Complex Chemical Data Classification and Discrimination Using Locality Preserving Partial Least Squares Discriminant

Muhammad Aminu1, Noor Atinah Ahmad1

  • 1School of Mathematical Sciences, Universiti Sains Malaysia, Gelugor, Penang 11800, Malaysia.

ACS Omega
|October 28, 2020
PubMed
Summary

Locality preserving partial least squares discriminant analysis (LPPLS-DA) improves feature extraction for chemical data. This new method, LPPLS-DA, offers superior discrimination and classification compared to traditional PLS-DA.

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