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Evaluation and comparison of methods for forensic glass source conclusions

机译:法医玻璃源结论方法的评价与比较

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Float glass, a common type of glass used in windows and doors, can be important evidence in the investigation of a crime. If fragments are optically indistinguishable, they may be distinguishable in their chemical compositions, which can be measured using inductively coupled mass spectrometry with a laser add-on (LA-ICP-MS) [14]. If the measurements are "similar enough" then the recovered fragment is indistinguishable from the crime scene glass [1]. Recently, Park and Carriquiry [10] proposed using machine learning methods to establish probabilistic source conclusions for glass, and found that these methods have lower classification error than traditional methods. Using an experimental database of glass elemental concentrations to simulate different forensic scenarios, we examine the results from two different classifiers to understand why learning algorithms appear to outperform traditional methods when making source conclusions for forensic float glass questions. By analyzing each step in the recommended ASTM decision process, we conclude that the standard ASTM method is not the optimum and that more data are required to determine a better comparison rule for source conclusions based on the chemical makeup of float glass. (C) 2019 Elsevier B.V. All rights reserved.
机译:浮法玻璃,窗户和门用于窗户和门的常用玻璃,可能是调查犯罪的重要证据。如果片段是光学难以区分的,则它们可以在其化学组合物中可区分,其可以使用电感耦合质谱法测量与激光加入(La-ICP-MS)[14]。如果测量值“类似”,那么回收的片段与犯罪现场玻璃难以区分[1]。最近,公园和Carriquriry [10]采用机器学习方法建立玻璃的概率源结论,发现这些方法比传统方法较低的分类误差。使用玻璃元素浓度的实验数据库来模拟不同的法医场景,我们检查两种不同分类器的结果,了解为什么学习算法似乎在发出法医浮法玻璃问题的来源结论时似乎优于传统方法。通过在推荐的ASTM决策过程中分析每个步骤,我们得出结论,标准ASTM方法不是最佳的,并且需要更多的数据来确定基于浮法玻璃化学化妆的来源结论的更好的比较规则。 (c)2019年Elsevier B.V.保留所有权利。

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