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Quasi-opportunistic contact prediction in delay/disruption tolerant network

机译:时延/中断容忍网络中的准机会接触预测

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Communication in Disrupt Tolerant Networks (DTNs) is a challenge because it presumes the absence of an end-to-end path at the time of sending a message to a destination. An efficient selection of a contact node to forward a message is a key in the routing process. Prediction techniques can be used to assist in routing decisions. This paper presents an approach to predict the next node and the moment of contact, based on artificial neural networks (ANN). The hit rate of a prediction function based on ANN has been compared by simulation with the hit rate of a function based on contact frequency. The ANN showed better results in a quasi opportunistic scenario. We expect to apply this approach to support a end-to-end routing protocol.
机译:容错网络(DTN)中的通信是一个挑战,因为它假定在将消息发送到目标时不存在端到端路径。有效选择联系人节点以转发消息是路由过程中的关键。预测技术可用于协助路由决策。本文提出了一种基于人工神经网络(ANN)的预测下一个节点和接触时刻的方法。通过仿真将基于人工神经网络的预测函数的命中率与基于接触频率的函数的命中率进行了比较。人工神经网络在准机会主义情况下显示出更好的结果。我们希望将这种方法用于支持端到端路由协议。

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