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INDIVIDUAL AND COHORT PHARMACOLOGICAL PHENOTYPE PREDICTION PLATFORM

机译:个体和群体药物学表型预测平台

摘要

For patients who exhibit or may exhibit primary or comorbid disease, pharmacological phenotypes may be predicted through the collection of panomic data over a period of time. A machine learning engine may generate a statistical model based on training data from training patients to predict pharmacological phenotypes, including drug response and dosing, drug adverse events, disease and comorbid disease risk, drug-gene, drug-drug, and polypharmacy interactions. Then the model may be applied to data for new patients to predict their pharmacological phenotypes, and enable decision making in clinical and research contexts, including drug selection and dosage, changes in drug regimens, polypharmacy optimization, monitoring, etc., to benefit from additional predictive power, resulting in adverse event and substance abuse avoidance, improved drug response, better patient outcomes, lower treatment costs, public health benefits, and increases in the effectiveness of research in pharmacology and other biomedical fields.
机译:对于表现出或可能表现出原发性或合并症的患者,可通过一段时间内收集基因组数据来预测药理表型。机器学习引擎可以基于来自训练患者的训练数据来生成统计模型,以预测药理表型,包括药物反应和给药,药物不良事件,疾病和合并症的风险,药物基因,药物和多药相互作用。然后,可以将该模型应用于新患者的数据,以预测其药理表型,并能够在临床和研究环境中进行决策,包括药物选择和剂量,药物治疗方案的变化,多药房优化,监测等,以从中受益。预测力,可避免不良事件和药物滥用,改善药物反应,改善患者预后,降低治疗成本,提高公共卫生效益,并提高药理学和其他生物医学领域的研究效率。

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