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Multi-Region Statistical Shape Model for Cochlear Implantation

机译:人工耳蜗的多区域统计形状模型

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Statistical shape models are commonly used to analyze the variability between similar anatomical structures and their use is established as a tool for analysis and segmentation of medical images. However, using a global model to capture the variability of complex structures is not enough to achieve the best results. The complexity of a proper global model increases even more when the amount of data available is limited to a small number of datasets. Typically, the anatomical variability between structures is associated to the variability of their physiological regions. In this paper, a complete pipeline is proposed for building a multi-region statistical shape model to study the entire variability from locally identified physiological regions of the inner ear. The proposed model, which is based on an extension of the Point Distribution Model (PDM), is built for a training set of 17 high-resolution images (24.5 μm voxels) of the inner ear. The model is evaluated according to its generalization ability and specificity. The results are compared with the ones of a global model built directly using the standard PDM approach. The evaluation results suggest that better accuracy can be achieved using a regional modeling of the inner ear.
机译:统计形状模型通常用于分析相似解剖结构之间的变异性,并且将其用作医学图像分析和分割的工具。但是,使用全局模型来捕获复杂结构的可变性不足以实现最佳结果。当可用数据量仅限于少量数据集时,适当的全局模型的复杂性甚至会进一步增加。通常,结构之间的解剖变异性与其生理区域的变异性相关。在本文中,提出了一个完整的管道用于构建多区域统计形状模型,以研究局部识别的内耳生理区域的整体变异性。所提出的模型基于点分布模型(PDM)的扩展,是为内耳的17张高分辨率图像(24.5μm体素)的训练集构建的。根据模型的泛化能力和特异性对其进行评估。将结果与直接使用标准PDM方法构建的全局模型的结果进行比较。评估结果表明,使用内耳的区域建模可以实现更好的准确性。

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