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自动分类不同距离枪击和钝器冲击形成的血溅形态。

Automatic Classification of Bloodstain Patterns Caused by Gunshot and Blunt Impact at Various Distances.

机构信息

Department of Computer Science, Iowa State University, Atanasoff Hall, 2434 Osborn Dr, Ames, 50011, IA.

Department of Mechanical Engineering, Iowa State University, 2025 Black Engineering, Ames, 50011, IA.

出版信息

J Forensic Sci. 2020 May;65(3):729-743. doi: 10.1111/1556-4029.14262. Epub 2020 Jan 16.

Abstract

The forensics discipline of bloodstain pattern analysis plays an important role in crime scene analysis and reconstruction. One reconstruction question is whether the blood has been spattered via gunshot or blunt impact such as beating or stabbing. This paper proposes an automated framework to classify bloodstain spatter patterns generated under controlled conditions into either gunshot or blunt impact classes. Classification is performed using machine learning. The study is performed with 94 blood spatter patterns which are available as public data sets, designs a set of features with possible relevance to classification, and uses the random forests method to rank the most useful features and perform classification. The study shows that classification accuracy decreases with the increasing distance between the target surface collecting the stains and the blood source. Based on the data set used in this study, the model achieves 99% accuracy in classifying spatter patterns at distances of 30 cm, 93% accuracy at distances of 60 cm, and 86% accuracy at distances of 120 cm. Results with 10 additional backspatter patterns also show that the presence of muzzle gases can reduce classification accuracy.

摘要

血痕形态分析是法医学中的一个重要分支,在犯罪现场分析和重建中发挥着重要作用。其中一个重建问题是血液是通过枪击还是钝器冲击(如殴打或刺伤)飞溅出来的。本文提出了一种自动化框架,用于将在受控条件下生成的血痕飞溅模式分类为枪击或钝器冲击类别。分类是使用机器学习完成的。该研究使用了 94 个血痕飞溅模式,这些模式是公开的数据集,设计了一组可能与分类相关的特征,并使用随机森林方法对最有用的特征进行排名和分类。研究表明,随着目标表面与血迹源之间距离的增加,分类准确性会降低。基于本研究中使用的数据集,该模型在 30cm 的距离下的分类准确率为 99%,在 60cm 的距离下的准确率为 93%,在 120cm 的距离下的准确率为 86%。对 10 个额外的后向飞溅模式的结果也表明,枪口气体的存在会降低分类准确性。

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