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Machine Learning Empowered Spectrum Sensing Under a Sub-Sampling Framework

delete2022-10-01
delete8
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OA
AI
H
Han Zhang *
J
Jian Yang
Y
Yue Gao
DOI:10.1109/TWC.2022.3164800delete
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Abstract

Abstract

En 中文
Compressive sensing (CS) is a technique frequently adopted in wireless communications. By utilizing CS, a receiver could sense the state of channels with sub-Nyquist analog to digital converters when signals are sparse. Traditional CS methods struggle with non-sparse signals due to their intrinsic sparsity assumption. Therefore, we propose using deep learning (DL) to solve the vector support recovery problem with channels' high occupancy. The simulation results show that the proposed CS framework powered by DL can perform better than a traditional CS analytical benchmark, both in high and low channel occupation regions. We also observe that the ML can work under a lower sampling rate than traditional CS methods. To process data sampled with high channel numbers, a divide and conquer tactic is implemented.
Keywords:
Sensors
Support vector machines
Machine learning
Compressed sensing
Wireless sensor networks
Wideband
Hardware
Compressive sensing
machine learning
multicoset sampling
support recovery

Journal

IEEE Transactions on Wireless Communications cover
IEEE Transactions on Wireless Communications
IF:
10.7
Papers:
1.3W
Citations:
5.3W

Organization

U
University of Surrey
Scholars:
1.2W
Papers: 1.3W
Citations: 22
Cited Papers

Cited Papers

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errMishali, Moshe; Eldar, Yonina C.
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