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Police Forensic science performance indicators - a new approach to data validation

机译:警察取证科学绩效指标 - 一种新的数据验证方法

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DNA and fingerprint identifications continue to form an integral part of the detection of a wide range of crime types, especially volume crime such as burglary and auto crime. More than ten years ago, researchers first commented on the lack of emphasis on 'outcome' (i.e. crime detection) related performance indicators for UK police forces. Since then much work has been carried out, mainly by the Association of Chief Police Officers of England & Wales and the Home Office, to produce a framework of forensic science performance indicators that reflect accurately the contribution made by forensic science to crime detection. In this paper, we consider the data currently being collected by five UK police forces that use popular proprietary computer based data collection systems. The accuracy of the data collection has been analysed using a neural network and has identified collection errors in all five forces. These errors are such that they could adversely affect the accuracy and interpretation of the national collection of forensic science data conducted by the Home Office. We propose using this neural network to check the accuracy of data collection and also to provide a 'front end' collator for national forensic science data returns to the Home Office. Such an approach would improve the accuracy of data collection nationally and also provide some reassurance over the consistency of data recording by individual forces.
机译:DNA和指纹识别继续形成多种犯罪类型,尤其是入室盗窃和汽车犯罪等批量犯罪的不可或缺的一部分。十多年前,研究人员首先评论了英国警察部队的“犯罪检测”(即犯罪检测)缺乏重点。从那时起,已经开展了很多工作,主要由英格兰&威尔士和本办事处的首席警务人员协会,制定法医科学绩效指标的框架,以准确反映法医科学对犯罪检测的贡献。在本文中,我们考虑目前由五个英国警察部队收集的数据,该部队使用流行的基于计算机的数据收集系统。使用神经网络分析了数据收集的准确性,并在所有五种力中识别出收集错误。这些错误是它们可能对本办公室进行的国家法医学汇集的准确性和解释产生不利影响。我们建议使用这种神经网络来检查数据收集的准确性,也可以为国家法医学数据提供一个“前端”集装店,返回家庭办公室。这种方法将提高数据收集的准确性,并在各个力量记录的数据记录一致性方面提供一些保证。

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