Applicability of the Suchey-Brooks method for age estimation in an Indian population: A computed tomography-based exploration using Bayesian analysis and machine learning.

IF 1.5 4区 医学 Q1 LAW Medicine, Science and the Law Pub Date : 2024-04-01 Epub Date: 2023-07-25 DOI:10.1177/00258024231188799
Varsha Warrier, Rutwik Shedge, Pawan Kumar Garg, Shilpi Gupta Dixit, Kewal Krishan, Tanuj Kanchan
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Abstract

Age estimation occupies a prominent niche in the identification process. In cases where skeletal remains present for examination, age is often estimated from markers distributed throughout the skeletal framework. Within the pelvis, the pubic symphysis constitutes one of the more commonly utilized skeletal markers for age estimation, with the Suchey-Brooks method comprising one of the more commonly employed methods for pubic symphyseal age estimation. The present study was targeted towards assessing the applicability of the Suchey-Brooks method for pubic symphyseal age estimation, an aspect largely unreported for an Indian population. In order to do so, clinically undertaken pelvic computed tomography scans of individuals were evaluated using the Suchey-Brooks method, and the error associated with the method was established using Bayesian analysis and different machine learning regression models. Amongst different supervised machine learning models, support vector regression and random forest furnished lowest error computations in both sexes. Using both Bayesian analysis and machine learning, lower error computations were observed in females, suggesting that the method demonstrates greater applicability for this sex. Inaccuracy and root mean square error obtained with Bayesian analysis and machine learning illustrates that both statistical modalities furnish comparable error computations for pubic symphyseal age estimation using the Suchey-Brooks method. However, given the numerous advantages associated with machine learning, it is recommended to use the same within medicolegal settings. Error computations obtained with the Suchey-Brooks method, regardless of the statistical modality utilized, indicate that the method should be used in amalgamation with additional markers to garner accurate estimates of age.

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Suchey-Brooks 年龄估计方法在印度人口中的适用性:利用贝叶斯分析和机器学习进行的基于计算机断层扫描的探索。
年龄估计在鉴定过程中占有重要地位。在有骸骨可供检验的情况下,通常根据分布在整个骨骼框架中的标记来估算年龄。在骨盆中,耻骨联合是比较常用的年龄估计骨骼标志物之一,而 Suchey-Brooks 方法则是比较常用的耻骨联合年龄估计方法之一。本研究旨在评估 Suchey-Brooks 法在估计耻骨联合年龄方面的适用性,而印度人群在这方面的情况基本上没有报道。为此,研究人员使用 Suchey-Brooks 方法对临床骨盆计算机断层扫描进行了评估,并使用贝叶斯分析和不同的机器学习回归模型确定了该方法的相关误差。在各种有监督的机器学习模型中,支持向量回归和随机森林的计算误差在男女两性中都是最低的。使用贝叶斯分析和机器学习,女性的误差计算量更低,这表明该方法更适用于女性。贝叶斯分析法和机器学习法得出的不准确度和均方根误差表明,这两种统计模式在使用 Suchey-Brooks 方法估算耻骨骨龄时可提供相似的误差计算结果。不过,鉴于机器学习的诸多优势,建议在医学法律环境中使用机器学习。无论使用哪种统计模式,使用 Suchey-Brooks 方法计算出的误差都表明,该方法应与其他标记物结合使用,以获得准确的年龄估计值。
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来源期刊
Medicine, Science and the Law
Medicine, Science and the Law 医学-医学:法
CiteScore
2.90
自引率
6.70%
发文量
53
审稿时长
>12 weeks
期刊介绍: Medicine, Science and the Law is the official journal of the British Academy for Forensic Sciences (BAFS). It is a peer reviewed journal dedicated to advancing the knowledge of forensic science and medicine. The journal aims to inform its readers from a broad perspective and demonstrate the interrelated nature and scope of the forensic disciplines. Through a variety of authoritative research articles submitted from across the globe, it covers a range of topical medico-legal issues. The journal keeps its readers informed of developments and trends through reporting, discussing and debating current issues of importance in forensic practice.
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