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Determination of the Geographical Origin of Asparagus officinalis L. by 1H NMR Spectroscopy.

Juliane KlareMarc RurikEric RottmannAnke BollenOliver KohlbacherMarkus FischerThomas Hackl
Published in: Journal of agricultural and food chemistry (2020)
Food authenticity concerning the geographical origin becomes increasingly important for consumers, food industries, and food authorities. In this study, nontargeted 1H NMR metabolomics combined with machine learning methodologies was applied to successfully distinguish the geographical origin of 237 samples of white asparagus from Germany, Poland, The Netherlands, Spain, Greece, and Peru. Support vector classification of the geographical origin achieved an accuracy of 91.5% for the entire sample set and 87.8% after undersampling the majority class. Important regions of the spectra could be identified and assigned to potential chemical markers. A subset of samples was compared to isotope-ratio mass spectrometry (IRMS), an established method for the determination of origin of white asparagus in Germany. Here, SVM classification led to accuracies of 79.4% for NMR and 70.9% for IRMS. Finally, the classification of asparagus from different German regions was evaluated, and the influence of year and variety was analyzed.
Keyphrases
  • machine learning
  • mass spectrometry
  • deep learning
  • high resolution
  • magnetic resonance
  • human health
  • artificial intelligence
  • big data
  • solid phase extraction
  • solid state
  • climate change