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Individual retrieval based on oral cavity point cloud data and correntropy-based registration algorithm

机译:基于口腔云点云数据和基于正管的登记算法的个人检索

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摘要

In this study, the authors present a novel individual retrieval method based on oral cavity point cloud data and correntropy-based registration algorithm. Since the three-dimensional oral cavity data contains a large amount of noise and outliers, it may lead to a decrease in registration accuracy, which affects the accuracy of retrieval rate. Therefore, the authors introduce the correntropy into the rigid registration algorithm to solve this problem. Then, they filter the matched point cloud data and then use the mean squared error to judge the individual differences of the model data. Finally, the accurate retrieval of the oral cavity data is realised. Experimental results demonstrate the proposed retrieval three-dimensional model algorithm can be successfully searched under different model data, which can help forensics use the characteristics of biological individuals to accurately search and identify, and improve recognition efficiency.
机译:在本研究中,作者提出了一种基于口腔点云数据和基于正文的登记算法的新型单独检索方法。由于三维口腔数据包含大量噪声和异常值,因此它可能导致登记精度的降低,这会影响检索率的准确性。因此,作者将正轮堆引入刚性登记算法以解决这个问题。然后,它们过滤匹配的点云数据,然后使用平均平方误差来判断模型数据的各个差异。最后,实现了口腔数据的准确检索。实验结果证明了所提出的检索三维模型算法可以在不同的模型数据中成功搜索,这可以帮助取证使用生物体的特征来准确地搜索和识别,并提高识别效率。

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