基于可观察状态变量的患者特异性建模的理论考虑。

IF 1.7 4区 医学 Q4 BIOPHYSICS
Gerard A Ateshian, Sarah Deiters, Jeffrey A Weiss
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引用次数: 0

摘要

在本研究中,我们提出了指导生物医学工程师评估患者特异性组织衰竭风险的基本理论考虑,或评估基于非侵入性成像模式的患者特异性计算建模所需的其他材料特性。在回顾力学的理论概念时,主要的结论是,患者特定的材料特性,如组织衰竭的测量,不能直接观察到,因为材料特性依赖于不可观察的状态函数。然而,由于状态函数可能取决于可观察到的状态变量,并且由于非侵入性成像可以用于评估这些变量,因此研究人员有必要在体外发现感兴趣的材料特性与相关可观察到的状态变量之间的强相关性,例如组织形态、运输特性和组成的测量。一旦在体外实验中建立了这种单变量或多变量相关性,下一个挑战是将基于成像的可观察测量(非侵入性获得的,例如体内)与相关材料特性(如失效标准)联系起来。与这些观测所得的材料特性相关的不确定度至多等于体外相关性的不确定度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical Considerations for Patient-Specific Modeling Based on Observable State Variables.

In this study, we address fundamental theoretical considerations that should guide biomedical engineers in the assessment of patient-specific risk of tissue failure, or the assesment of other material properties needed for patient-specific computational modeling, based on non-invasive imaging modalities. Upon reviewing theoretical concepts of mechanics, the primary conclusion is that patient-specific material properties, such as measures of tissue failure, cannot be observed directly, because material properties are dependent on non-observable functions of state. However, since functions of state may be formulated to depend on observable state variables, and since non-invasive imaging may be used to assess such variables, it behooves investigators to find strong correlations in vitro between the material property of interest and relevant observable state variables, such as measures of tissue morphology, transport characteristics, and composition. Once such univariate or multivariate correlations have been established experimentally in vitro, the next challenge is to relate imaging-based observable measures, acquired non-invasively (e.g., in vivo), to relevant material properties such as failure criteria. The uncertainty associated with these observation-derived material properties is, at best, equal to the uncertainty of the in vitro correlation.

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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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