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PMID: 25645903 Published · ppublish English Journal Article

Bayesian calibration for forensic age estimation.

Statistics in medicine ·Vol. 34 ·No. 10 ·2015-05-10 ·Pages 1779-90

Ferrante L, Skrami E, Gesuita R, Cameriere R

Abstract

Forensic medicine is increasingly called upon to assess the age of individuals. Forensic age estimation is mostly required in relation to illegal immigration and identification of bodies or skeletal remains. A variety of age estimation methods are based on dental samples and use of regression models, where the age of an individual is predicted by morphological tooth changes that take place over time. From the medico-legal point of view, regression models, with age as the dependent random variable entail that age tends to be overestimated in the young and underestimated in the old. To overcome this bias, we describe a new full Bayesian calibration method (asymmetric Laplace Bayesian calibration) for forensic age estimation that uses asymmetric Laplace distribution as the probability model. The method was compared with three existing approaches (two Bayesian and a classical method) using simulated data. Although its accuracy was comparable with that of the other methods, the asymmetric Laplace Bayesian calibration appears to be significantly more reliable and robust in case of misspecification of the probability model. The proposed method was also applied to a real dataset of values of the pulp chamber of the right lower premolar measured on x-ray scans of individuals of known age.

Keywords
age estimation asymmetric Laplace distribution bayesian calibration forensic statistics
MeSH Terms
Adoption/legislation & jurisprudence Age Determination by Skeleton/methods,statistics & numerical data Age Determination by Teeth/methods Bayes Theorem Calibration Computer Simulation Criminals/legislation & jurisprudence Forensic Dentistry/methods,statistics & numerical data Humans Linear Models Undocumented Immigrants/legislation & jurisprudence
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Ferrante Luigi
Center of Epidemiology, Biostatistics and Medical Information Technology, Department of Biomedical Sciences and Public Health, School of Medicine, Polytechnic University of Marche, 60020, Torrette di Ancona, Italy.
Skrami Edlira
Gesuita Rosaria
Cameriere Roberto
Article Info
Journal
Statistics in medicine
Abbr.
Stat Med
ISSN
1097-0258
Published
2015-05-10
Epub
2015-00-02
Pages
1779-90
Language
English
Region
England
NLM ID
8215016
Subset
IM
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