A method to convert traditional fingerprint ACE / ACE-V outputs ("identification", "inconclusive", "exclusion") to Bayes factors

Geoffrey Stewart Morrison
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Abstract

Fingerprint examiners appear to be reluctant to adopt probabilistic reasoning, statistical models, and empirical validation. The rate of adoption of the likelihood-ratio framework by fingerprint practitioners appears to be near zero. A factor in the reluctance to adopt the likelihood-ratio framework may be a perception that it would require a radical change in practice. The present paper proposes a small step that would require minimal changes to current practice. It proposes and demonstrates a method to convert traditional fingerprint-examination outputs ("identification", "inconclusive", "exclusion") to well-calibrated Bayes factors. The method makes use of a beta-binomial model, and both uninformative and informative priors.
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将传统指纹 ACE / ACE-V 输出("识别"、"不确定"、"排除")转换为贝叶斯因子的方法
指纹检验员似乎不愿意采用概率推理、统计模型和经验验证。指纹鉴定人员采用似然比框架的比率似乎为零。不愿采用似然比框架的一个原因可能是认为这需要彻底改变做法。本文提出了一个小步骤,只需对目前的做法做出最小的改变。本文提出并演示了一种方法,可将传统的指纹检验结果("识别"、"不确定"、"排除")转换为校准良好的贝叶斯系数。该方法使用了贝塔-二叉模型以及非信息和信息先验。
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