Abstrakt
A new automated procedure able to extract latent chemical information from ToF-SIMS big data sets is presented. A classifier based on a probabilistic neural network able to provide a correct classification of spectra acquired from four different polymers is designed and trained. The procedure is fast and low-demanding in terms of CPU performances, and it is also able to evaluate the similarity/dissimilarity in the Fourier transform domain of very low intensity single pixel spectra without any effort of the analyst.
| Język oryginału | angielski |
|---|---|
| Strony (od–do) | 138-142 |
| Liczba stron | 5 |
| Czasopismo | Chemometrics and Intelligent Laboratory Systems |
| Tom | 191 |
| Identyfikatory DOI | |
| Status publikacji | Opublikowano - 15 sie 2019 |
Obszary tematyczne ASJC Scopus
- Chemia analityczna
- Oprogramowanie
- Chemia i technologia procesów
- Spektroskopia
- Zastosowania informatyki
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