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X2Teeth: 3D Teeth Reconstruction from a Single Panoramic Radiograph

机译:X2TETH:3D从单个全景射线照片重建牙齿重建

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3D teeth reconstruction from X-ray is important for dental diagnosis and many clinical operations. However, no existing work has explored the reconstruction of teeth for a whole cavity from a single panoramic radiograph. Different from single object reconstruction from photos, this task has the unique challenge of constructing multiple objects at high resolutions. To conquer this task, we develop a novel ConvNet X2Teeth that decomposes the task into teeth localization and single-shape estimation. We also introduce a patch-based training strategy, such that X2Teeth can be end-to-end trained for optimal performance. Extensive experiments show that our method can successfully estimate the 3D structure of the cavity and reflect the details for each tooth. Moreover, X2Teeth achieves a reconstruction IoU of 0.681, which significantly outperforms the encoder-decoder method by 1.71 × and the retrieval-based method by 1.52×. Our method can also be promising for other multi-anatomy 3D reconstruction tasks.
机译:X射线的3D牙齿重建对于牙科诊断和许多临床操作很重要。然而,没有现有的工作从一个全景射线照片探索了整个腔的整个腔的重建。与照片中的单一对象重建不同,此任务具有在高分辨率下构造多个对象的独特挑战。为了征服这项任务,我们开发一个小说ConvNet X2teh,将任务分解为牙齿定位和单形估计。我们还介绍了基于补丁的培训策略,使得X2Teve可以是最终培训的最佳性能。广泛的实验表明,我们的方法可以成功地估计腔的3D结构,并反射每个牙齿的细节。此外,X2teh达到了0.681的重建IOU,其通过1.71×和基于检索方法的编码器 - 解码器方法显着优于1.52×。我们的方法也可能对其他多解剖3D重建任务有望。

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