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首页> 外文期刊>PeerJ Computer Science >Fuzzy based binary feature profiling for modus operandi analysis
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Fuzzy based binary feature profiling for modus operandi analysis

机译:基于模糊的二值特征剖析,用于模式操作分析

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It is a well-known fact that some criminals follow perpetual methods of operations known as modi operandi. Modus operandi is a commonly used term to describe the habits in committing crimes. These modi operandi are used in relating criminals to crimes for which the suspects have not yet been recognized. This paper presents the design, implementation and evaluation of a new method to find connections between crimes and criminals using modi operandi. The method involves generating a feature matrix for a particular criminal based on the flow of events of his/her previous convictions. Then, based on the feature matrix, two representative modi operandi are generated: complete modus operandi and dynamic modus operandi. These two representative modi operandi are compared with the flow of events of the crime at hand, in order to generate two other outputs: completeness probability (CP) and deviation probability (DP). CP and DP are used as inputs to a fuzzy inference system to generate a score which is used in providing a measurement for the similarity between the suspect and the crime at hand. The method was evaluated using actual crime data and ten other open data sets. In addition, comparison with nine other classification algorithms showed that the proposed method performs competitively with other related methods proving that the performance of the new method is at an acceptable level.
机译:众所周知的事实是,一些罪犯会采用永无休止的行动方式,即作案手法。作案手法是描述犯罪习惯的常用术语。这些作案手法用于将罪犯与尚未被确认的犯罪嫌疑人联系起来。本文介绍了一种新的方法的设计,实现和评估,该方法可以使用修改操作来发现犯罪和罪犯之间的联系。该方法包括基于他/她先前定罪的事件流为特定罪犯生成特征矩阵。然后,基于特征矩阵,生成两个代表性的模操作:完全模操作和动态模操作。将这两个代表性的作案手法与手头的犯罪事件流进行比较,以产生其他两个输出:完整性概率(CP)和偏离概率(DP)。 CP和DP用作模糊推理系统的输入,以生成一个分数,该分数用于提供对嫌疑人和手头犯罪之间相似性的度量。使用实际犯罪数据和其他十个开放数据集对方法进行了评估。此外,与其他九种分类算法的比较表明,该方法与其他相关方法相比具有竞争优势,证明了该新方法的性能处于可接受的水平。

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