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Bloodstain Pattern Analysis A New Challenge for Computational Intelligence Community

机译:血迹模式分析计算智能界的新挑战

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Bloodstain pattern analysis (BPA) is a forensic discipline that plays a key role in tracing events which caused a bloodshed at a crime scene. Indeed, BPA supports worldwide investigation agencies (US FBI, Italian Carabinieri and so on) in interpreting the morphology and distribution of bloodspots at a crime scene in order to enable a potentially complete reconstruction of the dynamics of the act of violence with a consequent identification of potential suspects for that crime. However, in spite of its importance, this forensic discipline is still based on completely manual approaches, making the analysis of a crime scene long, tedious and potentially imperfect. This position paper is aimed at proving that computational intelligence methodologies can be efficiently integrated with image processing techniques to support forensic investigators in increasing their performance in examining bloodstains, both in terms of time and accuracy of analysis. A preliminary study involving the application of fuzzy clustering has been carried out in order to validate our opinion and stimulate computational intelligence community to face this new challenge towards a formal definition of Forensic Intelligence.
机译:血迹模式分析(BPA)是一项法医学,在追踪事件中发挥着关键作用,这在犯罪现场引起了流血。实际上,BPA支持全球调查机构(美国FBI,意大利Carabinieri等)在解释犯罪现场的血液印度的形态和分布,以便能够完全重建暴力行为的动态,从而识别潜在的嫌疑人。然而,尽管重要的是,这一法医纪律仍然是基于完全手工的方法,使犯罪现场的分析长,乏味和潜在的不完美。该位置纸针对证明计算智能方法可以用图像处理技术有效地集成,以支持法医调查人员在分析时间和准确性方面提高血液患者的性能。已经进行了初步研究,涉及模糊聚类的应用,以验证我们的意见并刺激计算智能界,以面对对法医智能的正式定义面临这一新挑战。

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