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Feature object extraction applied to activity-based intelligence threat understanding

机译:特征对象提取应用于基于活动的情报威胁理解

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Activity-based intelligence, the assessment of both the situation and potential threats, relies on several sources of information. Some of these sources provide information, such as time and position, that is easily represented mathematically. Other pieces of information may come in the form of patterns or imagery. The intelligence problem eventually requires a human analyst. However, the ever-increasing amount of data that must be investigated can overwhelm the analyst and, thus, necessitates the development of automated tools to process the information. An intelligent evidence accrual technique is proposed as a means to combine information in order to identify potential threats. The technique is able to provide both a measure of evidence and a level of uncertainty for the state. The approach is based upon a fuzzy Kalman filter that fuses several types of observations to monitor activities over a duration of time and provide an assessment of the situation. A data-to-image mapping and correlation that allows the combination of disparate elements is incorporated.
机译:基于活动的情报,即对情况和潜在威胁的评估,都依赖于多种信息来源。这些资源中的某些提供了诸如时间和位置之类的信息,这些信息很容易用数学表示。其他信息可能以图案或图像的形式出现。情报问题最终需要人类分析师。但是,必须调查的数据量不断增加可能会使分析人员不知所措,因此,需要开发自动工具来处理信息。提出了一种智能的权责发生制技术,以将信息组合起来以识别潜在威胁。该技术能够提供证据的量度和状态的不确定性。该方法基于模糊卡尔曼滤波器,该滤波器融合了几种类型的观察值,以监视一段时间内的活动并提供对情况的评估。并入了数据到图像的映射和相关性,允许不同元素的组合。

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