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http://dspace.zsmu.edu.ua/handle/123456789/19923
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Название: | A temporally and spatially explicit, data-driven estimation of airborne ragweed pollen concentrations across Europe |
Авторы: | Makra, L. Matyasovszky, I. Tusnády, G. Ziska, L. H. Hesse, J. J. Nyúl, L. G. Chapmang, D. S. Coviello, L. Gobbi, A. Jurman, G. Furlanello, C. Brunato, M. Damialis, A. Charalampopoulos, A. Müller-Scharer, H. Schneider, N. Szabo, B. Sümeghy, Z. Paldy, A. Magyar, D. Bergmann, K.-Ch. Deak, A. J. Miko, E. Thibaudon, M. Oliver, G. Albertini, R. Bonini, M. Sikoparija, B. Radisict, P. Josipovic, M. M. Gehrigv, R. Severova, E. Shalaboda, V. Stjepanovic, B. Ianovici, N. Berger, U. Seliger, A. K. Rybnícek, O. Myszkowska, D. Dąbrowska-Zapart, K. Majkowska-Wojciechowska, B. Weryszko-Chmielewska, E. Grewling, Ł. Rapiejko, P. Malkiewicz, M. Sauliene, I. Prykhodo, O. Maleeva, H. Yu. Rodinkova, V. Palamarchuk, O. Scevkova, J. Bullock, J. M. Малєєва, Ганна Юріївна |
Ключевые слова: | Ambrosia Aerobiology Flowering phenology Artificial intelligence Climate change Data reconstruction Health risk Invasive species |
Дата публикации: | 2023 |
Библиографическое описание: | A temporally and spatially explicit, data-driven estimation of airborne ragweed pollen concentrations across Europe / L. Makra, I. Matyasovszky, G. Tusnády, L. H. Ziska, J. J. Hesse, L. G.Nyúl, D. S. Chapmang, L. Coviello, A. Gobbi, G. Jurman, C. Furlanello, M. Brunato, A. Damialis, A. Charalampopoulos, H. Müller-Scharer, N. Schneider, B. Szabo, Z. Sümeghy, A. Paldy, D. Magyar, K.-Ch. Bergmann, A. J. Deak, E. Miko, M. Thibaudon, G. Oliver , R. Albertini, M. Bonini, B. Sikoparija, P. Radisict, M. M. Josipovic , R. Gehrigv, E. Severova, V. Shalaboda, B. Stjepanovic, N. Ianovici, U. Berger, A. K. Seliger, O. Rybnícek, D. Myszkowska, K. Dąbrowska-Zapart, B. Majkowska-Wojciechowska, E. Weryszko-Chmielewska, Ł. Grewling, P. Rapiejko, M. Malkiewicz, I. Sauliene, O. Prykhodo, A. Maleeva, V. Rodinkova, O. Palamarchuk, J. Scevkova, J. M. Bullock // Science of the Total Environment. - 2023. - Vol. 905. - Art. 167095. - https://doi.org/10.1016/j.scitotenv.2023.167095. |
Аннотация: | Ongoing and future climate change driven expansion of aeroallergen-producing plant species comprise a major
human health problem across Europe and elsewhere. There is an urgent need to produce accurate, temporally
dynamic maps at the continental level, especially in the context of climate uncertainty. This study aimed to
restore missing daily ragweed pollen data sets for Europe, to produce phenological maps of ragweed pollen,
resulting in the most complete and detailed high-resolution ragweed pollen concentration maps to date. To
achieve this, we have developed two statistical procedures, a Gaussian method (GM) and deep learning (DL) for
restoring missing daily ragweed pollen data sets, based on the plant's reproductive and growth (phenological,
pollen production and frost-related) characteristics. DL model performances were consistently better for estimating
seasonal pollen integrals than those of the GM approach. These are the first published modelled maps
using altitude correction and flowering phenology to recover missing pollen information. We created a web page
(http://euragweedpollen.gmf.u-szeged.hu/), including daily ragweed pollen concentration data sets of the stations
examined and their restored daily data, allowing one to upload newly measured or recovered daily data.
Generation of these maps provides a means to track pollen impacts in the context of climatic shifts, identify
geographical regions with high pollen exposure, determine areas of future vulnerability, apply spatially-explicit
mitigation measures and prioritize management interventions. |
URI: | http://dspace.zsmu.edu.ua/handle/123456789/19923 |
Располагается в коллекциях: | Наукові праці. (Медбіологія)
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