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HIGH-FREQUENCY ULTRASOUND AS AN OPTION FOR SCANNING OF PREPARED TEETH: AN IN VITRO STUDY

机译:高频超声作为制备牙的扫描选择:一项体外研究

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Because of its ability to non-invasively capture hard structures behind soft tissue, high-frequency ultrasound (HFUS)-assisted microscanning could be a patient-friendly and promising alternative for digitization of prepared teeth. However, intra-oral HFUS microscanners for taking digital impressions of prepared teeth are still not available in the clinical setting. Because working range, scanner size, scanning time, surface reconstruction accuracy and costs are major factors in such a system, our overall objective is to minimize hardware efforts and costs while maintaining the accuracy of the surface-reconstructed tooth model in the range 50 mu m. In the work described here, we investigated the accuracy of tooth impression taking using a single-element HFUS microscanner with only three translational degrees of freedom under the restriction that only one occlusal scan is performed per tooth. As in favor of time and scanning efforts the data density is expected to be low, the surface reconstruction process is linked to a model-based surface reconstruction approach using a thin spline robust point matching algorithm to fill data gaps. A priori knowledge for the model is generated based on the original HFUS measurement data. Three artificial teeth and one human molar were prepared and scanned using an extra-oral HFUS laboratory microscanner that was built to test and evaluate different scanning setups. A scanner with three translational degrees of freedom was used to scan the teeth from an occlusal direction. After application of the proposed thin-spline robust point matching algorithm-based reconstruction approach, reconstruction accuracy was assessed by comparing the casts with a control group scanned with an extra-oral laser-scanning system. The mean difference between the reconstructed casts and the optical control group was in the range 14-53 mu m. The standard deviation was between 21 and 52 mm. This let us assume that the suggested approach can help to decrease hardware efforts while maintaining the robustness of the 3-D surface reconstruction process for future HFUS-based intra-oral scanners. (C) 2015 World Federation for Ultrasound in Medicine & Biology.
机译:由于其能够无创地捕获软组织后的硬结构,因此高频超声(HFUS)辅助的显微扫描可能是患者友好且有希望的替代方法,可用于预备牙齿的数字化。但是,在临床环境中仍无法获得用于对已准备好的牙齿进行数字化印记的口腔内HFUS微型扫描仪。由于工作范围,扫描仪尺寸,扫描时间,表面重建精度和成本是此类系统的主要因素,因此我们的总体目标是在保持表面重建牙齿模型精度在50微米范围内的同时,最大程度地减少硬件工作量和成本。 。在这里描述的工作中,我们研究了使用单元素HFUS微型扫描仪在只有三个平移自由度的情况下,每只牙齿只能进行一次咬合扫描的限制,从而获得牙齿印模的准确性。由于有利于时间和扫描工作,预计数据密度会很低,因此使用细样条稳健点匹配算法将表面重建过程链接到基于模型的表面重建方法,以填补数据空白。基于原始HFUS测量数据生成模型的先验知识。准备了三颗人造牙齿和一颗人类臼齿,并使用口腔内HFUS实验室微型扫描仪进行了扫描,该扫描仪旨在测试和评估不同的扫描设置。使用具有三个平移自由度的扫描仪从咬合方向扫描牙齿。应用所提出的基于细样条鲁棒点匹配算法的重建方法后,通过将演员与经口外激光扫描系统扫描的对照组进行比较,评估了重建的准确性。重建的模型和光学对照组之间的平均差在14-53μm的范围内。标准偏差在21到52毫米之间。这让我们假设建议的方法可以帮助减少硬件工作,同时为未来基于HFUS的口腔内扫描仪保持3-D表面重建过程的鲁棒性。 (C)2015年世界医学和生物学超声联合会。

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