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An application of classification analysis for skewed class distribution in therapeutic drug monitoring - the case of vancomycin

机译:偏态分类的分类分析在治疗药物监测中的应用-以万古霉素为例

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Vancomycin can induce potent adverse side effects if drug concentration is not controlled within a narrow safety range. Therefore, therapeutic drug monitoring (TDM) is followed to adjust dose and help monitor treatment effects. Because TDM are not helpful in patients taking vancomycin for the first time, it's usage has a limitation to ensure medication safety. This study aimed at using decision tree induction to predict outcomes of vancomycin. Research results demonstrate that the asymmetric distribution among classes in the TDM data would result in prediction deviation. An ideal model with good prediction efficacy could be established by adjusting the ratio among outcome classes through "over-sampling for expanding minority data". The prediction model would be helpful in controlling the positive and negative effects of vancomycin treatment, improving care at the patient level and improving costs at the social level. Some interesting decision rules derived from the decision tree were analyzed its clinical meanings. Precious prescription knowledge is thus extracted and accumulated.
机译:如果将药物浓度控制在狭窄的安全范围内,则万古霉素会引起强烈的不良副作用。因此,遵循治疗药物监测(TDM)来调整剂量并帮助监测治疗效果。由于TDM对首次服用万古霉素的患者无济于事,因此在确保药物安全性方面存在局限性。这项研究旨在使用决策树诱导来预测万古霉素的预后。研究结果表明,TDM数据中类别之间的不对称分布将导致预测偏差。通过“过度采样以扩大少数派数据”调整结果类别之间的比率,可以建立具有良好预测效果的理想模型。该预测模型将有助于控制万古霉素治疗的正面和负面影响,改善患者水平的护理并改善社会水平的成本。分析了决策树中一些有趣的决策规则的临床意义。从而提取并积累了宝贵的处方知识。

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