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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Design of Cognitive Decision Making Controller for Autonomous Online Adaptive Beam Steering in Free Space Optical Communication System
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Design of Cognitive Decision Making Controller for Autonomous Online Adaptive Beam Steering in Free Space Optical Communication System

机译:自由空间光通信系统中自主在线自适应波束转向的认知决策控制器设计

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The beam motion is one of the main causes for major power loss which severely degrades the performance of the Free Space Optical Communication (FSOC) system. Designing a suitable controller to correct the beam motion to increase the beam stability at a point becomes significant. This paper presents an investigation on the performance of two types of controller designed for aiming a laser beam to be at a particular spot under dynamic disturbances generated at the transmitter. The experimental nonlinear input-output data mapping is used as the principal components for the controller design. The first design is based on the Taguchi method while the second is the artificial neural network-cognitive method. These controllers process the beam pointing (beam location) information from an opto-electronic position detector and then generate the necessary outputs to steer the beam with fast steering mirror. Conceptually, the controller design problem is addressed with looking the position error information to decide the level of nonlinear static output map for generating the correction control information. The pipelined-parallel architecture of both controllers are developed in a field programmable gate array (FPGA) and installed at the receiver station. Evidence of the suitability and the effectiveness of the proposed controller in terms of prediction exactness, response to impulse, scintillation, Q-factor and bit error rate are provided through experimental results obtained from the 155 Mbps FSOC data link set-up established for the horizontal range of 0.5 km at an altitude of 15.25 m.
机译:光束运动是造成主要功率损耗的主要原因之一,功率损耗严重降低了自由空间光通信(FSOC)系统的性能。设计合适的控制器以校正光束运动以增加一点处的光束稳定性变得很重要。本文对两种类型的控制器的性能进行了研究,这些控制器设计用于在发射器产生的动态干扰下将激光束对准特定的点。实验性的非线性输入输出数据映射被用作控制器设计的主要组成部分。第一种设计是基于Taguchi方法的,而第二种是基于人工神经网络的认知方法。这些控制器处理来自光电位置检测器的光束指向(光束位置)信息,然后生成必要的输出以通过快速转向镜转向光束。从概念上讲,控制器设计问题是通过查找位置误差信息来确定非线性静态输出图的级别以生成校正控制信息来解决的。两种控制器的流水线并行架构都是在现场可编程门阵列(FPGA)中开发的,并安装在接收站上。通过为水平方向建立的155 Mbps FSOC数据链路设置获得的实验结果,提供了拟议控制器在预测准确度,对脉冲响应,闪烁,Q因子和误码率方面的适用性和有效性的证据。高度为15.25 m时,射程为0.5 km。

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