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Multiscale methodology for bone remodelling simulation using coupled finite element and neural network computation

机译:耦合有限元和神经网络计算的多尺度骨重建仿真方法

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The aim of this paper is to develop a multiscale hierarchical hybrid model based on finite element analysis and neural network computation to link mesoscopic scale (trabecular network level) and macroscopic (whole bone level) to simulate the process of bone remodelling. As whole bone simulation, including the 3D reconstruction of trabecular level bone, is time consuming, finite element calculation is only performed at the macroscopic level, whilst trained neural networks are employed as numerical substitutes for the finite element code needed for the mesoscale prediction. The bone mechanical properties are updated at the macroscopic scale depending on the morphological and mechanical adaptation at the mesoscopic scale computed by the trained neural network. The digital image-based modelling technique using μ-CT and voxel finite element analysis is used to capture volume elements representativeof 2 mm3 at the mesoscale level of the femoral head. The input data for the artificial neural network are a set of bone material parameters, boundary conditions and the applied stress. The output data are the updated bone properties and some trabecular bone factors. The current approach is the first model, to our knowledge, that incorporates both finite element analysis and neural network computation to rapidly simulate multilevel bone adaptation.
机译:本文的目的是开发基于有限元分析和神经网络计算的多尺度分层混合模型,以将介观尺度(小梁网络水平)和宏观尺度(整个骨骼水平)联系起来,以模拟骨骼重塑的过程。由于整个骨骼仿真(包括小梁水平骨骼的3D重建)非常耗时,因此仅在宏观层次上执行有限元计算,而训练有素的神经网络被用作中尺度预测所需的有限元代码的数值替代。骨骼力学特性在宏观尺度上取决于由训练后的神经网络计算出的介观尺度的形态和机械适应性。使用μ-CT和体素有限元分析的基于数字图像的建模技术用于在股骨头的中尺度水平上捕获代表2 mm3的体积元素。人工神经网络的输入数据是一组骨骼材料参数,边界条件和所施加的应力。输出数据是更新的骨骼属性和一些小梁骨骼因素。就我们所知,当前的方法是第一个模型,该模型结合了有限元分析和神经网络计算来快速模拟多级骨骼适应。

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