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Hostile intent identification by movement pattern analysis: Using artificial neural networks

机译:通过运动模式分析进行敌对意图识别:使用人工神经网络

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In the recent years, the problem of identifying suspicious behavior has gained importance and identifying this behavior using computational systems and autonomous algorithms is highly desirable in a tactical scenario. So far, the solutions have been primarily manual which elicit human observation of entities to discern the hostility of the situation. To cater to this problem statement, a number of fully automated and partially automated solutions exist. But, these solutions lack the capability of learning from experiences and work in conjunction with human supervision which is extremely prone to error. In this paper, a generalized methodology to predict the hostility of a given object based on its movement patterns is proposed which has the ability to learn and is based upon the mechanism of humans of “learning from experiences”. The methodology so proposed has been implemented in a computer simulation. The results show that the posited methodology has the potential to be applied in real world tactical scenarios.
机译:近年来,识别可疑行为的问题变得越来越重要,并且在战术场景中使用计算系统和自主算法识别这种行为是非常必要的。到目前为止,解决方案主要是手动的,可以引起人们对实体的观察以辨别局势的敌意。为了满足该问题陈述,存在许多全自动和部分自动化的解决方案。但是,这些解决方案缺乏从经验中学习的能力,无法与极易出错的人为监督一起工作。在本文中,提出了一种基于对象的运动模式预测给定对象的敌对性的通用方法,该方法具有学习能力,并基于人类“从经验中学习”的机制。如此提出的方法已经在计算机仿真中实现。结果表明,所提出的方法具有在现实世界的战术场景中应用的潜力。

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