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Deep Learning Cluster Structures for Management Decisions: The Digital CEO

机译:用于管理决策的深度学习集群结构:数字首席执行官

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摘要

This paper presents a Deep Learning (DL) Cluster Structure for Management Decisions that emulates the way the brain learns and makes choices by combining different learning algorithms. The proposed model is based on the Random Neural Network (RNN) Reinforcement Learning for fast local decisions and Deep Learning for long-term memory. The Deep Learning Cluster Structure has been applied in the Cognitive Packet Network (CPN) for routing decisions based on Quality of Service (QoS) metrics (Delay, Loss and Bandwidth) and Cyber Security keys (User, Packet and Node) which includes a layer of DL management clusters (QoS, Cyber and CEO) that take the final routing decision based on the inputs from the DL QoS clusters and RNN Reinforcement Learning algorithm. The model has been validated under different network sizes and scenarios. The simulation results are promising; the presented DL Cluster management structure as a mechanism to transmit, learn and make packet routing decisions is a step closer to emulate the way the brain transmits information, learns the environment and takes decisions.
机译:本文提出了一种用于管理决策的深度学习(DL)集群结构,该结构通过组合不同的学习算法来模拟大脑学习和做出选择的方式。所提出的模型基于随机神经网络(RNN)强化学习(用于快速本地决策)和深度学习(用于长期记忆)。深度学习集群结构已在认知分组网络(CPN)中应用,用于基于服务质量(QoS)指标(延迟,丢失和带宽)和网络安全密钥(用户,分组和节点)进行路由决策,该层包括一层DL管理集群(QoS,Cyber​​和CEO)基于DL QoS集群和RNN强化学习算法的输入做出最终路由决策。该模型已在不同的网络规模和场景下进行了验证。仿真结果是有希望的。提出的DL集群管理结构作为一种传输,学习和制定数据包路由决策的机制,更是一步一步地模仿了大脑传输信息,学习环境和做出决策的方式。

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