首页> 外文期刊>ASCE-ASME Journal of Risk and Uncertainty in Engineering Systems, Part B. Mechanical Engineering >Model Input and Output Dimension Reduction Using Karhunen-Loeve Expansions With Application to Biotransport
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Model Input and Output Dimension Reduction Using Karhunen-Loeve Expansions With Application to Biotransport

机译:使用Karhunen-Loeve扩展的模型输入和输出尺寸减少,应用于Biotransport

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摘要

We consider biotransport in tumors with uncertain heterogeneous material properties. Specifically, we focus on the elliptic partial differential equation (PDE) modeling the pressure field inside the tumor. The permeability field is modeled as a log-Gaussian random field with a prespecified covariance function. We numerically explore dimension reduction of the input parameter and model output. Specifically, truncated Karhunen-Loeve (KL) expansions are used to decompose the log-permeability field, as well as the resulting random pressure field. We find that although very high-dimensional representations are needed to accurately represent the permeability field, especially in presence of small correlation lengths, the pressure field is not sensitive to high-order KL terms of the input parameter. Moreover, we find that the pressure field itself can be represented accurately using a KL expansion with a small number of terms. These observations are used to guide a reduced-order modeling approach to accelerate computational studies of biotransport in tumors.
机译:我们考虑具有不确定的异质物质性质的肿瘤生物传道。具体而言,我们专注于椭圆部分微分方程(PDE)在肿瘤内建模的压力场。渗透性字段被建模为具有预定协方差函数的Log-Gaussian随机字段。我们数值探索输入参数和模型输出的尺寸减小。具体地,截短的KarhUnen-Loeve(KL)扩展用于分解磁磁性场,以及所得到的随机压力场。我们发现,尽管需要非常高的尺寸表示来准确地代表渗透性场,但特别是在存在小的相关长度的情况下,压力场对输入参数的高阶KL术语不敏感。此外,我们发现压力场本身可以使用少数术语使用KL扩展来准确地表示。这些观察结果用于指导降低阶阶的建模方法,以加速肿瘤生物传道的计算研究。

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