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Contrastive self-supervised learning for wireless power control

Publication ,  Conference
Naderializadeh, N
Published in: ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings
January 1, 2021

We propose a new approach for power control in wireless networks using self-supervised learning. We partition a multi-layer perceptron that takes as input the channel matrix and outputs the power control decisions into a backbone and a head, and we show how we can use contrastive learning to pre-train the backbone so that it produces similar embeddings at its output for similar channel matrices and vice versa, where similarity is defined in an information-theoretic sense by identifying the interference links that can be optimally treated as noise. The backbone and the head are then fine-tuned using a limited number of labeled samples. Simulation results show the effectiveness of the proposed approach, demonstrating significant gains over pure supervised learning methods in both sum-throughput and sample efficiency1,.

Duke Scholars

Published In

ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings

DOI

ISSN

1520-6149

Publication Date

January 1, 2021

Volume

2021-June

Start / End Page

4965 / 4969
 

Citation

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Naderializadeh, N. (2021). Contrastive self-supervised learning for wireless power control. In ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings (Vol. 2021-June, pp. 4965–4969). https://doi.org/10.1109/ICASSP39728.2021.9413621
Naderializadeh, N. “Contrastive self-supervised learning for wireless power control.” In ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings, 2021-June:4965–69, 2021. https://doi.org/10.1109/ICASSP39728.2021.9413621.
Naderializadeh N. Contrastive self-supervised learning for wireless power control. In: ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings. 2021. p. 4965–9.
Naderializadeh, N. “Contrastive self-supervised learning for wireless power control.” ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings, vol. 2021-June, 2021, pp. 4965–69. Scopus, doi:10.1109/ICASSP39728.2021.9413621.
Naderializadeh N. Contrastive self-supervised learning for wireless power control. ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings. 2021. p. 4965–4969.

Published In

ICASSP IEEE International Conference on Acoustics Speech and Signal Processing Proceedings

DOI

ISSN

1520-6149

Publication Date

January 1, 2021

Volume

2021-June

Start / End Page

4965 / 4969