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编辑出版:《电脑与电信》编辑部
ISSN 1008-6609 CN 44-1606/TN
邮发代号:46-95
国内发行:广东省报刊发行局
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电脑与电信  2023, Vol. 1 Issue (3): 20-24    DOI: 10.15966/j.cnki.dnydx.2023.03.010
  基金项目 本期目录 | 过刊浏览 | 高级检索 |
基于LSTM神经网络的认知无线电协作频谱预测
吉林化工学院 信息与控制工程学院
Collaborative Spectrum Prediction of Cognitive Radio Based on LSTM Neural Network
Jilin Institute of Chemical Technology
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摘要 
针对频谱资源紧缺问题,采用认知无线电网络中协作频谱预测关键技术来提高频谱预测的准确率,该技术能够
有效避免在单用户频谱预测中容易受到环境干扰而对预测结果产生影响的问题。首先利用排队论对授权信道状态进行建模,
通过LSTM对信道未来时隙状态进行预测,然后汇总出最终的预测结果。最后通过将LSTM与RNN、MLP 方法进行Python
仿真对比,以预测准确率和F1值作为性能指标进行验证,结果表明LSTM优于其他两种算法。
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Abstract
To solve the problem of spectrum resource shortage, a key technology of cooperative spectrum prediction in cognitive radio network is adopted to improve the accuracy of spectrum prediction in this paper. This technology can effectively avoid the problem that the single user spectrum prediction is easy to be affected by environmental interference. In this paper, we first model the authorized channel state using queuing theory, predict the future time slot state of the channel by LSTM, and then summarize the final prediction results. Finally, by comparing LSTM with RNN and MLP methods in Python simulation, this paper takes prediction accuracy and F1 value as performance indicators to verify, and the results show that LSTM is superior to the other two algorithms.

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年卷期日期: 2023-03-10      出版日期: 2023-08-08
引用本文:   
陈玲玲 张 刚.
基于LSTM神经网络的认知无线电协作频谱预测
[J]. 电脑与电信, 2023, 1(3): 20-24.
CHEN Ling-ling ZHANG Gang.
Collaborative Spectrum Prediction of Cognitive Radio Based on LSTM Neural Network
. Computer & Telecommunication, 2023, 1(3): 20-24.
链接本文:  
https://www.computertelecom.com.cn/CN/10.15966/j.cnki.dnydx.2023.03.010  或          https://www.computertelecom.com.cn/CN/Y2023/V1/I3/20
[1] 叶良忠 吴传良 王建华. 基于排队论模型的淮南市泉山华润苏果超市收银服务系统优化[J]. 电脑与电信, 2018, 1(11): 1-7.
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