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An Efficient Partial Shape Matching Algorithm for 3D Tooth Recognition

机译:一种高效的3D牙齿识别局部形状匹配算法

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As a new biometric strategy, tooth recognition has drawn much attention in recent years. However, most existing work focus mainly on 2D dental radiographs which are less informative and vulnerable to noise and pose variance. Although there are already several attempts on 3D tooth recognition, the results are still inaccurate and performance is inefficient. Moreover, existing methods cannot recognize precisely when the post-mortem data contains incomplete teeth. In this work, we propose an efficient and accurate partial shape matching algorithm to recognize 3D teeth for human identification. Given the ante-mortem and post-mortem teeth models which were taken from patients using a laser scanner, we first extract a series of stable and consistent feature points on the surface of 3D teeth models using a sparse feature selection method based on the saliency map. For each feature point we then establish descriptor based on Improved Spin Images (ISI), which is able to accurately describe the local region around the feature points. Due to the small number of feature points, their correspondences can be efficiently found via the ISI descriptors. Finally, the similarity of the teeth of two input samples (ante-mortem and post-mortem data) can be determined by the sum of the distances between the corresponding ISI descriptors of the feature points. We also conduct experiments to show that the proposed method can achieve state-of-art performance for both complete and incomplete postmortem teeth data.
机译:作为一种新的生物识别策略,近年来的牙齿识别引起了很多关注。然而,大多数现有的工作主要侧重于2D牙科射线照相,这些工作较少的信息,易受噪声和姿势方差。虽然已经有几次尝试3D牙齿识别,但结果仍然不准确,性能效率低下。此外,当验尸数据含有不完全牙齿时,现有方法无法精确识别。在这项工作中,我们提出了一种高效且准确的部分形状匹配算法来识别人类识别的3D齿。鉴于使用激光扫描仪取自患者的抗验验和验尸牙齿模型,我们首先使用基于显着图的稀疏特征选择方法提取一系列稳定且一致的特征点。基于显着图,稀疏特征选择方法。对于每个特征点,我们基于改进的自旋图像(ISI)建立描述符,其能够精确地描述特征点周围的局部区域。由于特征点数少,可以通过ISI描述符有效地找到它们的对应关系。最后,可以通过特征点的相应ISI描述符之间的距离之和来确定两个输入样本(ANTE-MORTEM和后验证数据)的相似性。我们还开展实验表明该方法可以实现完整和不完整的后模齿数据的最先进的性能。

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