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对随机抽象抛物型系统的输入进行反卷积:一种基于群体模型的方法,用于从经皮酒精生物传感器数据估计血液/呼气酒精浓度。

Deconvolving the input to random abstract parabolic systems: a population model-based approach to estimating blood/breath alcohol concentration from transdermal alcohol biosensor data.

作者信息

Sirlanci Melike, Rosen I G, Luczak Susan E, Fairbairn Catharine E, Bresin Konrad, Kang Dahyeon

机构信息

Department of Mathematics, University of Southern California.

Department of Psychology, University of Southern California.

出版信息

Inverse Probl. 2018 Dec;34(12). doi: 10.1088/1361-6420/aae791. Epub 2018 Nov 9.

Abstract

The distribution of random parameters in, and the input signal to, a distributed parameter model with unbounded input and output operators for the transdermal transport of ethanol are estimated. The model takes the form of a diffusion equation with the input, which is on the boundary of the domain, being the blood or breath alcohol concentration (BAC/BrAC), and the output, also on the boundary, being the transdermal alcohol concentration (TAC). Our approach is based on the reformulation of the underlying dynamical system in such a way that the random parameters are treated as additional spatial variables. When the distribution to be estimated is assumed to be defined in terms of a joint density, estimating the distribution is equivalent to estimating a functional diffusivity in a multi-dimensional diffusion equation. The resulting system is referred to as a population model, and well-established finite dimensional approximation schemes, functional analytic based convergence arguments, optimization techniques, and computational methods can be used to fit it to population data and to analyze the resulting fit. Once the forward population model has been identified or trained based on a sample from the population, the resulting distribution can then be used to deconvolve the BAC/BrAC input signal from the biosensor observed TAC output signal formulated as either a quadratic programming or linear quadratic tracking problem. In addition, our approach allows for the direct computation of corresponding credible bands without simulation. We use our technique to estimate bivariate normal distributions and deconvolve BAC/BrAC from TAC based on data from a population that consists of multiple drinking episodes from a single subject and a population consisting of single drinking episodes from multiple subjects.

摘要

我们估计了乙醇经皮转运的分布式参数模型中随机参数的分布以及该模型的输入信号,该模型具有无界输入和输出算子。该模型采用扩散方程的形式,其在区域边界上的输入为血液或呼气酒精浓度(BAC/BrAC),同样在边界上的输出为经皮酒精浓度(TAC)。我们的方法基于对基础动力系统的重新表述,使得随机参数被视为额外的空间变量。当假设要估计的分布是根据联合密度定义时,估计该分布等同于估计多维扩散方程中的函数扩散率。由此产生的系统被称为总体模型,并且可以使用成熟的有限维近似方案、基于泛函分析的收敛论证、优化技术和计算方法来使其与总体数据拟合并分析所得的拟合结果。一旦基于总体样本确定或训练了前向总体模型,那么所得的分布可用于从生物传感器观测到的TAC输出信号中反卷积BAC/BrAC输入信号,该问题可表述为二次规划或线性二次跟踪问题。此外,我们的方法允许直接计算相应的可信区间而无需模拟。我们使用我们的技术基于来自单个受试者多次饮酒事件的总体数据以及来自多个受试者单次饮酒事件的总体数据来估计二元正态分布并从TAC中反卷积BAC/BrAC。

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本文引用的文献

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THE PROHOROV METRIC FRAMEWORK AND AGGREGATE DATA INVERSE PROBLEMS FOR RANDOM PDEs.
Commun Appl Anal. 2018;22(3):415-446. Epub 2018 Jun 19.
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Estimating the Distribution of Random Parameters in a Diffusion Equation Forward Model for a Transdermal Alcohol Biosensor.
Automatica (Oxf). 2019 Aug;106:101-109. doi: 10.1016/j.automatica.2019.04.026. Epub 2019 May 16.
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A multimodal investigation of contextual effects on alcohol's emotional rewards.
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