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基于全景片的机器学习估算巴西患者的年龄。

Estimation of human age using machine learning on panoramic radiographs for Brazilian patients.

机构信息

Universidade Federal de Pernambuco, Centro de Informática - CIn, Recife, 50740-560, Brazil.

Universidade Federal de Pernambuco, Centro de Ciências da Saúde, Departamento de Clínica e Odontologia Preventiva, Recife, 50670-901, Brazil.

出版信息

Sci Rep. 2024 Aug 24;14(1):19689. doi: 10.1038/s41598-024-70621-1.

Abstract

This paper addresses a relevant problem in Forensic Sciences by integrating radiological techniques with advanced machine learning methodologies to create a non-invasive, efficient, and less examiner-dependent approach to age estimation. Our study includes a new dataset of 12,827 dental panoramic X-ray images representing the Brazilian population, covering an age range from 2.25 to 96.50 years. To analyze these exams, we employed a model adapted from InceptionV4, enhanced with data augmentation techniques. The proposed approach achieved robust and reliable results, with a Test Mean Absolute Error of 3.1 years and an R-squared value of 95.5%. Professional radiologists have validated that our model focuses on critical features for age assessment used in odontology, such as pulp chamber dimensions and stages of permanent teeth calcification. Importantly, the model also relies on anatomical information from the mandible, maxillary sinus, and vertebrae, which enables it to perform well even in edentulous cases. This study demonstrates the significant potential of machine learning to revolutionize age estimation in Forensic Science, offering a more accurate, efficient, and universally applicable solution.

摘要

本文通过将放射学技术与先进的机器学习方法相结合,解决了法医学中的一个相关问题,旨在创建一种非侵入性、高效且对鉴定人依赖程度较低的年龄估计方法。我们的研究包括一个新的包含 12827 张代表巴西人群的牙科全景 X 射线图像的数据集,年龄范围从 2.25 岁到 96.50 岁。为了分析这些检查结果,我们使用了一种从 InceptionV4 改编的模型,并结合了数据增强技术。所提出的方法取得了稳健且可靠的结果,测试平均绝对误差为 3.1 岁,R-squared 值为 95.5%。专业放射科医生已经验证,我们的模型专注于牙科学中用于年龄评估的关键特征,如牙髓腔尺寸和恒牙钙化阶段。重要的是,该模型还依赖于下颌骨、上颌窦和脊椎的解剖学信息,这使其即使在无牙的情况下也能很好地发挥作用。本研究表明,机器学习在法医学中的年龄估计方面具有重大潜力,可以提供更准确、高效且普遍适用的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7fb0/11344797/2c2d869a7937/41598_2024_70621_Fig1_HTML.jpg

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