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首页> 外文期刊>Biomedical Engineering: Applications, Basis and Communications >MODELING HUMAN TISSUES: AN EFFICIENT INTEGRATED METHODOLOGY
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MODELING HUMAN TISSUES: AN EFFICIENT INTEGRATED METHODOLOGY

机译:模拟人类组织:一种有效的集成方法

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Geometric models of human body organs are obtained from imaging techniques like computed tomography (CT) and magnetic resonance image (MRI) that oallow an accurate visualization of the inner body, thus providing relevant information about their its structure and pathologies. Next, these models are used to generate surface and volumetric meshes, which can be used further for visualization, measurement, biomechanical simulation, rapid prototyping and prosthesis design. However, going from geometric models to numerical models is not an easy task, being necessary to apply image-processing techniques to solve the complexity of human tissues and to get more simplified geometric models, thus reducing the complexity of the subsequent numerical analysis. In this work, an integrated and efficient methodology to obtain models of soft tissues like gray and white matter of brain and hard tissues like jaw and spine bones is proposed. The methodology is based on image-processing algorithms chosen according to some characteristics of the tissue: type, intensity profiles and boundaries quality. First, low-quality images are improved by using enhancement algorithms to reduce image noise and to increase structures contrast. Then, hybrid segmentation for tissue identification is applied through a multi-stage approach. Finally, the obtained models are resampled and exported in formats readable by computer aided design (CAD) tools. In CAD environments, this data is used to generate discrete models using finite element methed (FEM) or other numerical methods like the boundary element method (BEM). Results have shown that the proposed methodology is useful and versatile to obtain accurate geometric models that can be used in several clinical cases to obtain relevant quantitative and qualitative information.
机译:人体器官的几何模型是从诸如计算机断层扫描(CT)和磁共振图像(MRI)等成像技术中获得的,它们可以准确显示内部人体,从而提供有关其结构和病理的相关信息。接下来,这些模型用于生成表面和体积网格,这些网格可以进一步用于可视化,测量,生物力学模拟,快速原型设计和假体设计。但是,从几何模型转换为数值模型并非易事,必须应用图像处理技术来解决人体组织的复杂性并获得更简化的几何模型,从而降低后续数值分析的复杂性。在这项工作中,提出了一种综合而有效的方法来获得软组织(例如大脑的灰色和白色物质)和硬组织(例如下颌和脊柱骨)的模型。该方法基于图像处理算法,该算法是根据组织的某些特征选择的:类型,强度分布和边界质量。首先,通过使用增强算法来减少图像噪声并增加结构对比度来改善低质量图像。然后,通过多阶段方法应用用于组织识别的混合分割。最后,对获得的模型进行重新采样并以计算机辅助设计(CAD)工具可读的格式导出。在CAD环境中,此数据用于使用有限元方法(FEM)或其他数值方法(例如边界元方法(BEM))生成离散模型。结果表明,所提出的方法学对于获得可以在若干临床案例中使用的精确几何模型,以获得相关的定量和定性信息是有用的和通用的。

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