pp. 453–468
Język
angielski
Prawa autorskie
CC BY CC BY
Kategorie
Publikacje pracowników US
Data udostępnienia1 cze 2022, 14:15:50
Data mod.1 cze 2022, 14:15:50
DostępPubliczny
Aktywnych wyświetleń0