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Statistical challenges in the quantification of gunshot residue evidence

机译:枪击残留物证据量化中的统计挑战

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The discharging of a gun results in the formation of extremely small particles known as gunshot residues (GSR). These may be deposited on the skin and clothing of the shooter, on other persons present, and on nearby items or surfaces. Several factors and their complex interactions affect the number of detectable GSR particles, which can deeply influence the conclusions drawn from likelihood ratios or posterior probabilities for prosecution hypotheses of interest. We present Bayesian network models for casework examples and demonstrate that probabilistic quantification of GSR evidence can be very sensitive to the assumptions concerning the model structure, prior probabilities, and the likelihood components. This finding has considerable implications for the use of statistical quantification of GSR evidence in the legal process.
机译:枪支的放电会导致形成极小的微粒,称为枪支残留物(GSR)。这些可能会沉积在射手的皮肤和衣服上,在场的其他人以及附近的物品或表面上。几个因素及其复杂的相互作用会影响可检测的GSR粒子的数量,这可能会深刻影响从检控假设的似然比或后验概率得出的结论。我们为案例研究示例提供贝叶斯网络模型,并证明GSR证据的概率量化可能对有关模型结构,先验概率和可能性分量的假设非常敏感。这一发现对于在法律程序中使用GSR证据的统计量化具有重要意义。

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