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Teeth feature extraction and matching for human identification using morphological skeleton transform

机译:牙齿特征提取和匹配,通过形态学骨架变换进行人体识别

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The morphological skeleton transform (MST) is a leading morphological shape representation scheme. In the MST, a given shape is represented as the union of all the maximal disks contained in the shape. The concept of external skeleton points and external maximal disks has been used for shape description and characterization purposes. Dental biometrics has emerged as vital biometric information of human being due to its stability, invariant nature and uniqueness. The proposed work using SIFT algorithm for human identification and we work with canny detection algorithm for the analysis and comparison with the proposed SIFT algorithm. This system has six main stages as pre-processing, feature extraction, feature matching and finalized recognized person. Then we go for canny edge detection and comparison with database images. At the final step we compare SIFT and canny algorithm detected values using the Euclidian distance between the query image and database. Here the Euclidian distance between detected points and matching points determines the accuracy of the algorithm for human identification. The system is work for both types of dental images i.e. photograph and radiograph in which two different datasets are required. The required database contains 50 images of dental photographs and 50 images of dental radiographs so experimentation has done on total 100 images and that are taken from dental clinic* and internet. While comparing proposed SIFT algorithm with canny detection algorithm we can conclude that our SIFT algorithm can provide more accurate result.
机译:形态骨架变换(MST)是一种领先的形态形状表示方案。在MST中,给定形状表示为形状中包含的所有最大磁盘的联合。外部骨架点和外部最大磁盘的概念已用于形状描述和表征目的。由于其稳定性,不变性和唯一性,牙科生物识别技术已成为人类的重要生物信息。所提出的工作,使用SIFT算法进行人类识别,与拟议的SIFT算法进行分析和比较,与Canny检测算法合作。该系统具有六个主要阶段,作为预处理,功能提取,功能匹配和最终识别的人。然后我们参加Canny Edge检测并与数据库图像进行比较。在最后一步,我们将SIFT和Canny算法使用查询图像和数据库之间的欧几里德距离进行了检测到的值。这里,检测点和匹配点之间的欧几里德距离决定了人类识别算法的准确性。该系统适用于两种类型的牙科图像I.E.照片和射线照片,其中需要两个不同的数据集。所需的数据库包含50张牙科照片和50张牙科射线照片的图像,因此实验已经完成了总共100张图像,并从牙科诊所*和互联网上取出。在比较具有Canny检测算法的提出的SIFT算法的同时,我们可以得出结论,我们的SIFT算法可以提供更准确的结果。

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