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Design and Implementation of a Simulation System Based on Deep Q-Network for Mobile Actor Node Control in Wireless Sensor and Actor Networks

机译:基于深型Q网络的仿真系统的设计与实现无线传感器和演员网络中的移动actor节点控制

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A Wireless Sensor and Actor Network (WSAN) is a group of wireless devices with the ability to sense physical events (sensors) or/and to perform relatively complicated actions (actors), based on the sensed data shared by sensors. This paper presents design and implementation of a simulation system based on Deep Q-Network (DQN) for mobile actor node control in WSANs. DQN is a deep neural network structure used for estimation of Q-value of the Q-learning method. In this work, we implement the proposed simulating system by Rust programming language. We describe the design and implementation of the simulation system, and show some simulation results to evaluate its performance.
机译:无线传感器和演员网络(WSAN)是一组无线设备,其能够感测物理事件(传感器)或/并基于由传感器共享的感测数据来执行相对复杂的动作(参与者)。本文介绍了基于WSAN中的移动actor节点控制的基于深Q网(DQN)的仿真系统的设计和实现。 DQN是一种深度神经网络结构,用于估计Q学习方法的Q值。在这项工作中,我们通过RUST编程语言实现了建议的模拟系统。我们描述了仿真系统的设计和实现,并显示了一些仿真结果来评估其性能。

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