PLS-LS-SVM based modeling of ATR-IR as a robust method in detection and qualification of alprazolam
- PMID: 27599193
- DOI: 10.1016/j.saa.2016.08.055
PLS-LS-SVM based modeling of ATR-IR as a robust method in detection and qualification of alprazolam
Abstract
According to the United States pharmacopeia (USP), Gold standard technique for Alprazolam determination in dosage forms is HPLC, an expensive and time-consuming method that is not easy to approach. In this study chemometrics assisted ATR-IR was introduced as an alternative method that produce similar results in fewer time and energy consumed manner. Fifty-eight samples containing different concentrations of commercial alprazolam were evaluated by HPLC and ATR-IR method. A preprocessing approach was applied to convert raw data obtained from ATR-IR spectra to normal matrix. Finally, a relationship between alprazolam concentrations achieved by HPLC and ATR-IR data was established using PLS-LS-SVM (partial least squares least squares support vector machines). Consequently, validity of the method was verified to yield a model with low error values (root mean square error of cross validation equal to 0.98). The model was able to predict about 99% of the samples according to R2 of prediction set. Response permutation test was also applied to affirm that the model was not assessed by chance correlations. At conclusion, ATR-IR can be a reliable method in manufacturing process in detection and qualification of alprazolam content.
Keywords: Alprazolam; Attenuate total reflectance mid-infrared; Chemometrics modeling; HPLC; Partial least squares- least squares- support vector machines.
Copyright © 2016 Elsevier B.V. All rights reserved.
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