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Accuracy assessment of high frequency 3D ultrasound for digital impression-taking of prepared teeth

机译:高频3D超声对准备好的牙齿进行数字化印模的准确性评估

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Silicone based impression-taking of prepared teeth followed by plaster casting is well-established but potentially less reliable, error-prone and inefficient, particularly in combination with emerging techniques like computer aided design and manufacturing (CAD/CAM) of dental prosthesis. Intra-oral optical scanners for digital impression-taking have been introduced but until now some drawbacks still exist. Because optical waves can hardly penetrate liquids or soft-tissues, sub-gingival preparations still need to be uncovered invasively prior to scanning. High frequency ultrasound (HFUS) based micro-scanning has been recently investigated as an alternative to optical intra-oral scanning. Ultrasound is less sensitive against oral fluids and in principal able to penetrate gingiva without invasively exposing of sub-gingival preparations. Nevertheless, spatial resolution as well as digitization accuracy of an ultrasound based micro-scanning system remains a critical parameter because the ultrasound wavelength in water-like media such as gingiva is typically smaller than that of optical waves. In this contribution, the in-vitro accuracy of ultrasound based micro-scanning for tooth geometry reconstruction is being investigated and compared to its extra-oral optical counterpart. In order to increase the spatial resolution of the system, 2nd harmonic frequencies from a mechanically driven focused single element transducer were separated and corresponding 3D surface models were calculated for both fundamentals and 2nd harmonics. Measurements on phantoms, model teeth and human teeth were carried out for evaluation of spatial resolution and surface detection accuracy. Comparison of optical and ultrasound digital impression taking indicate that, in terms of accuracy, ultrasound based tooth digitization can be an alternative for optical impression-taking.
机译:硅胶的预备牙印象制模,然后进行石膏浇铸,是公认的方法,但可靠性可能较低,容易出错且效率低下,特别是与新兴技术(如计算机辅助设计和制造义齿(CAD / CAM))相结合时。已经引入了用于数字印象的口内光学扫描仪,但是直到现在,仍然存在一些缺点。由于光波几乎不能穿透液体或软组织,因此在扫描之前仍需要侵入性地揭露龈下制剂。最近已经研究了基于高频超声(HFUS)的微扫描,作为光学口腔内扫描的替代方法。超声波对口腔液的敏感性较低,并且原则上能够穿透牙龈而无需侵入性地暴露龈下制剂。然而,基于超声的微扫描系统的空间分辨率以及数字化精度仍然是关键参数,因为在诸如牙龈的水状介质中的超声波长通常小于光波的波长。在此贡献中,正在研究基于超声的微扫描在牙齿几何结构重建中的体外准确性,并将其与口腔外光学对等体进行比较。为了提高系统的空间分辨率,对来自机械驱动的聚焦单元件换能器的二次谐波频率进行了分离,并针对基波和二次谐波计算了相应的3D表面模型。对体模,模型牙齿和人牙齿进行了测量,以评估空间分辨率和表面检测精度。光学和超声数字压印的比较表明,就准确性而言,基于超声的牙齿数字化可以替代光学压印。

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