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首页> 外文期刊>Journal of Analytical Methods in Chemistry >Determination of Cefoperazone Sodium in Presence of Related Impurities by Linear Support Vector Regression and Partial Least Squares Chemometric Models
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Determination of Cefoperazone Sodium in Presence of Related Impurities by Linear Support Vector Regression and Partial Least Squares Chemometric Models

机译:用线性支持载体回归和偏最小二乘化学模型在相关杂质存在下的Cefoperazone钠的测定

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摘要

A comparison between partial least squares regression and support vector regression chemometric models is introduced in this study. The two models are implemented to analyze cefoperazone sodium in presence of its reported impurities, 7- aminocephalosporanic acid and 5-mercapto-1-methyl-tetrazole, in pure powders and in pharmaceutical formulations through processing UV spectroscopic data. For best results, a 3-factor 4-level experimental design was used, resulting in a training set of 16 mixtures containing different ratios of interfering moieties. For method validation, an independent test set consisting of 9 mixtures was used to test predictive ability of established models.The introduced results show the capability of the two proposed models to analyze cefoperazone in presence of its impurities 7-aminocephalosporanic acid and 5-mercapto-1-methyl-tetrazole with high trueness and selectivity (101.87 ± 0.708 and 101.43 ± 0.536 for PLSR and linear SVR, resp.). Analysis results of drug products were statistically compared to a reported HPLC method showing no significant difference in trueness and precision, indicating the capability of the suggested multivariate calibration models to be reliable and adequate for routine quality control analysis of drug product. SVR offers more accurate results with lower prediction error compared to PLSR model; however, PLSR is easy to handle and fast to optimize.
机译:本研究介绍了部分最小二乘回归和支持向量回归化学计量模型的比较。通过加工UV光谱数据,实施了两种模型以分析其报告的杂质,7-氨基孢子酰基酸和5-巯基-1-甲基四甲基 - 四唑,在纯粉末和药物制剂中的存在。为获得最佳结果,使用3因素4级实验设计,导致培训组16个混合物,其含有不同的干扰部分的比例。对于方法验证,使用由9个混合物组成的独立测试集来测试建立模型的预测能力。介绍的结果表明,在其杂质7-氨基孢菌酸和5-巯基存在下,两种提出的模型分析头孢唑酮的能力。 1-甲基 - 四唑具有高真实和选择性(101.87±0.708和101.43±0.536,用于PLSR和线性SVR,REAC。)。与报告的HPLC方法相比,药物产品的分析结果与报告的HPLC方法无明显差异,表明建议的多变量校准模型的能力可靠,适用于药品的常规质量控制分析。与PLSR模型相比,SVR提供更准确的预测误差较低的结果;但是,PLSR易于处理并快速优化。

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