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Estimating error rates for firearm evidence identifications in forensic science

机译:法医科学枪支证据标识估算误差率

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摘要

Estimating error rates for firearm evidence identification is a fundamental challenge in forensic science. This paper describes the recently developed congruent matching cells (CMC) method for image comparisons, its application to firearm evidence identification, and its usage and initial tests for error rate estimation. The CMC method divides compared topography images into correlation cells. Four identification parameters are defined for quantifying both the topography similarity of the correlated cell pairs and the pattern congruency of the registered cell locations. A declared match requires a significant number of CMCs, i.e., cell pairs that meet all similarity and congruency requirements. Initial testing on breech face impressions of a set of 40 cartridge cases fired with consecutively manufactured pistol slides showed wide separation between the distributions of CMC numbers observed for known matching and known non-matching image pairs. Another test on 95 cartridge cases from a different set of slides manufactured by the same process also yielded widely separated distributions. The test results were used to develop two statistical models for the probability mass function of CMC correlation scores. The models were applied to develop a framework for estimating cumulative false positive and false negative error rates and individual error rates of declared matches and non-matches for this population of breech face impressions. The prospect for applying the models to large populations and realistic case work is also discussed. The CMC method can provide a statistical foundation for estimating error rates in firearm evidence identifications, thus emulating methods used for forensic identification of DNA evidence. Published by Elsevier B.V.
机译:估算枪支证据识别的错误率是法医学的基本挑战。本文介绍了最近开发的一致性匹配单元(CMC)方法,用于图像比较,其应用于枪支证据标识的应用,以及其使用和初始测试进行错误率估计。 CMC方法将与相关细胞的形貌图像进行分割。定义四个识别参数,用于量化相关细胞对的形貌相似性和注册的小区位置的模式累积。声明的匹配需要大量的CMCS,即,符合所有相似性和一致性要求的单元对。通过连续制造的手枪释放的一组40个盒式盒的初始测试造成一组40个盒式盒的印模在为已知匹配和已知的非匹配图像对观察到的CMC编号的分布之间的广泛分离。来自由相同过程制造的不同一组载玻片的95盒式盒的另一个测试也产生了广泛分离的分布。测试结果用于开发用于CMC相关分数的概率质量函数的两个统计模型。应用模型来开发估计累积假阳性和假负误差率的框架,以及呼出的匹配和非匹配的单个误差率,对这一次脑袋的印象群体。还讨论了将模型应用于大型人口和现实案例工作的前景。 CMC方法可以为枪支证据鉴定估计误差率提供统计基础,从而仿真用于法医鉴定的DNA证据的方法。 elsevier b.v出版。

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