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Situation assessment in autonomous systems

机译:自治系统中的情况评估

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For autonomous systems, it is essential to be able to identify the current state i.e to perform situation assessment, in order to determine the action to execute to ensure correct functionalities. Specifically, an autonomous system requires a supervision component with the goal to detect and to diagnose the current situation, and then to determine the self-adaptive operations. We propose a self-adaptive architecture for autonomous communicating systems in which the situation assessment process feeds the reconfiguration system with an estimation of the traffic situation so that it can decide about the reactions appropriate to cope with the dynamic changes. The estimation of the traffic situation is implemented at the transport protocol level from the time-stamped quality of service (QoS) parameters by using a learning approach. A fuzzy clustering method is used to classify the system states in classes called primitive patterns and the transitions between classes are expressed in term of events. A set of simulated network traffic scenarios are used to illustrate the main principles of the approach.
机译:对于自治系统,必须能够识别当前状态i.e来执行情况评估,以便确定执行以确保正确功能的操作。具体而言,自主系统需要一个监督程序的目标来检测和诊断当前情况,然后确定自适应操作。我们提出了一种自适应架构,用于自动通信系统,其中情况评估过程通过估计交通状况来馈送重新配置系统,以便它可以决定适当地应对动态变化的反应。通过使用学习方法,在传输协议级别从运输协议级别在传输协议级别实现的估计。模糊群集方法用于对称为基元模式的类中的系统状态,并且在事件期间表示类之间的转换。一组模拟网络流量场景用于说明方法的主要原理。

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