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Segmented Bayesian calibration approach for estimating age in forensic science. | LitMetric

AI Article Synopsis

  • The conventional regression methods often lead to age overestimations in younger individuals and underestimations in older ones, prompting the need for improved techniques.
  • The researchers developed a Bayesian calibration method with a segmented function to better estimate age, which proved more robust and precise than existing methods while effectively addressing the biases found in traditional approaches, even when tested on data from South African juveniles.

Article Abstract

Forensic age estimation is receiving growing attention from researchers in the last few years. Accurate estimates of age are needed both for identifying real age in individuals without any identity document and assessing it for human remains. The methods applied in such context are mostly based on radiological analysis of some anatomical districts and entail the use of a regression model. However, estimating chronological age by regression models leads to overestimated ages in younger subjects and underestimated ages in older ones. We introduced a full Bayesian calibration method combined with a segmented function for age estimation that relied on a Normal distribution as a density model to mitigate this bias. In this way, we were also able to model the decreasing growth rate in juveniles. We compared our new Bayesian-segmented model with other existing approaches. The proposed method helped producing more robust and precise forecasts of age than compared models while exhibited comparable accuracy in terms of forecasting measures. Our method seemed to overcome the estimation bias also when applied to a real data set of South-African juvenile subjects.

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Source
http://dx.doi.org/10.1002/bimj.201900016DOI Listing

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