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An evolutionary-based inverse approach for the identification of non-linear heat generation rates in living tissues using a localized meshless method

机译:一种基于进化的逆方法,用于使用局部无网格方法识别活组织中的非线性发热速率

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Purpose - This paper aims to develop and describe an improved process for determining the rate of heat generation in living tissue. Design/methodology/approach - Previous work by the authors on solving the bioheat equation has been updated to include a new localized meshless method which will create a more robust and computationally efficient technique. Inclusion of this technique will allow for the solution of more complex and realistic geometries, which are typical of living tissue. Additionally, the unknown heat generation rates are found through genetic algorithm optimization.rnFindings - The localized technique showed superior accuracy and significant savings in memory and processor time. The computational efficiency of the newly proposed meshless solver allows the optimization process to be carried to a higher level, leading to more accurate solutions for the inverse technique. Several example cases are presented to demonstrate these conclusions. Research limitations/implications - This work includes only 2D development of the approach, while any realistic modeling for patient-specific cases would be inherently 3D. The extension to 3D, as well as studies to improve the technique by decreasing the sensitivity to measurement noise and to incorporate non-invasive measurement positioning, are under way. Practical implications - As medical imaging continuously improves, such techniques may prove useful in patient diagonosis, as heat generation can be correlated to the presence of tumors, infections,rnor other conditions. Originality/value - This paper describes a new application of meshless methods. Such methods are becoming attractive due to their decreased pre-processing requirements, especially for problems involving complex geometries (such as patient specific tissues), as well as optimization problems, where geometries may be constantly changing.
机译:目的-本文旨在开发和描述一种改进的方法,用于确定活体组织中的热量产生速率。设计/方法/方法-作者先前解决生物热方程的工作已更新,其中包括一种新的局部无网格方法,该方法将创建更健壮和计算效率更高的技术。包含此技术将允许解决更复杂,更逼真的几何形状,这是活组织的典型特征。此外,还可以通过遗传算法优化找到未知的热量产生率。rn发现-本地化技术显示出卓越的准确性,并显着节省了内存和处理器时间。新提出的无网格求解器的计算效率允许将优化过程提高到更高的水平,从而为逆技术带来更准确的解决方案。提出了几个示例案例来证明这些结论。研究局限性/含义-这项工作仅包括该方法的2D开发,而针对患者具体病例的任何现实建模本质上都是3D。 3D的扩展以及通过降低对测量噪声的敏感度并结合非侵入式测量定位来改进技术的研究正在进行中。实际意义-随着医学成像技术的不断提高,这种技术可能被证明可用于患者的双侧斜视,因为热量的产生可能与肿瘤,感染或其他疾病的存在有关。创意/价值-本文介绍了无网格方法的新应用。由于其减少的预处理要求,特别是对于涉及复杂几何形状(例如患者特定组织)的问题以及几何形状可能不断变化的优化问题,此类方法正变得有吸引力。

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