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Reduced Complexity Algorithms For Cognitive Packet Network Routers

机译:认知分组网络路由器的降低复杂度算法

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The cognitive packet network (CPN) routing protocol provides a framework for real-time quality of service decision making within packet networks. This allows the paths taken by packets to autonomously adapt to changing conditions in order to maintain and improve on the quality of service provided by current routing algorithms. Software implementations of the protocol use the random neural network with reinforcement learning. This algorithm is unsuitable for implementation in dedicated hardware or devices with low computational abilities due to its complexity. We present a series of alternative algorithms for use in CPN, and compare their complexity and performance with respect to software and hardware implementation. Through experimentation we demonstrate that it is possible to match the performance of the random neural network with the simpler alternative algorithms. We also propose an architecture for an FPGA based hardware CPN router, and describe our implementation.
机译:认知分组网络(CPN)路由协议为分组网络内的实时服务质量决策提供了框架。这允许数据包采用的路径自动适应变化的条件,以维持和改善当前路由算法提供的服务质量。该协议的软件实现使用具有增强学习功能的随机神经网络。由于其复杂性,该算法不适合在具有低计算能力的专用硬件或设备中实施。我们提出了一系列用于CPN的替代算法,并比较了它们在软件和硬件实现方面的复杂性和性能。通过实验,我们证明可以将随机神经网络的性能与更简单的替代算法相匹配。我们还提出了基于FPGA的硬件CPN路由器的架构,并描述了我们的实现。

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