Department of Otolaryngology, Tzu Chi General Hospital, 970, Hualien, Taiwan.
Ann Biomed Eng. 2010 May;38(5):1719-27. doi: 10.1007/s10439-010-9961-1. Epub 2010 Feb 17.
We present a practical and systematic method to reconstruct accurate physical models of the guinea pig ear (n = 1). The method uses a semi-automatic technique to create three-dimensional (3-D) models of the guinea pig cochlea by registration of micro-computed tomography (CT) and histological images. An iterative closest point algorithm was employed to minimize the sum of square errors with respect to the closest histological model and corresponding micro-CT model. This allowed creation of an accurate geometric ear model including external ear canal, tympanic membrane, middle ear cavity, auditory ossicles, and the cochlea. The characteristic cross-sectional areas of scala tympani, scala vestibuli, and scala media were measured. The length, thickness, and apex width of the guinea pig's basilar membrane were compared to the data found in literature. Some shape parameters were also compared among different species. The results confirmed that the geometric model created by this method was accurate. This method provides an effective way to visualize the 3-D structure and the detailed information about ear geometry required for finite element and multibody dynamic analysis.
我们提出了一种实用且系统的方法,用于重建豚鼠耳朵(n = 1)的精确物理模型。该方法使用半自动技术通过注册微计算机断层扫描(CT)和组织学图像来创建豚鼠耳蜗的三维(3-D)模型。迭代最近点算法用于使最接近组织学模型和相应的微 CT 模型的平方和误差最小化。这允许创建包括外耳通道、鼓膜、中耳腔、听小骨和耳蜗在内的精确几何耳朵模型。测量了鼓阶、前庭阶和中阶的特征横截面积。比较了豚鼠基底膜的长度、厚度和顶点宽度与文献中发现的数据。还比较了不同物种之间的一些形状参数。结果证实,该方法创建的几何模型是准确的。该方法为可视化有限元和多体动力学分析所需的耳朵几何形状的 3-D 结构和详细信息提供了一种有效途径。