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Intermittent Androgen Suppression: Estimating Parameters for Individual Patients Based on Initial PSA Data in Response to Androgen Deprivation Therapy

机译:间歇性雄激素抑制:根据对雄激素剥夺疗法的初始PSA数据估算各个患者的参数

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摘要

When a physician decides on a treatment and its schedule for a specific patient, information gained from prior patients and experience in the past is taken into account. A more objective way to make such treatment decisions based on actual data would be useful to the clinician. Although there are many mathematical models proposed for various diseases, so far there is no mathematical method that accomplishes optimization of the treatment schedule using the information gained from past patients or “rapid learning” technology. In an attempt to use this approach, we integrate the information gained from patients previously treated with intermittent androgen suppression (IAS) with that from a current patient by first fitting the time courses of clinical data observed from the previously treated patients, then constructing the prior information of the parameter values of the mathematical model, and finally, maximizing the posterior probability for the parameters of the current patient using the prior information. Although we used data from prostate cancer patients, the proposed method is general, and thus can be applied to other diseases once an appropriate mathematical model is established for that disease.
机译:当医师决定针对特定患者的治疗方法和时间表时,将从先前患者获得的信息和过去的经验考虑在内。基于实际数据做出这样的治疗决策的更客观的方法对于临床医生将是有用的。尽管针对多种疾病提出了许多数学模型,但到目前为止,还没有一种数学方法可以使用从过去患者或“快速学习”技术中获得的信息来完成治疗方案的优化。为了尝试使用这种方法,我们首先将先前治疗过的患者的临床数据进行拟合,然后构建先前的方法,将先前接受间歇性雄激素抑制(IAS)治疗的患者与当前患者的信息相结合。数学模型的参数值的信息,最后,使用先验信息最大化当前患者参数的后验概率。尽管我们使用了来自前列腺癌患者的数据,但是所提出的方法是通用的,因此一旦为该疾病建立了适当的数学模型,便可以将其应用于其他疾病。

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