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An Improved Methodology for Individualized Performance Prediction of Sleep-Deprived Individuals with the Two-Process Model

机译:两过程模型的睡眠不足个体个性化绩效预测的改进方法

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摘要

We present a method based on the two-process model of sleep regulation for developing individualized biomathematical models that predict performance impairment for individuals subjected to total sleep loss. This new method advances our previous work in two important ways. First, it enables model customization to start as soon as the first performance measurement from an individual becomes available. This was achieved by optimally combining the performance information obtained from the individual's performance measurements with a priori performance information using a Bayesian framework, while retaining the strategy of transforming the nonlinear optimization problem of finding the optimal estimates of the two-process model parameters into a series of linear optimization problems. Second, by taking advantage of the linear representation of the two-process model, this new method enables the analytical computation of statistically based measures of reliability for the model predictions in the form of prediction intervals.
机译:我们提出了一种基于睡眠调节的两个过程模型的方法,用于开发个性化的生物数学模型,该模型可以预测遭受总睡眠丧失的个体的功能损害。这种新方法从两个重要方面推进了我们之前的工作。首先,它使模型定制能够在个人进行首次性能评估后立即开始。这是通过使用贝叶斯框架将从个人绩效测量获得的绩效信息与先验绩效信息进行最佳组合而实现的,同时保留了将找到两个过程模型参数的最优估计的非线性优化问题转化为一系列的策略。线性优化问题。其次,通过利用两过程模型的线性表示,这种新方法能够以预测间隔的形式对模型预测的可靠性进行基于统计的度量的分析计算。

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