Pollen discrimination and classification by Fourier transform infrared (FT-IR) microspectroscopy and machine learning

被引:0
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作者
R. Dell’Anna
P. Lazzeri
M. Frisanco
F. Monti
F. Malvezzi Campeggi
E. Gottardini
M. Bersani
机构
[1] Center for Materials and Microsystems,Dipartimento di Informatica
[2] Fondazione Bruno Kessler,undefined
[3] Fondazione Bruno Kessler & CNR Istituto di Biofisica,undefined
[4] Università degli Studi di Verona,undefined
[5] Area Ambiente,undefined
[6] FEM-Centro Ricerca ed Innovazione,undefined
来源
关键词
FT-IR microspectroscopy; Allergic pollen; Supervised and unsupervised learning methods; Aerobiological monitoring networks;
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摘要
The discrimination and classification of allergy-relevant pollen was studied for the first time by mid-infrared Fourier transform infrared (FT-IR) microspectroscopy together with unsupervised and supervised multivariate statistical methods. Pollen samples of 11 different taxa were collected, whose outdoor air concentration during the flowering time is typically measured by aerobiological monitoring networks. Unsupervised hierarchical cluster analysis provided valuable information about the reproducibility of FT-IR spectra of the same taxon acquired either from one pollen grain in a 25 × 25 μm2 area or from a group of grains inside a 100 × 100 μm2 area. As regards the supervised learning method, best results were achieved using a K nearest neighbors classifier and the leave-one-out cross-validation procedure on the dataset composed of single pollen grain spectra (overall accuracy 84%). FT-IR microspectroscopy is therefore a reliable method for discrimination and classification of allergenic pollen. The limits of its practical application to the monitoring performed in the aerobiological stations were also discussed.
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页码:1443 / 1452
页数:9
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