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End‐to‐End Multi‐Domain and Multi‐Step Jamming Prediction in Wireless Communications
by
Su, Zhe
, Jia, Luliang
, Chen, Jiaxin
, Liu, Yijia
, Sun, Wen
, Qi, Nan
in
Accuracy
/ Algorithms
/ Communications computing
/ Communications systems
/ Decision trees
/ Deep learning
/ Electromagnetic compatibility and interference
/ False alarms
/ Jamming
/ Neural nets
/ Neural networks
/ Performance evaluation
/ Power
/ Prediction models
/ Radio links and equipment
/ Tensors
/ Transmitters
/ Wireless communications
2021
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End‐to‐End Multi‐Domain and Multi‐Step Jamming Prediction in Wireless Communications
by
Su, Zhe
, Jia, Luliang
, Chen, Jiaxin
, Liu, Yijia
, Sun, Wen
, Qi, Nan
in
Accuracy
/ Algorithms
/ Communications computing
/ Communications systems
/ Decision trees
/ Deep learning
/ Electromagnetic compatibility and interference
/ False alarms
/ Jamming
/ Neural nets
/ Neural networks
/ Performance evaluation
/ Power
/ Prediction models
/ Radio links and equipment
/ Tensors
/ Transmitters
/ Wireless communications
2021
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
End‐to‐End Multi‐Domain and Multi‐Step Jamming Prediction in Wireless Communications
by
Su, Zhe
, Jia, Luliang
, Chen, Jiaxin
, Liu, Yijia
, Sun, Wen
, Qi, Nan
in
Accuracy
/ Algorithms
/ Communications computing
/ Communications systems
/ Decision trees
/ Deep learning
/ Electromagnetic compatibility and interference
/ False alarms
/ Jamming
/ Neural nets
/ Neural networks
/ Performance evaluation
/ Power
/ Prediction models
/ Radio links and equipment
/ Tensors
/ Transmitters
/ Wireless communications
2021
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End‐to‐End Multi‐Domain and Multi‐Step Jamming Prediction in Wireless Communications
Journal Article
End‐to‐End Multi‐Domain and Multi‐Step Jamming Prediction in Wireless Communications
2021
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Overview
In this letter, the problem of jamming data prediction in wireless communications is investigated. Both time and frequency domains are considered to construct the multi‐domain historical jamming data tensor. Besides, due to the perceiver's limited ability, false alarm data and missing detection data are considered. Two neural network prediction models are proposed to predict the jammers' future actions based on deep learning techniques. One is the multi‐variate long‐short‐term‐memory (multi‐variate LSTM) model, and the other is the 2‐D convolutional long‐short‐term‐memory model. Simulation results show that the proposed models have better prediction accuracy and robustness than the benchmark method.
Publisher
John Wiley & Sons, Inc,Wiley
Subject
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