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Automated inferential measurement system for traffic surveillance: enhancing situation awareness of UAVs by computational intelligence.

机译:用于交通监控的自动推理测量系统:通过计算智能增强无人机的态势感知。

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摘要

An adaptive inferential measurement framework for control and automation systems has been proposed in the paper and tested on simulated traffic surveillance data. The use of the framework enables making inferences related to the presence of anomalies in the surveillance data with the help of statistical, computational and clustering analysis. Moreover, the performance of the ensemble of these tools can be dynamically tuned by a computational intelligence technique. The experimental results have demonstrated that the framework is generally applicable to various problem domains and reasonable performance is achieved in terms of inferential accuracy. Computational intelligence can also be effectively utilised for identifying the main contributing features in detecting anomalous data points within the surveillance data.
机译:本文提出了一种用于控制和自动化系统的自适应推理测量框架,并在模拟交通监控数据上进行了测试。该框架的使用可以借助统计,计算和聚类分析做出与监视数据中异常情况有关的推断。此外,可以通过计算智能技术动态调整这些工具的集成性能。实验结果表明,该框架通常适用于各种问题领域,并且在推理准确性方面实现了合理的性能。计算智能还可以有效地用于识别监控数据中异常数据点的主要贡献特征。

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